Tuesday, February 22, 2011

3D PDS Piping Model Check



Checking a 3D PDS Piping Model and Definition of Percentage Completion

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Table of Contents
1.                Introduction
2.                General
3.                General Safety
4.                Lines
5.                Valves
6.                Heat Exchangers/Reboilers
7.                Pumps and Compressor
8.                Vessels/Columns
9.                Furnaces/Boilers
10.             Relief System
11.             Electrical
12.             Instrumentation
13.             Civil/Structural
14.             Attachments

1. INTRODUCTION

The purpose of this document is to lay down a review procedure to ensure that the desired level of quality for the creation of a piping 3D is carried out in the engineering office and that sound design criteria for operability, safety and maintenance have been observed.
This check list may also be used for the recording of the check, appropriate space is left for any comments against a checked item in column “remarks”.
Additionally the form “Internal 3D Model Review” (see Attachment 1) and the form “Approved 3D Model Revisions from Internal 3D Model Review” (see Attachment 2) may be used for reporting purposes.

2. GENERAL

Check if “Interference Checking” facility has been run, if so, ask to see a printout of the report.
Check the 3D model against the latest issue of the plot plans, engineering and utility flow diagrams and line tables.
Follow the line up systematically and pay strict attention to details since many accidents are caused by seemingly minor items.
Mark on the engineering flow diagram all the lines, fittings and instrumentation which have been checked.
Make sure that when a modification, addition, elimination or reduction is considered, that is suits its purpose, is practical and also economical. When is doubt consult others.
Use this procedure for a number of items which can not be shown on diagrams. Please note that the checklist does not pretend to be complete and under no condition it shall overrule sound judgment.
Check that the color code has been used correctly.
Check if construction can build the unit(s) economically as designed.
Check that start up and shutdown problems have been considered and drain and let-down facilities have been provided.
Check the accessibility for operation, maintenance with mobile equipment and inspection.
Check location of future equipment.
Check location of drop out areas.
Check platforms and ladders.
Check that access ways and roads provide ample head room for vehicles, mobile equipment, etc. required for efficient and safe construction, operation and maintenance of the plant.
The policy of access to valves, blinds, manways, instruments, etc. shall been established during 3D model creation. Check 3D model for consistency of approach.
Package units are not normally modelled in detail and are usually show as a block. Ensure adequate space is available for access and for removal of components of package unit.
Check location of particularly noisy equipment, valves, etc. in relation to the frequency of visits by operating and maintenance personnel to the area.
Check the space required around fired heaters for soot blowing and decoking and clearance for burner removal.
Check that air fine coolers can be installed or handled during maintenance of plant by means of a mobile crane.
Check that adequate clearance and maintenance access is provided for plug removal tube cleaning, motors, V-belts, fans.
The 3D model shall also indicate junction boxes, cable trays and trunks, switch gears and power stations, control room, local panels, analyzer houses.
Check at final stage the package units, if vendor information has been included in the 3D model (use certified vendor drawings of lay out and detailed piping showing all instruments and local panel).

3. GENERAL SAFETY

Check that fire hydrants are not positioned at the ends of, or in the line with the ends of, horizontal vessels.
Check elevated equipment’s and platforms for the proper escape routes. Ensure unobstructed and short escape routes at grade.
Check that ladders and staircases have been installed on the outside of structures. Are staircases provided with turnaround landings?
Does escape traffic have to pass through structures? Check companies and/or governmental regulations for safety.
Check that remote shutdown and valve closing devices are installed at safe locations. Check that equipment concerned can be seen from these locations.
Check for “chimney gasp” between platforms and/or table tops.
Check that safety showers and eye baths are located near equipment containing aggressive chemicals (e.g. caustic, ADIP, MEA, HCl, h4SO4, etc.).
Check accessibility of the unit for mobile fire-fighting equipment and rescue work.
Avoid head bumpers, shin splitters and tripping hazards.
Check that emergency/smothering steam header block valves are at safe distance from protected equipment (e.g. in hydrogen service or near fired heaters). A steam header block valve station could be fire shielded, if required, by brick or concrete wall.
Make sure that operators manipulating drain valves can see the emerging affluent. The required level gauges shall be visible and funnels must be provided.
Check that water trapped in goosenecks cannot be displaced by hydrocarbons.
Check that utility stations have been provided, including those at the main operation platforms, e.g. for the connection of steam lances.
Check barometric seal height of vacuum for liquids other than water. Ensure that the liquid can be drained as well. Important for the design of the structure elevation.
Check that platforms have been provided at places where work is expected between maintenance stops.
Check that steam exhaust cannot cause personnel hazards either from spraying droplets of hot water or causing icy or wet surfaces.
Check that steam rings are foreseen at flanges in overhead lines of thermal cracking units and for lines in hydrogen service.
Be alert for equipment supported on continuous platforms when sections of these platforms are supported on structures subject to different thermal expansion.
Check that continuously operating vent stack are higher than the highest nearby structure (within a safe distance).
Check the location of liquid relief valves, since its actual height influences the required set pressure.
Check the location of toxic gases (h4S, VCM etc.) monitoring points if applicable.
Check that drains of light hydrocarbons (propane, butane) are protected against freezing (e.g. double valves).
Check that firewalls have been located correctly.
Check that levers of plug-and ball valves are not hampering operators on walkways or platforms, levers shall move in the same plane as the piping lay out.
Check that steam for purging of lines and equipment (e.g. snuffing steam, emergency steam) is dry, provide automatic trap stations with drain assembly upstream of last block valve in steamline.
Check that process ventlines are routed and oriented to safe locations, (3 meter above highest platform), watch nearest platforms and prevailing wind direction.
Check location of manholes with platforms and ladders in respect to safe escape route.
In case of location of water cooled equipment at high elevated platforms, check if the normal cooling water pressure is suitable for this duty, otherwise a booster pump shall be installed.
To prevent vacuum in equipment located at high elevations, due to siphon operation of the fluid, install a vacuum breaker to suck in air or a process gas.

4. LINES

Check that piping entering and leaving the unit is logically grouped together.
Check that valves, blinds, flushing/drain and instrument connections are properly located. Check especially so called manifolds and large control valves. Check in cases where spades are used ISO spectacle blinds, that piping system are flexible enough to insert these spades.
Check that piping subject to thermal expansion is anchored at plot limits.
Check elevation of overhead piping and horizontal clearance of access and/or walkways.
Check that start-up/circulation lines are short.
Check that dead ends have been avoided. Check if system can be flushed and drained.
Check that vapor lines (inclusive steam) branch off from the top of main lines. Prevent pockets in vapor lines. Keep lines sloping to a drum or install drainpoints (driplegs).
Check that piping subject to thermal expansion is flexible enough. Are supports adequate?
Check if nozzles and branches on expanding piping are not installed near obstructions, support beams, etc. (to avoid ripping off). Are these lines properly anchored. Are stresses on equipment nozzles within limits.
Check for pockets in vapor lines where condensation may occur. Has external heating been applied on those pockets which can not be avoided?
Check that long lines attached to small bore nipples are properly supported to prevent breakage due to vibration.
Check that lines do not pass through table top, but run alongside. If impossible group lines together passing via a sleeve.
Check that dead end sections have been avoided (e.g. in water lines).
Check that piping has been designed to permit easy drainage, venting, flushing, testing, maintenance, insulation, painting.
Check position of eccentric reducers. Normally straight side on bottom of horizontal lines except in pump suction lines where vapor pockets may cause calibration in the pump.
Check that compressor suction lines slope toward knockout drum.
Check that small bore cooling water lines branch off from top of the header. (This to prevent plugging).
Check that stripping steam lines are short and horizontal or sloping from the last valve.
Ascertain that two phase flow vertical piping has been checked for flow stability.
Check that hydraulic (water) hammer conditions have been checked.
Check that all lines have been properly numbered.
Check that high temperature and special material lines have been stress analyzed.
Check that gas is prevented from entering cooling water system.
Check absorber gas feed inlets for pockets near the inlet to avoid absorbent in the gas line.
Check that piping with instrument connections has been laid so that these connections are easily accessible. Check if necessary platforms and walkways have been provided.
Check anchoring of piping discharging to atmosphere. Pay special attention to screwed piping.
Check that vacuum equipment steam jets has been hooked up directly to the steam mains, i.e. without any intermediate connections which may suck in air. This is not applicable for vacuum pumps.
Check (for the same reason) that venting of the gas compressor suction piping has been avoided.
Check all coordinates on piping for correct configuration and clearances.
Check that service stations have been properly located. Design also for winterizing (water/steam/air in one insulated box).
Check for rotary equipment that suction and discharge piping are properly supported.
Check clearance between piping and structural steel with fireproofing.
Check that thermosiphon reboilers have been located such that minimum pipe distances and equal vapor distribution are achieved.
Check required straight piping runs to distributor piping in distillation columns. Only in vertical plains are bends allowed within this straight run.
If a vent is required on an exchanger for periodically purging of noncondensable vapors, this vent valve shall be accessible, vent plus line shall be shown on 3D model.
Check piping arrangements on shell and tube side of exchangers carefully for correct flow of fluids and proper operation of exchangers.
If symmetrical piping hook up is required to exchangers, airfines or double suction of pump, check this carefully.
Keep length of suction piping to pumps to a minimum and prevent pockets.
Check location of break flanges on piping at shell and tube exchangers and aircoolers to facilitate bundle removal.
Check that number of passes in a heater are shown and if necessary check that piping is symmetrical.
Check that location of isolating valves and valves of snuffing steam and emergency steam are at 15 meter distance from the heater at grade and accessible.
Avoid dead legs in heavy fuel oil lines and waste gas lines.
In case of steam jacketed sulphur lines provide T-pieces or cross pieces at the end for cleaning the sulphur lines by rigging.
Check location of relief valves and their good accessibility for servicing.
Check location of local panels for safe operation and good accessibility.

