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Small thermophotovoltaic prototype systems

机译:小型热光伏原型系统

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In an earlier paper we reported on a small grid-connected thermophotovoltaic (TPV) system consisting of an ytterbia mantle emitter and silicon solar cells with 16% efficiency (under solar irradiance in standard test conditions, STCs). The emitter was heated up using a butane burner with a rated thermal power of 1.35 kW (referring to the lower heating value). This system produced an electrical output of 15 W, which corresponds to a thermal to electric (direct current) conversion efficiency of 1.1%. In the interim, further progress has been made, and significantly higher efficiencies have been achieved. The most important development steps are: (1) the infrared radiation-absorbing water filter between emitter and silicon cells (to protect the cells against overheating and against contact with flue gasses) has been replaced by a suitable glass tube. By doing this, it has been possible to prevent losses of convertible radiation in water. (2) Cell cooling has been significantly improved, in order to reduce cell temperature, and therefore increase conversion efficiency. (3) The shape of the emitter has been changed from spherical to a quasi-cylindrical geometry, in order to obtain a more homogeneous irradiation of the cells. (4) The metallic burner tube, on which the ytterbia emitter was fixed in the initial prototypes, has been replaced by a heat-resistant metallic rod, carrying ceramic discs as emitter holders. This has prevented the oxidation and clogging of the perforated burner tube. (5) Larger reflectors have been used to reduce losses in useful infrared radiation. (6) Smaller cells have been used, to reduce electrical series resistance losses. Applying all these improvements to the basic 1.35 kW prototype, we attained a system efficiency of 1.5%. By using preheated air for combustion (at approximately 370℃), 1.8% was achieved. In a subsequent step, a photocell generator was constructed, consisting of high-efficiency silicon cells (21 % STC efficiency). In this generator, the spaces between the cells were minimized, in order to achieve as high an active cell area as possible, while simultaneously reducing radiation losses. This new system has produced an electrical output of 48 W, corresponding to a system efficiency of 2.4%. This is the highest-ever-reported value in a silicon-cell-based TPV system using ytterbia mantle emitters. An efficiency of 2.8% was achieved by using preheated air (at approximately 500 ℃). An electronic control unit (fabricated of components with low power consumption, and including a battery store) was developed, in order to make the TPV system self-powered. This unit controls the magnetic gas supply valve between gas supply cylinder and burner as well as the high-voltage ignition electrodes. Both the control unit's own power consumption and the battery-charging power are supplied directly by the TPV generator. A small commercial inverter is used to transfer excess power to the 230 V grid.
机译:在较早的论文中,我们报道了一个小型的并网热光电(TPV)系统,该系统由紫杉幔发射器和效率为16%的硅太阳能电池组成(在标准测试条件下,在太阳辐射下,STC)。发射器使用丁烷燃烧器加热,额定热功率为1.35 kW(指较低的热值)。该系统产生15 W的电输出,相当于1.1%的热电转换效率。在此期间,已经取得了进一步的进步,并且已经实现了更高的效率。最重要的开发步骤是:(1)发射器和硅电池之间的吸收红外线辐射的水过滤器(以防止电池过热和与烟道气接触)已由合适的玻璃管代替。通过这样做,可以防止水中可转换辐射的损失。 (2)为了降低电池温度,并因此提高了转换效率,电池冷却得到了显着改善。 (3)发射器的形状已从球形更改为准圆柱形,以获得更均匀的细胞辐照。 (4)在最初的样机中固定了ytterbia发射器的金属燃烧器管已由耐热的金属棒代替,该金属棒带有陶瓷盘作为发射器支架。这防止了穿孔的燃烧器管的氧化和堵塞。 (5)使用更大的反射器可以减少有用红外辐射的损耗。 (6)使用了较小的电池,以减少电气串联电阻损耗。将所有这些改进应用于基本的1.35 kW原型,我们获得了1.5%的系统效率。通过使用预热的空气进行燃烧(大约370℃),可达到1.8%。在随后的步骤中,构建了一个光电电池发生器,该光电电池发生器由高效硅电池(21%STC效率)组成。在这种发生器中,单元之间的空间被最小化,以实现尽可能高的有源单元面积,同时减少辐射损失。这个新系统产生了48 W的电输出,相当于2.4%的系统效率。这是使用yttbia地幔发射器的基于硅电池的TPV系统中最高的报告值。使用预热的空气(约500℃)可达到2.8%的效率。为了使TPV系统自供电,开发了一个电子控制单元(由低功耗的组件制成,并包括一个电池存储器)。该单元控制供气瓶和燃烧器之间的电磁供气阀以及高压点火电极。 TPV发电机直接提供控制单元自身的功耗和电池充电功率。小型商用逆变器用于将多余的功率传输到230 V电网。

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