SOW-Draft - LHD Main Feed Pumps Sources Sought.pdf
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Specification for
LHD Midlife Turbine Driven Main Feed Pumps (MFP)
1.0 INTRODUCTION
The Naval Surface Warfare Center Philadelphia Division (NSWCPD) is a Department of Defense entity responsible for research and development, test and evaluation, engineering and fleet support organization for the Navy’s ships, submarines, military watercraft and unmanned vehicles. This requirement is for NSWCPD Code 413, which is responsible for various seawater and freshwater centrifugal pumps.
1.1 BACKGROUND
The LHD-1 Class ships utilize steam turbine driven main feedpumps (MFP) to provide water to propulsion boilers. NSWCPD Code 413 and 536 developed SCD 26365 to replace the existing
MFPs with an upgraded design.
1.2 SCOPE OF WORK
The Main Feed Pump (MFP) unit will be driven by a steam turbine on a common solid shaft (no couplings). Pumps shall be horizontally mounted. This statement of work provides the requirements for the Turbine Driven Main Feed Pump. The Main Feed pump (MFP) unit shall be designed for the purpose of providing feed water to the Navy LHD-1 Class main propulsion boilers with requirements within this Specification.
2.0 APPLICABLE DOCUMENTS
2.1 General
The following documents shall form a part of this specification to the extent specified herein.
The latest revision may not be listed herein. Please refer to the links listed for the latest revision.
2.2 Government Documents
2.2.1 Specifications, Standards, and Handbooks
The following specifications, standards, and handbooks form a part of this specification to the extent specified herein. (Copies of these documents are available online at http://dodssp.daps.dla.mil/, http://assist.daps.dla.mil, http://assist.daps.dla.mil/quicksearch/, IHS
Engineering, Englewood, CO, http://www.ihs.com, or from the Standardization Document Order
Desk, 700 Robbins Avenue, Building 4D, Philadelphia, PA 19111-5094.)
SPECIFICATIONS
MILITARY
MIL-S-901D dated 17 March 1989 - Shock Tests, H.I. (High Impact); Shipboard Machinery, Equipment and Systems, Requirements for
MIL-F-1183J dated 5 May 1987 - Fittings, Pipe, Cast Bronze, Silver Brazing, General
Specification For
MIL-DTL-1222J dated 8 December 2000 - Studs, Bolts, Screws, Socket Head Cap Screws and
Nuts
MIL-DTL-2036E dated 14 February 2014 - Enclosures for Electric and Electronic Equipment, Naval Shipboard
MIL-I-17244E with Notice 1 dated 7 June 1991 – Indicators, Temperature, Direct Reading, Bimetallic, (3 and 5 Inch Dial)
MIL-G-18997E with Amendment 2 dated 14 March 2006 – Gauge, Pressure Dial Indicating
(Naval Shipboard Use)
MIL-PRF-20042F dated 13 May 2015 - Flanges, Pipe, Bronze, (Silver Brazing)
MIL-T-24270B dated 2 September 1983 - Thermowells for Thermometers and Electrical
Temperature Sensors, General Specification for
MIL-DTL-24578C dated 31 March 2015 - Valves, Globe, Pressure Instrument, Stem Test
Connection, Union End
MIL-DTL-24643C with Supplement 1A dated 13 Dec 2011 – Cables and Cords, Electric, Low
Smoke, for Shipboard Use, General Specification for
MIL-C-15730M dated 24 May 1995 - coolers, Fluid, Naval Shipboard: lubricating Oil, Hydraulic
Oil, and Fresh Water
MIL-L-17331K dated 7 May 2013 Lubricating Oil for Steam Turbine and Gear, moderate service
STANDARDS
MIL-STD-22D with Notices 1 and 2 dated 31 January 1984 - Weld Joint Design
MIL-STD-167-1A dated 2 November 2005 - Mechanical Vibrations of Shipboard Equipment
(Type I, Environmental and Type II Internally Excited)
MIL-HDBK-267A dated 3 March 1987– Guide for Selection of Lubricants and Hydraulic Fluids for use in Shipboard Equipment
MIL-HDBK-781A dated 1 April 1996 - Reliability Testing for Engineering Development, Qualification, and Production
MIL-STD-1310H dated 12 August 2014 - Shipboard Bonding, Grounding, and other Techniques for Electromagnetic Compatibility and Safety
MIL-STD-1399, Section 300B with Notice 1 dated 24 April 2008 - Interface Standard for
Shipboard Systems, Section 300A, Electric Power, Alternating Current
MIL-STD-1627C dated 30 September 1994 - Bending of Pipe or Tube for Ship Piping Systems
MIL-STD-777F dated 30 March 2012 - Schedule of piping, valves, fittings, and associated piping components for Naval Surface Ships
NSTM S9086-CJ-STM-010, Chapter 075, Fasteners, dated 1 Dec 1997
COMMERCIAL ITEM DESCRIPTIONS
A-A-59006 - Indicators, Pipeline, Flow, Sight
FEDERAL SPECIFICATION
QQ-N-00286G - Nickel Copper Aluminum Alloy, Wrought (UNS N05500), 7 December 2000
2.2.2 Other Government Documents, Drawings, and Publications
The following other Government documents, drawings, and publications form a part of this document to the extent specified herein. Military publications can be obtained from:
Defense Logistics Agency
Document Automation and Production Service
DAPS Headquarters
5450 Carlisle Pike Bldg. 09
PO Box 2020
Mechanicsburg, PA 17055-0788
Call toll free 1-877-DAPS-CAN https://tmpods-b.daps.dla.mil or http://nll.ahf.nmci.navy.mil.)
