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SBIR Phase I: An Indoor Air Quality Monitor and HVAC Controler Based on Infrared Sensing Technology

SBIR Phase I: An Indoor Air Quality Monitor and HVAC Controler Based on Infrared Sensing Technology
SBIR 第一阶段:基于红外传感技术的室内空气质量监测仪和 HVAC 控制器
批准号:
9861457
负责人:
Robert Ross
金额:
$9.99万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-01-01 至 1999-06-30

项目摘要

项目成果

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中文摘要
翻译
9861457这个小型企业创新研究第一阶段项目的重点是研究和开发一种基于新型中红外光学传感器的具有成本效益、高效、可商业化的室内空气质量监测仪和暖通空调控制器的原型。该检测系统将能够测量二氧化碳水平、温度、时间和房间占有率。将使用已知浓度的二氧化碳预混气体设计、制造和测试固态光学传感器和监视器。初步测试表明,二氧化碳传感器具有良好的准确性和快速的响应时间,使其成为需求控制通风(DCV)系统应用的理想候选者。没有机电部件的固态光源降低了维护重量、尺寸和功率要求,并提供了与当前可用的传感器相比成本较低的潜力。使用匹配的光电探测器的双光束设计减少了漂移和校准误差。基于二氧化碳的按需控制通风在保持室内空气质量的同时,为建筑节能提供了巨大的潜力。目前可用于二氧化碳的光学传感器体积庞大,需要频繁的校准和维护。第二阶段将利用拟议的监测仪和湿度传感器开发按需控制通风系统的架构。本提案所述的室内空气质量监测仪适用于空气质量及其对健康的影响令人担忧的任何室内环境。它将在大型可变占用空间以及具有可变风量通风系统和直接数字控制的建筑物中特别有用。商业应用可能涉及放置在战略位置的多个单元,每个单元都通过公共数据网络连接。这种配置将使开发的室内污染控制平台成为更大的需求控制通风系统的关键传感组件(S),该系统优化能源利用,同时促进建筑物居住者的舒适性、生产力和健康。
英文摘要
9861457 This Small Business Innovation Research Phase I project is focused on research and development of a prototype of cost effective, efficient, commercializable indoor air quality monitor and HVAC controller based on a new middle infrared optical sensor. This detection system will be capable of measuring C02 level, temperature, time and room occupancy. A solidstate optical sensor and a monitor will be designed, built, and tested, using premixed gases of known concentration of C02. Preliminary tests show that the C02 sensor demonstrates promising accuracy and a fast response time, making it a good candidate for demand controlled ventilation (DCV) system applications. The solid state light source with no electromechanical parts reduces maintenance weight, size, and power requirements, and provides the potential for low cost relative to currently available sensors. A dual beam design using matched photodetectors reduces drift and calibration errors. C02 based Demand Controlled Ventilation offers a large potential to conserve energy in buildings while maintaining indoor air quality. Currently available optical sensors for C02 are bulky, and require frequent calibration and maintenance. The architecture of a demand controlled ventilation system, using the proposed monitor and incorporating a humidity sensor will be developed in phase II. The indoor air quality monitor described in this proposal has application in any indoor environment where air quality and its effect on health is a concern. It will be particularly useful in large variable occupancy spaces and in buildings incorporating variable air volume ventilation systems and direct digital controls. Commercial applications could involve multiple units placed at strategic locations each connected through a common data network. This configuration would allow the developed indoor pollution control platform to become the key sensing component(s) of a larger demand controlled ventilation system which optimizes energy use while promoting the comfort, productivity and health of the building occupants.
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