基于低频扭摆法的阻尼合金内耗行为测试系统改进与实验研究

Improvement of Testing System and Experimental Study on Internal Friction Behavior of Damping Alloys Based on Low-Frequency Torsional Pendulum Method

  • 摘要: 内耗测量是研究材料阻尼性能与微观结构动态演变的重要手段,对工程减振设计与材料开发具有关键意义。本文针对现有内耗仪在高刚度材料测试中驱动力弱、振幅范围有限的问题,对MFP-1000型低频扭摆内耗仪进行了系统改进。通过设计加粗竖摆杆、优化磁路布局和增强线圈驱动力,显著提高了系统的最大输出振幅与扭矩能力。利用改进后的设备系统开展了Cu-Al-Mn和Cu-Al-Mn-Ce两种阻尼合金在不同应变振幅、温度和频率下的内耗行为测试。结果表明,改进后的系统可实现更大振幅的稳定测量,振幅超过103后,内耗出现先下降后升的非线性行为,两种合金均呈现25~350 ℃范围的内耗平台,并分别在443 ℃和452 ℃观测到逆马氏体相变内耗峰,内耗值均随频率的增加呈现先快速增长后缓慢升高的趋势。添加Ce元素后因晶粒与马氏体显著细化,界面密度提高,合金表现出更优的阻尼性能。本研究为宽振幅、高低温与变频条件下材料内耗测试提供了可靠的实验平台,对发展高性能阻尼合金和推动工程减振技术具有重要支持作用。

     

    Abstract: Internal friction measurement serves as an important means for studying the damping properties of materials and the dynamic evolution of their microstructure, which is of critical significance for engineering vibration reduction design and material development. To address the issues of weak driving force and limited amplitude range in existing internal friction testers when measuring high-stiffness materials, this study systematically improved the MFP-1000 low-frequency torsional pendulum internal friction apparatus. By designing a thickened vertical pendulum rod, optimizing the magnetic circuit layout, and enhancing the coil driving capability, the maximum output amplitude and torque capacity of the system were significantly improved. Using the upgraded setup, systematic tests were conducted on the internal friction behavior of two damping alloys, (Cu-Al-Mn and Cu-Al-Mn-Ce) under different strain amplitudes, temperatures, and frequencies. The results show that the modified system enables stable measurement at larger amplitudes. When the amplitude exceeds 103, the internal friction exhibits nonlinear behavior, first decreasing and then increasing. Both alloys display an internal friction plateau within the 25~350℃ range, and reverse martensitic transformation internal friction peaks are observed at 443℃ and 452℃, respectively. The internal friction values of both alloys increase with frequency, showing an initial rapid rise followed by a slower increase. The addition of Ce leads to significant refinement of grains and martensitic structures, increasing interface density, and thus the Cu-Al-Mn-Ce alloy demonstrates superior damping performance. This research provides a reliable experimental platform for internal friction testing of materials under wide amplitude, high/low temperature, and variable frequency conditions, offering important support for the development of high-performance damping alloys and the advancement of engineering vibration reduction technologies.

     

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