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1

United States. National Aeronautics and Space Administration., ed. [FDNS code to predict wall heat fluxes or wall temperatures in rocket nozzles]: Final report. University of Alabama in Huntsville, 1993.

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2

United States. National Aeronautics and Space Administration., ed. Flow boiling enhancement for thermal management systems: Final report : from the Thermal Science Research Center (TSRC). National Aeronautics and Space Administration, 1998.

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3

United States. National Aeronautics and Space Administration., ed. Flow boiling enhancement for thermal management systems: Final report : from the Thermal Science Research Center (TSRC). National Aeronautics and Space Administration, 1998.

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4

United States. National Aeronautics and Space Administration., ed. [An analysis of gamma ray burst time histories]: Final report. University of Alabama in Huntsville, Summer Faculty Fellowship Research Continuation Program, 1994.

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5

United States. National Aeronautics and Space Administration. Scientific and Technical Information Program. and ViGYAN Inc, eds. A study of residual interference effects in adaptive wall testing of a 7-inch chord CAST-10-2/DOA 2 airfoil model. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program, 1991.

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6

C, Marcum Don, Stack Sharon H, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Branch., eds. Wall-temperature effects on the aerodynamics of a hydrogen-fueledtransport concept in Mach 8 blowdown and shock tunnels. National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1986.

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7

United States. National Aeronautics and Space Administration., ed. Composite matrix experimental combustor: Final technical report. NASA, 1994.

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8

C, Marcum Don, Stack Sharon H, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Branch., eds. Wall-temperature effects on the aerodynamics of a hydrogen-fueled transport concept in Mach 8 blowdown and shock tunnels. National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1986.

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9

Sussman, Darien. The influence of equivalence ratio and wall temperature on the ignition of H2/air mixtures in hypersonic flow boundary layers. National Library of Canada, 1998.

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10

B, Gloss Blair, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Division., eds. Longitudinal aerodynamic characteristics of a subsonic, energy-efficient transport configuration in the National Transonic Facility. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Division, 1989.

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11

Bolt, Harald. Plasma induced material defects and threshold values for thermal loads in high temperature resistant alloys and in refractory metals for first wall application in fusion reactors. Zentralbibliothek der Kernforschungsanlage, 1986.

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12

Dickson, R. S. Sorption of tritium and tritiated water on construction materials. CFFTP., 1991.

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13

Baldwin, Karin. Walla Walla Watershed temperature total maximum daily load: Water quality improvement report. Washington State Dept. of Ecology, 2007.

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14

Baldwin, Karin. Walla Walla Watershed temperature total maximum daily load: Water quality improvement report. Washington State Dept. of Ecology, 2007.

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15

G, Wiberg Clark, and United States. National Aeronautics and Space Administration., eds. Supersonic laminar flow control research: NASA grant no. NAG 2-881, final report, January 1994 - June 1996. National Aeronautics and Space Administration, 1996.

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16

Center, Ames Research, ed. Supersonic laminar flow control research: Final report, July 1994-June 1996. University of Tennessee, Space Institute, 1996.

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17

Center, Ames Research, ed. Supersonic laminar flow control research: Semiannual report #4, July 1995-December 1995. Ames Research Center, 1995.

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18

United States. National Aeronautics and Space Administration., ed. High temperature furnace modeling and performance verifications: Final report, NAG8-708-final. Dept. of Chemical and Materials Engineering, College of Engineering, University of Alabama in Huntsville, 1992.

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19

E, Smith James. High temperature furnace modeling and performance verifications: Final report, NAG8-708-final. Dept. of Chemical and Materials Engineering, College of Engineering, University of Alabama in Huntsville, 1992.

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20

George C. Marshall Space Flight Center., ed. High temperature furnace modeling and performance verifications: Semi-annual progress report, NAG8-5. Dept. of Chemical and Materials Engineering, College of Engineering, University of Alabama in Huntsville, 1991.

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21

E, Smith James. High temperature furnace modeling and performance verifications: Semi-annual progress report, NAG8-708-1. Dept. of Mechanical Engineering, College of Engineering, University of Alabama in Huntsville, 1988.

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22

Dickson, R. S. Tritium interactions with steel and construction materials in fusion devices: A literature review. AECL Research, Chemical Engineering Branch, 1990.

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23

Sinclair, Lester Henry. Heat and moisture transfer across multilayer walls under varying temperature and humidity conditions. Brighton Polytechnic, 1988.

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24

Miller, J. M. Tritium sorption on protective coatings for concrete. CFFTP, 1992.

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25

Baldwin, Karin. Walla Walla Watershed PCBs, chlorinated pesticides, fecal coliform, temperature, pH, & dissolved oxygen total maximum daily load: Water quality implementation plan. Washington State Dept. of Ecology, 2008.

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26

Center, Langley Research, ed. Development of LaRC [superscript TM] - IA thermoplastic polyimide coated aerospace wiring. National Aeronautics and Space Administration, Langley Research Center, 1995.

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27

Center, Langley Research, ed. Development of LaRC [superscript TM] - IA thermoplastic polyimide coated aerospace wiring. National Aeronautics and Space Administration, Langley Research Center, 1995.

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28

Steel Construction Institute (Great Britain). Fire and Blast Information Group. Design guide for stainless steel blast walls. Steel Construction Institute, 1999.

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29

1942-, Bunnell Fred L., and Dunsworth Glen B. 1952-, eds. Forestry and biodiversity: Learning how to sustain biodiversity in managed forests. UBC Press, 2009.

