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FUZZY LOGIC CONTROLLER DESIGN FOR STAGED HEATING AND VENTILATING SYSTEMS

机译:分段加热和通风系统的模糊逻辑控制器设计

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Conventional stage controllers (CSC) for interior environment control of agricultural facilities are prevalent and well suited for slowly varying loads, smaller facilities with few stages of control, and in cases where “discrete proportional control” is deemed adequate. Ad hoc implementation schemes for using the same CSC over a range in size of building heating and ventilating systems, from one heating and cooling stage to many, are practiced in the industry. A fuzzy logic controller (FLC) was developed to satisfy a broad spectrum of installation sizes without any modification. Principles for designing an environment controller that can mimic CSC behavior over a broad range of system size were applied. By adjusting a single additional input this controller provides users with a trade-off between energy use and control precision. Simulations were conducted using the same FLC in a greenhouse and a broiler house; these two examples were selected for their considerable difference in magnitude of energy transfer and loads. Disturbances investigated included: variations in outside temperature, internal heat load (or solar load), and step changes in set point temperature. FLC system responses are compared with a representative CSC for stability, overshoot and mean square error from set point temperature. The FLC was able to keep the root-mean-square errors to 1.0 to 4.0°C, depending on different energy use settings. The FLC provided useful improvements in performance over a CSC, and is readily implemented in modern electronic controllers with floating point arithmetic capability.
机译:用于农业设施内部环境控制的常规级控制器(CSC)非常流行,非常适合缓慢变化的负载,控制级少的小型设施以及在“离散比例控制”被认为足够的情况下使用。在业界中,在从一个加热和冷却阶段到多个加热和通风系统的各种规模的建筑物中使用相同的CSC的临时实施方案已得到实践。开发了一种模糊逻辑控制器(FLC)来满足广泛的安装尺寸要求,而无需进行任何修改。应用了设计环境控制器的原理,该控制器可以在广泛的系统大小范围内模拟CSC行为。通过调节单个附加输入,该控制器为用户提供了能耗和控制精度之间的折衷方案。在温室和肉鸡舍中使用相同的FLC进行模拟;选择这两个示例是因为它们在能量传递和负载的大小方面存在相当大的差异。研究的干扰包括:外部温度,内部热负荷(或太阳能负荷)的变化以及设定点温度的阶跃变化。将FLC系统响应与代表CSC进行比较,以了解稳定性,超调和设定点温度的均方误差。 FLC能够根据不同的能源使用设置将均方根误差保持在1.0到4.0°C。 FLC提供了优于CSC的性能改进,并且易于在具有浮点运算能力的现代电子控制器中实现。

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