The Department of Defense Single Stock Point for Military Specifications, Standards, and Related Publications http://www.dodssp.daps.mil/ or
IHS Engineering
Englewood, CO http://www.ihs.com
PUBLICATIONS
NAVAL SEA SYSTEMS COMMAND (NAVSEA)
S9074-AR-GIB-010/278 - Requirements for Fabrication Welding and Inspection and Casting
Inspection and Repair for Machinery, Piping, and Pressure Vessels
S9074-AQ-GIB-010/248 - Welding and Brazing Procedure and Performance Qualification
T9074-AS-GIB-010/271 - Requirements for Non-Destructive Testing Methods
0900-LP-001-7000 with Change 1 dated January 1981 - Fabrication and Inspection of Brazed
Piping Systems
S9073-A2-HBK-010 - U.S. Navy Resilient Mount Handbook
S9078-AA-HBK-010/DIM - Mount Design Handbook, Distributed Isolation Material (DIM)
Navy - A Users Guide of Design, Procurement, Install and Inspection Info
0900-LP-001-7000 with Change 1 dated January 1981 - Fabrication and Inspection of Brazed
Piping Systems
DRAWINGS
NAVAL SEA SYSTEMS COMMAND (NAVSEA)
NAVSEA Drawing 803-1385850J - Piping, Instrument Pressure for all Service
NAVSEA Drawing 803-1385884 - Unions, Fittings and Adapters, Butt and Socket Welding, 6000 PSI WOG NPS
2.3 Non-Government Publications
The following documents form a part of this specification to the extent specified herein. These publications must be procured from the applicable standards organization.
ASQ/ANSI/ISO 9001:2015 - Quality Management Systems-Requirements
(Copy of this document may be purchased from the American Society for Quality, 600 North
Plankinton Avenue, Milwaukee, WI 53203. http://www.asq.org)
AMERICAN SOCIETY OF MECHANICAL ENGINEERS (ASME)
B16.5 - Pipe Flanges and Flanged Fittings
ASME Boiler and Pressure Vessel Code, Section VIII Division I - Pressure Vessels
ASME Boiler and Pressure Vessel Code, Section IX - Welding and Brazing Qualifications
B31.1 - Power Piping
Y14.1 - Decimal Inch Drawing Sheet size and Format
Y14.2 - Line Convention and Lettering
Y14.3 - Multiview and Sectional Drawings
Y14.5 - Dimensioning and Tolerancing
(Copies of these documents are available from ASME International, 22 Law Drive, PO Box
2900, Fairfield, NJ 07007-2900 or online at www.asme.org.)
AMERICAN SOCIETY FOR TESTING MATERIALS (ASTM)
A354 - Standard Specification for Quenched and Tempered Alloy Steel Bolts, Studs, and Other
Externally Threaded Fasteners
A380/A380M - Standard Practice for Cleaning, Descaling, and Passivation of Stainless Steel
Parts, Equipment and Systems
A563 - Standard Specification for Carbon and Alloy Steel Nuts
A967/A967M - Standard Specification for Chemical Passivation Treatments for Stainless Steel
Parts
B861 - Specification for Seamless and Welded Titanium and Titanium Alloy Pipe
F467 - Standard Specification for Non-Ferrous Nuts for General Use
F468 - Standard Specification for Non-Ferrous Bolts, Hex Cap Screws, and Studs for General
Use
F593 REV A - Standard Specification for Stainless Steel Bolts, Hex Cap Screws, and Studs
F594 - Standard Specification for Stainless Steel Nuts
F992 - Specification for Valve Label Plates
F998 - Standard Specification for Centrifugal Pump, Shipboard Use
F1166 - Human Engineering Design for Marine Systems, Equipment, and Facilities
F1508 - Specification for Angle Style, Pressure Relief Valves for Steam, Gas, and Liquid Use
(Copies of these documents are available from ASTM International, 100 Barr Harbor Dr., PO
Box C700, West Conshohocken, PA 19428-2959 or online at www.astm.org.)
INSTITUTE OF ELECTRICAL AND ELECTRONICS ENGINEERS
http://www.asq.org/ http://www.asme.org/
IEEE 45 dated 11 October 2002 - Recommended Practice for Electric Installations on Shipboard
IEEE 315A dated 31 October 1975 - Graphic Symbols for Electrical and Electronics Diagrams
(Copies of these documents are available from IEEE 445 Hoes Lane Piscataway, New Jersey
08854-1331, or online at www.ieee.org.)
NATIONAL ELECTRICAL MANUFACTURERS ASSOCIATION
250 - Enclosures for Electrical Equipment (1000 Volts Maximum)
ICS 1 - General Standards for Industrial Control and Systems
ICS 2 - Industrial Control Devices, Controllers and Assemblies
ICS 3 - Industrial Control and Systems Factory Built Assemblies
ICS 4 - Terminal Blocks for Industrial Use
MG 1 - Motors and Generators
(Copies of these documents are available from National Electrical Manufacturers Association 1300
North 17th Street, Suite 1752, Rosslyn, Virginia 22209, or online at www.nema.org.)
SOCIETY OF AUTOMOTIVE ENGINEERS (SAE)
J1453-1 - Specification for O-ring Face Seal Connectors
J1926-1 - Connections for General Use and Fluid Power—Ports and Stud Ends with ASME B1.1
Threads and O-Ring Sealing
(Copies of these documents are available from SAE World Headquarters, 400 Commonwealth
Drive, Warrendale, PA 15096-0001 or online at www.sae.org.)
HYDRAULIC INSTITUTE
American National Standard for Reciprocating Pumps (ANSI/HI 6.1 – 6.6)
American National Standard for Centrifugal Pumps (ANSI/HI 1.1 – 1.4 and 14.6)
(Copies of these documents are available from the Hydraulic Institute, PO box 34289, Newark
NJ 07189-0289 online at www.pumps.org.)
MANUFACTURER’S STANDARDIZATION SOCIETY OF THE VALVE AND FITTING
INDUSTRY
MSS SP-119 - Bell End Socket Welding Fittings, Stainless Steel and Copper Nickel
(Application for copies should be addressed to the Manufacturers
Standardization Society, 127 Park Street, NE, Vienna, VA 22180-4602)
2.4 Order of Precedence
In the event of a conflict between the text of this specification and the references cited herein
(except for related associated specifications or specification sheets) the text of this specification takes precedence. Nothing in this specification, however, supersedes applicable laws and regulations unless a specific exemption has been obtained.
