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Stability and accuracy of variable air volume box control at low flows. Part 2: Controller test, system test, and field test

机译:低流量时可变风量箱控制的稳定性和准确性。第2部分:控制器测试,系统测试和现场测试

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This article with its companion paper (Liu et al. 2013), summarizes the findings of ASHRAE Research Project 1353 (Stability and Accuracy of VAV Box Control at Low Flows). This project aims to identify the major factors that cause the airflow measurement in a variable air volume system to be inaccurate and unstable, especially at low airflow conditions. Both a laboratory test (including variable air volume sensor test, controller test, and system test) and field test were conducted; the companion work discussed the variable air volume sensor test. In this article, findings from the controller test, system test, and field test are summarized. The controller tests involved testing of four controllers from four different manufacturers. Testing was performed for accuracy, stability, resolution, and ambient temperature effect. For the system test, the variable air volume box and the controller were operated together and tested as terminal unit systems. Two terminal units were tested, and it was found that the performance of a variable air volume terminal unit is highly dependent upon on controller performance. Zeroing and balancing at a low airflow rate 560 fpm (2.84 m/s) or 200 cfm (0.09 m~3/s) for an 8-in. (0.2-m) box were effective for achieving high system accuracy at low airflow ranges. For the field tests, five variable air volume terminal units were tested in real commercial buildings. It was found that system balancing was not always an effective way to reduce the variable air volume airflow sensor error in the field due to the uncertainty of reference airflow measurement methods commonly adopted in the field testing and balancing process.
机译:本文及其配套论文(Liu等人,2013年)总结了ASHRAE研究项目1353(低流量下的VAV箱式控制的稳定性和准确性)的发现。该项目旨在确定导致可变风量系统中的气流测量不准确和不稳定的主要因素,尤其是在低气流条件下。进行了实验室测试(包括可变风量传感器测试,控制器测试和系统测试)和现场测试。伴随工作讨论了可变风量传感器测试。本文总结了控制器测试,系统测试和现场测试的结果。控制器测试涉及对来自四个不同制造商的四个控制器的测试。进行了准确性,稳定性,分辨率和环境温度影响的测试。对于系统测试,可变风量箱和控制器一起操作并作为终端设备系统进行测试。测试了两个终端单元,发现可变风量终端单元的性能高度依赖于控制器的性能。在8英寸风速下,以560 fpm(2.84 m / s)或200 cfm(0.09 m〜3 / s)的低气流速度归零和平衡。 (0.2米)的盒子对于在低气流范围内实现高系统精度非常有效。对于现场测试,在实际的商业建筑中测试了五个可变风量终端设备。结果发现,由于在现场测试和平衡过程中通常采用的参考气流测量方法的不确定性,系统平衡并非总是一种有效的方法来减小现场的可变风量气流传感器误差。

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