节点文献
一种便携式温差发电炉的实验研究
Experimental study on a potable thermoelectric power generating stove
【摘要】 为解决极端条件下的供电问题,设计了一种便携式温差发电炉,实验研究了其功率负载特性.温差发电炉可燃用干树枝等生物质,总质量为2.5 kg,折叠后尺寸为0.25 m×0.2 m×0.044 m.实验发现,设计的便携式温差发电炉在自供电散热后,当外部负载介于50~70?时,可对外提供2.45 W的电能;经过稳压模块转换成5 V后,当外部负载为12?时,可对外提供2.06 W的电能,系统的热电转换效率约为2.1%.此外,实验揭示了热管理在温差发电技术中的关键作用,即零耗电的热端设计、热端温度控制、热容匹配和冷端散热耗电负荷是实现净对外供电的核心参数.最后,通过实验对比了商业化销售的便携式温差发电炉,并进行了分析和讨论.
【Abstract】 Electricity is not available everywhere, and a significant portion of people still lives without electricity. Available commercial potable thermoelectric power generating stoves are rare. In order to obtain electrical energy in off-grid areas and in special conditions(earthquake, hurricane, tidal wave, military field, etc.), a potable thermoelectric power generating stove with eight thermoelectric modules was designed. The starting-up performance, temperature level, power load feature and thermoelectric efficiency were tested experimentally using thermocouples, electronic load and corresponding data acquisition systems. Biomass fuel, e.g. dry branches and withered-grasses, can be used in the thermoelectric power generating stove. The weight and the dimensions of the stove are 2.5 kg and 0.25 m×0.2 m×0.044 m(after folded), respectively. No battery is embedded inside, and the stove can producing electricity continuously in case of fire up. The fans for the heat sink are self-starting within 2 min after fire up, and electrical energy can be extracted from the stove to the outside electric equipment subsequently. Tested results found that a maximum output power of 2.45 W at 12.2 V can be obtained after self-powered fans for the heat sink when the load resistance lies between 50 W and 70 W. The system will fail to produce electricity when the load resistance is smaller than 40 W, while the output power decreases when the load resistance continues to increase from 70 W. In case a voltage converter with a conversion efficiency of 84% was adopted to maintain a 5.0 V output voltage, a maximum output power of 2.06 W was recorded when the load resistance is 12 W. Smaller load resistance will cause system failure, and larger load resistance results in less power output. The thermoelectric efficiency was found to be about 2.1% for the present stove based on experimental measurements and one dimensional Fourier law approximation. On the other hand, it is found that the working temperature difference is about 66°C, indicating that a large potential to increase the power output exists, and convective heat transfer enhancing methods for the heat sink should be a possible solution. This study reveals that the heat management is the key principle in the thermoelectric power generating technology. The zero energy consumption design of the heat end, the temperature controlling strategy for the heat end, the total heat capacity of the heat sink for the fan self-starting, the electrical power load selection for the cold end are the key parameters to extract electrical energy from the system. Comparisons were made between present results and tested data of a commercial potable thermoelectric power generating stove, and analysis and discussions were made. The tested commercial one has a weight of 0.934 kg, and producing a maximum output power of 1.07 W continuously when the load resistance is 5 W under the working temperature difference of about 72°C. It is showed that the ratio of output power to weight of the present potable thermoelectric power generating stove is 1.0 W/kg, while the commercial stove is 1.14 W/kg. The ratio of output power to volume for the present stove is 936 W/m~3, while the commercial one is 540 W/m~3.
【Key words】 thermoelectric effect; power load feature; thermoelectric power generating stove;
- 【文献出处】 科学通报 ,Chinese Science Bulletin , 编辑部邮箱 ,2017年11期
- 【分类号】TM913
- 【被引频次】14
- 【下载频次】248