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ASME Performance Test Codes
ASME PTCs on Power Production
PTC 6, Steam Turbines
PTC 6.2, Steam Turbines in Combined Cycles
PTC 17, Reciprocating Internal Combustion
Engines
PTC 18, Hydraulic Turbines and Pump Turbines
PTC 22, Gas Turbines
PTC 29, Speed-Governing Systems for
Hydraulic Turbine Generator Units
PTC 42, Wind Turbines
PTC 46, Overall Plant Performance
PTC 47, Integrated Gasification Combined Cycle
PTC 50, Fuel Cell Power Systems Performance
PTC 55, Aircraft Engines
PTC PM, Performance Monitoring Guidelines
for Steam Power Plants
ASME PTCs on Combustion
and Heat Transfer
PTC 4, Fired Steam Generators
PTC 4.2, Coal Pulverizers
PTC 4.3, Air Heaters
PTC 4.4, Gas Turbine Heat Recovery Steam
Generators
PTC 12.1, Closed Feedwater Heaters
PTC 12.2, Steam Surface Condensers
PTC 12.4, Moisture Separator Reheaters
PTC 12.5, Single Phase Heat Exchangers
PTC 19.10, Flue and Exhaust Gas Analyses
PTC 23, Atmospheric Water Cooling Equipment
PTC 30, Air-Cooled Heat Exchangers
PTC 30.1, Air Cooled Steam Condensers
PTC 34, Waste Combustors with Energy Recovery
PTC 51, Gas Turbine Compressor Inlet Air
Conditioning Equipment
ASME PTCs on Fluid Handling
PTC 8.2, Centrifugal Pumps
PTC 10, Compressors and Exhausters
PTC 11, Fans
PTC 12.3, Deaerators
PTC 19.11, Steam and Water Sampling,
Conditioning, and Analysis
in the Power Cycle
PTC 19.23, Model Testing
PTC 25, Pressure Relief Devices
PTC 31, Ion Exchange Equipment
PTC 39, Steam Traps
ASME PTCs on Emissions
PTC 21, Particulate Matter Collection Equipment
PTC 28, Determining the Properties of Fine
Particulate Matter
PTC 40, Flue Gas Desulfurization Units
ASME General Documents on Analytical
Techniques
PTC 19.1, Test Uncertainty
PTC 61, Validation and Verification of
Computational Fluid Dynamics
and Heat Transfer
ASME General Documents on
Measurement of Process Parameters
and Associated Phenomena
PTC 19.2, Pressure Measurement
PTC 19.3, Temperature Measurement
PTC 19.5, Flow Measurement
PTC 19.6, Electrical Power Measurement
PTC 19.7, Measurement of Shaft Power
PTC 19.22, Digital Systems Techniques
PTC 36, Measurement of Industrial Sound
ASME General Documents on Guiding
Information
PTC 1, General Instructions
PTC 2, Definitions and Values
1
ASME Performance Test Codes: A Wide Range
of Applications
For over 100 years, ASME has been providing industry with a
comprehensive collection of the best technical documents to conduct
tests of power plant equipment and systems. ASME now offers 48
Performance Test Codes (PTCs), covering four main categories of
equipment and systems – Power Production, Combustion and Heat
Transfer, Fluid Handling, and Emissions. There are also “general”
documents that cover Analytical Techniques, Measurement of Process
Parameters and Associated Phenomena and Guiding Information.
ASME PTCs: Ensuring Accuracy, Precision, and Reliabililty.
Instilling Confidence.
Performance test codes provide a “level playing field” for both
manufacturers and users of the equipment or systems. Both parties to
the test can reference the particular test code, confident with the knowl-
edge that it represents the highest level of accuracy based on current
engineering knowledge, taking into account test costs and the value of
information obtained from testing. Precision and reliability of test
results must also underlie all considerations in the development of an
ASME PTC, consistent with economic considerations as judged appro-
priate by each technical committee under the jurisdiction of the ASME
Board on Standardization and Testing.
