首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Experimental and numerical investigations of nano-additives enhanced paraffin in a shell-and-tube heat exchanger: A comparative study
【24h】

Experimental and numerical investigations of nano-additives enhanced paraffin in a shell-and-tube heat exchanger: A comparative study

机译:壳管热交换器中纳米添加剂增强石蜡的实验性和数值研究:比较研究

获取原文
获取原文并翻译 | 示例
           

摘要

The impact of metal oxides, metal nitrides and carbon allotropes based nano-additives on thermal conductivity and thermal storage performance of paraffin based latent heat storage (LHS) system is experimentally and numerically investigated. Aluminium oxide (Al2O3), aluminium nitride (AlN) and graphene nano-platelets (GnP) based nano-PCM were prepared with ultrasonic emulsification technique. Thermal performance enhancements of nano-PCM are investigated by conducting a series of charging and discharging experiments in shell-and-tube heat exchanger at various operating conditions. A numerical model is developed to account for an impact of varying operating temperature, nano-additives particle size and volume fraction on the effective thermal conductivity and dynamic viscosity of nano-PCM. The numerical model is simulated to investigate the influence of effective thermal conductivity and dynamic viscosity on heat transfer and temperature distribution, phase transition rate and total enthalpy of the system. It is noticed that the charging rates for Al2O3, AlN and GnP based nano-PCM are significantly enhanced by 28.01%, 36.47% and 44.57% as compared to pure paraffin, respectively. Likewise, the discharging rates are augmented by 14.63%, 34.95% and 41.46%, respectively. The addition of nano-additives compromises the overall thermal storage capacity and augments the effective dynamic viscosity which has an adverse impact on natural convection. Therefore, an optimum volume fraction of nano additives is determined by conducting experimental examinations on Al2O3 based nano-PCM with volume fraction of 1%, 3% and 5%, at varied operating conditions. It is observed that by increasing volume fraction from 1% to 3%, the charging and discharging rates are significantly enhanced. However, an insignificant enhancement is noticed with further increase in volume fraction from 3% to 5%. Therefore, the optimum volume fraction of 3% is established. GnP based nano-PCM have demonstrated higher potential for thermal performance enhancement of LHS system and utilisation in both domestic and commercial clean energy applications.
机译:实验和数值研究了金属氧化物,金属氮化物和碳含量基于基于石蜡的导热率和热储存性能的纳米添加剂的影响。用超声乳化技术制备氧化铝(Al 2 O 3),氮化铝(AlN)和石墨烯纳米血小板(GNP)的纳米PCM。通过在各种操作条件下在壳管式热交换器中进行一系列充电和放电实验,研究了纳米PCM的热性能增强。开发了一种数值模型,以考虑不同的工作温度,纳米添加剂粒度和体积分数对纳米PCM的有效导热性和动态粘度的影响。模拟数值模型以研究有效导热率和动态粘度对传热和温度分布,相变率和系统总焓的影响。注意到,与纯石蜡相比,Al 2 O 3,AlN和GNP基础纳米PCM的充电率分别显着增强28.01%,36.47%和44.57%。同样地,排出率分别增强14.63%,34.95%和41.46%。添加纳米添加剂损害了整体热存储容量,并增加了对自然对流产生不利影响的有效动态粘度。因此,通过在不同的操作条件下对1%,3%和5%的体积分数进行1%,3%和5%的Al 2 O 3的纳米PCM进行实验检查,确定纳米添加剂的最佳体积分数。观察到,通过增加1%至3%的体积分数,充电和放电速率明显增强。然而,注意到不足的增强,进一步增加3%至5%的体积分数。因此,建立了3%的最佳体积分数。基于GNP的纳米PCM已经表现出更高的热能性能提高LHS系统的潜力和国内和商业清洁能源应用中的利用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号