3.0. REQUIREMENTS
3.0.1. LHD-1 CLASS REQUIREMENT - MFP Performance Requirements:
Approx. boiler 100% maximum sustained steam production rate of 350K lbs/hr = 730 gal/min.
Pump must be sized to provide 730 gallons per minute (gpm) of useable flow @ 850 pounds per square inch gauge (psig) discharge. Net Positive Suction Head Required (NPSHR) must not exceed 45 Feet.
Operating Conditions (these flows do not account for required recirculation rates):
o Min power = Steam Inlet Pressure 700 psig @ 570 Deg Fahrenheit (F), flow Rate ~ 15.0 gal/min o Normal Cruise = Steam Inlet Pressure 656 psig @ 645 Deg F, Feed flow Rate ~ 250 gal/min o Normal Max Power (routine) = Steam Inlet Pressure 560 psig @ 662 Deg F, Feedflow rate
730 gal/min o Steam Exhaust Pressure = Ranges from 15-25 psig, Design for this pressure range at all power rates
The pump must be able to operate continuously with a discharge pressure of 300 - 400 psig
(standby mode).
In standby mode the pump will only discharge flow based on the capability of the recirculation orifice sizing.
There must be no concern about mechanical seal overheating or insufficient recirculation flow during standby mode of operation.
MFP unit must have instantaneous start-up capability with no warm-up and with no limitation on steam flow rate increase during acceleration from stop to maximum power. This would be considered a rapid acceleration to maximum power not to exceed two (2) seconds.
3.0.2. Technical Data Package
The Contractor shall use this Specification to produce the required First Article and all other production units. The contractor shall be responsible for the engineering, development, testing, and qualification for one (1) First Article Test (FAT) unit and all documentation and special tools as outlined in the Specification. The first unit will be examined and refurbished as needed and provided to the Navy as the designated test unit.
3.0.3. First Article Testing
The first Main Feed Pump unit will be fabricated for First Article Testing and fully pass shock and vibration requirements set forth by Mil-S-901D Medium Weight Shock Test Grade A, deck mounted, and Mil-Std-167-1A Vibration test. All testing will encompass pre-assembly inspection, performance testing, Shock test, vibration test, post shock test performance testing, post shock test and inspection. In addition, inclined operational testing will be conducted IAW
DOD-STD-1399, Section 301A. MFP Performance testing shall provide the full range of pump performance including:
- Capacity (GPM)
- Total Head (PSIG)
- NPSHR
- Water Temperature
- Steam inlet Pressure
- Steam inlet Temperature
- Steam Bowl Pressure
- Steam flow (lbs/hr)
- Exhaust Pressure
- Exhaust Temperature
- Sump oil Temperature
- Bearing temperature/rise
- Shaft Speed
- Lube Oil Pressure
- Lube Oil Cooler inlet & outlet temperature
- Mechanical Seal flushing water inlet & outlet temperature
- Mechanical Seal cooling water pressure
- Mechanical Seal cooling waterinlet & outlet temperature
All test procedures must be approved prior to testing. All testing shall be witnessed, by the Naval
Surface Warfare Center Philadelphia Division, Code 413, (CDRL A005 and A006).
First article testing may be waived in accordance with FAR 52.209-3(h), where the turbine driven main feed pump have already been qualified for U.S. Navy Shipboard Use.
3.1 Characteristics
The Main Feed pump (MFP) unit shall be designed for the purpose of providing feed water to the
Navy LHD-1 Class main propulsion boilers and must be fully designed to perform as described in Paragraph 3.0. Feedwater, seawater, and steam connection interfaces will be located in the general locations as described in Schematics #1, #2, #3 and #4.
3.1.1 MFP envelope dimensions and weight- The MFP unit with base plate must weigh no more than 4500 pounds (Wet). The MFP envelope dimension shall not exceed 62" length x 44" width x 49" Height, all of which shall include the base plate and all components. Both these weights and envelope dimensions will provide for maximum space and weight savings. (See
Schematic #4)
3.1.2 MFP shaft - Both the pump and turbine shall have one solid common shaft with no couplings. The Main Feed Pump Turbine wheel shall be on one side of the shaft and the pump
Assembly on the other end of the shaft. The shaft shall be able to be removed from the turbine end with a minimum space of 55" from the turbine end of the MFP to facilitate maintenance and repairs (See schematic #3).
3.1.3 MFP Turbine - The turbine shall be a single stage, impulse, (2) two bucket row, velocity compounded, axial flow type.
3.1.4 MFP Pump unit - The pump assembly will contain the impeller, shaft sleeves, impeller nut, diffusers, wear rings, and inboard and outboard mechanical seals. The pump will be High speed, single stage, centrifugal, diffuser type. Impeller shall be double suction type. Pump
Suction flange shall be on the top of the MFP unit and the discharge flange will be on the left side of the MFP unit looking at the unit from the pump end (See Schematics #1, #2, #3, and #4).
The discharge must have a pump recirculation line with orifice device.
3.1.5 Vents and Drains - Vents and drains shall be installed to facilitate complete draining of pump volute for maintenance. The pump access cover shall have a vent and drain to sufficiently drain pump to enable access cover to be removed. Vents and drains will also be installed on the
MFP unit to enable thoroughly draining of all components of all feedwater, seawater, steam condensate, and lube oil. These drains and vents will be flanged to facilitate connections with shipboard piping interfaces come time for installation of the MFP.
3.1.6 Mechanical Seals - Both inboard and outboard Mechanical seals will have flush lines. The flush lines will be supplied from Feedwater supplied off the MFP discharge. The flushing water shall be cooled by a cooler which uses chilled water as the primary coolant. Seaw ater is the secondary cooling water. Each mechanical seal will have its own individual tell-tale drain and vent piping. Drain piping is essential for detection of seal face leaks.
