Research on thermal protection of piezoelectric pressure sensor for shock wave pressure measurement in explosion field

IF 1.6 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION Sensor Review Pub Date : 2023-04-26 DOI:10.1108/sr-11-2022-0407
Yucheng Shi, D. Kong, Xuejiao Ma
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引用次数: 1

Abstract

Purpose The purpose of this study is to clarify the mechanism of ambient and transient temperature effects on piezoelectric pressure sensors, and to propose corresponding compensation measures. The temperature of the explosion field has a significant influence on the piezoelectric sensor used to measure the shock wave pressure. For accurate shock wave pressure measurement, based on the actual piezoelectric pressure sensors used in the explosion field, the effects of ambient and transient temperatures on the sensor should be studied. Design/methodology/approach The compensation method of the ambient temperature is discussed according to the sensor size and material. The theoretical analysis method of the transient temperature is proposed. For the transient temperature conduction problem of the sensor, the finite element simulation method of structure-temperature coupling is used to solve the temperature distribution of the sensor and the change in the contact force on the quartz crystal surface under the step and triangle temperatures. The simulation results are highly consistent with the theory. Findings Based on the analysis results, a transient temperature control method is proposed, in which 0.5 mm thick lubricating silicone grease is applied to the sensor diaphragm, and 0.2 mm thick fiberglass cloth is wrapped around the sensor side. Simulation experiments are carried out to verify the feasibility of the control method, and the results show that the control method effectively suppresses the output of the thermal parasitic. Originality/value The above thermal protection methods can effectively improve the measurement accuracy of shock wave pressure and provide technical support for the evaluation of the power of explosion damage.
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爆炸现场冲击波压力测量用压电式压力传感器的热保护研究
目的研究环境温度和瞬态温度对压电压力传感器的影响机理,并提出相应的补偿措施。爆炸场温度对用于测量冲击波压力的压电传感器有重要影响。为了准确测量冲击波压力,应根据爆炸现场实际使用的压电压力传感器,研究环境温度和瞬态温度对传感器的影响。根据传感器的尺寸和材料,讨论了环境温度的补偿方法。提出了瞬态温度的理论分析方法。针对传感器的瞬态温度传导问题,采用结构-温度耦合的有限元模拟方法,求解了传感器的温度分布以及在阶梯温度和三角温度下石英晶体表面接触力的变化。仿真结果与理论结果高度吻合。在分析结果的基础上,提出了一种瞬态温度控制方法,即在传感器膜片上涂上0.5 mm厚的润滑硅脂,在传感器侧面包裹0.2 mm厚的玻璃纤维布。仿真实验验证了该控制方法的可行性,结果表明该控制方法有效地抑制了热寄生的输出。以上热防护方法可有效提高冲击波压力的测量精度,为爆炸损伤威力的评估提供技术支持。
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来源期刊
Sensor Review
Sensor Review 工程技术-仪器仪表
CiteScore
3.40
自引率
6.20%
发文量
50
审稿时长
3.7 months
期刊介绍: Sensor Review publishes peer reviewed state-of-the-art articles and specially commissioned technology reviews. Each issue of this multidisciplinary journal includes high quality original content covering all aspects of sensors and their applications, and reflecting the most interesting and strategically important research and development activities from around the world. Because of this, readers can stay at the very forefront of high technology sensor developments. Emphasis is placed on detailed independent regular and review articles identifying the full range of sensors currently available for specific applications, as well as highlighting those areas of technology showing great potential for the future. The journal encourages authors to consider the practical and social implications of their articles. All articles undergo a rigorous double-blind peer review process which involves an initial assessment of suitability of an article for the journal followed by sending it to, at least two reviewers in the field if deemed suitable. Sensor Review’s coverage includes, but is not restricted to: Mechanical sensors – position, displacement, proximity, velocity, acceleration, vibration, force, torque, pressure, and flow sensors Electric and magnetic sensors – resistance, inductive, capacitive, piezoelectric, eddy-current, electromagnetic, photoelectric, and thermoelectric sensors Temperature sensors, infrared sensors, humidity sensors Optical, electro-optical and fibre-optic sensors and systems, photonic sensors Biosensors, wearable and implantable sensors and systems, immunosensors Gas and chemical sensors and systems, polymer sensors Acoustic and ultrasonic sensors Haptic sensors and devices Smart and intelligent sensors and systems Nanosensors, NEMS, MEMS, and BioMEMS Quantum sensors Sensor systems: sensor data fusion, signals, processing and interfacing, signal conditioning.
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