5. VALVES

Check that valves in overhead pipe tracks have been avoided to the maximum extent.
Check that chain operated valves have been avoided where possible.
Check that all valves are installed with the steam installed with the stem pointing upwards or horizontally.
Check that hand wheels are easily accessible for operation and yet not obstructing walkways or platforms. 
Check also steams, especially in open position.
Check that valves for emergency operations are workable grade level.
Check that valves that need frequent attention are easily accessible.
Check valves in vertical lines for possible water traps.
Check when reduced port valves are installed, that piping is self draining on both sides of the valve.
Check that hot oil block valves are well accessible in view of fire risk.
Check that control valve assemblies are located at ground level or on first platform (except when required otherwise for process reasons).
Check that installation of valves outboard of elevated platforms has been avoided.
Check that valves or double block and bleeders have been installed in utility connections to process equipment and lines.
Check that spring loaded and/or extra block valves have been used where valves may freeze-up when draining or sampling.
Check that process vents and drains are shown.
Check location /installation of check valves in ditch. lines of pumps or near connection of lines, for example connection of condensate lines from traps to condensate collecting header near to the header.
Check levers of plug-or ball valves, these shall not obstruct walkways, platforms etc. Levers shall move in the same plane as the piping lay out.

6. HEAT EXCHANGERS/REBOILERS

Check that piping arrangement is acceptable with respect to the removal of shell and channel covers as well as the withdrawal of tube bundles.
Check whether bundles can be pulled and lowered safely from platforms and stacked arrangements (obstructions, hydrants).
Check stacked heat exchangers for the possibility of oil spills on hot equipment beneath it, especially during maintenance work.
Check accessibility to exchangers for maintenance, bundle removal/cleaning, etc.
For a thermosiphon check reboiler check the elevation difference between draw-off pan and reboiler for driving force
If a vent is required on the exchanger for periodically purging of noncondensable vapors, this vent valve shall be accessible. Vent also to be shown on 3D model
Cold fluid enters the exchanger at the bottom and leaves it from the top
Check crane access to airfin coolers for maintenance or construction.
Check symmetrical piping hook-up to several bundles in an airfin cooler or to exchangers in parallel operation. Dead legs in capped headers shall be kept to a minimum or be avoided, use elbow ISO tees at the end of the header. Pockets in outlet piping of aircooled or water cooled condensers must be avoided as well as in the hot vapor bypass lines.

7. PUMPS AND COMPRESSOR

Check that flow in suction piping is as smooth as possible
Check that high points in pump suction lines have been avoided
Check that valving around pumps is logical and operable
Check volumes which must be drained when a filter or a pump needs to be opened
Check that pumps can be safely and easily handled for maintenance
Pay special attention to spading-off possibilities
Check that priming facilities are adequate
Check that facilities have been provided for gradual heating prior to start
Check hookup of suction line on double suction pump. Piping layout to be as follows for side inlet:
·                                 Straight length from suction flange until bend to be 3D (D = diameter nozzle pipe), no reducer allowed.
·                                 In vertical pipe reducer, strainer and valve can be installed.
·                                 For top inlet straight length = 5D if suction line runs in length direction of pump motor and 3D if suction line runs in same plane as pumps impeller(s). Upstream of the bend in the suction line the strainer, valve etc. can be installed.
Check that pump operating under vacuum are provided with high point vents, which are connected via a vent line to the top of suction vessel
For a vertical pumps no straight length is required.
If pump handle liquids with temperatures above auto-ignition, this pumps shall be located in safe-areas (not underneath pipe rack) and widely spaced from other pumps. Good accessibility for fire fighting is required and above pumps a sprinkler system shall be installed
Piping to compressors. Pockets shall be prevented, lines shall be slope to suction drum and suction line shall mostly be steamtraced. Check vendor drawings carefully
Check all flushing, cooling, quenching requirements of pumps and compressors
Check that sufficient space is available for removal of filters from strainers
Suctions lines of pumps to be of minimum length
Check NPSH of pumps
If two pumps are parallel operating the piping hookup at suction and discharge side shall be symmetrical.
·                                 On reciprocating compressors safety valves must be located upstream of the discharge block valve.

8. VESSELS/COLUMNS

Check location of vents as well as direction of outcoming streams
Check positions of drain nozzles. Keep them clear from areas where heavy equipment such as fork lift trucks may work
Check that manways are within reach of hoisting equipment
Check that instrument tappings and local instruments are readily accessible
Check that the lines can follow the expansion when heating up/ cooling down. Pay special attention to supports on hot respectively cold structures. Check free movement of platforms
Check that staircases, platforms, ladders etc. are logically located
Check that the layout of platforms , ladders, piping, relief sets, etc. is in accordance with the specified basis for wind and earthquake load calculations
Check location and elevation of all piping- and instrument nozzles against requisition of equipment and drawing
Check that spectacle blinds or spades are installed (indicated) at the nozzles for pressure test or isolation purposes. Normally required with columns
Stripping steam to the columns shall be dry; install KO pot at grade provided with automatic steam traps and drain valve and provide a minimum distance insulated steamline in vertical run without pockets to the steam inlet nozzle of the column.
Check that sufficient space is available for column erection activities
Check that consideration has been given to loading and unloading of catalysts, packing, internal etc.

