Experimental Study On Direct Kinetic To Thermal Energy Conversion

M. Javed, X. Duan
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Abstract

Modern wind turbines are generally used for electricity generation; however, the final form of energy required by many users is thermal energy. Although electrical energy conversion to thermal energy is a high-efficiency process, electricity generation efficiency from wind turbines is usually low. A wind-powered heat generator is proposed that would convert the kinetic energy directly into thermal energy through the process of viscous dissipation; this process is achieved through the agitation of the working fluid inside a container. This heat generator uses an optimized flat blade turbine (FBT) impeller and a fully baffled configuration. For the experimental study, an electric motor is used to provide the kinetic energy input to the heat generator. A torque sensor, tachometer, and thermocouples are used to measure torque, rotational speed, and temperature rise of the fluid, respectively. Using the measured quantities, the efficiency of energy conversion from kinetic energy to sensible heat energy is determined. Experiments are conducted at different rotational speeds and for different working fluids. The experimental results indicate that the heat generator is up to 90% efficient in energy conversion, and the temperature rise rate increases with an increase in the impeller's diameter and the rotational speed. Furthermore, experiments indicate that changing working fluid does not impact heat generator’s performance. A wind turbine can power this heat generator to provide heat to a house or a commercial building. This innovative renewable energy technology would benefit remote areas with cold weather and rich in wind energy.
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直接动能转化为热能的实验研究
现代风力涡轮机一般用于发电;然而,许多用户所需的最终能源形式是热能。虽然电能转换为热能是一个高效率的过程,但风力涡轮机的发电效率通常很低。提出了一种通过粘性耗散过程将动能直接转化为热能的风力发电机;这个过程是通过搅拌容器内的工作流体来实现的。该热发生器采用优化的平叶涡轮(FBT)叶轮和全挡板配置。在实验研究中,使用电动机为热发生器提供动能输入。扭矩传感器、转速表和热电偶分别用于测量流体的扭矩、转速和温升。利用所测得的量,确定了动能向显热能转化的效率。实验在不同转速和不同工质下进行。实验结果表明,该热发生器的能量转换效率可达90%以上,且随着叶轮直径和转速的增大,其温升速率增大。此外,实验表明,工作流体的改变对加热器的性能没有影响。风力涡轮机可以为这种热发生器提供动力,为住宅或商业建筑提供热量。这种创新的可再生能源技术将使气候寒冷、风能丰富的偏远地区受益。
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