ASHRAE OR-10-028-2010 An Experimental Evaluation of HVAC-Grade Carbon-Dioxide Sensors-Part 2 Performance Test Results《HVAC-级二氧化碳传感器的实验评估 第2部分 性能测试结果》.pdf
《ASHRAE OR-10-028-2010 An Experimental Evaluation of HVAC-Grade Carbon-Dioxide Sensors-Part 2 Performance Test Results《HVAC-级二氧化碳传感器的实验评估 第2部分 性能测试结果》.pdf》由会员分享,可在线阅读,更多相关《ASHRAE OR-10-028-2010 An Experimental Evaluation of HVAC-Grade Carbon-Dioxide Sensors-Part 2 Performance Test Results《HVAC-级二氧化碳传感器的实验评估 第2部分 性能测试结果》.pdf(11页珍藏版)》请在麦多课文档分享上搜索。
1、260 2010 ASHRAEABSTRACTThis is the second paper in a four-part series reporting onthe test and evaluation of typical carbon-dioxide sensors usedin building HVAC applications. Fifteen models of NDIRHVAC-grade CO2sensors were tested and evaluated to deter-mine the accuracy, linearity, repeatability, a
2、nd hysteresis ofeach sensor. This paper describes the performance of thesensors and provides a comparison with the manufacturersspecifications. The sensors were tested at 40% relative humid-ity, 73oF (22.8oC) temperature, 14.70 psia (101.35 kPa) pres-sure, and at five different CO2concentrations (40
3、0, 750, 1100,1450, and 1800 ppm). The test results showed a wide variationin sensor performance among the various manufacturers andin some cases a wide variation among sensors of the samemodel.In all, 45 sensors were evaluated: three from each of the15 models. Among the 15 models tested, eight model
4、s have asingle-lamp, single-wavelength configuration, four modelshave a dual-lamp, single-wavelength configuration, and threemodels have a single-lamp, dual-wavelength configuration.INTRODUCTIONThis is part two of a four-part series of papers reporting onthe test and evaluation of typical CO2sensors
5、 used in buildingHVAC systems. In this study, fifteen models of NDIR (non-dispersive infrared) HVAC-grade CO2sensors were tested andevaluated. In all, 45 sensors (three from each model) wereevaluated to determine the sensor accuracy, linearity, repeat-ability, and hysteresis. The results are compare
6、d with themanufacturers specifications. The experimental procedureused to test and evaluate the sensors was described in Part 1(Shrestha and Maxwell 2009) of this paper. Among the 15models tested, eight models have a single-lamp, single-wavelength configuration, four models have a dual-lamp,single-w
7、avelength configuration, and three models have asingle-lamp, dual-wavelength configuration. All single-lamp,single-wavelength sensors and one single-lamp, dual-wavelength sensor incorporate an “automatic baseline adjust-ment” algorithm in the sensors electronics package.This paper presents an overvi
8、ew of the past studiesperformed by researchers to evaluate the performance of CO2sensors used in HVAC application. Further, a brief discussionon CO2sensor specifications and experimental test procedures(detailed in Part 1 of this paper) is provided. In addition, thepaper presents test and evaluation
9、 results, including a compar-ison of the performance of various CO2sensors.PREVIOUS STUDIESIn the past, limited studies have been done to investigatethe performance of HVAC-grade CO2sensors using a con-trolled environment. Fahlen et al. (1992) evaluated the perfor-mance of two CO2sensors, one photo-
10、acoustic type and oneinfrared spectroscopy type, in lab tests and long term fieldtests. The lab tests included performance and environmentaltests. The authors conclude that the deviation between actualconcentration and the sensors reading are normally wellwithin 50 ppm at a concentration level of 10
11、00 ppm. How-ever, at a concentration of 2000 ppm the test results showed adeviation of up to 300 ppm. The output of one sensorincreased dramatically during environmental testing. Thissensor failed to return to its normal value.Fisk et al. (2006) conducted a pilot study that evaluatedthe in-situ accu