9. FURNACES/BOILERS

Check that piping does not obstruct observation windows, access doors, header box covers, etc
Check that space is available for tube withdrawal and cleaning
Check that piping at burners is arranged so that insertion/removal of lighting torches and burner guns is not hampered
Pay special attention to safety of fuel system:
·                                 Check that heavy fuel and LBF system are sufficiently segregated
·                                 Check that provisions are made to adequately prevent liquid fuels from entering steam and gas system
·                                 Are locations of flame arrestors, straight pipe length etc. of low pressure and waste gas in accordance with specifications?
Check that emergency/smothering steam valve manifolds are at safe distance. Steam shall be dry. Install upstream of manifold at low point a drain valve and automatic steam trap
Check that dry emergency steam is available
Check that :
·                                 Branch off nozzles are positioned on top of main
·                                 Steam line are under continuous slope (no pockets)
·                                 Sufficient steam traps and drain points are provided
Check that fuel and atomizing steam cocks are within hand reach when looking at the burners through the observation windows
Check that the local emergency shutdown switch is at a safe location
Check that safety logic (for heater start-up and shut-down) is not located below (vertical) furnace. Normally such a logic is located in a local panel at safe distance (15 meter) from a fired heater
One complete burner hookup shall be shown per heater including all instruments and all provisions for safe startup, operation and shutdown of the heater with associated equipment (e.g. fans).
Check final certified vendor drawings for equipment correctness.
Check prescribed safety distances, e.g. for example:
·                                 12 meter to catch basins
·                                 15 meter to process equipment exclusive airfin coolers
·                                 22 meter to airfin coolers
Check that the damper can be operated from grade.
Check that the flue gas oxygen analyzer is located at grade.
Check heater or boiler location for maintenance and construction accessibility and also for decoking, regeneration or soot blowing activities.

10. RELIEF SYSTEM

Check that inlet lines to relief valves are self draining into process equipment.
Is its proper functioning not hampered by the nature of the process fluid? The allowable pressure drop across the inlet line of relief valve is limited to 3% of the set pressure (at maximum capacity). If pressure drop is too high, the line size shall be increased.
Check accessibility of the relief valves for maintenance and inspection. Check if relief valves have been installed at proper elevations. Distinguish between valves releasing to atmosphere or relief deader.
Check pressure relief discharging to atmosphere for safe location and direction.
Check that discharge pipe is drainable. If so, does drain not impinge on other equipment? Have measures been taken to avoid freezing of moisture on relief valve seats in low temperature service?
Check tail pipes for adequate support against reaction forces.
Check that the tail end of vent pipe is within the action radius of fire extinguishing equipment. If not, has a snuffing steam connection been provided?
Check that length of piping is minimized for safety relief valves discharging into a closed system.
Check that outlet line from relief is self draining into flare header. Check if connections are made on top of the flare header.
Check that flare lines have no pockets and that they are sloping to the flare knockout drum.
The back pressure on the relief valves (calculated during the design) shall be checked with the actual layout of the flare system.
Check destination of outlets from 1 ”x 1” thermal relief valves to atmosphere or grade for safety.
In case hooked up to the vessel, check if steamtracing is required to prevent plugging.
Check locking devices of the valves at inlet/outlet of the relief valves.
Check that valves with Castell lock system (or other system) are properly installed.
Check that safety relief valves and inlet/outlet lines adequately supported.
Check that tail pipes of relief valves require weather protection cap.
Check that the proper type of the relief valve has been specified, for example in waxy service piston type in view of plugging.
In case of 1 ”x 1” thermal relief valves, the inlet of the relief valve shall be self-draining to the process line, the discharge line can be connected to a collecting header which shall be discharging under slope without pockets to a vessel. Check if inlet and outlet lines of relief valves shall be steamtraced.

11. ELECTRICAL

Check that cable trunkings are properly located and not obstructed by equipment etc.
Columns of pipe racks are normally used to install junction boxes for both electrical and instrumentation purposes.
Check that orientation and access is not hampered by location of control valve station, steamtracing stations, utility stations or other piping lay-outs.

12. INSTRUMENTATION

Check that all instruments are on 3D model and have been correctly tagged.
Check that instrument cable trunkings are properly routed and in accordance with applicable instrument drawings.
Check that local control panels, main junction boxes, etc. are properly located.
Check location and accessibility for operation and maintenance of all instruments. Mind removable piping on both sides of reactors (swing elbow), here special design is required.
Check straight length of orifice runs.
Check clearance above external displacers for removal of floats.
Check platform clearance around level gauges, control valve stations, relief valve station, especially for Camflex type control valves with bypass.
Show all personnel protection, gas detection points (sniffing points).

13. CIVIL/STRUCTURAL

Check that all structures with bracing and pipe racks are shown, inclusive fireproofing.
Check that all plinths for equipment and structures are shown.
Check that all table tops are shown.
Check location of analyzer house(s), if fast loop requirements for correct measurements (samples) will be met.
Check that bracing of steel does not form an obstruction.

14. ATTACHMENTS

1.                Internal 3D Model Review
2.                Approved 3D Model Revisions from Internal 3D Model Review
3.                Definition of Percentage Completion
Internal Model Review
attachment not available ??
Approved Model Revisions From Internal Model Review
attachment not available ??
Definition of Percentage Completion
The following description is a definition of each percentage complete stage of the piping 3D model. Company practice normal practice is to make 3D model reviews at 30, 60, 90 and 100% completion.
Definitions

BASIC
·                                 Plot Plan Attached to 3D Models
·                                 Battery limits located
·                                 All major equipment located
·                                 Major structure shown
·                                 Major pipe rack shown
30% Completion
·                                 Comments from Client BASIC 3D model review incorporated
·                                 Large bore critical process lines studies on the 3D model
·                                 Piping studies 15 - 20% complete
·                                 Location of unit access ways for mobile maintenance and fire fighting equipment shown
·                                 Comments from Client for operation and maintenance incorporated
60% Completion
·                                 Comments from Client 30% 3D model review incorporated
·                                 Ready for Client’s comments for operation and maintenance
·                                 All equipment located
·                                 Piping studies 70% completed
·                                 All large bore process lines and utility mains shown
·                                 In-line instruments shown for lines installed
·                                 Instruments on equipment located. Local panels shown
·                                 Main cable trays installed
·                                 All structures (concrete and steel), ladders and platforms shown
·                                 All pipe racks shown
90% Completion
·                                 Comments from Client 60% 3D model review incorporated
·                                 All piping shown
·                                 Safety showers, eye baths or jump-in baths shown
·                                 Piping studies 100% complete
·                                 Instrumentation, including cable trays 100% complete. Electrical cable trays 100% complete
·                                 All major pipe supports located
100% Completion
·                                 Client’s final comments from 90% 3D model review incorporated
·                                 3D model updated to latest issue of PEFS’s, PEUFS’s, line tables, arrangement drawings and final equipment drawings
·                                 All sprinkler mainheaders shown

PIPING QUESTIONS AND ANSWERS....


QUESTIONS RELATED TO CODES & STANDARD:
1. What is the ASME code followed for design of piping systems in Process piping
(Refineries & Chemical Industries)?
Answer :B 31.3
2. Which American institute standard does piping engineer refer?
Answer:
A. The American Petroleum institute (API).
B. The American Iron & Steel institute (AISI).
C. The American Society for Testing and materials (ASTM).
D. The American National standard institute (ANSI).
E. The American welding society (AWS).
F. The American Water Works Association (AWWA).
G. The American Society for Mechanical Engineers (ASME).
3. What is the different ASME 31 code for pressure piping?
Answer:
A. ASME B31.1 - Power piping.
B. ASME B31.2 - Fuel Gas Piping.
C. ASME B31.3 - Process piping.
D. ASME B31.4 - Pipeline Transportation system for liquid hydrocarbon &
other Liquid.
E. ASME B31.5 - Refrigeration Piping.
F. ASME B31.8 - Gas transmission & distribution piping system.
G. ASME B31.9 - Building services piping.
H. ASME B31.11 - Slurry transportation piping system.
4. What are the different sections of ASME code? Where these sections are
reffereAnswer:
d?
A. ASME section I : - Rules for construction of power boiler.
B. ASME Section II : - Materials.
Part A – Ferrous materials.
Part B – Non-Ferrous materials.
Part C – Specification for electrodes & filler wire.
Part D – Properties.
C. ASME Section IV : - Rules for construction of Heating Boiler.
D. ASME Section V : - Non- destructive Examination.
E. ASME Section VI : - Recommended rules for care & operation of heating
Boiler.
F. ASME Section VII : - Recommended guidelines for care of power boiler.
H. ASME Section VIII : - Rules for construction of pressure vessels.
(Division I & II)
I. ASME Section IX : - Welding & Brazing qualification.

