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Extraction and digitization of a process signal for self-powering a wireless pressure sensor.

机译:为无线压力传感器自供电的过程信号的提取和数字化。

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摘要

The use of sensors for manufacturing process monitoring has been limited by the size, installation, and maintenance requirements of traditional cable-based sensors. To overcome these limitations, a wireless pressure sensor for the injection molding process is analyzed, designed, developed, and validated. The developed sensor extracts energy from the pressure dynamics of the polymer melt during the injection molding process, and then conditions and modulates the stored energy for powering an acoustic transmitter for sending a signal through an injection mold.; Energy extraction was accomplished through the development of a stack of polarized piezoelectric rings. Analytical and numerical models were developed to quantify the relationship between the polymer melt pressure and the potential extracted energy. The device was constructed and tested in situ. Temperature and pressure were monitored during the molding process and the performance of the piezoelectric element was evaluated against a conventional strain-gauged based cavity pressure sensor. In addition to corroboration of the developed models, the working temperatures in the prototype sensor were measured, which validated the adequacy of the underlying assumptions and package design.; Energy conditioning and modulation was accomplished through the development of a threshold modulator. The charge, proportional to pressure, was stored via a capacitive element. Standard NPN and PNP transistors were used to passively control the flow of charge between the piezoelectric stack and an ultrasonic transmitter. Numerical simulations and bench top prototypes were developed and compared. The results of this comparison indicate the appropriateness of the assumptions and the limiting conditions under which the modulator will effectively measure pressure. Finally the prototype device was optimized with respect to sensitivity, gain, and operating range for use in real time process monitoring and control. The use of multiple transistor pairs was investigated to increase the output voltage to the transmission device. A bi-directional threshold modulator was also developed and validated which was capable of measuring positive and negative pressure changes in the polymer melt of an injection molding process. This research was applied, along with parallel research concerning the design of the ultrasonic telemetry system, in a bench-top experiment that included the application of a force profile, un-powered digitization, ultrasonic transmission through 10 cm of steel, reception, and finally reconstruction of that profile.
机译:传统的基于电缆的传感器的尺寸,安装和维护要求限制了传感器在制造过程监控中的使用。为了克服这些限制,对注塑过程的无线压力传感器进行了分析,设计,开发和验证。开发的传感器在注塑过程中从聚合物熔体的压力动态中提取能量,然后调节并调节存储的能量,以驱动声发射器通过注塑模具发送信号。通过开发极化压电环的堆栈来完成能量提取。开发了分析和数值模型以量化聚合物熔体压力和潜在的提取能量之间的关系。该设备是在现场构造和测试的。在模制过程中监测温度和压力,并根据传统的基于应变片的腔体压力传感器评估压电元件的性能。除了证实已开发的模型外,还测量了原型传感器中的工作温度,这证实了基本假设和包装设计的适当性。通过开发阈值调制器来完成能量调节和调制。与压力成正比的电荷通过电容元件存储。标准的NPN和PNP晶体管用于被动控制压电叠层和超声发射器之间的电荷流。数值模拟和台式原型被开发和比较。该比较的结果表明了假设的适当性和调制器将有效测量压力的极限条件。最后,针对灵敏度,增益和工作范围对原型设备进行了优化,以用于实时过程监控。研究了使用多个晶体管对来增加传输设备的输出电压。还开发并验证了双向阈值调制器,该调制器能够测量注塑过程中聚合物熔体中的正负压力变化。这项研究与有关超声遥测系统设计的并行研究一起在台式实验中得到了应用,其中包括力分布图的应用,无动力数字化,通过10厘米钢的超声传输,接收以及最终该配置文件的重建。

著录项

  • 作者

    Theurer, Charles B.;

  • 作者单位

    University of Massachusetts Amherst.;

  • 授予单位 University of Massachusetts Amherst.;
  • 学科 Engineering Mechanical.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 191 p.
  • 总页数 191
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;无线电电子学、电信技术;
  • 关键词

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