Tai Yongpeng, Li Pu, Zheng Yan, Tian Jie
College of Automobile and Traffic Engineering, Nanjing Forestry University, Nanjing 210037, China.
School of Mechanical Engineering, Southeast University, Nanjing 211189, China.
Entropy (Basel). 2019 Jun 27;21(7):631. doi: 10.3390/e21070631.
Thermoelastic damping is a critical issue for designing very high quality factor microresonators. This paper derives the entropy generation, associated with the irreversibility in heat conduction, that is used for ring resonators in in-plane vibration and presents an analytical model of thermoelastic damping according to heat increments calculated by entropy theory. We consider the heat flow only in radial thickness of the ring and obtain a complex temperature field that is out of phase with the mechanical stress. The thermoelastic dissipation is calculated in the perspective of heat increments that appear due to entropy generation. The analytical model is validated by comparing with an LR (Lifshitz and Roukes) model, finite-element method and measurement. The accuracy of the present model is found to be very high for different ambient temperatures and structures. The effects of structure dimensions and vibration frequencies on entropy generation and thermoelastic damping is investigated for ring resonators under in-plane vibration.
热弹性阻尼是设计高品质因数微谐振器时的一个关键问题。本文推导了与热传导不可逆性相关的熵产生,该熵产生用于面内振动的环形谐振器,并根据熵理论计算的热增量给出了热弹性阻尼的解析模型。我们仅考虑环的径向厚度内的热流,并得到一个与机械应力相位不同的复杂温度场。从由于熵产生而出现的热增量的角度计算热弹性耗散。通过与LR(列夫席兹和鲁克斯)模型、有限元方法及测量结果进行比较,验证了该解析模型。发现本模型在不同环境温度和结构下具有很高的精度。研究了面内振动下环形谐振器的结构尺寸和振动频率对熵产生和热弹性阻尼的影响。