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人工晶体学报 ›› 2009, Vol. 38 ›› Issue (6): 1313-1319.

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KDP晶体力学参数测试与分析

张强勇;刘德军;王圣来;张宁;牟晓明;孙云   

  1. 山东大学岩土与结构工程研究中心,济南,250061;山东大学晶体材料国家重点试验室,济南,250100;山东大学晶体材料国家重点试验室,济南,250100
  • 出版日期:2009-12-15 发布日期:2021-01-20
  • 基金资助:
    国家重点基础研究发展规划(973计划)(2009CB724607);国家自然科学基金(40772173);山东省自然科学基金(Y2007F52);山东大学晶体材料国家重点试验室开放资金(KF0705)

Mechanical Parameters Test and Analysis for KDP Crystal

ZHANG Qiang-yong;LIU De-jun;WANG Sheng-lai;ZHANG Ning;MOU Xiao-ming;SUN Yun   

  • Online:2009-12-15 Published:2021-01-20

摘要: 采用全自动、高精度RMT-150C力学试验系统开展了KDP晶体的力学参数测试,获得了KDP晶体[001]和[100]晶向的弹性模量、泊松比、抗压强度和抗拉强度.结果表明:[001]和[100]晶向的弹性模量分别为39.25 MPa和16.82 MPa,泊松比分别为0.24和0.16,KDP晶体为典型的弹脆性横观各向同性材料.KDP晶体在[001]晶向的抗压强度、抗拉强度均较[100]晶向的高,其在[100]晶向更容易发生脆性破坏.结合KDP晶体的生长受力状态,揭示了KDP生长过程中产生的破坏以拉破坏为主,为开展KDP晶体开裂的力学损伤分析、提出防止开裂的力学措施奠定了重要的基础.

关键词: KDP晶体;力学参数;弹脆性;横观各向同性;拉破坏

Abstract: The automatic and high precision system of RMT-150C was carried to test the mechanical parameters of KDP crystal. Elastic modulus, Poisson ratio, compressive strength and tensile strength were obtained. The results indicate that the elastic modulus in [001] and [100] are 39.25 MPa and 16.82 MPa while the Poisson rations are 0.24 and 0.16 respectively and the KDP is elastic-brittle transversely isotropic material. In addition, the compressive strength and tensile strength in [001] is higher than that in [100], so it is easier to crack in [100] than in [001]. Combined with the stress during growth process, it is found that the cracks are mainly caused by tensile stress, which lays an important foundation for studying the crack damage mechanism and proposing measures in the next step.

Key words: The automatic and high precision system of RMT-150C was carried to test the mechanical parameters of KDP crystal. Elastic modulus, Poisson ratio, compressive strength and tensile strength were obtained. The results indicate that the elastic modulus in [001] and [100] are 39.25 MPa and 16.82 MPa while the Poisson rations are 0.24 and 0.16 respectively and the KDP is elastic-brittle transversely isotropic material. In addition, the compressive strength and tensile strength in [001] is higher than that in [100], so it is easier to crack in [100] than in [001]. Combined with the stress during growth process, it is found that the cracks are mainly caused by tensile stress, which lays an important foundation for studying the crack damage mechanism and proposing measures in the next step.

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