3.1.7 Bearings - The MFP shaft shall be supported by two main type bearings and one thrust type bearing. Suitable bearings shall be installed in each pump unit for counteracting (a)any unbalanced hydraulic or mechanical thrust in either direction and (b) the fact that rolling, pitching, listing, and trim, and the athwartships, fore and aft, and the vertical distance from the pump to the ship’s rolling and pitching center may introduce loads even though the unit is in hydraulic balance. The contractor shall calculate the resulting static and dynamic loads on the bearings and determine that the bearings are suitable for this loading. Oil lubricated bearings shall be separate from and independent of the pump stuffing boxes and adequately protected from gland/seal leakage. Means shall be provided to prevent the escape of oil around the shaft.
Bearing housings shall have adequate sealing so that regardless of the length of time the unit is idle, the bearings will have an adequate supply of oil.
3.1.8 Gear box -The MFP shaft will pass through a main gearbox, which will be central to the
MFP unit. The gearbox being the central MFP unit component will be mounted on the main foundation plate. The pump and the turbine ends will not have foundations but may have supports if needed to meet the requirements of shock and vibration.
3.1.9 Attached lube oil pump - The main bearings will be lubricated by oil by means of an attached pump that is driven by gears off the MFP shaft. This same attached pump will also lubricate the main gearbox and the attached pump gears. The attached pump will be geared down to a fraction of the main shaft speed. This pump will provide lubrication to the bearings and other intended components immediately as the MFP shaft begins to turn.
3.1.10 Sight Glass indicators - Sight glass indicators will be provided for each component that is lubricated so that steady oil flow can be visually verified.
3.1.11 Electric Pre-lubrication pump - There will be an electric motor driven lube oil pump that will pre-lubricate the bearings and other components before the start-up of the MFP, and until the MFP comes up to speed and lube oil pressure is satisfactory for the attached pump to take over. This electric pump shall have a 110volt, 1 phase motor.
Electric motors shall meet the requirements of IEEE-45/841 and NEMA MG 1, and shall have the following characteristics:
a. NEMA Design B
b. Class F Insulation
c. 50 degrees C, ambient
d. Continuous duty
e. TEFC, severe duty
f. Airborne noise 80 dbA
g. Bearing temperature rise 40C measured on the bearing outer ring
The horsepower (hp) rating of each motor shall be in accordance with the motor ratings, but not less than 1.05 times the brake horsepower of the driven pump under rated conditions of capacity and pressure.
3.1.12 Oil pressure regulator -A pressure regulator shall be installed to allow for a constant oil pressure of approximately 40 PSI.
3.1.13 Oil Sump - Central to the MFP unit, and containing the bearings and gears, shall be an oil sump. This oil sump shall have a capacity of no less than six (6) U.S. gallons. Both the attached pump and electric prelube pump will draw from the same sump. Lube oil shall return to the oil sump by gravity feed. Lube oil in the sump shall be maintained between 122 degree (F) and 158 degrees (F) using 2190-TEP lubricating oil in accordance with MIL-L-17331K dated 7 May
2013. Oil shall have rust, oxidations, and foam inhibitors. An oil level stick shall be installed for manually checking sump oil levels. A drain connection with drain valve must be supplied to enable draining of lube oil in the sump. Sufficient room should be provided to enable sampling of lube oil from the drain valve. An access cover must be installed to enable manual cleaning of sump and for visual inspection of shaft, gears, and bearings.
3.1.14 Lube oil cooler - A shell and tube heat exchanger constructed with materials suitable for
Lube oil and Seawater shall be integral to the MFP unit and will be used for cooling the lube oil.
The lube oil cooler will use seawater as the primary coolant. Zinc anode plugs shall be provided to reduce/eliminate corrosion.
3.1.15 Oil filter - Lube oil will be kept clean via a replaceable filter element and will have inlet and outlet pressure and temp gages.
3.1.16 Lube oil pressure switch - A lube oil pressure switch with low and high-pressure trips must be installed at the discharge of the MFP unit attached lube oil pump and before the check valve. This is needed for low-pressure lube oil alarm and to stop the aux electric lube oil pump.
3.1.17 Lube oil check valves - Check valves will be installed on the outlet piping of each the
Aux electric pump and the attached pump before the two lines come together to service the MFP unit.
3.1.18 Thermometers and pressure gages - There shall be a pressure gage before the lube oil filter and one after. A thermometer will be installed at the lube oil cooler outlet and one at the thrust-bearing outlet. All pump and turbine inlet and outlet points shall have the appropriate connections for reading pressure and temperature. Temperature gages must be installed to read the main thrust bearing oil temperature returning to the sump. High temperature interface will be provided for remote reading lube oil high temperature at this same point.
3.1.19 Although the contractor will be required to test the MFP with a throttling control valve, the MFP will not have a steam emission valve or governor as these components will be external to the MFP and supplied by NSWCPD.
3.1.20 This MFP unit must be fully designed and manufactured in the United States of America.
The pump and turbine must be designed and manufactured by the same vendor.
3.1.21 The vendor must fully performance test the MFP using 600# steam and meet all parameters detailed in this statement of work.
3.1.22 Automated controls interfaces for NSWC control systems.
The following information is being provided pertaining to the interfaces. In addition, the following requirements are required to interface the MFP with the automated controls (provided by NSWCPD Code 413):
Controls, Instrumentation, Indication, Alarms:
- Gov’t shall provide steam pressure and flow control system equipment for feed pumps delivered in support of shipboard installation.
- Gov’t shall provide throttle control valves, emergency shutdown valves, magnetic pickups, over-speed protection programmable logic controllers (PLC), and pump discharge pressure transmitters in support of shipboard installation.
- OEM shall provide temperature indication gauges as needed.
Magnetic Speed Pick Up (Hall Effect Sensor) – Functionality and Purpose:
- A provision for two (2) magnetic pickups is required. Magnetic pickups will sense pulses from a gear or flywheel as used to measure speed (or some ratio of rotor speed) and provide over speed protection.
- Magnetic pickup female ports shall be threaded for either 5/8”-18 UNF-2A or 3/4"-20
UNF-2A.
- At maximum rotor speed, frequency of gear-tooth used for speed feedback shall not exceed 10,000 pulses per second.
- Gov’t shall provide magnetic pick ups and incorporate that with the PLC for over speed protection.
