Am-0004_Attachments_SOF-TEMF.pdf
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- SOF Tactical Equipment Maintenance Facility Federal contract opportunity
- Solicitation number
- W9128F22R0086
About this file
This solicitation is for the construction of a SOF Tactical Equipment Maintenance Facility at Fort Carson, Colorado. The project includes construction of an oil storage building, vehicle component storage building, and organizational equipment parking area. The maintenance facility will provide administrative offices, maintenance shops, weapons vault, tool storage, break rooms, restrooms, and utility spaces. Built-in systems will incorporate fire protection, energy management, communications, security, and electrical infrastructure. Supporting site work comprises preparation, paving, utilities, lighting, parking, access roads, drainage, landscaping, and other improvements. Special foundations are required due to existing soil conditions. The project will apply appropriate cybersecurity to control systems and ensure accessibility compliance. Interior design, security design, and audiovisual services are included. The contractor must begin work within 10 days of notice to proceed and complete the project within the number of calendar days stated in the solicitation. Performance and payment bonds are mandatory. The estimated construction cost is between $10-25 million. A site visit will be held on October 6, 2022 at 11:00am MST at the specified Fort Carson location. Questions must be submitted through the designated project management system.
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Other files for this federal contract opportunity
| File | Type | Posted |
|---|---|---|
| Am-0008_Solicitation_SOF-TEMF.pdf | ||
| Am-0007_Solicitation_SOF-TEMF.pdf | ||
| Am-0006_Solicitation_SOF-TEMF.pdf | ||
| Am-0005_Solicitation_SOF-TEMF.pdf | ||
| Am-0004_Solicitation_SOF-TEMF.pdf | ||
| Am-0003_Solicitation_SOF-TEMF.pdf | ||
| Am-0003_W9128F22R0086_Attachments.pdf | ||
| Am-0002_W9128F22R0086_Attachments.pdf | ||
| Am-0002_Solicitation_SOF-TEMF.pdf | ||
| Am-0001_Solicitation_SOF-TEMF.pdf | ||
| Am-0001_W9128F22R0086_Attachments.pdf | ||
| Site-Visit_Sign-In-Sheet_10.06.2022.pdf | ||
| Solicitation_SOF-TEMF.pdf | ||
| Solicitation_SOF-TEMF.pdf | ||
| SPECS_W9218F22R0086.pdf | ||
| DRAWINGS_W9128F22R0086.pdf | ||
| Solicitation_SOF-TEMF.pdf |
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SOF Tactical Equipment Maintenance Facility - Fort Carson, CO FCDC
SECTION TABLE OF CONTENTS
DIVISION 26 - ELECTRICAL
SECTION 26 12 19.10
THREE-PHASE, LIQUID-FILLED PAD-MOUNTED TRANSFORMER
05/19
PART 1 GENERAL
1.1 REFERENCES
1.2 RELATED REQUIREMENTS
1.3 DEFINITIONS
1.4 SUBMITTALS
1.4.1 Reduced Submittal Requirements
1.5 QUALITY ASSURANCE
1.5.1 Pad-Mounted Transformer Drawings
1.5.2 Regulatory Requirements
1.5.3 Standard Products
1.5.3.1 Alternative Qualifications
1.5.3.2 Material and Equipment Manufacturing Date
1.6 MAINTENANCE
1.6.1 Additions to Operation and Maintenance Data
PART 2 PRODUCTS
2.1 PRODUCT COORDINATION
2.2 THREE-PHASE PAD-MOUNTED TRANSFORMER
2.2.1 Compartments
2.2.1.1 High Voltage, Dead-Front
2.2.1.2 Low Voltage
2.2.2 Transformer
2.2.2.1 Specified Transformer Efficiencies
2.2.3 Insulating Liquid
2.2.3.1 Liquid-Filled Transformer Nameplates
2.2.4 Corrosion Protection
2.3 WARNING SIGNS AND LABELS
2.4 ARC FLASH WARNING LABEL
2.5 GROUNDING AND BONDING
2.6 CAST-IN-PLACE CONCRETE
2.7 SOURCE QUALITY CONTROL
2.7.1 Transformer Test Schedule
2.7.2 Design Tests
2.7.3 Routine and Other Tests
PART 3 EXECUTION
3.1 INSTALLATION
3.2 GROUNDING
3.2.1 Grounding Electrodes
3.2.2 Pad-Mounted Transformer Grounding
3.2.3 Connections
3.2.4 Grounding and Bonding Equipment
3.3 INSTALLATION OF EQUIPMENT AND ASSEMBLIES
SECTION 26 12 19.10 Page 1Am #0004
3.4 FIELD APPLIED PAINTING
3.5 FOUNDATION FOR EQUIPMENT AND ASSEMBLIES
3.5.1 Cast-In-Place Concrete
3.5.2 Sealing
3.6 FIELD QUALITY CONTROL
3.6.1 Performance of Acceptance Checks and Tests
3.6.1.1 Pad-Mounted Transformer
3.6.1.2 Grounding System
3.6.1.3 Surge Arresters, Medium-Voltage
3.6.2 Follow-Up Verification
-- End of Section Table of Contents --
SECTION 26 12 19.10 Page 2Am #0004
SECTION 26 12 19.10
THREE-PHASE, LIQUID-FILLED PAD-MOUNTED TRANSFORMER
05/19
PART 1 GENERAL
1.1 REFERENCES
The publications listed below form a part of this specification to the extent referenced. The publications are referred to within the text by the basic designation only.