5. Which American standard is reffered for selection of following piping
element? A. Flanges B. Butt Welded fittings C. Gasket D. Socket & Threaded fittings E. Valves F. Pipes.
Answer:

A. Flanges :

I. ASME B16.1 : Cast iron pipes flanges & flanged fittings.
II. ASME B16.5 : Carbon steel pipes flanges & flanged fittings.(Up to 24”)
III.ASME B16.47 :Large Diameter steel flanges. (Above 24”)

B. Butt welded fittings :

I. ASME B16.9 : Steel butt welding fittings.
II. ASME B16.28 : Butt-welded short radius elbows & returns bends.

C. Gasket :

I. ASMEB16.20/API-601:-Metallicgasketsforpipeflanges-Spiralwound,
Octagonal ring Joint & Jacketed flanges.
II. ASME B16.21 : Non metallic gasket.

D. Socket & Threaded fittings :

I. ASME B16.11 :Forged steel socket welding & threaded fittings.
E. Valves :
I. ASME B16.10 : Face to face & end to end dimension of valves.
II.ASME B16.34 :-Flanged & butt-welded ends steel valves (Pressure &
Temperature ratings) except Ball, Plug & Butter fly Valves.

F. Pipes :

I.ASME B36.10 : Welded & Seamless wrought iron pipes.
II. ASME B36.19 : Stainless steel pipes.

QUESTIONS RELATED TO MATERIALS:

1. What is the ASTM code for the following?
Answer:

A. Pipes :
I. Carbon Steel :ASTM A53 Gr. A/B, ASTM A106 Gr. A/B/C, ASTM A333Gr.1/Gr.6 
II. Alloy Steel : ASTM A335 Gr.P1/P2/P5/P7/P9/P11/P12/P22.
III. Stainless Steel :ASTM A312TP304/TP304L/TP304H/TP308/ P310/TP316/TP316L/TP316H/TP317/TP321/TP321H/TP347/TP347H/TP348/TP348H.
IV. Nickel Steel : ASTM A333Gr.3/ Gr.8.

B. Tubes:

I.Carbon Steel : ASTM A178/179/192, ASTM A334 Gr.1/6.
II. Alloy Steel :ASTM A161T1, ASTM A213T1/T2/T5/T7/T9/T11/T12/T22.
III.Stainless Steel :ASTM A213 TP304/TP304L/TP304H/TP310/TP316/TP316L/
TP316H/TP317/TP321/TP321H/TP347/TP347H/TP348/TP348H,ASTM A608 HK40.
IV. Nickel Steel :ASTM A334Gr.3/Gr.8

C. Wrought Iron fittings :

I. Carbon Steel :ASTM A234Gr.WPA/B, ASTM A420 Gr.WPL6.
II. Alloy Steel :ASTM A234 WP1/WP5/WP7/WP9/WP11/WP12/WP22.
III. Stainless Steel :-ASTM A403 WP304/WP304L/WP304H/WP309/WP310/WP316/
WP316L/WP316H/ WP317/WP321/WP321H/WP347/WP347H/ WP348.
IV. Nickel Steel :ASTM A420WPL6/WPL8.

D. Forged Fittings :

I. Carbon Steel :ASTM A181. ASTM A105, ASTM A350 LF1/2.
II. Alloy Steel :ASTM A182F1/F2/F5/F7/F9/F11/F12/F22.
III. Stainless Steel :-ASTM A182F6/F304/F304L/F304H/F310/F316/F316L/
F316H/F321/F321H/F347/F347H/F348.
IV. Nickel Steel :ASTM A350 LF3, ASTM A522.

E. Cast Fittings:

I. Carbon Steel :ASTM A216, ASTM A352 LCB/C.
II. Alloy Steel :M A217 WC1/WC6/WC9/C5/C12.
ASTIII. Stainless Steel :-ASTM A217 CA15, ASTM A296 CA15, ASTM A351 CF8/
CF3/CH20/CK20/CF 8M/CF 3M/CF 8C/HK40.
Nickel Steel :ASTM A352LC3.
IV. F. Plates:
I. Carbon Steel :ASTM A285, ASTM A515, ASTM A516.
II. Alloy Steel :ASTM A387 Gr.2/Gr.5/Gr.7/Gr.9/Gr.11/Gr.12/Gr.22.
III. Stainless Steel :ASTM A240TP410/TP405/TP430/TP304/TP304L/TP309/
TP310S/TP316/TP316L/TP317/TP321/TP347/TP348
IV. Nickel Steel :ASTM A203 Gr.D/Gr.E, ASTM A353.
2. What is the basic difference between Pipe specification A106 Gr.A/Gr.B/Gr.C.?
Difference is due to the Carbon content.
% of carbon content in :
I. ASTM A106 Gr. A – 0.25 %
II. ASTM A106 Gr. B – 0.30 %
III. ASTM A106 Gr. C – 0.35 %
3. What is the difference between pipe specification ASTM A312 TP 304 & ASTM
A312 TP304L, ASTM A312 TP 316 & ASTM A312 TP 316L?
Answer:
Difference is due to the Carbon content. The Letter “L” denotes lower percentage of carbon.
% of carbon content in :
I. ASTM A312 TP 304 -0.08 %
II. ASTM A312 TP 304L-0.035%
III. ASTM A312 TP 316 -0.08 %
IV. ASTM A312 TP 316L-0.035%

QUESTIONS RELATED TO PIPE FITTINGS:

1. How can flanges be classified based on Pipe Attachment?
Answer:
Flanges can be classified based on pipe attachment as: -
A.Slip – on. : The Slip-on type flanges are attached by welding inside as e. These flanges are of forged construction.
well as outside
B.Socket Weld. :The Socket Weld flanges are welded on one side only. These are used for small bore lines only.
C.Screwed. :The Screwed-on flanges are used on pipe lines where welding cannot be carried out.
D.Lap Joint. : The Lap Joint flanges are used with stub ends. The stub with pipes & flanges are kept loose over the same.
E.Welding Neck. :The Welding neck flanges are attached by butt welding to the pipe. These are used mainly for critical services where the weld joints need radiographic inspection.
F.Blind :The Blind flanges are used to close the ends which need to be reopened.
G.Reducing :The reducing flanges are used to connect between larger and smaller sizes without using a reducer. In case of reducing flanges, the thickness of flange should be that of the higher diameter.
H.Integral: Integral flanges are those, which are cast along with the piping component or equipment.

2. How can flanges be classified based on Pressure- temperature ratings?
Flanges are classified based on pressure temperature ratings as: -
A. 150 .
B. 300 .
C. 400 .
D. 600 .
E. 900 .
F. 1500 .
G. 2500.
Pressure temperature rating carts in the standard ASME16.5 specify the non-shock working gauge pressure to which the flange can be subjected to at a particular temperature.

3. How can flanges be classified based on facing?
Answer:
Flanges are classified based on facing as: -
A. Flat face. (FF)
B. Raised face. (R/F)
C. Tongue and groove. (T/G)
D. Male and female. (M/F)
E. Ring type joint. (RTJ)

4. How can flanges be classified based on face finish?
Answer:
Flanges are classified based on face finish as: -
A. Smooth finish.
B. Serrated finish.

5. Where the smooth finish flange & serrated finish flange finds its use?
Answer:
The smooth finish flange is provided when metallic gasket is provided and serrated finish flange is
provided when non-metallic gasket is provided.

6. What are the types of serrated finish provided on flange face?
Answer:
A. Concentric or
B. Spiral (Phonographic)

7. How the serration on flanges is specified?
The serration on flanges is specified by the number, which is the Arithmetic Average Rough Height (AARH).

8. Where the concentric serration is insisted for face finish?
Concentric serration are insisted for face finish where the fluid being
carried has very low density and can find leakage path through cavity.

9. How the Gaskets are classified based on the type of construction?
Answer:
Based on the type of construction, gaskets are classified as:
A. Full face.
B. Spiral wound metallic.
C. Ring type.
D. Metal jacketed.
E. Inside bolt circle.

