Demand controlled ventilation for multiple zone HVAC systems: CO2-based dynamic reset (RP 1547)

Xingbin Lin, Josephine Lau
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引用次数: 28

Abstract

Demand controlled ventilation (DCV) is used to reduce the system outdoor airflow (OA) when the occupancy of the system is under design occupancy. However, the new versions of ASHRAE Standard 62.1-2010 make DCV more difficult to implement for multiple zone HVAC systems. This article proposes a CO2-based and occupancy-sensor-based dynamic reset of OA rate for multiple zone HVAC systems (“CO2-based DR”). This control strategy uses bioeffluent load estimation with a steady-state assumption to calculate and dynamically reset the system OA rate minimum set-point by solving the multiple-zone system equations for current conditions. Building energy and airflow simulations were implemented to assess the energy performance and indoor air quality of this control strategy. The simulation results showed that the average annual system OA rate for CO2-based DR is 14.6% less than the OA rate for without DCV, in which case the system OA is always maintained as constant. The annual monetary saving as a percentage of the baseline case (without DCV) is between 0.3% and 11.0% for 16 climate zones in the United States.
多区域暖通空调系统的需求控制通风:基于二氧化碳的动态复位(RP 1547)
需求控制通风(DCV)是在系统占用率低于设计占用率时,用于减少系统室外气流(OA)的一种方法。然而,ASHRAE标准62.1-2010的新版本使DCV更难在多区域HVAC系统中实施。本文提出了一种基于二氧化碳和占用传感器的多区域暖通空调系统OA率动态重置(“基于二氧化碳的DR”)。该控制策略采用稳态假设下的生物出水负荷估计,通过求解当前条件下的多区系统方程,计算并动态重置系统OA率最小设定点。通过建筑能量和气流模拟来评估该控制策略的能源性能和室内空气质量。模拟结果表明,在无DCV的情况下,基于co2的DR系统年平均OA率比无DCV的OA率低14.6%,系统OA始终保持不变。在美国16个气候带的基准情况下(没有DCV),每年的货币节省百分比在0.3%到11.0%之间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
HVAC&R Research
HVAC&R Research 工程技术-工程:机械
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