首页> 外文会议>2015 Proceedings of the ASME 13th international conference on nanochannels, microchannels, and minichannels >APPLICATION OF MICROCHANNEL CONDENSERS FOR SMALL SCALE KALINA WASTE HEAT RECOVERY SYSTEMS
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APPLICATION OF MICROCHANNEL CONDENSERS FOR SMALL SCALE KALINA WASTE HEAT RECOVERY SYSTEMS

机译:微通道冷凝器在小规模卡林纳废热回收系统中的应用

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Thermally driven ammonia/water Kalina cycles have shown some promise for improving the efficiency of electricity production from low temperature reservoirs (T < 200℃). However, there has been limited application of these systems to exploiting widely available, disperse, waste heat streams for smaller scale power production (~ 1 kWe). Factors limiting increased deployment of these systems include large, costly heat exchangers, and concerns over safety of the working fluid. The use of mini and microchannel (D < 1 mm) heat exchangers has the potential to decrease system size and cost, while also reducing the working fluid inventory, enabling penetration of Kalina cycles into these new markets. To demonstrate this potential, a detailed heat exchanger model for a liquid-coupled microchannel ammonia/water condenser is developed. The heat exchanger is sized to provide the required heat transfer area for a 1 kWe Kalina system with a source and sink temperature of 150° and 20℃, respectively. An additional constraint on heat exchanger size is that the fluid pressure loss is maintained below some threshold value. A parametric analysis is conducted to assess the effect of different correlations/models for predicting the underlying heat and mass transfer and pressure drop of the ammonia/water mixture on the calculated heat exchanger area. The results show that accurately minimizing the size of the overall system is dependent upon validated zeotropic heat and mass transfer models at low mass fluxes and in small channels.
机译:热驱动的氨/水卡利纳循环已显示出一定的前景,有望提高低温储层(T <200℃)的发电效率。但是,这些系统在利用可利用的,分散的,余热流进行小规模发电(〜1 kWe)方面的应用有限。限制这些系统增加部署的因素包括大型,昂贵的热交换器,以及对工作流体安全性的担忧。使用微型和微型通道(D <1 mm)的热交换器有可能减小系统尺寸和成本,同时减少工作流体的库存,从而使Kalina循环渗透到这些新市场中。为了证明这种潜力,开发了液耦合微通道氨/水冷凝器的详细热交换器模型。换热器的尺寸可以为1 kWe Kalina系统提供所需的传热面积,其源和汇的温度分别为150°和20℃。热交换器尺寸的另一个限制是流体压力损失保持在某个阈值以下。进行参数分析以评估不同相关性/模型的影响,以预测所计算的换热器面积上潜在的传热和传质以及氨/水混合物的压降。结果表明,准确最小化整个系统的尺寸取决于在低质量通量和小通道中经过验证的共沸传热和传质模型。

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