To learn more about ASME Performance Test Codes, visit www.asme.org/ptcs.
Or contact Steve Weinman, Director, Standardazation & Testing, ASME,
Three Park Avenue, New York, NY 10016; 212.591.7002; weinmans@asme.org
Industry Speaks About ASME Performance Test Codes
2
“PTC 4, on Fired Steam Generators, is the ultimate comprehensive
document for defining, calculating and testing for the efficiency of Fired
Steam Generators by the Energy Balance Method as well as other
significant performance parameters. A major feature of the Code is that
it includes the methodology for correcting test conditions to
guarantee/reference conditions based upon actual unit performance.The
Code is written in a tutorial manner which enhances use as an
instructive medium as well as providing the methodology for developing
a computer code by the user. The Code includes the methodology
for determining the uncertainty of both the test and corrected results.”
Thomas C. Heil
Retired
Babcock & Wilcox
“PTC 6, on Steam Turbines, is the international standard for steam
turbine acceptance testing. It was created and recently revised by a con-
sensus group of vendors, owners, and users. It provides a
standard, consistent, method for determining existing, retrofitted and
new steam turbine performance within the minimum practical
uncertainty. It covers large fossil and nuclear fueled utility grade steam
turbine/generators.”
W. Cary Campbell
Principal Engineer
Southern Company Services
“PTC 4.4, on Heat Recovery Steam Generators, provides a detailed
rigorous calculation approach for testing of HRSG’s. The test approach
involves the determination of the gas turbine exhaust flow by two
different means and combining the result. This would apply to multi-
pressure HRSG’s including units with auxiliary duct burners.
It includes guidance on instrumentation including measuring
temperature of a large exhaust flow stream a method for determining the
HRSG test uncertainty.”
Joseph E. Schroeder
Vice President Engineering
Nooter Eriksen
“PTC 11, on Fans, provides a reliable method for true testing of fans in
the as-installed condition – without any questionable adjustments
to performance.”
Philip M. Gerhart, PhD
Dean
College of Engineering & Computer Sciences
University of Evansville
“PTC 19.1, Test Uncertainty, provides guidelines to determine the
quality of test data, objectively. These methods meet national
and international standards for objective data quality assessment:
measurement uncertainty.”
Ronald H. Dieck
President
Ron Dieck Associates, Inc.
ASME Codes and Standards – An Overview
3
ASME: “Setting the Standard” for 125 Years
ASME helped pioneer the development of modern industrial codes,
beginning with its first published standard in 1884 on pressure-
testing for boilers. It seeks to balance interests among its 4,000
technical experts drawn from industry, government and academia,
while achieving consensus in the finished output. The process
remains open and transparent throughout, yielding codes that with-
stand scrutiny across markets and jurisdictions.
These development efforts are rigorous and up-to-date, and reflect
best practices of industry. Hence, they have earned the confidence
of regulators around the world and the principles of ASME’s
standards development process are consistent with those of the
World Trade Organization TBTAgreement.ASME’s more than 500
codes are now adopted into law, all or in part, within more than 100
nations. These codes and standards are invaluable resources for
industry and governments that help to establish safety and productivity
enhancements in areas ranging from operation and maintenance of nuclear
power plants to design of fasteners and plumbing fittings.
To learn more about ASME Codes and Standards’ 125th Anniversary
Celebration, visit: www.go.asme.org/cs125.
About ASME
Founded in 1880 as the American Society of Mechanical Engineers, ASME
is a not-for-profit professional organization promoting the art, science and
practice of mechanical and multidisciplinary engineering and allied
sciences. With a membership of more than 127,000 mechanical engineers
and allied professionals from around the world, ASME develops codes and
standards that enhance public safety, and provides lifelong learning and
technical exchange opportunities to benefit the global engineering and
technology community.
