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Performance evaluation and design guide for a coupled displacement-ventilation and passive-chilled-beam system

机译:位移通风和被动冷梁系统耦合的性能评估和设计指南

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Displacement ventilation (DV) can provide good air quality to indoor spaces while saving energy. Research has shown that, since the supply air temperature in DV cannot be very low, its capability to remove a high cooling load is limited. Previous studies found that passive chilled beams (PCBs) could be coupled with DV to enhance the cooling capability of the latter and reduce the vertical temperature gradient. However, PCBs also recirculate airborne contaminants downward, reducing the air quality in the occupied zone. Therefore, it is essential to design a DV-PCB system for optimal thermal comfort and indoor air quality. This study established a database of 70 cases that include four typical types of indoor spaces with DV-PCB systems and developed mathematical models for predicting the thermal and ventilation performance of a DV-PCB system based on various design parameters. With the models, this investigation then proposed a step-by-step procedure for designing a DV-PCB system to create a thermally comfortable and healthy indoor environment without causing condensation on the chilled beams. Moreover, a user-friendly design interface was developed that can be used by engineers to make design decisions conveniently. (C) 2019 Elsevier B.V. All rights reserved.
机译:置换通风(DV)可以为室内空间提供良好的空气质量,同时节省能源。研究表明,由于DV中的送风温度不能太低,因此其消除高冷却负荷的能力受到限制。先前的研究发现,被动冷梁(PCB)可以与DV结合使用,以增强后者的冷却能力并降低垂直温度梯度。但是,多氯联苯还会使空气中的污染物向下再循环,从而降低了所占区域的空气质量。因此,设计DV-PCB系统以实现最佳的热舒适性和室内空气质量至关重要。这项研究建立了一个包含70个案例的数据库,其中包括使用DV-PCB系统的四种典型类型的室内空间,并基于各种设计参数开发了数学模型来预测DV-PCB系统的散热和通风性能。利用这些模型,这项研究随后提出了一个逐步过程,用于设计DV-PCB系统,以创建一个热舒适和健康的室内环境,而不会引起冷梁上的凝结。此外,开发了用户友好的设计界面,工程师可以使用它方便地进行设计决策。 (C)2019 Elsevier B.V.保留所有权利。

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