针对国产六面顶压机的二级增压精密化控制与大体积聚晶金刚石的合成

李贺飞 于栋利 陈帅 郭晓刚 舒予 王霖 高宇飞

李贺飞, 于栋利, 陈帅, 郭晓刚, 舒予, 王霖, 高宇飞. 针对国产六面顶压机的二级增压精密化控制与大体积聚晶金刚石的合成[J]. 高压物理学报. doi: 10.11858/gywlxb.20261120
引用本文: 李贺飞, 于栋利, 陈帅, 郭晓刚, 舒予, 王霖, 高宇飞. 针对国产六面顶压机的二级增压精密化控制与大体积聚晶金刚石的合成[J]. 高压物理学报. doi: 10.11858/gywlxb.20261120
LI Hefei, YU Dongli, CHEN Shuai, GUO Xiaogang, SHU Yu, WANG Lin, GAO Yufei. Precision Modification of a Two-Stage Pressure Boosting System on a Domestic Cubic Press and Synthesized of Nano-Polycrystalline Diamond[J]. Chinese Journal of High Pressure Physics. doi: 10.11858/gywlxb.20261120
Citation: LI Hefei, YU Dongli, CHEN Shuai, GUO Xiaogang, SHU Yu, WANG Lin, GAO Yufei. Precision Modification of a Two-Stage Pressure Boosting System on a Domestic Cubic Press and Synthesized of Nano-Polycrystalline Diamond[J]. Chinese Journal of High Pressure Physics. doi: 10.11858/gywlxb.20261120

针对国产六面顶压机的二级增压精密化控制与大体积聚晶金刚石的合成

doi: 10.11858/gywlxb.20261120
基金项目: 国家自然科学基金(52288102,U23A20542);河北省高层次人才项目(HY2024050010)
详细信息
    作者简介:

    李贺飞(1994-),男,博士研究生,主要从事大腔体静高压技术、超硬材料合成及物性研究.E-mail:lhfysu@163.com

    通讯作者:

    舒 予(1985-),男,博士,副教授,主要从事大单晶材料的键合连接与合金材料高压改性研究. E-mail:shuyu@ysu.edu.cn

    高宇飞(1987-),男,博士,讲师,主要从事大腔体静高压技术与纳米孪晶结构块材的高压制备研究. E-mail:gyf@ysu.edu.cn

  • 中图分类号: O521.3; O521.2

Precision Modification of a Two-Stage Pressure Boosting System on a Domestic Cubic Press and Synthesized of Nano-Polycrystalline Diamond

  • 摘要: 传统国产铰链式六面顶压机采用限位开关定位、全开式快速充液和高速率升降压的工作模式,其六缸定位精度和充液同步性差,升降压速率无法满足超高压二级增压对偏载控制和力学平稳性的苛刻要求。为此,对国产650 mm缸径六面顶压机开展了系统性改造升级:设计安装了自锁式销轴,并对机架的高压形变进行了预补偿,以抑制或消除超压工况下机架的浮动及变形;搭建了双泵-多模式液压回路和油缸等体积进油充液流程,并创造性地提出了三阶段分段进给,结合独立位移的动作方式,提高了压机对中精度与充液同步性;编译了一套全新的闭环控制程序并与压机自身系统并联,实现了压机动作状态、油压、加热等数据组的实时采集、同步监控和闭环调节;提出了比例-积分-微分精密(proportional-integral-derivative,PID)复合控制结合精密控压模块构件的策略,实现了超慢速升降压速率控制。标定了合成腔压力-油压和加热温度-功率关系曲线,并进行了厘米尺寸纳米聚晶金刚石块材的高温高压合成。结果表明,优化升级后的国产650 mm缸径六面顶压机能够实现压力15 GPa、温度2000 ℃以上条件下大体积样品的制备,极大地拓宽了国产六面顶压机的应用领域。

     

  • 图  互锁式销轴结构示意图

    Figure  1.  Schematic diagram of the interlocking pin shaft structure

    图  油路示意图:(a) 液压油路,(b) 同步缸,(c) 比例阀

    Figure  2.  Schematic diagram of the oil circuit: (a) hydraulic oil circuit; (b) synchronizing cylinder; (c) proportional valve

    图  650压机的数据采集监控程序

    Figure  3.  Data acquisition and monitoring program for the 650 mm cubic press

    图  合成压力与油压的关系:(a) 金属Bi,(b) ZnTe,(c) ZnS,(d) 合成压力-油压曲线(插图为标压组件局部示意图和局部标压曲线)

    Figure  4.  Relationship between synthesis pressure and oil pressure: (a) Bi; (b) ZnTe; (c) ZnS; (d) synthesis pressure-oil pressure curve (Inset: local schematic of the pressure calibration assembly and partial pressure calibration curve.)

    图  合成腔中心温度-加热功率关系曲线(插图为组装示意图)

    Figure  5.  Temperature at the center of the synthesis chamber as a function of heating power (Inset illustrates the assembly geometry.)

    图  前驱体与纳米聚晶金刚石样品的XRD谱

    Figure  6.  XRD patterns of the precursor and nano-polycrystalline diamond

    图  纳米聚晶金刚石的TEM形貌及SEAD图像(插图)

    Figure  7.  TEM and SEAD images (insert) of the nano-polycrystalline diamond

    图  样品中心与边缘的维氏硬度-载荷曲线

    Figure  8.  Vickers hardness-load curves at the center and edge of the sample

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  • 收稿日期:  2026-06-22
  • 修回日期:  2026-07-31
  • 网络出版日期:  2026-09-03

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