Over 100 Years of ASME PTCs: Ensuring State-of-the-Art Quality
for State-of-the-Art Technology
In 1884, the ASME published “Rules for Conducting Boiler Tests.”
On April 13, 1909, the Power Test Committee was chartered by the Council
of ASME to “revise the present testing codes of the Society relating to
boilers, pumping engines, locomotives, steam engines, internal combustion
engines …etc.” In 1915, the “Rules for Conducting Performance Test of
Power Plant Apparatus” was published. Over the years numerous test codes
and supplements have been published. Some have been revised and others
withdrawn as new technological advances have necessitated the issuance of
state-of-the-art test codes. Today, some three dozen test codes are available
for testing power plant equipment, such as fired steam generators, steam
turbines and gas turbines as well as testing fuel cells and combined cycle
gasification plants. It is Society policy to review each standard every five
years to determine whether a revision is necessary.
ASME Performance Test Codes (PTCs) provide uniform rules and
procedures for the planning, preparation, execution, and reporting of
performance test results. They provide protocols for establishing testing
parameters and methods of measurement. They provide mathematical
examples on computing the test results and statistical methods to determine
the quality of the tests by calculating the test uncertainty.
Participating on ASME Codes and Standards Committees
4
ASME PTC Committee Membership
ASME PTCs are developed in committee settings to ensure balanced participation and open
access to public interest groups. The ASME PTC Standard Committee and supporting technical sub-
committees consist of experts from various stakeholder groups, who provide their time and resources
on a voluntary basis. The success of ASME PTCs is based on technical and operational experience
from stakeholders drawn from a broad range of industries. The volunteer members who participate
on the ASME PTC technical committees play a vital role in ensuring that the published PTCs will be
useful to and used by the wide range of industry users – manufacturers of the equipment or systems,
user or owner operators, consultants, testing agencies, governmental agencies and academia.
There are no fees or geographical restrictions associated with membership on the ASME com-
mittees or subcommittees. ASME membership is not required. Applicants for committee member-
ship are selected based primarily on technical expertise. ASME uses an Internet-based voting and
tracking system that allows committee members and other interested parties to participate in
ongoing business from anywhere in the world. The committee meets at least three times each year to
discuss changing industry needs and best operational practices.
The Standards Development Process
In developing ASME PTCs and other codes and standards, ASME employs a consensus-based
process that considers the input of all relevant stakeholders. Due process for all input regarding
ASME PTCs is assured and monitored. The development process is open to public review at appro-
priate stages, and the actions of the committee are documented and completely transparent. The
American National Standards Institute (ANSI) has accredited the Society’s process for the develop-
ment of ASME PTCs and other standards. The principles of ASME’s standards development process
are consistent with those of the World Trade Organization’s Technical Barriers to Trade Agreement.