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30

1942-, Bunnell Fred L., and Dunsworth Glen B. 1952-, eds. Forestry and biodiversity: Learning how to sustain biodiversity in managed forests. UBC Press, 2009.

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31

Ellepola, Jerome. Nucleate boiling: Nonlinear spatio-temporal variations in wall temperature. 1997.

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32

Barrera, Gabriel Plascencia. High temperature oxidation of copper and copper aluminium alloys: Impact on furnace side wall cooling systems. 2004.

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33

Willie, Robert H. Fully developed laminar natural convection in a vertical parallel plate channel with symmetric uniform wall temperature. 1996.

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34

Wall-temperature effects on the aerodynamics of a hydrogen-fueledtransport concept in Mach 8 blowdown and shock tunnels. National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1986.

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35

Totman, Ian William. The effect of conduction down the wall on the growth of a temperature interface in a stratified storage tank. 1986.

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36

Sussman, Darien. The influence of equivalence ratio and wall temperature on the ignition of H2/air mixtures in hypersonic flow boundary layers. 1998.

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37

Effects of cavity dimensions, boundary layer, and temperature on cavity noise with emphasis on benchmark data to validate computational aerocoustic codes. National Aeronautics and Space Administration, Langley Research Center, 1995.

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38

A quiet tunnel investigation of hypersonic boundary-layer stability over a cooled, flared cone: Final report. Dept. of Mechanical Engineering, College of Engineering & Technology, Old Dominion University, 1996.

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39

Wolf, E. L. Introduction. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0001.

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An introduction to long-term climate-neutral energy makes clear that most arises from the Sun or the motions of the Sun-Earth system. Quantum physics is an essential part of understanding the Sun’s energy source, nuclear fusion. The expected depletion times of oil and other fossil fuels are discussed. The most recent 500,000 years of Earth temperature and sea level are surveyed and shown to correlate closely with carbon dioxide levels in the atmosphere. Sea level and temperature are correlated and move together on time scales of five thousand years. The definition of sustainable energy, the to
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40

Staff, Scandinavian Fishing Yearbook. Colour Wall Chart: Temperate Aqua Special. Wiley & Sons, Incorporated, John, 1995.

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41

Construction Site Daily Log Book: Tracking Date, Contract Number, Project, Location, Project Manager, Weather, Temperature, Workers on Site, Material Purchased and Delivered, Work Completed, and Any Issues - Bricked Wall Cover. Independently Published, 2021.

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42

Fishing, Yearbook Scandinavian. Colour Wall Chart: Indo-Pacific Temperate Fish. WileyBlackwell, 1994.

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43

Iskander, Magued, and Walid Aboumoussa. Rigidly Framed Earth Retaining Structures: Thermal Soil Structure Interaction of Buildings Supporting Unbalanced Lateral Earth Pressures. Springer Berlin / Heidelberg, 2014.

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44

Iskander, Magued, and Walid Aboumoussa. Rigidly Framed Earth Retaining Structures: Thermal Soil Structure Interaction of Buildings Supporting Unbalanced Lateral Earth Pressures. Springer, 2014.

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45

Iskander, Magued, and Walid Aboumoussa. Rigidly Framed Earth Retaining Structures: Thermal soil structure interaction of buildings supporting unbalanced lateral earth pressures. Springer, 2016.

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46

Becht, IV, Charles. Process Piping: The Complete Guide to ASME B31.3, Fourth Edition. ASME, 2021. http://dx.doi.org/10.1115/1.883792.

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Fully updated for the 2020 Edition of the ASME B31.3 Code, this fourth edition provides background information, historical perspective, and expert commentary on the ASME B31.3 Code requirements for process piping design and construction. It provides the most complete coverage of the Code that is available today and is packed with additional information useful to those responsible for the design and mechanical integrity of process piping. The author and the primary contributor to the fourth edition, Don Frikken are a long-serving members, and Prior Chairmen, of the ASME B31.3, Process Piping Co
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47

Evaluation of Pipeline Steels for Resistance to Stepwise Cracking. AMPP, 1987. https://doi.org/10.5006/nace_tm0284-1987.

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Scope Absorption of hydrogen generated by corrosion of steel in wet hydrogen sulfide (H2S) can have several effects, depending upon the properties of the steel, the characteristics of the environment, and other variables. One adverse effect observed in pipeline steels is the development of cracks along the rolling direction of the steel. Cracks on one plane tend to link up with cracks on adjacent planes to form “steps” across the thickness. The cracks can reduce the effective wall thickness until the pipe is overstressed and ruptures. Cracking is sometimes accompanied by surface blistering. Se
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48

High temperature furnace modeling and performance verifications: Semi-annual progress report, NAG8-5. Dept. of Chemical and Materials Engineering, College of Engineering, University of Alabama in Huntsville, 1991.

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49

Williams, A., and J. L. Clarke. The Effects of Temperature Gradients on the Walls of Concrete Oil Storage Structures. Stationery Office Books, 1987.

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50

Multiphase Flow Internal Corrosion Direct Assessment (MP-ICDA) Methodology for Pipelines. AMPP, 2022. https://doi.org/10.5006/nace_sp0116-2022.

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Scope This standard practice outlines a methodology to assess pipeline integrity because of the threat internal corrosion in onshore and offshore pipelines and other piping systems that normally carry multiphase fluids (gas, water, and oil) termed multiphase flow internal corrosion direct assessment (MP-ICDA). Liquid separators (drips), compressing stations, vessels, and other equipment not related to pipelines are not included in this standard. This standard applies to pipelines, and piping systems both onshore and offshore, containing carbon dioxide (CO2), hydrogen sulfide (H2S), oxygen (O2)
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