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1999 Fiscal Year Final Research Report Summary

Study on Macroscopic Aspects of Shock Compression Behavior of Polymer Materials

Research Project

Project/Area Number 09450038
Research Category

Grant-in-Aid for Scientific Research (B)

Allocation TypeSingle-year Grants
Section一般
Research Field Applied physics, general
Research InstitutionKYUSHU UNIVERSITY

Principal Investigator

NAGAYAMA Kunihito  Kyushu Univ., Graduate Sch. Eng., Professor, 大学院・工学研究科, 教授 (20040446)

Co-Investigator(Kenkyū-buntansha) HATANO Sachiko  Kyushu Univ., Graduate Sch. Eng., Assistant, 大学院・工学研究科, 助手 (70260718)
MORI Yasuhito  Kyushu Univ., Graduate Sch. Eng., Assistant, 大学院・工学研究科, 助手 (80243898)
TAKAHASHI Koji  Kyushu Univ., Graduate Sch. Eng., Ass. Professor, 大学院・工学研究科, 助教授 (10243924)
YOSHITAKE Tsuyoshi  Kyushu Univ., Graduate Sch. Interdisc. Sci. & Tech., Ass. Professor, 大学院・総合理工学研究科, 助教授 (40284541)
Project Period (FY) 1997 – 1999
Keywordspolymer / shock wave / stress relaxation / polyethylene / crystallinity / shock Hugoniot / optical method
Research Abstract

Results of our study are as follows :
We have first established Hugoniot measurement method for polymer shock waves. Continuous observation of free surface velocity or that of stress wave profile together with the shock Hugoniot parameters are realized by two different experimental methods. We measured two different polyethylene specimens with different crystallinity. Consequently, we found that Hugoniot curve for both specimens have a curvature around a point of the particle velocity of 150m/s, and a some scatter of the data around this region.
To examine that the scatter might be due to the unsteadiness of the shock propagation velocity, we have then developed a novel technique of continuous observation of shock propagation velocity. PMMA specimen was first measured for comparison, which showed no appreciable unsteadiness. While for polyethylene specimens, shock decay was observed especially large in the vicinity of the curvature region of the Hugoniot. Higher stress region, shock velocity seemed almost constant. This result indicates an absorption of energy due to stress relaxation. This decay characteristics is found to depend on the polyethylene specimen. Unsteadiness of shock velocity suggests that shock Hugoniot is not regarded as a simple material compression curve, which could not be described by simple shock jump condition with shock velocity as a parameter. Furthermore, we have discussed the physics of the deflection of Hugoniot curve found for any polymer materials again in the region of 150 m/s particle velocity. Very large Gruneisen parameter of 3-4 was suggested at the lower stress region before the deflection point, while it decreases to a very small value of 0.1 after the deflection. Large Gruneisen parameter corresponds to that of intermolecular vibration modes, which is supposed to be excited selectively by the shock drive. Strong thermal nonequilibrium after shock front is then concluded from this discussion.

  • Research Products

    (12 results)

All Other

All Publications (12 results)

  • [Publications] 永山邦仁: "光の全反射を用いた高分子材料中衝撃波面の高感度検知技術"応用物理. 66. 1111-1114 (1997)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] Y. MORI, T. TAMURA and K. NAGAYAMA: "Sensitive Optical Detection of the Shock Front and Fast Moving Surface for Shock Study in Condensed Media in the 1 Gpa Stress Region"Rev. Sci. Instrum.. 69. 1730-1734 (1998)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] Y. MORI and K. NAGAYAMA: "Sensitive Detection of Shock Front and Free Surface Velocity History for Polymeric Materials by New Inclined-Prism Method in 1 Gpa Pressure Region"Shock Compression of Condensed Matter. 875-878 (1998)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] K. NAGAYAMAY and Y. MORI: "Thermal Nonequilibrium of the Shock-Compressed State of Polymers Realized by 1 Gpa Shock Waves"J. Appl. Phys.. 84. 6592-6599 (1998)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] K. NAGAYAMAY, Y. MORI and K. HIDAKA: "Shock Compression Experiments on Several Polymers in 1 Gpa Stress Region"J. Materials Processing Technology. 85. 20-24 (1999)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] Y. MORI and K. NAGAYAMAY: "Simultaneous Measurements of both Hugoniot State and Stress Profile in Polymeric Materials around 0.5 Gpa Shock Stress Region"Rev. Sci. Instrum. (印刷中).

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] K. Nagayama: "Method of Sensitive Detection of Shock Wave Front in Polymers based on Total Internal Reflection of Light"Ooyobuturi. Vol. 66, No. 10. 1111-1114 (1997)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] Y. MORI, T. TAMURA and K. NAGAYAMA: "Sensitive Optical Detection of the Shock Front and Fast Moving Surface for Shock Study in Condensed Media in the 1 GPa Stress Region"Rev. Sci. Instrum.. Vol. 69, No. 4. 1730-1734 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] Y. MORI and K. NAGAYAMA: "Sensitive Detection of Shock Front and Free Surface Velocity History for Polymeric Materials by New Inclined-Prism Method in 1GPa Pressure Region"Shock Compression of Condensed Matter - 1997. 875-878 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] K. NAGAYAMA and Y. MORI: "Thermal Nonequilbbrim of the Shock-Compressed State of Polymers Realized by 1 GPa Shock Waves"J. Appl. Phys.. Vol. 84, No. 12. 6592-6599 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] K. NAGAYAMA, Y. MORI and K. HIDAKA: "Shock Compression Experiments on Several Polymers in 1 GPa Stress Region"J. Matrial Processing Technology. Vol. 85. 20-24 (1999)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] Y. MORI, K. HIDAKA and K. NAGAYAMA: "Simultaneous Measurements of both Hugoniot State and Stress Profile in Polymeric Materials around 0.5GPa Shock Stress Region"Rev. Sci. Instrum.. (to be published).

    • Description
      「研究成果報告書概要(欧文)」より

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Published: 2001-10-23  

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