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Precision in harsh environments

机译:在恶劣环境下的精度

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摘要

Microsystems are increasingly being applied in harsh and/or inaccessible environments, but many markets expect the same level of functionality for long periods of time. Harsh environments cover areas that can be subjected to high temperature, (bio)-chemical and mechanical disturbances, electromagnetic noise, radiation, or high vacuum. In the field of actuators, the devices must maintain stringent accuracy specifications for displacement, force, and response times, among others. These new requirements present additional challenges in the compensation for or elimination of cross-sensitivities. Many state-of-the-art precision devices lose their precision and reliability when exposed to harsh environments. It is also important that advanced sensor and actuator systems maintain maximum autonomy such that the devices can operate independently with low maintenance. The next-generation microsystems will be deployed in remote and/or inaccessible and harsh environments that present many challenges to sensor design, materials, device functionality, and packaging. All of these aspects of integrated sensors and actuator microsystems require a multidisciplinary approach to overcome these challenges. The main areas of importance are in the fields of materials science, microano-fabrication technology, device design, circuitry and systems, (first-level) packaging, and measurement strategy. This study examines the challenges presented by harsh environments and investigates the required approaches. Examples of successful devices are also given.
机译:微系统正越来越多地应用于恶劣和/或无法访问的环境中,但是许多市场期望长期使用相同级别的功能。恶劣的环境覆盖可能遭受高温,(生物)化学和机械干扰,电磁噪声,辐射或高真空的区域。在执行器领域,设备必须保持严格的位移,力和响应时间精度规范。这些新要求在补偿或消除交叉敏感性方面提出了其他挑战。许多最先进的精密设备在恶劣的环境下都会失去其精度和可靠性。同样重要的是,先进的传感器和执行器系统应保持最大的自主权,以使设备能够以较低的维护成本独立运行。下一代微系统将部署在远程和/或无法访问的恶劣环境中,这对传感器设计,材料,设备功能和封装提出了许多挑战。集成传感器和致动器微系统的所有这些方面都需要多学科的方法来克服这些挑战。重要的主要领域是材料科学,微/纳米制造技术,设备设计,电路和系统,(第一级)封装以及测量策略领域。这项研究探讨了恶劣环境带来的挑战,并研究了所需的方法。还给出了成功设备的示例。

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