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The Design and Simulation of Natural Personalised Ventilation (NPV) System for Multi-Bed Hospital Wards

机译:多层病房自然个性化通风系统的设计与仿真

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Adequate ventilation is necessary for thermal comfort and reducing risks from infectious bio-aerosols in hospital wards, but achieving this with mechanical ventilation has carbon and energy implications. Natural ventilation is often limited to window-based designs whose dilution/mixing effectiveness are subject to constraints of wind speed, cross ventilation, and in the case of hospital wards, proximity of patients to external walls. A buoyancy-driven natural ventilation system capable of achieving dilution/mixing was shown to be feasible in a preceding study of novel system called natural personalised ventilation (NPV). This system combined both architecture and airflow engineering principles of space design and buoyancy and was tested and validated (salt-bath experiment) for a single bed ward. This research extends the previous work and is proof-of-concept on the feasibility of NPV system for multi-bed wards. Two different four-bed ward types were investigated of using computational fluid dynamics (CFD) simulations under wind-neutral conditions. Results predict that NPV system could deliver fresh air to multiple patients, including those located 10 m away from external wall, with absolute flow rates of between 32 L·s−1 and 54 L·s−1 for each patient/bed. Compared to same wards simulated using window design, ingress of airborne contaminants into patients’ breathing zone and summer overheating potential were minimised, while overall ward dilution was maximised. Findings suggest the NPV has potentials for enabling architects and building service engineers to decouple airflow delivery from the visualisation and illumination responsibilities placed upon windows.
机译:充分的通风对于热舒适和降低医院病房感染性生物气溶胶的风险是必要的,但是通过机械通风来实现这一目标会产生碳和能量的影响。自然通风通常仅限于基于窗口的设计,其稀释/混合效果受风速,交叉通风的限制,并且在医院病房中,患者应靠近外墙。在先前对称为自然个性化通风(NPV)的新型系统的研究中,浮力驱动的能够实现稀释/混合的自然通风系统是可行的。该系统结合了空间设计和浮力的建筑和气流工程原理,并经过了单床病房的测试和验证(盐浴实验)。这项研究扩展了先前的工作,并为多床病房NPV系统的可行性提供了概念验证。研究了两种不同的四床病房类型,它们在风中性条件下使用计算流体动力学(CFD)模拟进行了研究。结果预测NPV系统可以向多名患者提供新鲜空气,包括距离外壁10 m的患者,绝对流量在32 L·s -1 和54 L·s 之间每位患者/床-1 。与使用窗口设计模拟的同一个病房相比,将空气传播的污染物进入患者呼吸区和夏季过热的可能性降到了最低,同时病房的整体稀释率也达到了最大化。研究结果表明,NPV具有使建筑师和建筑服务工程师能够将气流传递与窗户上的可视化和照明职责脱钩的潜力。

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