Steam Throttle and Emergency Shutdown Valve Control:
- For shipboard installation, the steam throttling control valve and secondary shutdown valve shall be provided by Govt.
- The steam turbine and pump combination unit shall be provided with no steam throttling, control, or over-speed protection. These features and functions shall be provided by Govt.
- The shutdown of the throttle valve and emergency shutdown valve shall be controlled by the Govt. The magnetic pickup speed indication sent to a PLC will be one of several parameters that will determine if the pump needs to be shutdown.
Low Suction Shutdown:
- Low feed water suction pressure switch shall secure the main feed pump via interface with the PLC which will shut the throttle and emergency shutdown valves based on this pressure switch opening on low pressure. OEM will provide the pressure switch.
- Gov’t recommends use of ITT-Neodyne 100P41CC3S or equivalent shock and vibration approved switch.
Electric Lube Oil Pump Stop Pressure Switch:
- Low lube oil pressure switch provided by the OEM shall secure the main feed pump via interface with the PLC which will shut the throttle and emergency shutdown valves based on this pressure switch opening on low pressure.
- Gov’t recommends use of ITT-Neodyne 100P41CC3S or equivalent shock and vibration approved switch.
Overload Nozzle:
- Pump turbine section shall be equipped with an overload nozzle to permit higher power operations via additional steam flow path to nozzles. This approach allows controllable low power pump while operating at standby or low power operation.
3.1.23 Pressure connections must be provided on MFP unit for alarm/shut-down trips for Low suction pressure and Low lube oil pressure. The lube oil pressure connection point must be common to both the electric and attached pumps.
3.2 Materials:
3.2.1 The Pump end components shall be made from the following materials:
Diffuser and Cover Stainless Steel ASTM A240 type 304
Main Shaft Alloy Steel ASTM A193 GR. B7
Wear rings Stainless Steel ASTM A743 GR. CF-16F
Pump impeller Stainless Steel ASTM A743 GR. CF-8M
Pump Housing Carbon steel ASTM A216 GR. WCB
Pump Diaphragm Stainless Steel ASTM A743 GR. CA-15
Mechanical Seals
Impeller Inlets Stainless Steel ASTM A747 GR.CB7CU-1
Seal sleeves Stainless Steel ASTM A276 Type 316
3.2.2 The Turbine end components shall be made from the following materials:
Turbine Diaphragms Carbon Steel ASTM A217 GR. WC9
Turbine shaft gland Bronze ASTM B584
Turbine Rotor Sleeve Stainless Steel ASTM A743 GR. CA-15
Turbine Wheel Forging Alloy Steel ASTM A471 Class 11
Turbine Buckets Stainless Steel Type 403 SS
Turbine Stator buckets Stainless Steel Type 403 SS
Turbine Nozzle Ring Stainless Steel ASTM A182 GR. F6A Class 2
Steam Chest ManifoldCarbon Steel ASTM A217 GR. WC9
Turbine Housing Alloy Steel ASTM A217 GR. WC9
Bearing Housing Carbon Steel ASTM A216 GR. WCB
3.2.3 Connections to interface with ship's piping:
Pump Discharge flange - 4 Inch, 600# ANSI B16.5
Pump Suction flange - 8 Inch. 150# ANSI B16.5
Turbine inlet flange - 2 Inch, 600# ANSI B16.5
Turbine exhaust flange - 8" 150# ANSI B16.5 Flat Face studded w/nuts
Turbine exhaust pressure - 1/2 Inch, 150# Flange
Turbine Gland leak-off flange - 1-1/4 Inch, 150# ANSI flange
Lube oil cooler seawater inlet and outlet - 1 Inch, 150#, Mil-F-20042
Pump Recirculation - 1-1/2 Inch, 600# S.W.
Mechanical seal cooling water inlet and outlet - Navy 150# Flanges
Turbine drain - 1/2" NPT
Pump suction vent - 1/2 Inch, 150# flange
Pump suction drain - 1/2 Inch FNPT
Pump discharge vent - 1/2 Inch, 600# Flange
Pump discharge volute vent - 1/2 Inch, 600# flange
Pump discharge drain - 1/2 Inch, 600# flange
Mechanical Seal Flush connections - 1/2" FNPT
Base Plate drain - 1/2 Inch FNPT
Oil Sump drain valve - 3/4 Inch FNPT
Turbine end Studs/bolts - ASTM A193,Grade B7,(steam < 775 degrees F)
Turbine end nuts - ASTM A194, Grade 2H, (steam < 775 degrees F)
Turbine end Studs/bolts - ASTM A193, Grade B16 (Temps range 776 - 975 degrees F)
Turbine end Studs/bolts - ASTM A194, Grade 7, (Temps range 776 - 975 degrees F)
Pump end Studs/bolts - ASTM A193, Grade B7
Pump end nuts - ASTM A194, Grade 2H
3.3 Welding and Brazing
Welding and inspection of pressure vessels, castings and piping shall meet the requirements of publication, NAVSEA S9074-AR-GIB-010/278. Joint design shall meet the requirements of
MIL-STD-22D dated 31 January 1984. There shall be no pockets, crevices, porosity, or notches, which could become points of stress concentrations. The use of backing strips in pressure vessels shall not be permitted. Vendor shall provide a welding procedure and a welding procedure qualification test report (CDRL A019 and A020).
3.4 Casting Inspection and Repair
Inspection and repair of castings shall meet the requirements of sections 12 and 13 of publication, NAVSEA S9074-AR-GIB-010/278. Requirements for nondestructive testing shall conform to publication, NAVSEA T9074-AS-GIB-010/271.
3.5 Frames and Bedplates
The frames and bedplates used to mount the MFP unit components shall not contain pockets where moisture can accumulate. Frame design shall provide access to all areas below the MFP unit for cleaning and routine painting.
3.6 Painting
MFP components shall be coated or painted in accordance with the following:
a. External nonmetallic and internal nonferrous (including resilient mounts cables, and hoses) surfaces shall not be painted.
b. The total paint system shall last a minimum of 20 years without blistering, cracking, pealing, or flaking.