ASTM INTERNATIONAL (ASTM)
ASTM D92 (2012a) Standard Test Method for Flash and Fire Points by Cleveland Open Cup Tester
ASTM D97 (2017b) Standard Test Method for Pour Point of Petroleum Products
ASTM D877/D877M (2019) Standard Test Method for Dielectric Breakdown Voltage of Insulating Liquids Using Disk Electrodes
ASTM D1535 (2014; R 2018) Standard Practice for Specifying Color by the Munsell System
FM GLOBAL (FM)
FM APP GUIDE (updated on-line) Approval Guide http://www.approvalguide.com/
INSTITUTE OF ELECTRICAL AND ELECTRONICS ENGINEERS (IEEE)
IEEE 386 (2016) Separable Insulated Connector Systems for Power Distribution Systems Rated 2.5 kV through 35 kV
IEEE C2 (2017; Errata 1-2 2017; INT 1 2017) National Electrical Safety Code
IEEE C37.47 (2011) Standard for High Voltage Distribution Class Current-Limiting Type Fuses and Fuse Disconnecting Switches
IEEE C57.12.00 (2015) General Requirements for Liquid-Immersed Distribution, Power, and Regulating Transformers
IEEE C57.12.28 (2014) Standard for Pad-Mounted Equipment
- Enclosure Integrity
IEEE C57.12.34 (2015) Standard Requirements for Pad-Mounted, Compartmental-Type, Self-Cooled, Three-Phase Distribution Transformers, 10 MVA and Smaller; High
SECTION 26 12 19.10 Page 3Am #0004
Voltage, 34.5 kV Nominal System Voltage and Below; Low Voltage, 15 kV Nominal System Voltage and Below
IEEE C57.12.80 (2010) Standard Terminology for Power and Distribution Transformers
IEEE C57.12.90 (2015; Corr 2017) Test Code for Liquid-Immersed Distribution, Power, and Regulating Transformers
IEEE C57.98 (2011) Guide for Transformer Impulse Tests
IEEE C62.11 (2012) Standard for Metal-Oxide Surge Arresters for Alternating Current Power Circuits (>1kV)
IEEE Stds Dictionary (2009) IEEE Standards Dictionary: Glossary of Terms & Definitions
INTERNATIONAL ELECTRICAL TESTING ASSOCIATION (NETA)
NETA ATS (2017; Errata 2017) Standard for Acceptance Testing Specifications for Electrical Power Equipment and Systems
NATIONAL ELECTRICAL MANUFACTURERS ASSOCIATION (NEMA)
NEMA 260 (1996; R 2004) Safety Labels for Pad-Mounted Switchgear and Transformers Sited in Public Areas
NEMA Z535.4 (2011; R 2017) Product Safety Signs and Labels
NATIONAL FIRE PROTECTION ASSOCIATION (NFPA)
NFPA 70 (2020; ERTA 20-1 2020; ERTA 20-2 2020; TIA
20-1; TIA 20-2; TIA 20-3; TIA 20-4)
National Electrical Code
ORGANIZATION FOR ECONOMIC CO-OPERATION AND DEVELOPMENT (OECD)
OECD Test 203 (1992) Fish Acute Toxicity Test
U.S. ENVIRONMENTAL PROTECTION AGENCY (EPA)
EPA 712-C-98-075 (1998) Fate, Transport and Transformation Test Guidelines - OPPTS 835.3100- "Aerobic Aquatic Biodegradation"
EPA 821-R-02-012 (2002) Methods for Measuring the Acute Toxicity of Effluents and Receiving Waters to Freshwater and Marine Organisms
U.S. NATIONAL ARCHIVES AND RECORDS ADMINISTRATION (NARA)
10 CFR 431 Energy Efficiency Program for Certain Commercial and Industrial Equipment
SECTION 26 12 19.10 Page 4Am #0004
UNDERWRITERS LABORATORIES (UL)
UL 467 (2013; Reprint Jun 2017) UL Standard for Safety Grounding and Bonding Equipment
1.2 RELATED REQUIREMENTS
Section 26 08 00 APPARATUS INSPECTION AND TESTING applies to this section, with the additions and modifications specified herein.
