...
首页> 外文期刊>Solar Energy >Stability analysis of the thermocline thermal energy storage system during high flow rates for solar process heating applications
【24h】

Stability analysis of the thermocline thermal energy storage system during high flow rates for solar process heating applications

机译:太阳能加工加热应用高流量率温度储能系统的稳定性分析

获取原文
获取原文并翻译 | 示例
           

摘要

The thermal energy storage system is a pivotal system for solar thermal plants for improving reliability. The stability in the thermocline is more significant to clarify and improve the performance of thermal energy storage tank which legitimately shows the quality of the thermocline. In this stability analysis investigation, the modern engineering energy storage material concrete was used as a filler material for high-temperature thermal energy storage applications as a result of the intrinsic properties. A comprehensive laminar and k-epsilon turbulent flow energy transport model accounts for the heat transfer fluid and filler material with adiabatic and non-adiabatic conditions using LTNE (Local Thermal Non-Equilibrium model). The axial, radial, and diagonal temperature differences were identified which was used to calculate the stability of the thermocline. A thermal energy storage tank size of 1 m height and 0.250 m diameter with a 0.030 m size of filler material packed with an average porosity of 0.3 for the storage capacity of 150 kWh/m(3) is used for solar process heating applications considered for the present study. The thermocline stabilities are performed with Reynolds numbers, Re varied from 1 to 3000. It is found that the Re =1 provides better stability in the axial and radial direction as well as diagonal than other Reynolds number. It is observed that Re = 1 provides superior discharging efficiency for nearly 5.84 hrs which is highly suitable for solar process heating applications and the discharging efficiency consistently drops, when Re increases from 1 to 3000. The wall condition of the tank and velocity of the heat transfer fluid is highly disturbing the thermocline in the radial direction and it creates a 'spike' profile in the axial direction. Based on the newly introduced stability scale, the effective length of packing and timing to achieve stability is identified for H/D = 4. From that result, the top and bottom layer of the thermocline tank porosity is also found which is used to decide the porosity of the packed bed distributors. The identified porosity for the top and bottom distributors in the epsilon = 0.3 thermal energy storage tank is less than 0.3 is more suitable for provide the uniform flow in the tank.
机译:热能存储系统是用于改善可靠性的太阳能热电厂的枢转系统。热控中的稳定性更为显着,可以阐明和改善热能储罐的性能,该储能箱合法地显示了热控质量。在这种稳定性分析调查中,由于内在特性,现代工程储能材料混凝土用作高温热能储存应用的填充材料。一种综合的层状和K-epsilon湍流流量传输模型用于使用LTNE(局部热非平衡模型)具有绝热和非绝热条件的传热流体和填充材料。鉴定了轴向,径向和对角线温度差,其用于计算热控的稳定性。热能储罐尺寸为1米,直径为0.030米的填充材料的填充物的0.250米,用于储存容量为150 kWh / m(3)的孔隙率为0.3,用于考虑的太阳能加工加热应用本研究。热量稳定性与雷诺数进行,Re从1到3000变化。发现Re = 1在轴向和径向方向上提供更好的稳定性以及与其他雷诺数相对对角线。观察到Re = 1为近5.84小时提供卓越的放电效率,该近5.84小时高度适用于太阳能加热应用,并且当重新增加1至3000时,放电效率始终如一地下降。罐的壁状况和热量的速度转移流体在径向方向上高度扰乱热量,并且在轴向上产生“尖峰”轮廓。基于新引进的稳定性规模,填充和定时以实现稳定性的有效长度为H / D = 4。从该结果中,也发现热量罐孔隙度的顶层和底层用于决定包装床分销商的孔隙率。 epsilon = 0.3热能储罐中的顶部和底部分配器的识别孔隙率小于0.3更适合于在罐中提供均匀的流动。

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