3.7 Pump Balancing
All rotating components and assemblies in centrifugal type pumps shall be balanced in accordance with MIL-STD-167-1A. Clamped or glued weights are unacceptable.
3.8 Grounding
Grounding of equipment shall meet the requirements of MIL-STD-1310H dated 12 August
2014.
3.9 Technical Manuals
Enclosed with each delivered MFP Unit shall be technical manuals and operational documentation. Two bound hard copies and two electronic copies of the technical manuals and operational documentation shall be provided for each MFP system. (CDRL A010)
3.10 Illustrations.
The manual shall contain illustrations to support the text. Illustrations shall be suitable for locating and identifying all components. Illustrations shall be prescreened, sharp, and with good contrast. Illustrations shall be line drawings or photographs. Line drawings are preferred over photographs. Illustrations shall not be free hand sketches.
3.11 Preparation for use.
The manual shall contain instructions for unpacking, assembling, and readying for operation.
3.12 Operation.
Operating instructions shall include the principles of operation; illustrations and explanation of the uses and functions of all controls and indicators; initial set up; initial settings; and start up, normal operation, calibration, shutdown, and emergency shutdown procedures.
3.13 Maintenance.
The manual shall include the manufacturer’s maintenance required for the MFP Unit and shall be delineated such that it can be applied by the intended Government user. The manual shall include planned and corrective maintenance and overhaul procedures with lists of required test equipment, special tools and materials. The nomenclature, part/model number and materials shall be included. Diagnostic tests and tests to ensure satisfactory performance shall be detailed.
3.14 Troubleshooting.
The manual shall include troubleshooting procedures for all possible failure modes. The procedures shall include a description of the trouble, a possible cause, and a remedy. The
Remedy shall either provide the corrective action or refer the user to the section in the manual, which provides the corrective action.
3.15 Parts list, illustrations and diagrams.
The manual shall include a parts list, which identifies all parts of the system. The parts list shall include the actual manufacturer or vendor name, the part number, and a generic description necessary to obtain replacement parts. Clear and legible illustrations shall identify all component parts and parts relationships. Electrical point to point wiring diagrams with wire numbers shall be provided. System diagrams shall be included as necessary (CDRL A008).
3.16 Provisioning Data
Provisioning data shall be provided for the first production MFP unit in the contractor’s format.
(CDRL A009) All lines, symbols, letters and numerals shall be readable and in accordance with industry standard.
3.17 Provisioning parts list
The provisioning parts list shall include piece part information on all user replaceable parts.
CAGE and part number information shall be for the actual manufacturer of the complete finished part as used in the MFP unit. Data required for each item as follows:
a. Manufacturer’s CAGE
b. Manufacturer’s Part Number
c. Nomenclature
d. Unit Price
e. Remarks (mandatory change-out or other part information)
3.18 Supplementary provisioning technical documentation
Supplementary provisioning technical documentation shall be provided for each item on the provisioning parts list. Supplementary provisioning technical documentation is technical data used to describe parts of equipment. It consists of specifications, standards, drawings, photographs, sketches, descriptions, assembly and arrangement drawings, schematic diagrams, wiring and cabling diagrams needed to indicate the physical characteristic, actions and function of the item. Supplementary provisioning technical documentation shall be provided in the following order of precedence:
a. Government or recognized industry specifications or standards (identification only, copies not required).
b. Commercial drawings.
c. Commercial catalogs or catalog description.
d. Sketches or photographs with brief descriptions of dimensional, material, mechanical, electrical, or other descriptive characteristics. When sketches or photographs are provided for an assembly, a parts list shall also be provided.
3.19 Drawings
Drawings shall be prepared in accordance with ASME Y14.1, Y14.2, Y14.3, and Y14.5 and all text written in the English language. All drawings shall be completely legible and suitable for reproduction as needed to support system maintenance and repair over the life of the system
(CDRL A007).
3.20Types of Drawings
The following types of drawings shall be prepared (CDRL A007):
3.20.1 Outline Drawing
An external arrangement drawing shall be prepared that shows all necessary external views of the MFP unit and shall include the center of gravity, weight (dry and operating), and all external dimensions required for reproduction of ship’s machinery arrangement drawings. These drawings shall provide guidance to the shipyard in designing the foundation structure for installing the unit. It shall show connection of the unit to the external piping including vents, and drains. The drawing shall show the space required for removing the MFP shaft and other components. All lifting lugs or eyebolts and their dimensional openings shall be shown on the drawing.
3.20.2 Assembly Drawing
A drawing showing completed longitudinal and transverse cross-sectional views of the MFP unit shall be prepared that depicts the relationship of all parts and components. The Top Assembly drawing shall identify by correspondence number and date, the acceptance for Navy shock and vibration, testing, where applicable. Liberal use of enlarged views or sections shall be made.
Subassembly drawings conforming to the above shall be furnished to aid in the clarity of individual components. The drawings shall be such that a thorough understanding of the design material selection and construction of the apparatus may be obtained without reference to related detailed drawings.
3.20.3 List of Materials
The assembly drawing shall contain a list of materials showing the names of parts with identifying numbers and materials of all parts. The identifying numbers shall also be shown adjacent to the part shown in the various views, with arrows pointing to the parts. Each item shall be easily located with a find number in a minimum of two views.
3.20.4 Detailed Drawings
Component arrangement and sectional drawings shall contain sufficient information that discloses a design approach suitable to support the manufacture of a production prototype and lists all of the component parts and material specifications. The drawings shall be completely dimensioned, with finishes and welding symbols indicated as required for manufacture.
3.20.5 Diagrammatic Drawings
The diagrammatic piping arrangement drawing (Process and Flow diagrams) shall show the complete piping required for operating the MFP unit. Piping furnished with the unit and piping furnished by the Contractor shall be clearly indicated. Location of gages, thermometers, valves, orifice plates, shall be indicated. The drawing shall also indicate pipe size, orifice size, flow rates, flow directions, set-points, pressure at the various points, minimum supply pressure, and all operating parameters at terminal points. The actual location of each instrument connection and component shall be the same as that on the assembly drawings. The symbols used shall be in accordance with ASTM F1000.