1.3 DEFINITIONS
Unless otherwise specified or indicated, electrical and electronics terms used in these specifications, and on the drawings, are as defined in IEEE Stds Dictionary.
1.4 SUBMITTALS
Government approval is required for submittals with a "G" designation;
submittals not having a "G" designation are for information only. When used, a designation following the "G" designation identifies the office that will review the submittal for the Government. Materials in this technical specification may contribute towards contract compliance with sustainability requirements. See Section 01 33 29 SUSTAINABILITY REPORTING for project requirements. Submit the following in accordance with Section
01 33 00 SUBMITTAL PROCEDURES:
SD-02 Shop Drawings
Pad-mounted Transformer Drawings; G, DO
SD-03 Product Data
Pad-mounted Transformer; G, DO
SD-06 Test Reports
Acceptance Checks and Tests; G, DO
SD-07 Certificates
Transformer Efficiencies; G, AO
SD-09 Manufacturer's Field Reports
Transformer Test Schedule; G, AO
Pad-mounted Transformer Design Tests; G, AO
Pad-mounted Transformer Routine and Other Tests; G, AO
SD-10 Operation and Maintenance Data
Transformer, Data Package 5; G, AO
1.4.1 Reduced Submittal Requirements
Transformers designed and manufactured by ABB in Jefferson City, MO; by
SECTION 26 12 19.10 Page 5Am #0004
Eaton's Cooper Power Series Transformers in Waukesha, WI; by ERMCO in Dyersburg, TN; or by Howard Industries in Laurel, MS need not submit the entire submittal package requirements of this contract. Instead, submit the following items:
a. A certification, signed by the manufacturer, stating that the manufacturer will meet the technical requirements of this specification.
b. An outline drawing of the transformer with devices identified (paragraph PAD-MOUNTED TRANSFORMER DRAWINGS, item a).
c. ANSI nameplate data of the transformer (paragraph PAD-MOUNTED TRANSFORMER DRAWINGS, item b).
d. Manufacturer's published time-current curves in PDF format and in electronic format suitable for import or updating into the EasyPower computer program of the transformer high side fuses (paragraph PAD-MOUNTED TRANSFORMER DRAWINGS, item e).
e. Provide transformer test schedule and routine and other tests required by submittal item "SD-09 Manufacturer's Field Reports".
f. Provide acceptance test reports required by submittal item "SD-06 Test Reports".
g. Provide operation and maintenance manuals required by submittal item "SD-10 Operation and Maintenance Data".
1.5 QUALITY ASSURANCE
1.5.1 Pad-Mounted Transformer Drawings
Include the following as a minimum:
a. An outline drawing, including front, top, and side views.
b. IEEE nameplate data.
c. Elementary diagrams and wiring diagrams.
d. One-line diagram, including switch(es).
e. Manufacturer's published time-current curves in PDF format and in electronic format suitable for import or updating into the EasyPower computer program of the transformer high side fuses.
1.5.2 Regulatory Requirements
In each of the publications referred to herein, consider the advisory provisions to be mandatory, except of NFPA 70 when more stringent requirements are specified or indicated, as though the word "must" had been substituted for "should" wherever it appears. Interpret references in these publications to the "authority having jurisdiction," or words of similar meaning, to mean the Contracting Officer. Provide equipment, materials, installation, and workmanship in accordance with NFPA 70 unless more stringent requirements are specified or indicated.
