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《中国物理C》(英文)编辑部
2024年10月30日

Calculation and analysis of cross-sections for p+184W reactions up to 200 MeV

  • A set of optimal proton optical potential parameters for p+184W reactions are obtained at incident proton energy up to 250 MeV. Based on these parameters, the reaction cross-sections, elastic scattering angular distributions, energy spectra and double differential cross sections of proton-induced reactions on 184W are calculated and analyzed by using theoretical models which integrate the optical model, distorted Born wave approximation theory, intra-nuclear cascade model, exciton model, Hauser-Feshbach theory and evaporation model. The calculated results are compared with existing experimental data and good agreement is achieved.
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  • [1] HAN Yin-Lu, ZHANG Yue, GUO Hai-Rui. Nuclear Instruments and Methods in Physics Research B, 2007, 265: 461[2] Woods R D, Saxon D S. Phys. Rev., 1954, 95: 577[3] Becchetti F D, Jr., Greenless G W. Phys. Rev., 1969, 182: 1190[4] HOU Pei-You, SUN Xiao-Jun, YU Cheng-Gang et al. Chinese Physics C, 2011, 35(efeq1): 35[5] REN Wen-Tao, ZHANG Zheng-Jun, HAN Yin-Lu. Nuclear Instruments and Methods in Physics Research B, 2011, 269: 472[6] SHEN Qing-Biao. Nucl. Sci. Eng., 2003, 143: 202[7] Kunz P D. Distorted Wave Code DWUCK4. Boulder, Colorado: University of Colorado, 1994[8] CHEN K, Fraenkel Z, Friedlander G et al. Phys. Rev., 1968, 166: 949[9] Griffin J J. Phys. Rev. Lett., 1966, 17: 478[10] ZHANG Jing-Shang, YAN Shi-Wei, WANG Cui-Lan. Z. Phys. A, 1992, 344: 251[11] Iwamoto A, Harada K. Phys. Rev. C, 1982, 26: 1821[12] ZHANG Jing-Shang. Nucl. Sci. Eng., 1994, 116: 35[13] SHEN Qing-Biao. Nucl. Sci. Eng., 1994, 117: 99[14] Weisskopf V. Phys. Rev., 1937, 52: 295[15] Mantzouranis G, Weidenmuller H, Gassi D A. Z. Phys. A, 1976, 276: 145[16] SUN Zhi-Qing, WANG Shu-Nuan, ZHANG Jing-Shang et al. Z. Phys. A, 1982, 305: 61[17] Kalbach C. Physical Review C, 2005, 71: 034606[18] CAI Chong-Hai. Nucl. Sci. Eng., 2006, 153: 93[19] FENG Ren-Fa, WU Xi-Zhen, ZHUO Yi-Zhong. High Energy Phys. and Nucl. Phys., 1994, 18: 361[20] Gilbert A, Cameron A G W. Can. J. Phys., 1965, 43: 1446[21] SU Zong-Di, WANG Cui-Lan, ZHUANG You-Xiang et al. A New Set of Level Density Parameters from Feimi Gas Model. Report INDC(CPR)-2, IAEA, Vienna, 1985. 11-13[22] Ignatyuk A V, Smirenkin G N, Tishin A S. Sov. J. Nucl. Phys., 1975, 21: 255[23] Shigaev O E, Bychenkov V S, Lomanov M F et al. The Definition of Anisotropy and Fission Cross Sections as a Function of Z**2/A at the Proton Energy 200 MeV. R, RI, 1973. 17[24] Kirkby P, Link W T. Can. J. Phys., 1966, 44: 1847[25] Abegg R, Birchall J, Davison N E et al. Nuclear Physics A, 1979, 324: 109[26] Wilkins B D, IGO G. Physical Review, 1963, 129: 2198[27] Steinberg D J, Palmieri J N, Cormack A M. Nuclear Physics, 1964, 56: 46[28] Richardson R E, Ball W P, Leith C E et al. Physical Review, 1952, 86: 29[29] Meier M M, Clark D A, Goulding C A et al. Nuclear Science and Engineering, 1989, 102: 310[30] Chadwick M B, Young P G, Chiba S et al. Nuclear Science and Engineering, 1999, 131: 293
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SUN Jian-Ping, ZHANG Zheng-Jun and HAN Yin-Lu. Calculation and analysis of cross-sections for p+184W reactions up to 200 MeV[J]. Chinese Physics C, 2015, 39(8): 084102. doi: 10.1088/1674-1137/39/8/084102
SUN Jian-Ping, ZHANG Zheng-Jun and HAN Yin-Lu. Calculation and analysis of cross-sections for p+184W reactions up to 200 MeV[J]. Chinese Physics C, 2015, 39(8): 084102.  doi: 10.1088/1674-1137/39/8/084102 shu
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Received: 2015-02-11
Revised: 2015-04-21
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Calculation and analysis of cross-sections for p+184W reactions up to 200 MeV

    Corresponding author: ZHANG Zheng-Jun,

Abstract: A set of optimal proton optical potential parameters for p+184W reactions are obtained at incident proton energy up to 250 MeV. Based on these parameters, the reaction cross-sections, elastic scattering angular distributions, energy spectra and double differential cross sections of proton-induced reactions on 184W are calculated and analyzed by using theoretical models which integrate the optical model, distorted Born wave approximation theory, intra-nuclear cascade model, exciton model, Hauser-Feshbach theory and evaporation model. The calculated results are compared with existing experimental data and good agreement is achieved.

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