3.20.6 Wiring Drawings
Wiring assembly drawings showing terminal connections shall be provided for all electrical components furnished with the MFP unit.
3.20.7 Electrical Drawings
The electrical drawings shall consist of separate schematic (elementary) and connection (point-to-point wiring) diagrams to clarify the control functions and simplify the wiring.
3.20.8 Legends
Standard legends and symbols specified in ANSI 315A shall be used on all electrical drawings.
3.20.9 Purpose of Drawings
Sufficient drawings shall be prepared to:
a. Provide design information to ensure conformance to requirements of this specification, including compatibility with ship and ship systems.
b. Evaluate performance and maintenance capability.
c. Enable shipyard installation without contractor’s assistance.
d. Enable naval ship and shore activities to repair and maintain the item without assistance from the original contractor.
QUALITY ASSURANCE
3.21 Responsibility for Inspection
Unless otherwise specified in the contract, the Contractor is responsible for the performance of all inspection requirements specified herein. Except as otherwise specified in the contract, the
Contractor may use his own or any other facilities suitable for the performance of the inspection and compliance requirements specified herein. NSWC reserves the right to perform any of the inspections set forth in the contract where such inspections are deemed necessary to assure supplies and services conform to prescribed requirements. Any inspections performed by NSWC shall not relieve the Contractor of its responsibility for quality assurance and for providing MFP units, which conform to the contract requirements. Contractor shall provide any relevant status report to
NSWC in a timeframe that will not delay testing or production (CDRL A003).
3.21.1 Quality Program Requirements
The Contractor shall provide and maintain a quality system that, as a minimum, adheres to the requirements of ASQ/ANSI/ISO 9001:2015 and supplemental requirements imposed by the resultant contract. Conformance with these requirements shall not be construed as relieving the
Contractor of final responsibility to furnish equipment and services meeting specification requirements. Utilization of a material review board requires the written approval of NSWC.
3.21.3 Classifications of Inspections
The inspection requirements specified herein are classified as follows:
a. First article inspection (see para. 6.0)
b. Conformance inspection (see para. 6.1)
3.22 First Article Inspection
First article inspection shall consist of examinations and tests specified within this statement of work (See Table I).
Table I - First Article Inspection
FAT examination/test Requirement Examination/test
Design characteristics 1.0, 1.2, 3.1, 9.0 3.1.21, 16.4.1
Envelope size 3.1.1 3.1.1
Maintenance access 3.1.2 3.1.2
Interface connections 4.0 4.3
Materials Pump/turbine 4.0 4.1, 4.2
Mechanical soundness 16.0 16.1, 16.2
Performance 100hr 16.4 16.4.1
Endurance test 500hr 16.7 16.11
Inclined test 17.7 - 17.3 17.7.1
Shock test 17.0 17.4, 17.5
Vibration test 17.9 17.9
Hydrostatic test 15.1.1 - 15.1.6 15.1.1 - 15.1.6
Balancing Rotor assbly. 11.0, 12.0 11.0, 12.0
Over-speed test 15.1.2 15.1.2
Welding/brazing 4.4 4.5, 16.3
Note: Procedures contained in SOW requirements paragraphs listed in Table I.
3.23 Conformance Inspection
Conformance inspection shall be performed on all MFP units prior to delivery and shall consist of applicable examinations and tests specified in Table II. All components of the MFP will be visually inspected to verify that they are installed and each one checked for any signs of defects.
Table II - Conformance Inspection
Examination or test Requirement Quality Conformance test
Design characteristics 1.0, 1.2, 3.1, 9.0 3.1.21, 16.4.1
Performance 100hr 16.4 16.4.1
Interface connections 4.0 4.3
Label plates
Paint/preservation 4.7 4.7
Components:
MFP unit
Bedplate 4.6 4.6
Oil sump 3.1.13
Oil Pressure regulator 3.1.12
Lube oil cooler 3.1.14
Oil filter and element 3.1.15
Attached Lube oil Pump 3.1.9
Electric Lube oil Pump 3.1.11
Lube oil pressure switch 3.1.16
Lube oil check valves 3.1.17
Press & temp gages 3.1.18
Special Tools 7.0
Note: Procedures contained in SOW requirements paragraphs listed in Table II.
3.24 Examination Tests
Each MFP unit shall be examined and tested for compliance with the requirements specified in the
SOW. Contractor shall notify NSWC of all scheduled tests 14 calendar days prior to start of test
(CDRL A006). Any necessary redesign or modification following failure to meet the specified requirements shall receive particular attention for adequacy and suitability. This element of inspection shall encompass all visual examinations and dimensional measurements. Where possible, pressure boundary welds for both freshwater and seawater service shall be examined to verify that the welds are free of crevices, notches, porosity and pockets. Noncompliance with any specified requirements or presence of one or more defects preventing or lessening maximum efficiency shall constitute cause for rejection. The MFP unit shall be checked (by the procuring activity representative) with respect to material, finish, construction, assembly, dimensions, weight, and marking of identification and description plates. For conformance inspections, this examination shall be limited to those inspections that can be performed without disassembling the unit in such a manner that its performance, durability, or appearance would be affected. The completed MFP unit shall be examined to ensure that the required controls, indicators, valves, electrical equipment and other components are installed. Parallel or combined testing is permitted, provided the intent of any test is not compromised.
3.25 Maintenance of MFP:
Both the turbine and pump ends shall be easily accessible to facilitate maintenance. Turbine end shall have access cover enabling maintenance and repairs to turbine wheel, seals, and stators. Pump end shall have access cover enabling maintenance and repairs to impeller, wear rings, shaft sleeves and mechanical seals. Both the pump end access cover and Turbine end cover, when removed, shall enable complete and easy removal of the MFP shaft for replacement/repair to the shaft and bearings. A tool kit with all special tools required for maintenance and repair tasks shall be created.
A kit containing a complete set of recommended spare parts shall also be created.