SECTION 26 12 19.10 Page 6Am #0004
1.5.3 Standard Products
Provide materials and equipment that are products of manufacturers regularly engaged in the production of such products which are of equal material, design and workmanship, and:
a. Have been in satisfactory commercial or industrial use for 2 years prior to bid opening including applications of equipment and materials under similar circumstances and of similar size.
b. Have been on sale on the commercial market through advertisements, manufacturers' catalogs, or brochures during the 2-year period.
c. Where two or more items of the same class of equipment are required, provide products of a single manufacturer; however, the component parts of the item need not be the products of the same manufacturer unless stated in this section.
1.5.3.1 Alternative Qualifications
Products having less than a 2-year field service record will be acceptable if a certified record of satisfactory field operation for not less than 6000 hours, exclusive of the manufacturers' factory or laboratory tests, is furnished.
1.5.3.2 Material and Equipment Manufacturing Date
Products manufactured more than 3 years prior to date of delivery to site are not acceptable.
1.6 MAINTENANCE
1.6.1 Additions to Operation and Maintenance Data
Submit operation and maintenance data in accordance with Section 01 78 23 OPERATION AND MAINTENANCE DATA and as specified herein. In addition to requirements of Data Package 5, include the following on the actual transformer provided:
a. An instruction manual with pertinent items and information highlighted
b. An outline drawing, front, top, and side views
c. Prices for spare parts and supply list
d. Routine and field acceptance test reports
e. Fuse curves for primary fuses
f. Actual nameplate diagram
g. Date of purchase
PART 2 PRODUCTS
2.1 PRODUCT COORDINATION
Products and materials not considered to be pad-mounted transformers and related accessories are specified in Section 26 20 00 INTERIOR
SECTION 26 12 19.10 Page 7Am #0004
DISTRIBUTION SYSTEM and Section 33 71 02 UNDERGROUND ELECTRICAL
DISTRIBUTION.
2.2 THREE-PHASE PAD-MOUNTED TRANSFORMER
IEEE C57.12.34, IEEE C57.12.28 and as specified herein. Submit manufacturer's information for each component, device, insulating fluid, and accessory provided with the transformer. [*Am-4]The Government will consider temporary power fixes to account for long lead items as long as code and installation standards are met.[**Am-4]
2.2.1 Compartments
Provide high- and low-voltage compartments separated by steel isolating barriers extending the full height and depth of the compartments.
Compartment doors: hinged lift-off type with stop in open position and three-point latching.
2.2.1.1 High Voltage, Dead-Front
High-voltage compartment contains: the incoming line, insulated high-voltage load-break connectors, bushing well inserts, six high-voltage bushing wells configured for loop feed application, load-break switch handle, access to oil-immersed bayonet fuses, dead-front surge arresters, tap changer handle, connector parking stands and ground pad.
Minimum high-voltage compartment dimensions: IEEE C57.12.34, Figures 16 and 17.
a. Insulated high-voltage load-break connectors: IEEE 386, rated 15 kV, 95 kV BIL. Current rating: 200 amperes rms continuous. Short time rating: 10,000 amperes rms symmetrical for a time duration of 0.17 seconds. Connector must have a steel reinforced hook-stick eye, grounding eye, test point, and arc-quenching contact material.
b. Bushing well inserts: IEEE 386, 200 amperes, 15 kV Class. Provide a bushing well insert for each bushing well unless indicated otherwise.
c. Load-break switch
Loop feed sectionalizer switches: Provide three, two-position, oil-immersed type switches to permit closed transition loop feed and sectionalizing. Each switch must be rated at 15 kV, 95 kV BIL, with a continuous current rating and load-break rating of 200 amperes, and a make-and-latch rating of 12,000 rms amperes symmetrical. Locate the switch handles in the high-voltage compartment. Operation of switches must be as follows:
SECTION 26 12 19.10 Page 8Am #0004
[*Am-4]The Government will consider temporary power fixes to account for long lead items as long as code and installation standards are met.[**Am-4]
ARRANGEMENT
NO.
DESCRIPTION OF SWITCH
ARRANGEMENT
SWITCH POSITION
LINE A SW. LINE B SW XFMR. SW
OPEN CLOSE OPEN CLOSE OPEN CLOSE
1 Line A connected to Line B and both lines connected to transformer
X X X
2 Transformer connected to Line A only
X X X
3 Transformer connected to Line B only
X X X
4 Transformer open and loop closed
X X X
5 Transformer open and loop open
X X X
d. Provide bayonet oil-immersed, expulsion fuses in series with oil-immersed, partial-range, current-limiting fuses. The bayonet fuse links sense both high currents and high oil temperature in order to provide thermal protection to the transformer. Coordinate transformer protection with expulsion fuse clearing low-current faults and current-limiting fuse clearing high-current faults beyond the interrupting rating of the expulsion fuse. Include an oil retention valve inside the bayonet assembly housing, which closes when the fuse holder is removed, and an external drip shield to minimize oil spills. Display a warning label adjacent to the bayonet fuse(s) cautioning against removing or inserting fuses unless the transformer has been de-energized and the tank pressure has been released.
