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1

Upadhyaya, G. S., and Gopal S. Upadhyaya. Cemented tungsten carbides: Production, properties, and testing. Noyes Publications, 1998.

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2

Ramins, Peter. Performance of a multistage depressed collector with machined titanium electrodes. National Aeronautics and Space Administration, Scientific and Technical Information Division, 1989.

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3

Peterson, Jeffrey Shawn. Influence of electrode material on spark ignition probability. U.S. Dept. of the Interior, Bureau of Mines, 1992.

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4

American Welding Society. Committee on Piping and Tubing. Recommended practice for gas tungsten arc welding of titanium pipe and tubing. The Society, 1985.

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5

Canada, Atomic Energy of. Effect of Air Contamination in the Argon Shielding Gas on the Mechanical Properties of Titanium Gas-Tungsten-Arc Welds. s.n, 1985.

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6

Division, India Mineral Economics, and Indian Bureau of Mines, eds. Status of special alloy metals in India: Cadmium, cobalt, molybdenum, nickel, niobium (columnium) & tantalum, selenium & tellurium, tin, titanium, tungsten and vandadium. Controller-General, Indian Bureau of Mines, 1998.

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7

Chongyue, Fu, Li Jianchun, and Li Songren, eds. W-Ti-RE-Sb '88: Proceedings of the First Conference on the Metallurgy and Materials Science of Tungsten, Titanium, Rare Earths, and Antimony. International Academic Publishers, 1989.

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8

Buch, Fredrik. On electrical stimulation of bone tissue: A vital microscopic and microradiographic study. University of Gothenburg, 1985.

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9

Institute, American National Standards. Specification for Titanium & Titanium Alloy Welding Electrodes & Rods (A5.16-90) (ANSI/Aws). American Welding Society, 1990.

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10

American Welding Society. AWS A5.16/A5.16M : 2023 , Specification for Titanium and Titanium-Alloy Welding Electrodes and Rods : AWS A5.16/A5.16M: 2023 , Specification for Titanium and Titanium-Alloy Welding Electrodes and Rods. American Welding Society, 2022.

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11

American Welding Society. AWS A5.16/A5.16M : 2023 , Specification for Titanium and Titanium-Alloy Welding Electrodes and Rods : AWS A5.16/A5.16M: 2023 , Specification for Titanium and Titanium-Alloy Welding Electrodes and Rods. American Welding Society, 2022.

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12

Hot Explosive Consolidation of Molybdenum-Titanium and Tungsten-TitaniumAlloys. Storming Media, 1998.

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13

Upadhyaya, Gopal S. Cemented Tungsten Carbides: Production, Properties and Testing. Elsevier Science & Technology Books, 1998.

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14

Specification for tungsten and tungsten alloy electrodes for arc welding and cutting: Approved by American National Standards Institute, April 29, 1992. American Welding Society, 1992.

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15

Wood, D. F., and W. T. Elwell. Analysis of the New Metals: Titanium, Zirconium, Hafnium, Niobium, Tantalum, Tungsten and Their Alloys. Elsevier Science & Technology Books, 2016.

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16

Recommended Practices for Gas Tungsten Arc Welding of Titanium Piping and Tubing (AWS D10.6/D10.6M). Amer Welding Society, 1991.

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17

Zelle, Carl Alfred. Zimmermann-Reinhardt Method for the Determination of Iron, As Applied to the Analysis of Materials Containing Titanium Vanadium, Tungsten, Etc. Creative Media Partners, LLC, 2021.

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18

W-Ti-RE-Sb '88: Proceedings of the First Conference on the Metallurgy and Materials Science of Tungsten, Titanium, Rare Earths, and Antimony. Pergamon Press, 1989.

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19

Chongyue, Fu. W-Ti-Re-Sb'88: Proceedings of the First International Conference on the Metallurgy and Materials Science of Tungsten, Titanium, Rare Earths and Antim. International Academic Publishers, 1989.

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20

Chongyue, Fu. W-Ti-Re-Sb'88: Proceedings of the First International Conference on the Metallurgy and Materials Science of Tungsten, Titanium, Rare Earths and Antim. International Academic Publishers, 1989.

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21

Watts, Kevin Andrew. The relationship between structure and stoichiometry in some ternary tungsten oxides: A high-resolution electronmicroscope and X-ray diffraction study of the relationship between structure and stoichiometry in some ternary tungsten oxides, containing indium, lead, tin or titanium. 1985.

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22

Kong, X. Y., Y. C. Wang, X. F. Fan, G. F. Guo, and L. M. Tong. Free-standing grid-like nanostructures assembled into 3D open architectures for photovoltaic devices. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.22.

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This article describes three-dimensional open architectures with free-standing grid-like nanostructure arrays as photocatalytic electrodes for a new type of dye-sensitized solar cell. It introduces a novel technique for fabricating a series of semiconducting oxides with grid-like nanostructures replicated from the biotemplates. These semiconducting oxides, including n-type titanium dioxide or p-type nickel oxide nanogrids, were sensitized with the dye molecules, then assembled into 3D stacked-grid arrays on a flexible substrate by means of the Langmuir–Blodgett method or the ink-jet printing t
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23

Lampman, Steve, ed. Weld Integrity and Performance. ASM International, 1997. http://dx.doi.org/10.31399/asm.tb.wip.9781627083591.

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Weld Integrity and Performance is a convenient reference and sourcebook for anyone involved in the application, fabrication, or assessment of welded structures. It provides detailed information on relevant topics including weld solidification, weldability testing, weld characterization, discontinuities and imperfections, cracking phenomena, inspection and evaluation techniques, fatigue and fracture control, fracture mechanics, fitness-for-service testing, repair welding, and weld corrosion. An entire section, the largest by far in the book, covers the basic metallurgy and engineering propertie
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