Some Key ASME Performance Test Codes
5
PTC 4 - 2008 Fired Steam Generators
Order No. C02508
Price: $225.00
No. of pages: 292
PTC 6 - 2004 Steam Turbines
Order No. C02804
Price: $215.00
No. of pages: 112
PTC 18 - 2002 Hydraulic Turbines and
Pump-Turbines
Order No. C01802
Price: $125.00
No. of pages: 88
PTC 19.1 - 2005 Test Uncertainty
Order No. D04505
Price: $125.00
No. of pages: 102
PTC 19.5 - 2004 Flow Measurement
Order No. G0180Q
Price: $185.00
No. of pages: 180
PTC 19.10 - 1981 Flue
and Exhaust Gas Analyses
Order No. C00031
Price: $70.00
No. of pages: 99
PTC 22 - 2005 Performance Test Code
on Gas Turbines
Order No. C01505
Price: $95.00
No. of pages: 100
PTC 25 - 2008 Pressure Relief Devices
Order No. C0610
Price: $85.00
No. of pages: 84
PTC 46 - 1996 Performance Test Code
on Overall Plant Performance
Order No. C06496
Price: $250.00
No. of pages: 192
PTC 47 - 2006 Integrated Gasification
Combined Cycle Power Generation Plants
Order No. C06806
Price: $145.00
No. of pages: 100

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Energy

  • 1. ASME Performance Test Codes ASME PTCs on Power Production PTC 6, Steam Turbines PTC 6.2, Steam Turbines in Combined Cycles PTC 17, Reciprocating Internal Combustion Engines PTC 18, Hydraulic Turbines and Pump Turbines PTC 22, Gas Turbines PTC 29, Speed-Governing Systems for Hydraulic Turbine Generator Units PTC 42, Wind Turbines PTC 46, Overall Plant Performance PTC 47, Integrated Gasification Combined Cycle PTC 50, Fuel Cell Power Systems Performance PTC 55, Aircraft Engines PTC PM, Performance Monitoring Guidelines for Steam Power Plants ASME PTCs on Combustion and Heat Transfer PTC 4, Fired Steam Generators PTC 4.2, Coal Pulverizers PTC 4.3, Air Heaters PTC 4.4, Gas Turbine Heat Recovery Steam Generators PTC 12.1, Closed Feedwater Heaters PTC 12.2, Steam Surface Condensers PTC 12.4, Moisture Separator Reheaters PTC 12.5, Single Phase Heat Exchangers PTC 19.10, Flue and Exhaust Gas Analyses PTC 23, Atmospheric Water Cooling Equipment PTC 30, Air-Cooled Heat Exchangers PTC 30.1, Air Cooled Steam Condensers PTC 34, Waste Combustors with Energy Recovery PTC 51, Gas Turbine Compressor Inlet Air Conditioning Equipment ASME PTCs on Fluid Handling PTC 8.2, Centrifugal Pumps PTC 10, Compressors and Exhausters PTC 11, Fans PTC 12.3, Deaerators PTC 19.11, Steam and Water Sampling, Conditioning, and Analysis in the Power Cycle PTC 19.23, Model Testing PTC 25, Pressure Relief Devices PTC 31, Ion Exchange Equipment PTC 39, Steam Traps ASME PTCs on Emissions PTC 21, Particulate Matter Collection Equipment PTC 28, Determining the Properties of Fine Particulate Matter PTC 40, Flue Gas Desulfurization Units ASME General Documents on Analytical Techniques PTC 19.1, Test Uncertainty PTC 61, Validation and Verification of Computational Fluid Dynamics and Heat Transfer ASME General Documents on Measurement of Process Parameters and Associated Phenomena PTC 19.2, Pressure Measurement PTC 19.3, Temperature Measurement PTC 19.5, Flow Measurement PTC 19.6, Electrical Power Measurement PTC 19.7, Measurement of Shaft Power PTC 19.22, Digital Systems Techniques PTC 36, Measurement of Industrial Sound ASME General Documents on Guiding Information PTC 1, General Instructions PTC 2, Definitions and Values 1 ASME Performance Test Codes: A Wide Range of Applications For over 100 years, ASME has been providing industry with a comprehensive collection of the best technical documents to conduct tests of power plant equipment and systems. ASME now offers 48 Performance Test Codes (PTCs), covering four main categories of equipment and systems – Power Production, Combustion and Heat Transfer, Fluid Handling, and Emissions. There are also “general” documents that cover Analytical Techniques, Measurement of Process Parameters and Associated Phenomena and Guiding Information. ASME PTCs: Ensuring Accuracy, Precision, and Reliabililty. Instilling Confidence. Performance test codes provide a “level playing field” for both manufacturers and users of the equipment or systems. Both parties to the test can reference the particular test code, confident with the knowl- edge that it represents the highest level of accuracy based on current engineering knowledge, taking into account test costs and the value of information obtained from testing. Precision and reliability of test results must also underlie all considerations in the development of an ASME PTC, consistent with economic considerations as judged appro- priate by each technical committee under the jurisdiction of the ASME Board on Standardization and Testing. To learn more about ASME Performance Test Codes, visit www.asme.org/ptcs. Or contact Steve Weinman, Director, Standardazation & Testing, ASME, Three Park Avenue, New York, NY 10016; 212.591.7002; weinmans@asme.org