10. What is the most commonly used material for Gasket?
Answer:
Compressed Asbestos Fibre.

11. Which type of gasket is recommended for high temperature & high-pressure application?
Answer:
Spiral Wound Metallic Gasket.

11. What are the criteria for selection of MOC of Spiral Wound metallic Gasket
winding material?
The selection of material of construction for Gasket winding depends upon:
A. The corrosive nature and concentration of fluid being carried.
B. The operating temperature of the fluid.
C. The relative cost of alternate winding material.

12. What are the most common materials used for spiral wound metallic gasket
winding?
Answer:
The most commonly used material for spiral wound metallic gasket winding is:
A. Austenitic stainless steel 304 with asbestos filler.
B. Austenitic stainless steel 316 with asbestos filler.
C. Austenitic stainless steel 321 with asbestos filler.

13. Which material is used as filler material for spiral wound gasket in case of
high temperature services?
Answer:
For very high temperature services, graphite filler is used.

14. What is centering ring in connection to spiral wound gasket?
Answer:
Spiral wound gaskets are provided with carbon steel external ring called centering ring.

15. What will be the AARH finish on flange face for using spiral wound gasket?
Answer:
125-250 AARH finish.

16. On which type of flanges the use of spiral wound gasket are restricted?
Answer:
ASME B16.5 does not recommend the use of 150 .rating spiral wound gasket on flanges other than welding neck and lapped joint type.

17. Up to what temperature limits the low strength carbon steel bolts should not be used for flanged joints?
Answer:
Flanged joints using low strength carbon steel shall not be used above 200.C or below - 28.C.

17. How the pipe fittings are classified based on end connections?
Answer:
Pipe fittings are classified based on end connection as: -
A. Socket weld fittings.
B. Screwed end fittings.
C. Beveled end or Butt weld fittings.
D. Spigot socket fittings.
E. Buttress end fittings.

18. Up to what temperature the carbon steel materials shall be used?
Answer:
Carbon steel materials shall be used for temperature up to 425.C.

19. Which material is used for temperature above 426.C?
Alloy steel materials shall be used for temperature above 426.C.

20. Which type of material is used for corrosive fluid?
Stainless steel materials shall be used for corrosive fluid.

21. Which type of piping materials are used for drinking water, instrument air etc?
Answer:
Galvanized steel materials shall be used for drinking water, instrument air and NI lines (LP).

22. What is the difference between Pipe and Tube?
Answer:
Pipe is identified by NB and thickness is defined by Schedule whereas Tube is identified by OD & its thickness as BWG (Brimingham wire gauge or 1/100 inch).

23. From which size onwards NB of pipe is equal to OD of Pipe?
Answer:
From the size 14” and onwards NB = OD of pipe.

24. What should be the radius of long radius elbow?
Answer:
1.5D (Where “D” is the diameter of the pipe.)

25. What should be the radius of short radius elbow?
1D(Where “D” is the diameter of the pipe.)

26. What is the basis of using of short radius & long radius elbow?
Answer:
Long radius elbow are used for small pressure drop whereas short radius elbow are used for high
pressure drops. For catalyst flows vary long radius elbows are used.

27. Normally where do we use the following?
Answer:
A. Eccentric reducers = Pump suction to avoid Cavitation, To maintain elevation (BOP) in rack.
B. Concentric reducers = Pump discharge, vertical pipeline etc.

28. Concentric reducer is used in pump suction. (Yes / No). Explain.
Answer:
No. Air pockets may form if concentric reducer is used at pump suction, which results in cavitation and cause damage to Pump. To avoid this problem, Eccentric Reducer with flat side up(FSU) isused in Pump Suction.

29. Where the ERW spiral & longitudinal pipes are used?
Answer:
Use depends upon the availability of pipes. Nothing functional difference.

30. Where the ERW & Seamless pipes are used?
Above 18” ERW pipes are used. Below 18” seamless pipes are used. Seamless pipes can sustain higher temperature & pressure.

31. What is the main use of ASTM A53 & A106 Gr.B pipes?
Answer:
ASTM A53 pipes are mainly used for utility services whereas A106 Gr. B pipes are used for high Pressure & high temperature services.

32. From which side of pipe will you take a branch connection?
When fluid is Gas, Air or Steam and Cryogenic Service – Topside.
When Fluid is Liquid – Bottom Side.

33. Why don’t we take a branch for Cryogenic Service from bottom side though the fluid is in liquid state?
 Answer:
There is the chance of ice formation during normal operation and since ice flows from the bottom of the pipe it will block the branch pipe connection.

33.Why we provide High Point Vent (HPV) and Low Point Drain (LPD) in piping?
HPV – For removing Air during Hydro-test.
LPD – For draining water after conducting Hydro-test.

34. What do you mean by Jacketed Piping?
Answer:
Piping which is recognized as providing the most uniform application of heat to the process, as well as maintaining the most uniform processing temperatures where steam tracing is not capable of maintaining the temperature of fluid constant. Usually used for molten sulphur, Polymers service.

35. What is the minimum distance to be maintained between two welds in a pipe?
Answer:
The thumb rule is that the minimum distance between adjacent butt welds is 1D. If not, it is never closer than 1-1/2". This is supposedly to prevent the overlap of HAZs. Minimum spacing of circumferential welds between centerlines shall not be less than 4 times the pipe wall thickness or
25 mm whichever is greater.

36. What do you mean by IBR and which lines comes under IBR purview?
IBR: Indian Boiler Regulation Act.
Steam lines with conditions listed bellow comes under IBR purview :
• Lines for which design pressure is 3.5 kg/sq. cm and above.
• Line size above 10” having design pressure 1.0 kg/sq. cm and above.
• Boiler feed water lines to steam generator, condensate lines to steam
generator and flash drum.

37. What are Weldolet and Sockolet? And where they are used?
Weldolet and Sockolet are basically self-reinforced fittings.
Weldolet is used for Butt weld branch connection where standard tee is not available due to sizerestrictions and the piping is of critical / high-pressure service. Sockolet is used for socket welding branch connection, which require reinforcing pad.

38. What is the MOC for Superheated high pressure Steam Lines?
A 335 Gr. P I / P 11, Composition: Cr. – ½ Mo (P1) / 1¼ Cr. – ½ Mo (P11)

39. What is the normal upstream and downstream straight length of orifice flow
meter?
Answer:
Upstream -15D Downstream -5D

QUESTIONS RELATED TO VALVES:
1. What is the function of valves?
Answer:
A. Isolation.
B. Regulation.
C. Non-Return.
D. Special purpose.

2. How the valves are classified based on their function?
A. Isolation.
1. Gate valve. 2. Ball valve 3. Plug valve. 4. Piston valve. 5. Diaphragm Valve. 6. Butterfly valve. 7. Pinch valve.
B. Regulation
1.Globe valve.2. Needle valve. 3. Butterfly valve. 4. Diaphragm valve.
5. Piston valve. 6. Pinch valve.
C. Non-Return
1. Check valve. D. Special purpose
1. Multi-Port valve. 2. Flush Bottom valve. 3. Float valve. 4. Foot valve.
5. Line blind valve. 6. Knife Gate valve.

3. How the valves are classified based on its method of operation?
Answer:
Valves are classified based on its method of operation as:
A. Self-operated valves.
B. Operated valves.

4. Name the Self – operated & operated valves?
Mainly the check valves are self-operated and all other valve types comes under operated valves.

5. How the valves are classified based on end connection?
Answer:
Valves are classified based on end connection as:
A. Screwed ends.
B. Socket ends.
C. Flanged ends.
D. Butt weld ends.
E. Wafer type ends.
F. Buttress ends.
End connection means arrangement of attachment of the valve with the equipment or the piping.

6. What are the types of check valves?
Answer:
Check valves are divided into two types based on check mechanism as:
A. Lift check valve.
B. Swing check valve.

7. What do you mean by special purpose valves?
Answer:
Valves that perform duties other than the two-way isolation, control and
check are called special purpose valves.

