ASHRAE 4777-2005 Modified RC Thermal Circuit Model Applied to Cold Storage System with Multi-Loop Heat Pipes《应用于冷藏系统与多回路热管的钢筋混凝土改性热电路模型》.pdf
《ASHRAE 4777-2005 Modified RC Thermal Circuit Model Applied to Cold Storage System with Multi-Loop Heat Pipes《应用于冷藏系统与多回路热管的钢筋混凝土改性热电路模型》.pdf》由会员分享,可在线阅读,更多相关《ASHRAE 4777-2005 Modified RC Thermal Circuit Model Applied to Cold Storage System with Multi-Loop Heat Pipes《应用于冷藏系统与多回路热管的钢筋混凝土改性热电路模型》.pdf(8页珍藏版)》请在麦多课文档分享上搜索。
1、4777 Modified RC Thermal Circuit Model Applied to Cold Storage System with Multi-Loop Heat Pipes Yuan-Ching Chiang Huei-Chun Chen ABSTRACT Jen-Jie Chieh Sih-Li Chen, PhD such a type of thermal storage system. First, the need for an This paperproposes a theoretical model to investigate the thermal pe
2、rformance ofa cold storage system with multi-loop wickless heatpipes. The cold storage system utilizes the supe- rior heat transfer characteristics of heat pipe and eliminates drawbacks found in the conventional thermal storage tank. A mod$ed RC circuit model to determine the thermal charac- teristi
3、cs of the cold storage system has been developed. Exper- imental investigations are then conducted to study the cold storage thermal performance in an experimental system with the ratio of distance between heat pipes to outer diameter of heatpipe W/D = 2. DifSerent heat transfer mechanisms, includ-
4、ing nucleate boiling, geyser boiling, and natural convection, are ident$ed in diferent experimental systems with various liquidfills. This paper probes the efect ofthe fill level on cold storage rate and cumulative cold storage quantity. Compari- sons of this theory with experimental data show good
5、agree- ments in the nucleate boiling stage of cold storage process. INTRODUCTION A number of thermal energy storage systems (Yimer and Madami 1997; Hasnain 1998; Dincer and Rosen 2001; Dincer 2002) have been considered and developed in recent years. Most of the energy storage systems utilize an acti
6、ve control method to store or release thermal energy. That is, in the system design of thermal storage, a pump is included to trans- fer thermal energy from a high-temperature heat source to the thermal storage tank via flowing working fluid. To utilize the stored thermal energy, an electromagnetic
7、valve is used under control to change the flow path of the working fluid so that energy stored in the storage tank is released to and used by a low-temperature heat sink. There are two drawbacks found in _ -. operation cost and the power consumption of the pump. The thermal storage shall be unworkab
8、le in case of a system fail- ure. Second, change of the charge and discharge ability of the conventional storage systems basically relies on the system piping design; therefore, only two functions, i.e., energy stor- age and energy release, are available in its operating modes. It is impossible for
9、both the heat supply side and the heat utili- zation side of the thermal storage to operate at the same time during the energy utilization. A new cold storage system is proposed in this paper, which utilizes the superior heat transfer characteristics of heat pipe and eliminates drawbacks found in th
10、e conventional thermal storage tank. The cold storage system with multi-loop heat pipes, as shown in Figure 1, consists of an energy storage tank and two heat pipe loops. The energy storage tank is filled with phase- change medium (PCM) so that thermal energy can be stored or released via melting or
11、 freezing of the phase-change medium between solid and liquid states. Insulating material is provided to cover the outside of the energy storage tank to prevent heat loss. A top cover is provided at the top of the tank for replen- ishing the phase-change medium into the chamber, and a drain hole is
12、provided at the bottom of the tank for draining the phase-change medium. The heat pipe loops include three parts, namely, a group ofparallel wickless heat pipes vertically disposed inside the energy storage tank and vertical high- temperature heat exchange and vertical low-temperature heat exchanger
13、 separately located outside of the tank. The parallel heat pipes combine the high-temperature heat exchanger to form a two-phase closed-loop thermosyphon for cold storage. The cold release loop is constructed by connecting the parallel heat pipes and the low-temperature heat exchanger. The paral- Yu
14、an-Ching Chiang and Jen-Jie Chieh are graduate students and Sih-Li Chen is a professor in the Department of Mechanical Engineering, National Taiwan University, Taipei, Taiwan, ROC. Huei-Chun Chen is a graduate student in the Department of Air Conditioning and Refrig- eration at National Taipei Unive
15、rsity of Technology, Taipei, Taiwan, ROC. 02005 ASHRAE. 387 Ice-Storage Tank “T I ti Me T Figure I Cold storage system with multi-loop heatpipes: (a) charge mode (6) discharge mode. le1 heat pipes have external short fins densely provided around their outer surfaces to increase thermal conductive co
16、ntact areas thereof. These short fins also divide inner space of the energy storage tank into multiple energy storage cells. The phase-change medium becomes molten or frozen in these energy storage cells to store or release cold energy. The verti- cal higWlow-temperature heat exchangers outside the
17、energy storage tank are used to exchange heat with high-temperature and low-temperature flowing fluid, respectively. An adequate amount of working fluid is filled in the heat pipe loops. Figure 1 shows the manner in which the cold storage system with multi-loop heat pipes operates to store cold ener
18、gy. When an amount of low-temperature flowing fluid flows into the low-temperature heat exchanger in a direction as shown by the arrows in Figure la, it absorbs heat in the vapor working fluid inside the vertical low-temperature heat pipes and is heated to have increased enthalpy value. The vapor wo
19、rking fluid inside the heat pipes condenses into a liquid working fluid that forms a thin layer of condensate along the inner wall surface of the vertical low-temperature heat pipe, then flows downward under gravity into the vertically parallel heat pipes. At this point, the liquid working fluid in
20、the verti- cally parallel heat pipes absorbs energy stored in the liquid phase-change medium in the cells outside the heat pipes and 388 ASHRAE Transactions: Research comes to a boil to produce vapor working fluid that flows upward due to its buoyancy into the vertical low-temperature heat pipe to c
21、omplete one cycle. Energy stored in the phase- change medium is transferred to the low-temperature working fluid flowing through the vertically parallel heat to boil and evaporate the working fluid and thereby freeze the liquid phase-change medium into a solid state. Figure 1 b shows the function in
22、 which the cold storage system with multi-loop heat pipes operates to discharge cold energy. The RC thermal circuit model, which is analogous to the RC electrical circuit model, is proposed to investigate the cold storage system with multi-loop heat pipes. The analogous electric circuit is shown in
23、Figure 2. It comprises thermal resis- tance of each heat transfer device (R), thermal capacity of the energy storage tank (C), heat transfer rate in the cold storage system (q), and each temperature (T). Those parameters in the RC thermal circuit model can be analogous to the electric resistance, el
24、ectric capacity, current, and electric potential, respectively, in the RC electrical model. The thermal RC concept has been successfully applied to temperature control engineering owing to its simplicity for complex heat transfer problems. Engeler and Garfinkel (1 965) uses the thermal RC concept to
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