首页> 外文会议>National industrial energy technology conference >ADVANCES IN ENERGY EFFICIENCY, CAPITAL COST, AND INSTALLATION SCHEDULES FOR LARGE CAPACITY COOLING APPLICATIONS USING A PACKAGED CHILLER PLANT APPROACH
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ADVANCES IN ENERGY EFFICIENCY, CAPITAL COST, AND INSTALLATION SCHEDULES FOR LARGE CAPACITY COOLING APPLICATIONS USING A PACKAGED CHILLER PLANT APPROACH

机译:使用封装的冷却器植物方法的大容量冷却应用的能效,资本成本和安装时间表的进步

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Cooling equipment, whether used to meet air-conditioning or process cooling loads, represents a large consumer of energy. Even more to the point, cooling loads and the associated cooling equipment energy consumption tend to be at maximum levels during periods of high ambient air temperatures. It is precisely at those times that the general demand for energy is at its peak and therefore the price or value of energy is also at its highest level. Cooling loads often drive the peak electric power demand of energy users and thus affect not only the level of consumption of high cost energy, but also affect the peak power demand. Together, the energy and demand costs equate to very high unit costs for operating cooling equipment. Accordingly, it is of interest to minimize cooling energy use and costs by maximizing the energy efficiency of cooling equipment installations. A relatively new approach has been developed and is being increasingly used to maximize chiller plant efficiency. The approach involves the use of a standardized, pre-engineered, shop-fabricated approach to entire chiller plant installations. Compared to the traditional, piece-meal approach to chiller plants that utilize individual component specification, procurement and installation, the "packaged" or modular chiller plant approach often delivers substantially improved energy efficiencies. Also, the packaged plant approach achieves further benefits for large cooling system owners and operators. These additional benefits include: 1) dramatic reductions in unit capital costs of installed chiller plant capacity on a dollar per ton basis, 2) marked improvements in total procurement and installation schedules, 3) significantly smaller space requirements, and 4) enhanced control over total system quality and performance. The capacities and performance characteristics of available chiller plant modules are described, including both electric and non-electric chiller technologies. Examples are presented to illustrate the typical sizes and locations of actual installations as well as the growth and extent of the use of this technology to-date. Case studies document the energy efficiency improvements, cost reductions in both operating and capital costs, and improvements in schedule and space utilization, of the packaged chiller plant approach relative to the traditional chiller plant approach.
机译:冷却设备,无论是用于满足空调还是工艺冷却载荷,代表了大量的能量消费者。甚至更为达到的点,冷却载荷和相关的冷却设备能量消耗往往在高环境空气温度期间的最大水平。正是在那些时代,能源的一般需求处于峰值,因此能源的价格或价值也在最高水平。冷却负载通常会驱动能源用户的峰值电力需求,从而影响高成本能量的消耗水平,而且影响峰值电力需求。在一起,能量和需求成本等同于操作冷却设备的非常高的单位成本。因此,通过最大限度地提高冷却设备装置的能量效率,可以最小化冷却能量使用和成本非常有趣。已经开发了一种相对较新的方法,越来越多地用于最大化冷却器厂效率。该方法涉及使用标准化,预先设计的商店制造的方法来整个冷却器工厂安装。与使用单个组件规格,采购和安装的传统折片植物的冷却器厂相比,采购和安装,“包装”或模块化冷却器植物方法往往提供显着提高的能量效率。此外,封装的植物方法可以实现大型冷却系统所有者和运营商的进一步益处。这些额外的效益包括:1)每吨货舱设备的单位资本成本的急剧减少,2)总采购和安装时间表的显着改善,3)空间需求明显较小,4)对总量的控制增强系统质量和性能。描述了可用冷却器厂模块的能力和性能特性,包括电动和非电气冷却技术。提出了示例以说明实际装置的典型尺寸和位置以及迄今为止使用该技术的使用的增长和程度。案例研究记录了经营和资本成本的能源效率提升,成本降低,以及随时间表和空间利用的改善,相对于传统的冷却器植物方法。

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