I-Corps: Visible optics-enabled diagnostics for site-specific gas leak detection
I-Corps: Visible optics-enabled diagnostics for site-specific gas leak detection
批准号:
2034698
负责人:
Ganesh Balasubramanian
金额:
$5.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-08-15 至 2023-12-31
中文摘要
I-Corps项目更广泛的影响/商业潜力是开发一种检测有害气体泄漏的技术,除了防止生命损失和日益严重的环境危害外,每年还可以节省数十亿美元的经济成本。减少不必要的气体化学物质排放到环境中,例如天然气供应链的泄漏,将有助于拯救生命,使其免受危险气体的影响,并减少碳排放。这项技术可能会防止发电厂、半导体制造以及石油和天然气行业中操作设备的工人出现健康问题,并限制导致生产周期潜在停机的气体泄漏。此外,还可以避免关联(跨国公司)数百万美元的法律责任。这个i-Corps项目专注于技术的翻译,这种技术能够通过现成的光学工具和用于图像处理的定制数学和软件框架来检测透明介质中的密度变化。当光穿过密度不同的透明介质时,可见光就会发生折射。气体介质密度的变化可能是由几个因素引起的,例如温度、组成和压力波动的变化。一旦在不同的时刻,即在泄漏位置的视场中连续记录的视频的不同帧上,流体颗粒从泄漏位置清楚地识别出来,就便于使用粒子图像测速仪从一帧到另一帧测量颗粒速度。用预定的距离测量对结果进行校准,得到物理维度上的流速。利用泄漏点的面积,可以快速估算出泄漏点的体积流量。与使用挥发性有机化合物传感器、红外线或热成像的当代方法不同,拟议的技术使用可见光。拟议的诊断技术可以实时检测气体泄漏,并识别需要精确检测和维护的热点,从而触发快速缓解程序。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
The broader impact/commercial potential of this I-Corps project is the development of a technology for detecting leakage of harmful gases, providing billions of dollars in economic savings per year in addition to preventing the loss of human lives and increasing environmental hazards. Reducing unwanted gaseous chemical releases to the environment, e.g., leaks in the natural gas supply chain, will contribute to saving lives from exposure to hazardous gases and lessen carbon emission. The technology may prevent health issues for workers operating equipment in power plants, semiconductor manufacturing, and oil and natural gas industries, as well as limit gas leakages that result in potential downtime in the production cycle. In addition, multimillion dollar legal liabilities of associated (multinational) companies may be averted.This I-Corps project is focused on the translation of technology that is able to detect density changes in transparent media with off-the-shelf optical tools and a customized mathematical and software framework for image-processing. Refraction of visible light occurs when light passes across transparent media with dissimilar densities. The changes in density for a gaseous medium can arise due to several factors, e.g., variations in temperature, composition, and pressure fluctuations. The movement of fluid particles from the site of leakage once distinctly identified at different time instances, i.e., at different frames of a video recorded continuously in the field of view of the leakage location, facilitates the measurement of particle speed from one frame to the other using particle image velocimetry. Calibrating the results with a predetermined distance measure, the velocity of flow in the physical dimension is obtained. Using the area of the leakage spot, the volume flow rate of the leak is estimated rapidly. Unlike contemporary methods that use volatile organic compound sensors, infrared light, or thermal imaging, the proposed technology employs visible optics. The proposed diagnostics technology may detect gas leaks in real time and identify hot spots that require precise detection and maintenance, triggering rapid mitigation procedures.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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