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1

The tool steel guide. Industrial Press, 2003.

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2

1933-, Krauss George, and Kennedy Richard, eds. Tool steels. 5th ed. ASM International, 1998.

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3

Hoyle, G. High speed steels. Butterworths, 1987.

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4

Hoyle, G. High speed steels. Butterworths, 1988.

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5

Ustasiak, Mieczysław. Stale narzędziowe, gatunki, obróbka cieplna, zastosowania. Wydawn. Uczelniane Politechniki Szczecińskiej, 1995.

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6

P, Beiss, ed. Proceedings of the 8th International Tooling Conference: Tool steels--deciding factor in worldwide production, RWTH Aachen University, Aachen, Germany, June 2-4, 2009. Verlag Mainz, 2009.

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7

Pozni︠a︡k, Leonid Aleksandrovich. Vosʹmoĭ seminar s mezhdunarodnym uchastiem "Razrabotka, proizvodstvo i primenenie instrumentalʹnykh staleĭ i splavov". In-t problem materialovedenii︠a︡ im. I.N. Frant︠s︡evicha NAN Ukrainy, 1998.

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8

Kocańda, Andrzej. Wytrzymałość i niskocyklowa trwałość zmęczeniowa stali narzędziowej w obróbce plastycznej na półgorąco. Wydawnictwa Politechniki Warszawskiej, 1986.

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9

Commission, United States International Trade. Stainless steel and alloy tool steel: Report to the President on investigation no. TA-203-16 under section 203 of the Trade Act of 1974. U.S. International Trade Commission, 1987.

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10

Nolan, Mary G. The pre-tempering of tool steels. University College Dublin, 1998.

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11

Heat treatment, selection, and application of tool steels. Hanser Gardner Publications, 1997.

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12

Heat treatment, selection, and application of tool steels. 2nd ed. Hanser Gardner Publications, 2005.

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13

Polevoĭ, S. N. Obrabotka instrumentalʹnykh materialov: Spravochnik. 2-ге вид. "Tėkhnika", 1988.

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14

O'Rourke, Gareth. The cryogenic heat treatment of tool steels. University College Dublin, 1998.

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15

Metal cutting. 3rd ed. Butterworth Heinemann, 1991.

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16

Kenneth, Wright Paul, ed. Metal cutting. 4th ed. Butterworth-Heinemann, 2000.

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17

Grigorova, Nadejda G. Carbonitrides in nitrogen die and high speed steels: Chemical phase analysis. [Intelsoft], 1995.

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18

Toh, Chun Kiong. Evaluation of cutter path strategies and orientations when high speed milling hardened AISI H13 hot work tool steel. University of Birmingham, 2002.

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19

Thompson, Steve. Handbook of mould, tool and die repair welding. Abington, 1999.

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20

Rozenblat, Anatoliĭ. Tool life of segmental saw at cutting stainless steels. AuthorHouse, 2006.

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21

Losman, Donald L. The promise of American industry: An alternative assessment of problems and prospects. Quorum Books, 1990.

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22

Walsh, Ronald A. McGraw-Hill machining and metalworking handbook. 3rd ed. McGraw-Hill, 2006.

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23

Walsh, Ronald A. McGraw-Hill machining and metalworking handbook. 3rd ed. McGraw-Hill, 2006.

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24

Walsh, Ronald A. McGraw-Hill machining and metalworking handbook. McGraw-Hill, 1994.

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25

Szumera, Jim. The Tool Steel Guide. Industrial Press, Inc., 2003.

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26

Society, Iron and Steel, ed. Steel products manual. Iron & Steel Society, 1988.

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27

Bryson, William E. Heat Treatment, Selection, and Application of Tool Steels. 2nd ed. Hanser Gardner Publications, 2005.

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28

F, Chernyĭ I͡U︡, ред. Gidropressovanie instrumentalʹnykh staleĭ. "Tekhnika", 1987.

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29

Whittle, Neville Charles. Titanium nitrate coated high speed steel cutting tool inserts. 1987.

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30

The 2006-2011 World Outlook for High-Speed Alloy Tool Steel. Icon Group International, Inc., 2005.

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31

R, Davis J., and ASM International. Handbook Committee., eds. Tool materials. ASM International, 1995.

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32

I, Belʹskiĭ E., та Tomilin R. I, ред. Khimiko-termicheskai͡a︡ obrabotka instrumentalʹnykh materialov. "Nauka i tekhnika", 1986.

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33

The 2006-2011 World Outlook for Alloy Tool Steel Excluding High Speed. Icon Group International, Inc., 2005.

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34

Parker, Philip M. The 2007-2012 World Outlook for Hot-Rolled Steel Bars and Bar Shapes, Plates, Structural Shapes, and Piling and Concrete Reinforcing and Tool Steel Bars Made in Steel Mills. ICON Group International, Inc., 2006.

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35

The 2006-2011 World Outlook for Hot-Rolled Steel Bars and Bar Shapes, Plates, Structural Shapes, and Piling and Concrete Reinforcing and Tool Steel Bars Made in Steel Mills. Icon Group International, Inc., 2005.

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36

Metal cutting. 2nd ed. Butterworths, 1989.

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37

Pemotongan Logam. Dewan Bahasa dan Pustaka, Malaysia, 1995.

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38

Davis, Joseph R. Tool Materials (Asm Specialty Handbook) (#06506G). ASM International, 1995.

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39

Lewus, M. O. Chemically vapour deposited titanium carbide coatings on high speed steel cutting tool inserts. 1987.

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40

Tool materials for molds and dies: Application and performance : proceedings of an international conference. Colorado School of Mines Press, 1987.

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41

Engineers, Society of Manufacturing, ed. Effective tooling methods and selection and treatment of tool steel and key strategies for teaching automated manufacturing. Society of Manufacturing Engineers, 1988.

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42

Parker, Philip M. The 2007-2012 World Outlook for Hot-Rolled High-Speed Alloy Tool Steel Bars and Bar Shapes, Plates, Structural Shapes, and Piling Made in Steel Mills. ICON Group International, Inc., 2006.

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43

Lamsehchi, Madjied. Chemically vapour deposited single and multilayer titanium base coatings on high speed steel cutting tool inserts. 1992.

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44

Handbook of Mold, Tool and Die Repair Welding (Welding & Metallurgy). Plastics Design Library, 1999.

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45

Zeghni, Adel E. Al-mehdy. The effect of thin film coatings and nitriding on the mechanical properties and wear resistance of tool steel. 2003.

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46

Essential Guide to the Steel Square: How to Figure Everything Out with One Simple Tool, No Batteries Required Unlock the Secrets of This Invaluable, Time-Honored Hand Tool. Fox Chapel Publishing, 2016.

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47

Handbook of Mould, Tool and Die Repair Welding. Woodhead Publishing,, 1999.

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48

Tool Steels: Properties and Performance. Taylor & Francis Group, 2016.

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49

Rozenblat, Anatoly. Tool Life of Segmental Saw at Cutting Stainless Steels. AuthorHouse, 2006.

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50

Adler, M. Properties and potential of protein–DNA conjugates for analytic applications. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.25.

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This article examines the properties of protein-DNA conjugates and their potential for analytic applications. It begins with a discussion of DNA as a rigid construction tool for protein networks, reducing its functionality to the molecular equivalent of a steel bar in 'large-scale' architecture. It then describes DNA functionality in protein-DNA conjugates, like specific recognition of nucleotide sequences or its unique use as an amplification template. It also considers a range of applications for protein-DNA conjugates, including the use of artificial DNA-protein nanostructures as supramolec
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