Bayonet fuse assembly: 150 kV BIL.
Oil-immersed current-limiting fuses: IEEE C37.47; 50,000 rms amperes symmetrical interrupting rating at the system voltage specified.
e. Surge arresters: IEEE C62.11, rated 10 kV, fully shielded, dead-front, metal-oxide-varistor, elbow type with resistance-graded gap. Provide three arresters for loop feed circuits.
f. Parking stands: Provide a parking stand near each bushing.
2.2.1.2 Low Voltage
Low-voltage compartment contains: low-voltage bushings with NEMA spade terminals, accessories, stainless steel or laser-etched anodized aluminum diagrammatic transformer nameplate, and ground pad.
a. Include the following accessories: drain valve with sampler device, fill plug, pressure relief device, liquid level gage, pressure-vacuum gage, and dial type thermometer with maximum temperature indicator.
SECTION 26 12 19.10 Page 9Am #0004
2.2.2 Transformer
a. Less-flammable liquid-insulated, two winding, 60 hertz, 65 degrees C rise above a 30 degrees C average ambient, self-cooled type.
b. Transformer rated as indicated on the drawings.
c. Transformer voltage ratings: 12,470 V Delta - 480/277 V Grd Y as indicated on the drawings.
d. Tap changer: externally operated, manual type for changing tap setting when the transformer is de-energized. Provide four 2.5 percent full capacity taps, two above and two below rated primary voltage. Indicate which tap setting is in use, clearly visible when the compartment is opened.
e. Minimum tested percent impedance at 85 degrees C:
2.50 for units rated 75kVA and below
2.87 for units rated 112.5kVA to 300kVA
4.03 for 500kVA rated units
5.32 for units rated 750kVA and above
f. Comply with the following audible sound level limits:
kVA DECIBELS
(MAX
75 51
112.5 55
150 55
225 55
300 55
500 56
750 57
1000 58
1500 60
2000 61
2500 62
g. Include:
(1) Lifting lugs and provisions for jacking under base, with base construction suitable for using rollers or skidding in any direction.
SECTION 26 12 19.10 Page 10Am #0004
(2) An insulated low-voltage neutral bushing with NEMA spade terminal, and with removable ground strap.
(3) Provide transformer top with an access handhole.
(4) kVA rating conspicuously displayed using 3 inch high yellow letters on its enclosure.
2.2.2.1 Specified Transformer Efficiencies
Provide transformer efficiency calculations utilizing the actual no-load and load loss values obtained during the routine tests performed on the actual transformer prepared for this project. Reference no-load losses (NLL) at 20 degrees C. Reference load losses (LL) at 55 degrees C and at 50 percent of the nameplate load. The transformer is not acceptable if the calculated transformer efficiency is less than the efficiency indicated in the "KVA / Efficiency" table below. The table is based on requirements contained within 10 CFR 431, Subpart K. Submit certification, including supporting calculations, from the manufacturer indicating conformance.
kVA EFFICIENCY (percent)
15 98.65
30 98.83
45 98.92
75 99.03
112.5 99.11
150 99.16
225 99.23
300 99.27
500 99.35
750 99.40
1000 99.43
1500 99.48
2000 99.51
2500 99.53 above 2500 99.54
2.2.3 Insulating Liquid
a. Less-flammable transformer liquids: NFPA 70 and FM APP GUIDE for
SECTION 26 12 19.10 Page 11Am #0004 less-flammable liquids having a fire point not less than 300 degrees C tested per ASTM D92 and a dielectric strength not less than 33 kV tested per ASTM D877/D877M. Provide identification of transformer as "non-PCB" and "manufacturer's name and type of fluid" on the nameplate.
Provide a fluid that is a biodegradable, electrical insulating, and cooling liquid classified by UL and approved by FM as "less flammable" with the following properties:
(1) Pour point: ASTM D97, less than -15 degree C
(2) Aquatic biodegradation: EPA 712-C-98-075, ultimately biodegradable as designated by EPA.
