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Experimental study on the direct/indirect contact energy storage container in mobilized thermal energy system (M-TES)

机译:动员式热能系统中直接/间接接触式储能容器的实验研究

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摘要

A mobilized thermal energy storage (TES) system has been proposed to recover and use industrial waste or excess heat for distributed users. In this paper, lab-scale test facilities have been built to understand the mechanisms of heat charging and discharging processes. The facilities consist of a direct/indirect-contact thermal energy storage container, heat transfer oil (HTO)/water tanks, an electrical boiler, HTO/water pumps and a plate heat exchanger. The organic phase change material (PCM), erythritol, which is sugar alcohol, was chosen as the working material due to its large heat density (330 kJ/kg) and suitable melting point (118 ℃) for industrial low-temperature heat recovery, as well as non toxic and corrosive. Although differential scanning calorimetry tests have shown that a large temperature range exists during the phase change of erythritol, it did not affect the heat discharging during the tests of system performance. Heat charging/discharging results show that for the direct-contact storage container, heat discharging process is much faster than charging process. At the initial stage of heat charging, heat transfer oil is blocked to enter the container, resulting in a slow charging rate. Meanwhile, the PCM attached on the container wall on the bottom always melts last. It has been found that increasing the flow rate of HTO can effectively enhance the charging/discharging processes. For the indirect-contact storage container, heat charging and discharging take almost the same time; and the flow rate of HTO does not show an obvious effect on the charging and discharging processes due to the weak thermal conductivity of the solid phase change material. Comparatively, using the direct-contact storage container may achieve shorter charging/discharging processes than using the indirect-contact storage container.
机译:已经提出了一种动员的热能存储(TES)系统来为分布式用户回收和使用工业废料或多余的热量。在本文中,已建立了实验室规模的测试设施,以了解热能充放过程的机理。这些设施包括直接/间接接触式热能储存容器,导热油(HTO)/水箱,电锅炉,HTO /水泵和板式热交换器。由于其高的热密度(330 kJ / kg)和合适的熔点(118℃)适于工业低温热回收,所以选择有机相变材料(PCM)赤藓糖醇(糖醇)作为工作材料,以及无毒和腐蚀性。尽管差示扫描量热法测试表明赤藓糖醇的相变过程中存在较大的温度范围,但在系统性能测试过程中并没有影响散热。散热结果表明,对于直接接触式储存容器,散热过程要比充电过程快得多。在热填充的初始阶段,传热油被阻塞进入容器,导致缓慢的填充速率。同时,附着在底部容器壁上的PCM总是最后熔化。已经发现,增加HTO的流速可以有效地增强充电/放电过程。对于间接接触式存储容器,热量的充入和排出几乎是同时的。由于固相变材料的导热系数弱,HTO的流量对充放电过程没有明显的影响。相比之下,与使用间接接触式储存容器相比,使用直接接触式储存容器可以实现更短的充电/放电过程。

著录项

  • 来源
    《Applied Energy》 |2014年第15期|181-189|共9页
  • 作者单位

    School of Engineering, Sun Yat-Sen University, 510640 Guangzhou, China;

    School of Business, Society and Energy, Malardalen University, SE-72123 Vasteras, Sweden,Key Laboratory of Efficient Utilization of Low and Medium Grade Energy, MOE, Tianjin University, 300072 Tianjin, China;

    School of Business, Society and Energy, Malardalen University, SE-72123 Vasteras, Sweden;

    School of Business, Society and Energy, Malardalen University, SE-72123 Vasteras, Sweden,Energy Process Division, Royal Institute of Technology, SE-10044 Stockholm, Sweden;

    Key Laboratory of Efficient Utilization of Low and Medium Grade Energy, MOE, Tianjin University, 300072 Tianjin, China;

    Key Laboratory of Efficient Utilization of Low and Medium Grade Energy, MOE, Tianjin University, 300072 Tianjin, China;

    School of Engineering, Sun Yat-Sen University, 510640 Guangzhou, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Direct-contact; Indirect-contact; Mobilized thermal energy storage system; Phase change; Industrial waste recovery;

    机译:直接联系;间接接触;动员的热能存储系统;相变工业废物回收;

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