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首页> 外文期刊>Journal of Agricultural Engineering >HEAT STORAGE SYSTEM WITH PHASE CHANGE MATERIALS IN COGENERATION UNITS: STUDY OF PRELIMINARY MODEL
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HEAT STORAGE SYSTEM WITH PHASE CHANGE MATERIALS IN COGENERATION UNITS: STUDY OF PRELIMINARY MODEL

机译:热电联产相变材料储热系统的初步模型研究

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The continuous increase in the mechanization of farm activities, the rise in fuel prices and the environmental aspects concerning gas emissions are the main driving forces behind efforts toward more effective use of renewable energy sources and cogeneration systems even in agricultural and cattle farms. Nevertheless these systems are still not very suitable for this purpose because of their little flexibility in following the changing energy demand as opposed to the extremely various farm load curves, both in daytime and during the year. In heat recovery systems, the available thermal energy supply is always linked to power production, thus it does not usually coincide in time with the heat demand. Hence some form of thermal energy storage (TES) is necessary in order to reach the most effective utilization of the energy source. This study deals with the modelling of a packed bed latent heat TES unit, integrating a cogeneration system made up of a reciprocating engine. The TES unit contains phase change materials (PCMs) filled in spherical capsules, which are packed in an insulated cylindrical storage tank. Water is used as heat transfer fluid (HTF) to transfer heat from the tank to the final uses, and exhausts from the engine are used as thermal source. PCMs are considered especially for their large heat storage capacity and their isothermal behaviour during the phase change processes. Despite their high energy storage density, most of them have an unacceptably low thermal conductivity, hence PCMs encapsulation technique is adopted in order to improve heat transfer. The special modular configuration of heat exchange tubes and the possibility of changing water flow through them allow to obtain the right amount of thermal energy from the tank, according to the hourly demand of the day. The model permits to choose the electrical load of the engine, the dimensions of the tank and the spheres, thickness and diameter of heat exchanger and the nature of PCMs. According to the energy loads of the farm, a daily thermal energy balance is obtained and charging and discharging cycles during the day are showed as solid/ liquid percentages of the PCM. As an example, load curves of a milk cattle farm (100 heads of cattle), were considered in two different conditions, such as in summer and winter seasons, and model functioning was detected in both of the cases. Different PCMs were investigated for this application and TES unit dimensions were consequently changed in order to achieve optimal operating conditions. Results are presented and technical and economical issues are discussed.
机译:农场活动机械化的不断提高,燃料价格的上涨以及与气体排放有关的环境问题,乃是推动有效利用可再生能源和热电联产系统(甚至在农业和养牛场)的主要动力。然而,这些系统仍然不是很适合于此目的,因为在白天和一年中,它们与不断变化的农场负荷曲线相比,在适应不断变化的能源需求方面几乎没有灵活性。在热回收系统中,可用的热能供应总是与发电联系在一起,因此通常与热量需求在时间上不一致。因此,为了达到能源的最有效利用,某种形式的热能存储(TES)是必需的。这项研究涉及填充床潜热TES单元的建模,该单元集成了由往复式发动机组成的热电联产系统。 TES单元包含装在球形胶囊中的相变材料(PCM),这些材料被包装在一个绝缘的圆柱形储罐中。水用作传热流体(HTF),将热量从储罐传递到最终用途,而发动机的废气用作热源。 PCM尤其被认为是由于其大的蓄热能力和在相变过程中的等温特性。尽管它们具有高的能量存储密度,但是它们中的大多数具有不可接受的低导热率,因此采用了PCM封装技术以改善热传递。根据一天中的小时需求,热交换管的特殊模块化配置以及改变通过它们的水流的可能性允许从水箱中获取适量的热能。该模型允许选择发动机的电负载,油箱和球体的尺寸,热交换器的厚度和直径以及PCM的性质。根据农场的能源负荷,可以获得每日的热能平衡,并且白天的充放电循环以PCM的固/液百分比表示。例如,在两个不同的条件下,例如夏季和冬季,考虑了奶牛场(100头牛)的负荷曲线,并且在两种情况下均检测到模型功能。为此,对不同的PCM进行了研究,并更改了TES单元尺寸,以实现最佳的工作条件。介绍结果并讨论技术和经济问题。

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