8. What are Glandless piston valves? Where these are used?
Glandless piston valves are regulating valves used in steam services.

QUESTIONS RELATED TO WELDING/ WELD DEFECTS/POST HEATING/POST WELD HEAT TREATMENT/ ELECTRODE/FILLER WIRE.
1. What do you mean by following type of welding?

A. SMAW : - Shielded Metal Arc Welding.
B. TIG : - Tungsten Inert Gas Welding.

2. Mention the contents of TIG welding set?
Answer:
A. Torch : Consist of hose for argon gas / welding lead / ceramic nozzle/ collet / tungsten rod as cathode to create arc.
B. Regulator with Pressure Gauge (HP & LP) & flow meter.
C. Argon cylinder – Gr.2 / Gr.1 depending upon requirements of the job.
D. Transformer / Rectifier.
E. Filler wire

3. While welding of pipe trunion to pipe/reinforcement pad you have to put a hole or leave some portion of welding why?
 Answer:
For venting of hot gas which may get generated due to welding.

4. What is the thumb rule to calculate Current required for Welding?
Answer:
Current (Amp) = [Diameter of Electrode (mm) X 40] .20

5. What is the minimum thickness of cs pipe that requires stress relieving to be done as per B31.3?
Answer:
19.05 mm thk.

6. Which is the Electrode & filler wire used for welding of following materials?
Covered
Electrode Bare
A.Alloy Steel electrode
I. ASTM A335PI E7018 E70 S-1B
II. ASTM A335P2 E8018-B1
III. ASTM A335P11 E8018-B2 ER515
IV. ASTM A335P5 E502 ER502
V. ASTM A335P9 E505 ER505

B.Stainless Steel

I. ASTM A312TP304 E308 ER308
II. ASTM A312TP304L E308L ER308L
III. ASTM A312TP304H E16-6-2 ER16-8-2
IV. ASTM A312TP308 E309 ER309
V. ASTM A312TP310 E310 ER310
VI. ASTM A312TP316 E316 ER316
VII. ASTM A312TP316L E316L ER316L
VIII. ASTM A312TP316H E16-8-2 ER16-18-2
IX. ASTM A312TP321 E347 ER347
X. ASTM A312TP321H E16-6-2 ER16-8-2

7. What are the common welding defects?
A. Lack of penetration.
This defect occurs at the root of the joint when the weld metal fails to reach it or weld metal fails
to fuse completely the root faces of the joint. As a result, a void remains at the root zone, which
may contain slag inclusions.
Cause:
1.Use of incorrect size of electrode in relation to the form of joint.
2.Low welding current.
3.Faultyfit-up and inaccurate joint preparation.

B.Lack of fusion.
Lack of fusion is defined as a condition where boundaries of unfused metal exist between the
Weld metal & base metal or between the adjacent layers of weld –metals.

1.Presence of scale, dirt, oxide, slag and other non-metallic substance which prevents
the weld metal to reach melting temperature.
2.Improper deslagging between the weld pass.

Precaution:
1.Keep the weld joint free from scale, dirt, oxide, slag and other non-
metallic substance.
2.Use adequate welding current.
3.Deslag each weld pass thoroughly.
4.Place weld passes correctly next to each other.

C.Undercut
This defect appears as a continuous or discontinuous groove at the toes of a weld pass and islocated on the base metal or in the fusion face of a multipass weld. It occurs prominently on the edge of a fillet weld deposited in the horizontal position.
Cause:
1.Excessive welding current.
2.Too high speed of arc travel.
3.Wrong electrode

Rectification:

The defect is rectified by filling the undercut groove with a weld pass. If undercut is deep &
contains slag, it should be chipped away before rewedding.

D.Slag Inclusion

Non–metallic particles of comparatively large size entrapped in the weld metal are termed
as slag inclusion.
Cause:
1.Improper cleaning of slag between the deposition of successive passes.
2.Presence of heavy mill scale, loose rust, dirt, grit & other substances
present on the surface of base metal.

precaution:
1.Clean the slag thoroughly between the weld pass.
2.Keep the joint surface (especially gas cut surface) and bare filler wire
perfectly clean.
3.Avoid undercut & gaps between weld pass.
4.Use proper welding consumables.

E.Porosity
The presence of gas pores in a weld caused by entrapment of gas during solidification is termed as porosity. The pores are in the form of small spherical cavities either clustered locallyor scattered throughout the weld deposit. Sometimes entrapped gas give rise to a single large
cavity called Blow holes.

Cause:
1.Chemically imperfect welding consumables, for example, deficient in
deoxidiser.
2.Faulty composition of base material or electrode, for example, high
sulphur content.
3.Presence of oil, grease, moisture and mill scale on the weld surface.
4.Excessive moisturein the electrode coating or submerged-arc flux.
5.Inadequate gas shielding or impure gas in a gas –shielded process.
6.Low welding current or too long an arc.
7.Quick-freezing of weld deposit.

F.Crack
Fracture of the metal is called crack. Two types of cracks: -Cold crack & Hot crack. Cold crack usually occur in HAZ of the base metal when this zone becomes hard and brittle due to rapid cooling after the weld metal has been deposited & sufficient hydrogen has been absorbed by the weld metal from the arc atmosphere Precaution:

1.Use of low carbon equivalent materials.
2.Higher heat input during welding.
3.preheating.
4.Use of low hydrogen electrode.
5.Faulty weld size and profile

A weld is considered faulty if it has lack of reinforcement, excessive reinforcement or irregular Profile.

H. Distortion
Because a weldment is locally heated (by most welding processes), the temperature distribution in the weldment is not uniform and changes take place as welding processes.Typically, the weld metal and the base metal heat-affected zone immediately adjacent to it are at a temperature substantially above that of the unaffected base metal. As the molten pool solidifies and shrinks, it begins to exert shrinkage stresses on the surrounding weld metal and heat-affected zone area. When it first solidifies, this weld metal is hot, relatively weak, and can exert little stress. As it cools to ambient temperature, however, the shrinkage of the weld metal exerts increasing stress on the weld area and eventually reaches the yield point of the base metal and the heat-affected zone. Residual stresses in weld ments have two major effects. First,they produce distortion, and second, they may be the cause of premature failure in weld ments.

Cause :
when the heated weld region contracts nonuniformly, causing shrinkage in one part of the weld to exert eccentric forces on the weld cross section.
The distortion may appear in butt joints as both longitudinal and transverse shrinkage or contraction, and as angular change (rotation) when the face of the weld shrinks more than the
root. Distortion in fillet welds is similar to that in butt welds: transverse and longitudinal shrinkage as
well as angular distortion results from the unbalanced nature of the stresses in these welds.

8. What is mean by ‘PWHT’? Why it is required?
Answer:
“POST WELD HEAT TREATMENT” This is done to remove residual stress left in the joint which may
cause :
Brittle fracture.

9. Why pre-heating is done on some pipe before starting welding?

To slow down the cooling rate.

10. Why post-heating is done on some pipe after the welding is over?
Answer:
To maintain uniform homogeneous structure.

11. What is the pre-heat temperature for carbon steel above 19.05MM thk.
Answer:
Pre –heat temperature for carbon steel above 19.05 mm is 80.C.

12. Is post heating required for carbon steel material above 19.05MM thk.

No. Post heating is not required for carbon steel material of any thickness.

13. What is the soaking temperature during stress reliving for carbon steel material?
Answer:
Soaking temperature for carbon steel material during stress reliving is 620.C. (.20.C)

14. What is the soaking period during stress reliving for carbon steel material?

Soaking period for carbon steel material during stress reliving is 1hr.

15. What is the rate of heating & cooling during stress reliving for carbon steel material?
Answer:
The rate of heating & cooling for carbon steel material during stress reliving is 150.c/hr.

16. What is the pre-heat temperature during stress reliving for alloy steel materials?
Answer:
Pre-heat temperature for AS materials is 180.C.

