ASHRAE 4757-2005 An Experimental Evaluaton of Duct-Mounted Relative Humidity Sensors Part 1 Test and Evaluation Procedures《管道安装相对湿度传感器的实验评价 第1部分 测试和评估程序》.pdf
《ASHRAE 4757-2005 An Experimental Evaluaton of Duct-Mounted Relative Humidity Sensors Part 1 Test and Evaluation Procedures《管道安装相对湿度传感器的实验评价 第1部分 测试和评估程序》.pdf》由会员分享,可在线阅读,更多相关《ASHRAE 4757-2005 An Experimental Evaluaton of Duct-Mounted Relative Humidity Sensors Part 1 Test and Evaluation Procedures《管道安装相对湿度传感器的实验评价 第1部分 测试和评估程序》.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、4757 An Experimental Evaluation of Part l9 Test and Eva1 u at i on Duct-Mounted Relative Humidity Sensors: Procedures Shailesh N. Joshi Student Member ASHRAE Michael B. Pate, PhD Member ASHRAE Ron M. Nelson, PhD, PE Member ASHRAE John M. House, PhD Member ASHRAE ABSTRACT Relative humidity sensors ar
2、e common components in building heating, ventilating, and air-conditioning (HVAC) systems, and their performance can significantly impact energy use in these systems. Therefore, a study was undertaken to test and evaluate the most commonly used relative humidity sensors in HVAC systems, namely, the
3、capacitive and resistive types. The procedures presented here provide a methodology to test and evaluate duct-mounted relative humidity sensors for accuracy, linearity, hysteresis, and repeatability. The test and evaluation procedurespresented in this paper are all inclusive in that they range from
4、procuring the humidity sensors to comparing the accuracy ofhumidity sensors. Specif ically, a procedure is presented to both procure humidity sensors from themanufacturers and to maintain quality control by controlling the storage, handling, and movement of the sensor while documenting time and date
5、 at each step. Furthel; it describes the apparatus and instrumentation, along with test conditions, used to pevform experiments on humidity sensors. Additionally, it outlines a detailed experimental procedure to evaluate the accuracy of humidity sensors. Finally, a discus- sion is presented on analy
6、zing and comparing the accuracy of humidity sensors by using test data. The results of the accuracy test and evaluation of the humidity sensors and the results of the linearity, repeatability, and hysteresis evaluation will be presented later: INTRODUCTION Relative humidity sensors are commonly used
7、 in building HVAC systems to monitor supply and return air conditions in air-handling units, to monitor conditions in occupied spaces, and to control humidification and dehumidification processes Curtis J. Klaassen, PE Member ASHRAE as well as economizer cycles. The performance of these sensors can
8、significantly impact comfort in occupied spaces and energy use in HVAC systems. In the latter case, relative humidity and temperature measurements of outdoor and return air conditions are used to compute the enthalpies of the two airstreams, with the result that the optimum amount of outdoor air ent
9、ering the building can be determined. If one or both of the computed enthalpies is erroneous, extreme energy penalties can result from the introduction of excess outdoor air. Because of their impact on comfort and energy use, a study was undertaken to test and evaluate duct-mounted relative humidity
10、 sensors used in typical building HVAC applications. Prior to conducting this performance study, an experimental procedure for testing and evaluating duct-mounted relative humidity sensors was developed and is presented here. This procedure provides a detailed description of the methodology to evalu
11、ate the performance of duct-mounted relative humidity sensors for accuracy, linearity, hysteresis, and repeatability. This paper presents an overview of the procedures avail- able in the open literature to evaluate relative humidity sensors used in HVAC environments. Further, the paper describes the
12、 commonly used relative humidity sensor types and methods for procuring humidity sensors from representative manufac- turers and for administering quality control, such as docu- menting storage and handling conditions. Furthermore, a description of the experimental test apparatus (i.e., humidity gen
13、erator) and instrumentation requirements (i.e., data acqui- sition system) is presented here. Additionally, steady-state criteria for recording data from the humidity generator and sensors are also discussed. Finally, a detailed description of data generation and an analysis for evaluating and compa
14、ring sensors are provided. Shailesh Joshi is a research assistant and Michael Pate and Ron Nelson are professors at Iowa State University, Ames, Iowa. John House is a research engineer and Curtis Klaassen is manager of the Energy Resource Station at the Iowa Energy Center, Ankeny, Iowa. 02005 ASHRAE
15、. 169 PREVIOUS STUDIES This section presents a review of previous research with an emphasize on describing methods and procedures used by past researchers to generate and measure relative humidities. These studies include procedures to test and evaluate relative humidity sensors in various HVAC envi
16、ronments, such as agriculture and shipboard environments; however, there has been no study to date that reports a detailed experimental procedure to evaluate accuracy, hysteresis, linearity, and repeatability of duct-mounted relative humidity sensors in building HVAC environments, where the emphasis
17、 is on human comfort and energy conservation. A briefreview of the past studies is presented below. Kitano et al. (1984) evaluated both linearity and hystere- sis of four different types of relative humidity sensors in a manufacturing plant environment. The authors use an environ- mental chamber to
18、test the sensors, but they do not describe the procedures that were used to either set or measure the actual Lower electrode ig,. 1 Schematic of u cupacitive-Sipe humidi (adapted from Yumatuke 2004). humidity in the environmental chamber. Erdebil and Leonard (1992) report a test procedure to evaluat
19、e both accuracy and hysteresis of two capacitive-type sensors and an aluminum-oxide sensor in an unspecified animal environment. In their study, the exact relative humidity values, which ranged from 33% to 85% RH at a temperature of 2OoC, were produced using an environmental chamber. This environmen
20、tal chamber had a continuous influx and exhaust of moist or dry air in order to generate an atmosphere that simulated an animal environment. In the calibrationlaccuracy tests, the sensors were stabilized and then the air inlet to the chamber was switched to use air flowing over a saturated salt solu
21、tion. In this way, air of a different humidity was drawn into and then mixed with the air in the chamber. The details on experimental procedures for setting and measuring the actual relative humidity are not provided. Slayzak and Ryan (2000) present a test procedure to eval- uate and compare dew poi
22、nt and relative humidity sensors, such as the capacitive type. In their study, the test procedure consisted of maintaining a constant humidity ratio of 17h0.3 gkg and then increasing the dry-bulb temperature to vary rela- tive humidity. The authors, however, did not describe the method used to measu
23、re actual relative humidity for the purposes of comparing dew point and relative humidity sensors. In summary, the past studies report on procedures to eval- uate the performance of relative humidity sensors in HVAC environments, such as in manufacturing, shipboard, and animal environments; however,
24、 none of the studies provides a complete description of the test procedures used to generate and measure exact relative humidity values. HVAC RELATIVE HUMIDITY SENSORS The most widely used humidity sensors in HVAC appli- cations are the capacitive and resistive types. These relative humidity sensors
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