Minimum space envelope from Turbine inside access cover flange face will be no less than 55" to facilitate removal of main shaft from MFP unit. This will ensure that the shaft can easily be removed onboard ship with no interferences from adjacent shipboard equipment. (See Schematic
#1)
3.26 Shelf Life
Shelf life capability of the MFP shall be no less than 12 months. Shelf life is the period of time from delivery until system startup. Following the shelf life period the MFP shall still have the specified operational service life without component or part replacement, adjustment, or maintenance action.
3.27 Performance:
3.27.1 Pump hydraulic performance: The Main Feed pump (MFP) unit shall be designed for the purpose of providing feed water to the Navy LHD-1 Class main propulsion boilers as specified in paragraph 3.0.
3.27.2 Head capacity curve: The head-capacity curve of the pump shall rise continuously from rated capacity to shut-off so that, at constant rated speed, the shut-off pressure will be at least 15 percent greater than at rated capacity
3.28 Casings:
3.28.1 Design: The casings shall be designed to facilitate the ready removal and replacement of pump shaft, internal bearings, impellers, and turbine rotor.
3.28.2 Thickness: Casing thickness of the pump and turbine shall include an allowance for corrosion and the possibility of core shift. The minimum thickness shall be 1 inch.
3.28.3 Strength: Casings shall be sufficiently rugged to withstand without fracture or distortion the strains to which they may be subjected.
3.28.4 Clearance: Clearance shall be provided around bolt heads and nuts to permit the use of ordinary tools.
3.28.5 Fitted Bolts and dowel pins: Fitted bolts or dowel pins shall be provided to ensure maintenance of alignment in assembly.
3.28.6 Forcing bolts: Forcing bolts (a.k.a. jacking bolts) shall be provided for breaking joints
3.28.7 Gaskets: Gasket compression and tolerance shall not affect bearing, bushing, and wearing ring fits to an extent that will adversely affect reliability and performance.
3.28.8 Casing wearing rings: For the pump, casings shall be fitted with removable casing wearing rings. In addition to the standard sized casing rings, casing rings shall be made available machined at least 0.050 inch on the diameter in order to permit finish machining during shipboard installation to mate with used/worn impellers.
3.28.9 Joint gaskets: All gaskets shall meet and/or exceed the requirements for the intended design and service
3.29 Impellers:
3.29 1 Impeller type: Impellers shall be double suction type.
3.29 2 Impeller Keys: Impellers shall be keyed on the shaft.
3.29 3 Impeller hubs: Impellers shall not be fitted with wearing rings. The impeller hub wearing surfaces shall have material thickness to permit reaching the diameter of the impeller hubs by as much as .050 inch to accommodate undersized casing wearing rings to restore design running clearances.
3.29 4 Impeller dynamic balancing: Each impeller shall be dynamically balanced in accordance with MIL-STD-167-1
3.30 Rotating Assembly:
3.30.1 Dynamic Balance: rotors shall be dynamically balanced with all rotating parts connected thereto. However, rotating parts may be balanced individually provided that, when assembled, the imbalance shall not exceed the limits in accordance with Mil-STD-167-1
3.30.2 Maximum operating speed: The pump design shall be such and calculations shall be made to demonstrate that the operating speed of the pump will be not less than 120 percent of the first critical speed.
3.30.3 Pumps shall be hydraulically balanced.
3.31.0 Mechanical Seals: Pump seals shall be designed to ensure that leakage is reduced to a minimum and cannot reach the bearings, be thrown over bearing housings, or enter the driving units. Ample drip pockets, spray shields, and drains shall be provided.
3.32.0 Examination: Pumps shall be examined in accordance with a completed parts examination checklist accompanying each part or assembly. The examination shall be performed by inspection personnel not engaged in the fabrication and assembly of the part. The specific attributes which determine the part's acceptability are:
a. Dimensions: Dimensions shall be as indicated on the approved design drawing. Rotating parts shall be examined for balance and maximum permissible run-out as indicated on the drawings.
b. Materials: Materials shall be visually examined for compliance with approved design drawings.
Any appearance of nonconformance shall be further verified by appropriate tests.
c. Cleanliness: Examination for cleanliness shall apply equally to parts examination prior to assembly as well as subassemblies of the completed product.
d. Missing Parts: This examination applies primarily to the completed product prior to shipment.
e. Assembly: During assembly, positioning tolerances and wear ring or impeller running clearances shall be verified.
f. Alignment: The equipment and its subassemblies shall be examined to ensure that the alignment is as specified.
g. Adjustment: The adjustment of safety, control, and monitoring devices shall be verified and the settings recorded. Settings, which should not be tampered with, once adjusted, shall be tagged with an appropriate precautionary warning.
h. Preservation: The preservation used, the methods of application, and recommended procedure for removal of preservation prior to placing the unit in service shall be stated on a supplemental sheet and attached to the checklist.
3.34.0 Test Methods:
3.34.1 Hydrostatic pressure test: Pressure boundary parts shall be tested hydrostatically to a pressure one and one-half times the maximum discharge pressure, but in no case less than 50 psi.
The hydrostatic test pressure shall be maintained for at least 30 minutes or longer as necessary for examination of entire casing (CDRL A023).
3.34.2 Over speed: Each unit shall be tested in the shop of the manufacturer or contractor at 25 percent above the speed corresponding to full load rating by a continuous nonstop run of at least
30 minutes. This test shall check operation and smoothness of running. While running at this speed, the pump need not be loaded except as necessary to prevent injury. The MFP shall be vibration monitored during over speed testing.
3.34.3 Casings: Unless otherwise specified, all turbine casings other than steam chests, including all fittings and connections subject to steam pressures, shall be tested hydrostatically to a pressure at least 50 percent greater than the maximum working pressure, but in no case less than 50 PSI.
3.34.4 Steam fittings: Inlet steam fittings and connections shall be hydrostatically tested after assembly to a pressure of 1000 PSI for turbines operating off a 600 PSI steam system.
3.34.5 Oil supply piping: Lubricating oil supply piping shall be tested under a…
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