  • 2. Industry Speaks About ASME Performance Test Codes 2 “PTC 4, on Fired Steam Generators, is the ultimate comprehensive document for defining, calculating and testing for the efficiency of Fired Steam Generators by the Energy Balance Method as well as other significant performance parameters. A major feature of the Code is that it includes the methodology for correcting test conditions to guarantee/reference conditions based upon actual unit performance.The Code is written in a tutorial manner which enhances use as an instructive medium as well as providing the methodology for developing a computer code by the user. The Code includes the methodology for determining the uncertainty of both the test and corrected results.” Thomas C. Heil Retired Babcock & Wilcox “PTC 6, on Steam Turbines, is the international standard for steam turbine acceptance testing. It was created and recently revised by a con- sensus group of vendors, owners, and users. It provides a standard, consistent, method for determining existing, retrofitted and new steam turbine performance within the minimum practical uncertainty. It covers large fossil and nuclear fueled utility grade steam turbine/generators.” W. Cary Campbell Principal Engineer Southern Company Services “PTC 4.4, on Heat Recovery Steam Generators, provides a detailed rigorous calculation approach for testing of HRSG’s. The test approach involves the determination of the gas turbine exhaust flow by two different means and combining the result. This would apply to multi- pressure HRSG’s including units with auxiliary duct burners. It includes guidance on instrumentation including measuring temperature of a large exhaust flow stream a method for determining the HRSG test uncertainty.” Joseph E. Schroeder Vice President Engineering Nooter Eriksen “PTC 11, on Fans, provides a reliable method for true testing of fans in the as-installed condition – without any questionable adjustments to performance.” Philip M. Gerhart, PhD Dean College of Engineering & Computer Sciences University of Evansville “PTC 19.1, Test Uncertainty, provides guidelines to determine the quality of test data, objectively. These methods meet national and international standards for objective data quality assessment: measurement uncertainty.” Ronald H. Dieck President Ron Dieck Associates, Inc.
  • 3. ASME Codes and Standards – An Overview 3 ASME: “Setting the Standard” for 125 Years ASME helped pioneer the development of modern industrial codes, beginning with its first published standard in 1884 on pressure- testing for boilers. It seeks to balance interests among its 4,000 technical experts drawn from industry, government and academia, while achieving consensus in the finished output. The process remains open and transparent throughout, yielding codes that with- stand scrutiny across markets and jurisdictions. These development efforts are rigorous and up-to-date, and reflect best practices of industry. Hence, they have earned the confidence of regulators around the world and the principles of ASME’s standards development process are consistent with those of the World Trade Organization TBTAgreement.ASME’s more than 500 codes are now adopted into law, all or in part, within more than 100 nations. These codes and standards are invaluable resources for industry and governments that help to establish safety and productivity enhancements in areas ranging from operation and maintenance of nuclear power plants to design of fasteners and plumbing fittings. To learn more about ASME Codes and Standards’ 125th Anniversary Celebration, visit: www.go.asme.org/cs125. About ASME Founded in 1880 as the American Society of Mechanical Engineers, ASME is a not-for-profit professional organization promoting the art, science and practice of mechanical and multidisciplinary engineering and allied sciences. With a membership of more than 127,000 mechanical engineers and allied professionals from around the world, ASME develops codes and standards that enhance public safety, and provides lifelong learning and technical exchange opportunities to benefit the global engineering and technology community. Over 100 Years of ASME PTCs: Ensuring State-of-the-Art Quality for State-of-the-Art Technology In 1884, the ASME published “Rules for Conducting Boiler Tests.” On April 13, 1909, the Power Test Committee was chartered by the Council of ASME to “revise the present testing codes of the Society relating to boilers, pumping engines, locomotives, steam engines, internal combustion engines …etc.” In 1915, the “Rules for Conducting Performance Test of Power Plant Apparatus” was published. Over the years numerous test codes and supplements have been published. Some have been revised and others withdrawn as new technological advances have necessitated the issuance of state-of-the-art test codes. Today, some three dozen test codes are available for testing power plant equipment, such as fired steam generators, steam turbines and gas turbines as well as testing fuel cells and combined cycle gasification plants. It is Society policy to review each standard every five years to determine whether a revision is necessary. ASME Performance Test Codes (PTCs) provide uniform rules and procedures for the planning, preparation, execution, and reporting of performance test results. They provide protocols for establishing testing parameters and methods of measurement. They provide mathematical examples on computing the test results and statistical methods to determine the quality of the tests by calculating the test uncertainty.