(3) Trout toxicity: OECD Test 203, zero mortality of EPA 821-R-02-012, pass
2.2.3.1 Liquid-Filled Transformer Nameplates
Provide nameplate information in accordance with IEEE C57.12.00 and as modified or supplemented by this section.
2.2.4 Corrosion Protection
Paint entire transformer assembly Munsell 7GY3.29/1.5 green, with paint coating system complying with IEEE C57.12.28 regardless of base, cabinet, and tank material. The Munsell color notation is specified in ASTM D1535.
2.3 WARNING SIGNS AND LABELS
Provide warning signs for the enclosures of pad-mounted transformers having a nominal rating exceeding 600 volts in accordance with NEMA Z535.4 and NEMA 260.
a. When the enclosure integrity of such equipment is specified to be in accordance with IEEE C57.12.28, such as for pad-mounted transformers, provide self-adhesive warning labels on the outside of the high voltage compartment door(s)with nominal dimensions of 7 by 10 inches with the legend "WARNING HIGH VOLTAGE" printed in two lines of nominal 2 inch high letters. Include the work "WARNING" in white letters on an orange background and the words "HIGH VOLTAGE" in black letters on a white background.
2.4 ARC FLASH WARNING LABEL
Provide arc flash warning label for the enclosure of pad-mounted transformers. Locate this self-adhesive warning label on the outside of the high voltage compartment door warning of potential electrical arc flash hazards and appropriate PPE required. Provide label format as indicated.
2.5 GROUNDING AND BONDING
UL 467. Provide grounding and bonding as specified in Section 33 71 02
UNDERGROUND ELECTRICAL DISTRIBUTION.
2.6 CAST-IN-PLACE CONCRETE
Provide concrete associated with electrical work for other than encasement
SECTION 26 12 19.10 Page 12Am #0004 of underground ducts rated for 4000 psi minimum 28-day compressive strength unless specified otherwise. Conform to the requirements of Section 03 30 00.00 10 CAST-IN-PLACE CONCRETE.
2.7 SOURCE QUALITY CONTROL
2.7.1 Transformer Test Schedule
The Government reserves the right to witness tests. Provide transformer test schedule for tests to be performed at the manufacturer's test facility. Submit required test schedule and location, and notify the Contracting Officer 30 calendar days before scheduled test date. Notify Contracting Officer 15 calendar days in advance of changes to scheduled date.
a. Test Instrument Calibration
(1) Provide a calibration program which assures that all applicable test instruments are maintained within rated accuracy.
(2) Accuracy: Traceable to the National Institute of Standards and Technology.
(3) Instrument calibration frequency schedule: less than or equal to 12 months for both test floor instruments and leased specialty equipment.
(4) Dated calibration labels: visible on all test equipment.
(5) Calibrating standard: higher accuracy than that of the instrument tested.
(6) Keep up-to-date records that indicate dates and test results of instruments calibrated or tested. For instruments calibrated by the manufacturer on a routine basis, in lieu of third party calibration, include the following:
(a) Maintain up-to-date instrument calibration instructions and procedures for each test instrument.
(b) Identify the third party/laboratory calibrated instrument to verify that calibrating standard is met.
2.7.2 Design Tests
IEEE C57.12.00, and IEEE C57.12.90. Section 5.1.2 in IEEE C57.12.80 states that "design tests are made only on representative apparatus of basically the same design." Submit design test reports (complete with test data, explanations, formulas, and results), in the same submittal package as the catalog data and drawings for the specified transformer, with design tests performed prior to the award of this contract.
a. Tests: certified and signed by a registered professional engineer.
b. Temperature rise: "Basically the same design" for the temperature rise test means a pad-mounted transformer with the same coil construction (such as wire wound primary and sheet wound secondary), the same kVA, the same cooling type (KNAN), the same temperature rise rating, and the same insulating liquid as the transformer specified.
SECTION 26 12 19.10 Page 13Am #0004
c. Lightning impulse: "Basically the same design" for the lightning impulse dielectric test means a pad-mounted transformer with the same BIL, the same coil construction (such as wire wound primary and sheet wound secondary), and a tap changer, if specified. Design lightning impulse tests includes the primary windings only of that transformer.
(1) IEEE C57.12.90, paragraph 10.3 entitled "Lightning Impulse Test Procedures," and IEEE C57.98.
(2) State test voltage levels.