17. What is the soaking temperature during stress reliving for alloy steel material?
Answer:
Soaking temperature for alloy steel material is 720.C(.20.C).

18. What is the soaking period during stress reliving for alloy steel material?
Answer:
Soaking period for alloy steel material is 2hrs.

19. What is the rate of heating & cooling during stress reliving for alloy steel material?
Answer:
The rate of heating & cooling for alloy steel material is 100.C/hr.

20. What is the post heat temperature for alloy steel material?
Answer:
Post heat temperature for alloy steel material is 300.C.

21. What is a four or five digit coding for electrode as per AWS classification SFA 5.1?
Answer:
EX X X X X XXXX
The minimum UTS of Welding position. Type of coating the undiluted weld metal and current condition.in psi. ( UTS – Ultimate tensile strength)

22. Where the use of electrode E7018 is recommended?
Answer:
The use of electrode E7018 is recommended for welding the following:
A. For high strength steel.
B. For high thickness carbon steel plates.
C. Higher carbon equivalent material.

23. Why the electrode E7018 is called low hydrogen electrode?
Answer:
The low hydrogen electrodes have in their coating ingredient, which produces carbon di-oxide during melting. This CO2 gives a gaseous shielding for the metal and prevents atmospheric hydrogen from
entering in arc atmosphere. By this way the weld metal has low level of hydrogen.

24. What should be the content of chlorine in water while conducting hydrotest for CS & SS pipes?
Answer:
For CS – 250 PPM.
For SS – 30 PPM.

25. Draw the stress-reliving diagram for carbon steel & Alloy steel material?
Soaking period ( 1hr. for C.S & 2hrs. for AS)
(Note: -The stress reliving diagram remain same
for both AS & CS. The difference is only
in soaking temperature.) Time Temperature










****freshers****Graduate Engineer Trainee (GET)




Post*
Graduate Engineer Trainee (GET)

Company Name*
SKF India Ltd

Company Profile*
We are the world’s leading Technology and Solutions provider. SKF in India is a 16 BINR company with more than 2000 employees, 5 manufacturing units with 2 new started in 2009, 7 sales offices and several resident engineer offices.

Our Vision is to be the Knowledge Engineering Company. We not only manufacture and sell products but are attempting changing the frontiers by offering value added solutions, and partnering customers in their quest of knowledge, and this is what charges our employees.

Instead of supplying a component to the customer, we move up the value chain to offer solutions. Our product range encompasses several products in Bearings and Units, Seals, Lubrication Systems, Mechatronics, and Services.

SKF believes in providing a learning environment and learning interventions to unleash one’s creative energies.  To enable employee development, SKF has a College Campus in Pune, which focuses on Learning and Development of the employees.


Job Description*

Short listing on Academic criteria

Recruitment Process :
Technical and Aptitude Test
Management Game
Functional interview
Final interview
Offer


Those selected undergo 1 year training which includes 3 inductions - Joining, Mid Year and Closure and 2 assignments of 22 weeks.  The induction focuses on orienting the GET's on SKF (Company history, products, processes, skill development).


During the 2 assignments, they work in 2 different roles in order to get wider exposure in their area of specialization like manufacturing, sales and support services including manufacturing engineering, quality, supply chain application engineering etc.


After successful completion of the one-year training depending on their performance they are absorbed as Assistant Managers in areas as per the requirement in the Organization.






Timelines –
Last date of applications to be received – 15th March 2011
Short listed students will be intimated through an email about the process date and locations

The students have to make arrangements for their to and fro travel.
Those selected will have to join on July 4th , 2011


Candidate Profile*
We invite applications for GETs Candidates must meet the following criteria :
  • 10th and 12th – 60% & above
  • BE (Mechanical or Production or Industrial) –
1.      For Fresher’s - Aggregate of 1st six semesters equal and greater than 60% (Not more than 2 semester percentage less than 60%, none of the semester percentage below 55%)
2.      For Experienced - Aggregate of all eight semesters equal and greater than 60% (Not more than 2 semester percentage less than 60%, none of the semester percentage below 55%)
  • No year gap

Minimum Experience*
Fresher

Maximum Experience*
2 years

Location*
Any of the manufacturing units and sales offices of SKF India

Compensation
4.25 Lacs per annum

Website
www.skfindia.com

We invite you to join SKF at its most exciting time in History.

2. Please ask candidates to apply on the following link
http://jobsearch.naukri.com/mynaukri/js_company.php

Opportunities with Robert Bosch

Design Engineer / Team Lead

Job Location: Bangalore / Coimbatore

Relevant Experience: 4-6 Years

Educational Qualification: BE (Mechanical)

Technical requirements:

  • Knowledge of different processes involved in New Product Development cycle.
  • Experience of coordination between suppliers and cross functional departments is an added advantage.
  • Expertise in Surface modeling is an added advantage.
  • Knowledge on GD&T and Tolerance stack up is essential.
  • Sound knowledge of engineering fundamentals with co-relation of basic physics to engineering mechanisms is a must

Domain knowledge: Product Development

Software Knowledge: Pro/E

General requirements:
  • Good communication
  • Prior work experience in a process oriented industry is preferable.
  • Ability to travel locally & internationally
  • Willing to work in onsite locations over extended periods.
Recommended fields:
Consumer Products, Engineering services firms.

If you are very keen to explore this opportunity, kindly forward your profile to
fixed-term.kavitha.ks@in.bosch.com with following details;

Total Experience:
Current CTC:
Expected CTC:
Notice Period:
Current Location:


Please visit www.boschindia.com/rbei to learn more about us

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Group Lead Engineer
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Opening for Engineer Civil / Manager Civil , Pune,
Client Of Career Vision Hr Consultancy - Pune, Maharashtra
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PART TIME / FULL TIME ENGINEERS & DESIGNERS
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Monday, February 21, 2011

Current Job Openings - 20.02.2011


SALES ENGINEER
B.E. / Diploma in Mechanical / Electrical / Electronics with 2 - 5 years of Exp. in
Marketing of Industrial Engineering Products, New Business Development,
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Finalization & Closing of Orders.
Bangalore
 

 
SERVICE ENGINEER
Diploma in Mechanical with 2 - 3 years of Exp. in Servicing Machines & Capital Equipments,
Should be prepared to Travel extensively & Attend Customers' complaints.
Bangalore
 
 
 
JUNIOR ARCHITECT
B.Arch. with 1 - 2 years of Exp. in AutoCAD, Revit Architecture, 3D Max,
To Assist a Team of Architects, Making the Drawings in 2D & 3D Formats,
Taking Proper Measurements of the Sites, Certifications of all Vendor Bills.
Bangalore
 

ACCOUNTS ASSISTANT
B.Com. with Tally with 1 - 2 years of Exp. in
Accounts, Billings, Preparation of Invoices, Cheques, Vouchers,
Visiting Banks for Depositing / Withdrawal of Cash, Computer Savvy.
Bangalore
 
__________________________________________________________________________
 

& For Many More Jobs:
 
 
                    http://www.hitechplacements.co.in 
 
 
 

Send Your Updated Resume: cv@hitechmanpower.com
 
 

Urgent -Job Opening in International / Domestic BPO's

 We are RVS HR SOLUTIONS. We have been running a talent management drive for tier 2-3 cities to increase job opportunities. We give a career plan & through our efforts, knowledge, networking and smart work we guide people to reach their dream path. Our expert team works round the clock to assess job seekers across the nation and then finally deploy each candidate to our corporate client network, which includes 60+ companies from domains like Software / IT / Retail / FMCG / Banking / Insurance / BPO s / KPO s and Real estate.

We are intended to reach people outside metro cities specifically for BPO jobs. As you are a source for a huge number of candidates & also looking for deploying people across the industry then we are the acting force to catalyze this solution, we will appreciate if you could go through the following requirement and let us know if your workforce is interested in the same.

