Irradiation damage in vanadium alloys using heavy ion and proton accelerators
The paper describes the preliminary results of heavy ion and proton irradiation damage in vanadium and vanadium-titanium alloys of potential interest as fusion reactor first wall materials. The heavy ion irradiation experiments were aimed primarily at studying displacement cascade collapse in single...
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Published in | Journal of nuclear materials Vol. 155-157; pp. 1274 - 1279 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Elsevier B.V
02.07.1988
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Online Access | Get full text |
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Abstract | The paper describes the preliminary results of heavy ion and proton irradiation damage in vanadium and vanadium-titanium alloys of potential interest as fusion reactor first wall materials. The heavy ion irradiation experiments were aimed primarily at studying displacement cascade collapse in single crystal vanadium and are part of a wider study of ion energy and mass effects. The proton irradiation experiments were aimed at studying the effects of recoil energy on damage structure evolution, and are therefore relevant to the changes in neutron energy spectra between fission and fusion reactions. Results are presented from a quantitative and defect geometry analysis of damage structures using TEM. |
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AbstractList | The paper describes the preliminary results of heavy ion and proton irradiation damage in vanadium and vanadium-titanium alloys of potential interest as fusion reactor first wall materials. The heavy ion irradiation experiments were aimed primarily at studying displacement cascade collapse in single crystal vanadium and are part of a wider study of ion energy and mass effects. The proton irradiation experiments were aimed at studying the effects of recoil energy on damage structure evolution, and are therefore relevant to the changes in neutron energy spectra between fission and fusion reactions. Results are presented from a quantitative and defect geometry analysis of damage structures using TEM. |
Author | Phythian, W.J. Bacon, D.J. Eyre, B.L. |
Author_xml | – sequence: 1 givenname: W.J. surname: Phythian fullname: Phythian, W.J. organization: Materials Development Division, UKAEA, Harwell Laboratory, Didcot, Oxfordshire OX11 0RA, United Kingdom – sequence: 2 givenname: B.L. surname: Eyre fullname: Eyre, B.L. organization: UKAEA, London Headquarter, 11 Charles II Street, London, United Kingdom – sequence: 3 givenname: D.J. surname: Bacon fullname: Bacon, D.J. organization: Dept. of Materials Science and Engineering, Liverpool University, P.O. Box 147, Liverpool L69 3BX, United Kingdom |
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Cites_doi | 10.1002/pssb.19660180120 10.1016/0029-5493(75)90035-7 10.1088/0305-4608/10/6/007 10.1080/14786437208228893 10.1016/0022-3115(86)90075-9 10.1080/01418617808239220 10.1080/13642818408227636 |
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Copyright | 1988 |
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References | Jenkins, English, Eyre (BIB7) 1978; 38 Loomis (BIB10) 1986; 141–143 English, Eyre, Homes (BIB4) 1980; F10 Hausserman (BIB5) 1972; 25 Legrand (BIB9) 1984; B49 J. Cawley and W.J. Phythian, to be submitted to J. Nucl. Mater. Merkle (BIB2) 1966; 18 English, Jenkins (BIB6) 1987; 15–18 Norgett, Robinson, Torrens (BIB3) 1975; 33 D. Yellen, D.J. Bacon, W.J. Phythian and C.A. English, to be published. Hausserman (10.1016/0022-3115(88)90510-7_BIB5) 1972; 25 Loomis (10.1016/0022-3115(88)90510-7_BIB10) 1986; 141–143 Norgett (10.1016/0022-3115(88)90510-7_BIB3) 1975; 33 10.1016/0022-3115(88)90510-7_BIB8 English (10.1016/0022-3115(88)90510-7_BIB6) 1987; 15–18 Legrand (10.1016/0022-3115(88)90510-7_BIB9) 1984; B49 English (10.1016/0022-3115(88)90510-7_BIB4) 1980; F10 Jenkins (10.1016/0022-3115(88)90510-7_BIB7) 1978; 38 Merkle (10.1016/0022-3115(88)90510-7_BIB2) 1966; 18 10.1016/0022-3115(88)90510-7_BIB1 |
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