(3) Provide photographs of oscilloscope display waveforms or plots of digitized waveforms with test report.
d. Lifting and moving devices: "Basically the same design" requirement for the lifting and moving devices test means a test report confirming that the lifting device being used is capable of handling the weight of the specified transformer in accordance with IEEE C57.12.34.
e. Pressure: "Basically the same design" for the pressure test means a pad-mounted transformer with a tank volume within 30 percent of the tank volume of the transformer specified.
f. Short circuit: "Basically the same design" for the short circuit test means a pad-mounted transformer with the same kVA as the transformer specified.
2.7.3 Routine and Other Tests
IEEE C57.12.00. Routine and other tests: performed in accordance with IEEE C57.12.90 by the manufacturer on each of the actual transformer prepared for this project to ensure that the design performance is maintained in production. Submit test reports, by serial number and receive approval before delivery of equipment to the project site.
Required tests and testing sequence as follows:
a. Phase relation
b. Ratio
c. No-load losses (NLL) and excitation current
d. Load losses (LL) and impedance voltage
e. Dielectric
(1) Impulse
(2) Applied voltage
(3) Induced voltage
f. Leak
SECTION 26 12 19.10 Page 14Am #0004
PART 3 EXECUTION
3.1 INSTALLATION
Conform to IEEE C2, NFPA 70, and to the requirements specified herein.
Provide new equipment and materials unless indicated or specified otherwise.
3.2 GROUNDING
NFPA 70 and IEEE C2, except provide grounding systems with a resistance to solid earth ground not exceeding 25 ohms.
3.2.1 Grounding Electrodes
Provide driven ground rods as specified in Section 33 71 02 UNDERGROUND ELECTRICAL DISTRIBUTION. Connect ground conductors to the upper end of ground rods by exothermic weld or compression connector. Provide compression connectors at equipment end of ground conductors.
3.2.2 Pad-Mounted Transformer Grounding
Provide a ground ring around the transformer with 4/0 AWG bare copper.
Provide one ground rod in the ground ring with the ground rod located in the transformer cabinet. Provide separate copper grounding conductors and connect them to the ground loop as indicated. When work in addition to that indicated or specified is required to obtain the specified ground resistance, the provision of the contract covering "Changes" applies.
3.2.3 Connections
Make joints in grounding conductors and loops by exothermic weld or compression connector. Install exothermic welds and compression connectors as specified in Section 33 71 02 UNDERGROUND ELECTRICAL
DISTRIBUTION.
3.2.4 Grounding and Bonding Equipment
UL 467, except as indicated or specified otherwise.
3.3 INSTALLATION OF EQUIPMENT AND ASSEMBLIES
Install and connect pad-mounted transformers furnished under this section as indicated on project drawings, the approved shop drawings, and as specified herein.
3.4 FIELD APPLIED PAINTING
Where field painting of enclosures is required to correct damage to the manufacturer's factory applied coatings, provide manufacturer's recommended coatings and apply in accordance with manufacturer's instructions.
3.5 FOUNDATION FOR EQUIPMENT AND ASSEMBLIES
Mount transformer on concrete slab as follows:
a. Unless otherwise indicated, provide the slab with dimensions at least 8 inches thick, reinforced with a 6 by 6 inches - W2.9 by W2.9 mesh
SECTION 26 12 19.10 Page 15Am #0004 placed uniformly 4 inches from the top of the slab.
b. Place slab on a 6 inch thick, well-compacted gravel base.
c. Install slab such that top of concrete slab is approximately 4 inches above the finished grade with gradual slope for drainage.
d. Provide edges above grade with 1/2 inch chamfer.
e. Provide slab of adequate size to project at least 8 inches beyond the equipment.
Stub up conduits, with bushings, 2 inches into cable wells in the concrete pad. Coordinate dimensions of cable wells with transformer cable training areas.
3.5.1 Cast-In-Place Concrete
Provide cast-in-place concrete work in accordance with the requirements of Section 03 30 00.00 10 CAST-IN-PLACE CONCRETE.
3.5.2 Sealing
When the installation is complete, seal all entries into the equipment enclosure with an approved sealing method. Provide seals of sufficient strength and durability to protect all energized live parts of the equipment from rodents, insects, or other foreign matter.
3.6 FIELD QUALITY CONTROL
3.6.1 Performance of Acceptance Checks and Tests
Perform in accordance with the manufacturer's recommendations and include the following visual and mechanical inspections and electrical tests, performed in accordance with NETA ATS. Submit reports, including acceptance criteria and limits for each test in accordance with NETA ATS "Test Values".