 Job Type: Permanent Position

 Location: Delhi / Noida / Ghaziabad / Faridabad / Gurgaon

 Current Opportunities

 BPO (Domestic/ International)
 No. Of Jobs: 1600
Qualification: 12th /Undergraduate / Graduate
Communication skills: English
Salary range: 5.5K   14K + Incentives up to (1k-10k) every month + Cab & Meals*.
Off: Sunday (6 Days working)
Cab: Applicable (in some cases)
No accommodation* will be given.

Note: Interviews can be conducted over the phone (physical presence not necessary for outstation candidates)

Domestic (No Cabs & Meals) Salary Range
Day Shift India Today (Outbound)                    5.5k   6.5k  +Incentives (2k-10k)
               Indian Express (Outbound)      5.5k   8.5k
               Times Jobs (Outbound)                     5.5k - 8.5k
               Airtel (Inbound / Outbound)       5.5k - 8.5k
               Idea (Inbound)                                    5.5k-8.5k


International (Cabs & Meals) Salary Range
Day Shift + Nightshift UK Telecom (Outbound) 11k -14k +Incentives (2k-10k)
Holiday (Outbound) 10k - 12k
Mortgage (Outbound) 10k - 14k
Technical Product Sales (Outbound) 10k 
Technical Support (Outbound) 10k - 14k
UK Wireless (Outbound) 10k - 14k

Note
           Any candidate from any location can apply
          We provide jobs to anybody & everybody so feel free to apply
          All opportunities above are for fresher s & beginners (Experience candidates may apply will be assured of higher salary range).
Empowered by RVS HR SOLUTIONS
Send your updated resume:  rvshrsolutions@gmail.com

If any other query kindly contact:

Sachin Gupta           9873913212
Rahul Sharma           9968060508
Vishal Srivastava     9313054212 / 8800974456

landline No -  0120 - 4107045 / 46

Thursday, February 17, 2011

REQUIREMENT FOR SAUDI ARABIA


ASIAPOWER OVERSEAS EMPLOYMENT SERVICES

CHENNAI BRANCH

No. 28, Arthi Arcade, 4th Floor, No.86, Dr. Radhakrishna Road, Mylapore, Chennai – 600 004,
………………………………………………………………………………………………………………………………….
REQUIREMENT FOR SAUDI ARABIA Date: 17.02.2011

Greetings!

May we take this opportunity to introduce ourselves as, Asia Power Overseas Employment Services, an ISO 9001 – 2000 certified organization A Government recognized professional suppliers of manpower based in India with head office in Mumbai leading & Branch offices in Chennai & Delhi & Associate offices all over Asia.

We are into Overseas Recruitment for past 25 years & Specialized in electrical / Mechanical / Civil / Catering / hotel / Oil & Gas field etc. Visitwww.asiapoweroverseas.com to know more about us.

With reference to your resume in Job portal, your profile seems to be matching our client criteria, for

M/S. ARABIAN BEMCO


If you are interested in the assignment abroad kindly send your updated resume in word format for our further action.

We will be very thankful if you refer any of your friends or known circle, as the vacancies are multiple.

The details of vacancies available and the job description are as follows:

1. STRUCTURAL ENGINEER
B.E. / B.TECH IN CIVIL ENGINEERING OR M.E. / M.TECH IN STRUCTURAL ENGINEERING WITH MINIMUM 10 YEARS EXPERIENCE ACQUIRED WITH REPUTABLE FIRMS.

2. ARCHITECT
B.E. IN ARCHITECTURAL ENGINEERING WITH MIN 5 YRS EXP IN COMMERCIAL BUILDING / INDUSTRIAL BUILDING / AIRPORT INDUSTRY.

3. QUANTITY SURVEYOR
BE CIVIL WITH MIN 3 YRS EXP IN INDUSTRIAL / COMMERCIAL BUILDING / AIRPORT INDUSTRY AS A QUANTITY SURVEYOR.

4. SENIOR PLANNER
BE CIVIL + PRIMAVERA P3 / P6 WITH MIN 8 YRS EXP IN INDUSTRIAL / COMMERCIAL BUILDING / AIRPORT INDUSTRY AS A SENIOR PLANNER.

5. PROJECT ENGINEERS
BE CIVIL WITH MIN 7 YRS EXP IN INDUSTRIAL / COMMERCIAL BUILDING / AIRPORT INDUSTRY AS A PROJECT ENGINEER.

6. QC CIVIL ENGINEER
BE CIVIL WITH MIN 6 YRS EXP IN INDUSTRIAL / COMMERCIAL BUILDING / AIRPORT
INDUSTRY AS A QC CIVIL ENGINEER.

7. LAND SURVEYOR
DIPLOMA IN SURVEYING WITH MIN 10 YRS EXP AS LAND SURVEYOR.

8. MECHANICAL ENGINEER

B.E MECH WITH 7 YRS EXP IN POWERPLANT / OIL & GAS / PETROCHEMICAL / REFINERY INDUSTRY AS A MECHANICAL ENGINEER.

9. ELECTRICAL ENGINEER
B.E ELECT WITH 7 YRS EXP IN POWERPLANT / OIL & GAS / PETROCHEMICAL / REFINERY INDUSTRY AS A ELECTRICAL ENGINEER.

10. INSTRUMENT & CONTROL ENGINEER
B.E INSTRUMENTATION WITH MIN 7 YRS EXP IN POWERPLANT / OIL & GAS / PETROCHEMICAL / REFINERY INDUSTRY AS A INSTRUEMENT & CONTROL ENGINEER

11. PIPING DESIGN ENGINEER
B.E MECH WITH MIN 8 YRS EXP AS A PIPING DESIGN ENGINEER IN OIL & GAS / PETROCHEMICAL / REFINERY INDUSTRY

12. ELECTRICAL DESIGN ENGINEER
B.E ELECTRICAL WITH MIN 8 YRS EXP AS A ELECTRICAL DESIGN ENGINEER IN OIL & GAS / PETROCHEMICAL / REFINERY INDUSTRY
13. INSTRUMENT & CONTROL DESIGN ENGINEER
B.E INSTRUMENTATION WITH MIN 7 YRS EXP AS A INSTRUMENT & CONTROL DESIGN ENGINEER IN OIL & GAS / PETROCHEMICAL / REFINERY INDUSTRY.


Kindly circulate the information among your friends and incase their experience is matching the job description, you may advise them too zoom their resumes to us for our evaluation and further action.

If you need any other clarification please feel free to conduct the undersigned.

IF YOUR CV SUITABLE FOR THE ABOVE REQUIREMENT KINDLY SEND YOUR WORD FORMATE RESUME AT THE EARLIEST TO teamthree@asiapoweroverseas.com.


DIRECT CLIENT INTERVIEW IN CHENNAI ON FIRST WEEK OF MARCH 2011.


Expecting your prompt reply.

Assuring you always best of our services,

Regards,


RAMYA DEV / KALAVATHY
ASIAPOWER OVERSEAS EMPLOYMENT SERVICES
28, Arthi Arcade, 4th Floor, No.86, Dr. Radhakrishna Road,Mylapore,
Chennai – 600 004,
Email: teamthree@asiapoweroverseas.com
Web: www.asiapoweroverseas.com

NOTE:
Please note that this is mass mailing kindly ignore the mail if this doesn’t Match your profile Candidates, who are not available in India, Please don’t apply. 

Looking for the Fresher's

We are looking for the Candidates/Fresher's who can work on a contract period for the company RMSI Software.

Currently we have a Big Project on GIS (Geographic Information System) for which we are looking for the candidates who know Autocad and who can work on a contract period.

The Consolidated Salary will be Rs.4500/- p.m.

You need to bring 2 Passport Photos, Educational Certificates (Xerox Copy), Residence Proof (Xerox Copy) and Experience Certificates (if any) along with you for the interview.

If you are interested then please forward your resume.

Feel free to contact the undersigned for further clarifications.

Regards,

Uma Srinivas

| Consultants | Talent Acquisition | Recruiters |

| www.Bid4Career.com |

| HYDERABAD |

Voice : 91-8008 130415, 91-9849 001767

Email : uma@bid4career.com