Effects of Combined Utilization of Active Cooler/Heater and Blade-Shaped Nanoparticles in Base Fluid for Performance Improvement of Thermoelectric Generator Mounted in Between Vented Cavities

IF 2.6 4区 综合性期刊 Q2 MULTIDISCIPLINARY SCIENCES
Fatih Selimefendigil, Hakan F. Oztop
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引用次数: 0

Abstract

A wide range of technical applications, including solar power, waste heat recovery, electronics thermal management, and heat exchangers, employ thermoelectric generators. They can be mounted in between channels / cavities where hot and cold fluid streams exist. In this study, two novel methods of enhancing the power generation from thermoelectric generator device mounted in between vented cavities are proposed by combined utilization of active heater/cooler rectangular blocks and blade-shaped nanoparticles in base fluid. Finite element method investigation is conducted numerically for a range of hot and cold stream Reynolds numbers (250–1000), non-dimensional hot and cold block sizes (0.01\(-\)0.4), and heating/cooling increments (0–10), with nanoparticle loading limited to 0.03. Higher values of Reynolds number results in a rise in thermoelectric generator power. When comparing the cases of lowest and highest Reynolds number combinations, a 219\(\%\) increase in power is achieved. The thermoelectric generator power will rise by around 27.5\(\%\) when the object size reaches its maximum. However, for moderate object sizes, up to 31.6\(\%\) reduction in power generation can be realized. Greater temperature differences result in a linearly rising power generation, with an achievable power increase of up to 22\(\%\). When nanoparticle loading in the base fluid for both cavities is raised to its maximum value, the resultant power increases by around \(30\%\). Thermoelectric generator power rises by 67.8\(\%\) when an active heater/cooler with nanofluid is used in vented cavities, as opposed to the reference scenario of employing no object and only water. The thermoelectric generator device’s hot and cold interface temperatures are accurately estimated using the artificial neural network based method. The estimated temperature can be used as boundary condition for the solution of the governing equations in the thermoelectric generator device domain which will decrease the computational cost when dealing with very complex channel configurations.

主动冷却器/加热器与基液中叶状纳米颗粒联合利用对安装在排气腔间的热电发电机性能的影响
广泛的技术应用,包括太阳能发电、废热回收、电子热管理和热交换器,都使用热电发电机。它们可以安装在热和冷流体流存在的通道/腔之间。在这项研究中,提出了两种新的方法,通过联合利用主动式加热/冷却矩形块和基液中的叶片状纳米颗粒来提高热电发电机装置在通风腔之间的发电能力。在纳米颗粒加载限制为0.03的情况下,对冷热流雷诺数(250-1000)、无因次冷热块尺寸(0.01 \(-\) 0.4)和加热/冷却增量(0-10)进行了有限元方法数值研究。雷诺数越高,热电发电机功率越高。当比较最低和最高雷诺数组合的情况时,功率增加219 \(\%\)。当物体尺寸达到最大值时,热电发电机的功率将上升约27.5 \(\%\)。然而,对于中等大小的物体,可以实现高达31.6 \(\%\)的发电量减少。较大的温差导致发电量线性上升,可实现的功率增加高达22 \(\%\)。当纳米颗粒在两个空腔的基液中加载到最大值时,所得功率增加了\(30\%\)左右。与不使用物体和只使用水的参考方案相反,在通风腔中使用带有纳米流体的主动加热器/冷却器时,热电发电机的功率增加67.8 \(\%\)。采用基于人工神经网络的方法,对热电发电装置的冷热界面温度进行了精确估计。该估计温度可作为热电发生器器件域控制方程解的边界条件,在处理非常复杂的通道构型时可减少计算量。
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来源期刊
Arabian Journal for Science and Engineering
Arabian Journal for Science and Engineering MULTIDISCIPLINARY SCIENCES-
CiteScore
5.70
自引率
3.40%
发文量
993
期刊介绍: King Fahd University of Petroleum & Minerals (KFUPM) partnered with Springer to publish the Arabian Journal for Science and Engineering (AJSE). AJSE, which has been published by KFUPM since 1975, is a recognized national, regional and international journal that provides a great opportunity for the dissemination of research advances from the Kingdom of Saudi Arabia, MENA and the world.
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