3.6.1.1 Pad-Mounted Transformer
a. Visual and mechanical inspection
(1) Compare equipment nameplate data with specifications and approved shop drawings.
(2) Inspect physical and mechanical condition. Check for damaged or cracked insulators and leaks.
(3) Inspect anchorage, alignment, and grounding.
(4) Verify the presence of PCB content labeling.
(5) Verify the bushings and transformer interiors are clean.
(6) Inspect all bolted electrical connections for high resistance using low-resistance ohmmeter, verifying tightness of accessible bolted electrical connections by calibrated torque-wrench method, or performing thermographic survey.
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(7) Verify correct liquid level in tanks and bushings.
(8) Verify that positive pressure is maintained on gas-blanketed transformer.
(9) Perform specific inspections and mechanical tests as recommended by manufacturer.
(10) Verify de-energized tap changer position is left as specified.
(11) Verify the presence of transformer surge arresters.
b. Electrical tests
(1) Perform resistance measurements through all bolted connections with low-resistance ohmmeter.
(2) Verify proper secondary voltage phase-to-phase and phase-to-neutral after energization and prior to loading.
(3) Perform insulation-resistance tests, winding-to-winding and each winding-to-ground. Calculate polarization index. Verify that the tap changer is set at the specified ratio.
(4) Perform turns-ratio tests at all tap positions.
(5) Perform insulation power-factor or dissipation-factor tests on all windings in accordance with test equipment manufacturer’s published data.
(6) Perform power-factor or dissipation-factor tests on each bushing equipped with a power-factor/capacitance tap. In the absence of a power-factor/capacitance tap, perform hot-collar tests.
(7) Measure the resistance of each high-voltage winding in each de-energized tap-changer position. Measure the resistance of each low-voltage winding in each de-energized tap-changer position, if applicable.
(8) Remove and test a sample of insulating liquid for the following:
Dielectric breakdown voltage, Acid neutralization number, Specific gravity, Interfacial tension, Color, Visual Condition, Water in insulating liquids (Required on 25 kV or higher voltages and on all silicone-filled units.), and Power factor or dissipation factor.
(9) Perform dissolved-gas analysis (DGA) on a sample of insulating liquid.
3.6.1.2 Grounding System
a. Visual and mechanical inspection
(1) Inspect ground system for compliance with contract plans and specifications.
b. Electrical tests
(1) Perform ground-impedance measurements utilizing the
SECTION 26 12 19.10 Page 17Am #0004 fall-of-potential method. On systems consisting of interconnected ground rods, perform tests after interconnections are complete.
On systems consisting of a single ground rod perform tests before any wire is connected. Take measurements in normally dry weather, not less than 48 hours after rainfall. Use a portable ground resistance tester in accordance with manufacturer's instructions to test each ground or group of grounds. Use an instrument equipped with a meter reading directly in ohms or fractions thereof to indicate the ground value of the ground rod or grounding systems under test.
(2) Submit the measured ground resistance of each ground rod and grounding system, indicating the location of the rod and grounding system. Include the test method and test setup (i.e., pin location) used to determine ground resistance and soil conditions at the time the measurements were made.
3.6.1.3 Surge Arresters, Medium-Voltage
a. Visual and mechanical inspection
(1) Compare equipment nameplate data with specifications and approved shop drawings.
(2) Inspect physical and mechanical condition.
(3) Inspect anchorage, alignment, grounding, and clearances.
(4) Verify the arresters are clean.
(5) Inspect all bolted electrical connections for high resistance using low-resistance ohmmeter, verifying tightness of accessible bolted electrical connections by calibrated torque-wrench method, or performing thermographic survey.
(6) Verify that the ground lead on each device is individually attached to a ground bus or ground electrode.
b. Electrical tests
(1) Perform resistance measurements through all bolted connections with low-resistance ohmmeter, if applicable.
(2) Perform an insulation-resistance test on each arrester, phase terminal-to-ground.
(3) Test grounding connection.
3.6.2 Follow-Up Verification
Upon completion of acceptance checks and tests, show by demonstration in service that circuits and devices are in good operating condition and properly performing the intended function. As an exception to requirements stated elsewhere in the contract, notify the Contracting Officer 5 working days in advance of the dates and times of checking and testing.
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| Attachments |
| Specifications (Revised and Reissued) |
| 26 12 19.10 |
File details come from the government source that posted it. Updated .