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Reverse Relief Airflow Prevention and Building Pressurization with a Decoupled Relief Air Damper in Air-Handling Units

机译:空气处理装置中带有解耦式泄压风门的逆泄压气流预防和建筑物增压

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摘要

Outdoor airflow rate, building static pressure, supply air duct static pressure, and relief air plenum static pressure, as controlled variables, are maintained by modulating the speed of the supply and return fans and the position of the outdoor, recirculating, and relief air dampers in an air-handling unit (AHU). The three dampers are often interlinked completely or partially to match independent control inputs with the controlled variables. The traditional damper control has all three dampers interlinked with no control over the relief air plenum static pressure. Reverse relief airflow might occur as the outdoor air damper approaches the closed position. To prevent reverse airflow, one solution is to decouple the relief air damper and maintain positive static pressure at the relief air plenum. Two control methods are available based on the control loop design. The first control method uses the return fan speed to control the relief air plenum static pressure and the relief air damper to control the building static pressure, and the second control method switches two control inputs. The purpose of this paper is to evaluate the controllability of the reverse relief airflow and building static pressure of these two control methods. The system performance is investigated through steady-state simulations on an AHU at different outdoor airflows using a nonlinear network solution. The simulation results show that both the control methods can well prevent reverse relief airflow. However, thefirstcontrolmethod with a constant pressure setpoint may result in negative building static pressure at lower outdoor airflow ratio and either excessively positive buildingstaticpressureorexcessivereturn fan power at higher outdoor airflow ratio. The second control method shows better control over the building static pressure control. A reset pressure scheme should be associated with the first control method when the relief damper is fully open.
机译:通过调节送风和回风的速度以及室外,循环风和泄压风门的位置,可以保持室外空气流量,建筑物静压,送风管道静压和泄气风室静压(作为控制变量)。在空气处理单元(AHU)中。这三个风门通常完全或部分互连,以使独立控制输入与受控变量匹配。传统的风门控制装置将所有三个风门互连,却无法控制安全气室静压。当室外空气挡板接近关闭位置时,可能会发生逆向释放气流。为了防止反向气流,一种解决方案是使安全风门断开,并在安全气室处保持正静压力。根据控制回路设计,有两种控制方法可用。第一种控制方法使用回风风扇速度来控制安全气室静压,而安全气门则用于控制建筑物静压,第二种控制方法则切换两个控制输入。本文的目的是评估这两种控制方法的反向释放气流的可控制性和建筑物静压。使用非线性网络解决方案,通过在不同室外气流下的AHU进行稳态仿真,研究了系统性能。仿真结果表明,两种控制方法都能很好地防止逆向释放气流。但是,具有恒定压力设定点的第一种控制方法可能会在较低的室外空气流量比下导致建筑物静压力为负,而在较高的室外空气流量比下会导致建筑物静压力过大或风机功率过大。第二种控制方法显示出对建筑物静压控制的更好控制。当溢流阀完全打开时,复位压力方案应与第一种控制方法相关联。

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  • 来源
    《ASHRAE Transactions》 |2016年第1期|354-365|共12页
  • 作者

    Gang Wang; Kaustubh Phalak;

  • 作者单位

    Department of Civil, Architectural and Environmental Engineering at University of Miami, Coral Gables, FL;

    Department of Civil, Architectural and Environmental Engineering at University of Miami, Coral Gables, FL;

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  • 正文语种 eng
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