12、racy of 44 NDIR CO2sensors located in ninecommercial buildings. The evaluation was performed eitherAn Experimental Evaluation of HVAC-Grade Carbon-Dioxide Sensors Part 2: Performance Test ResultsSom S. Shrestha, PhD Gregory M. Maxwell, PhDStudent Member ASHRAE Member ASHRAESom S. Shrestha is a R the
13、refore, thisoutput provides a reference signal used for sensor compensa-tion. Filter 2 (Figure 1C) passes 4.26 m IR radiation which isused for the CO2concentration measurement.The configuration shown in Figure 1D uses a silicone-based electronically-tunable Fabry-Perot interferometer infront of the
14、detector. This solid-state device provides an elec-tronic method of switching between the band pass filters, thusallowing for sensor compensation using a single filter-detectorpackage.CO2SENSOR SPECIFICATIONSCO2sensor manufacturers provide detailed specificationsfor their products. This information
15、is available from thecompanys website and/or literature packaged with the prod-uct. Table 1 summarizes some of the product information forthe models evaluated in this study. (Specific product names arenot used in this paper, rather the sensors are referred to as S1through S15.) The table indicates t
16、he sensor configuration, themanufacturer-specified accuracy, linearity, and repeatability.The accuracy statements for some sensor models include thepressure and temperature conditions for which the accuracystatement applies. For other sensor models, these conditionsare not explicitly stated. Three m
17、anufacturers state the nonlin-earity of their sensors, and five manufacturers state the repeat-ability of their sensors. None of the manufacturers specifyhumidity levels as part of the accuracy statement nor explicitlystate the hysteresis of their sensors.Sensors S1 through S8 are single-lamp, singl
18、e-wavelengthsensor, sensors S9 through S12 are dual-lamp, single-wave-length sensors, and sensors S13 through S15 are single-lamp,dual-wavelength sensors. Of the three single-lamp, dual-wave-length sensors, sensor model S14 incorporates an “automatic1.The term “beam” is used by sensor manufacturers;
19、 how-ever, this leads to confusion on the technology employed inthe sensor configuration. A single lamp can produce mul-tiple “beams”, so when the term “dual beam” is used, it isnot clear if one or two lamps are employed.Figure 1 NDIR sensor configurations. 2010, American Society of Heating, Refrige
20、rating and Air-Conditioning Engineers, Inc. (www.ashrae.org). Published in ASHRAE Transactions 2010, Vol. 116, Part 1. For personal use only. Additional reproduction, distribution, or transmission in either print or digital form is not permitted without ASHRAEs prior written permission. 262 ASHRAE T
21、ransactionsbaseline adjustment” algorithm. Many sensor models provideoptions for the output signal produced. In this study, all sensorswere tested using an output signal of 0 to 10 VDC. Sensormodel S11 only provides an output signal of 4 to 20 mA. Forthis sensor, a precision resistor was used to con
22、vert the signalinto VDC. Measurement range of all sensors is 0 to 2000 ppm.EXPERIMENTAL TEST PROCEDUREThe CO2sensors were tested using a test chamber specif-ically designed and fabricated for the performance evaluation.Technical details of the test chamber and instrumentation aredescribed in Part 1
23、(Shrestha and Maxwell 2009) of this paper.All tests were conducted while maintaining the chamber rel-ative humidity, temperature, and pressure at 40%, 73F(22.8C) and 14.70 psia (101.35 kPa), respectively. Estab-lished testing procedures, including requirements for steady-state conditions, are descri
24、bed in Part 1 (Shrestha and Maxwell2009). The accuracy and linearity of the sensors were evalu-ated using the first forward and reverse measurements at CO2concentrations of 400, 750, 1100, 1450, and 1800 ppm (cor-responding to data points 1 to 9 in Figure 2). Repeatability wasevaluated using the two
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