  • 4. Participating on ASME Codes and Standards Committees 4 ASME PTC Committee Membership ASME PTCs are developed in committee settings to ensure balanced participation and open access to public interest groups. The ASME PTC Standard Committee and supporting technical sub- committees consist of experts from various stakeholder groups, who provide their time and resources on a voluntary basis. The success of ASME PTCs is based on technical and operational experience from stakeholders drawn from a broad range of industries. The volunteer members who participate on the ASME PTC technical committees play a vital role in ensuring that the published PTCs will be useful to and used by the wide range of industry users – manufacturers of the equipment or systems, user or owner operators, consultants, testing agencies, governmental agencies and academia. There are no fees or geographical restrictions associated with membership on the ASME com- mittees or subcommittees. ASME membership is not required. Applicants for committee member- ship are selected based primarily on technical expertise. ASME uses an Internet-based voting and tracking system that allows committee members and other interested parties to participate in ongoing business from anywhere in the world. The committee meets at least three times each year to discuss changing industry needs and best operational practices. The Standards Development Process In developing ASME PTCs and other codes and standards, ASME employs a consensus-based process that considers the input of all relevant stakeholders. Due process for all input regarding ASME PTCs is assured and monitored. The development process is open to public review at appro- priate stages, and the actions of the committee are documented and completely transparent. The American National Standards Institute (ANSI) has accredited the Society’s process for the develop- ment of ASME PTCs and other standards. The principles of ASME’s standards development process are consistent with those of the World Trade Organization’s Technical Barriers to Trade Agreement.
  • 5. Some Key ASME Performance Test Codes 5 PTC 4 - 2008 Fired Steam Generators Order No. C02508 Price: $225.00 No. of pages: 292 PTC 6 - 2004 Steam Turbines Order No. C02804 Price: $215.00 No. of pages: 112 PTC 18 - 2002 Hydraulic Turbines and Pump-Turbines Order No. C01802 Price: $125.00 No. of pages: 88 PTC 19.1 - 2005 Test Uncertainty Order No. D04505 Price: $125.00 No. of pages: 102 PTC 19.5 - 2004 Flow Measurement Order No. G0180Q Price: $185.00 No. of pages: 180 PTC 19.10 - 1981 Flue and Exhaust Gas Analyses Order No. C00031 Price: $70.00 No. of pages: 99 PTC 22 - 2005 Performance Test Code on Gas Turbines Order No. C01505 Price: $95.00 No. of pages: 100 PTC 25 - 2008 Pressure Relief Devices Order No. C0610 Price: $85.00 No. of pages: 84 PTC 46 - 1996 Performance Test Code on Overall Plant Performance Order No. C06496 Price: $250.00 No. of pages: 192 PTC 47 - 2006 Integrated Gasification Combined Cycle Power Generation Plants Order No. C06806 Price: $145.00 No. of pages: 100