Wu Fucai, Hu Chunyan, Zhu Zhijia, Zheng Jian, Huang Zhangmi, Liu Baojiang
Key Lab of Science and Technology of Eco-textile, Ministry of Education, College of Chemistry and Chemical Engineering, Innovation Center for Textile Science and Technology, Donghua University, No. 2999 North Renmin Road, Shanghai 201620, China.
Key Lab of Science and Technology of Eco-textile, Ministry of Education, College of Chemistry and Chemical Engineering, Innovation Center for Textile Science and Technology, Donghua University, No. 2999 North Renmin Road, Shanghai 201620, China.
J Colloid Interface Sci. 2025 Jan 15;678(Pt B):720-731. doi: 10.1016/j.jcis.2024.09.061. Epub 2024 Sep 7.
Solar energy, with its sustainable properties, has garnered considerable attention for its potential to produce green electricity and clean water. This paper proposes a multistage energy transfer co-generation system (MWCNTs-covered thermoelectric module with aerogel and cooler, AC-CTEM) combining power generation and evaporative cooling. On the light-absorbing surface, the hot side of a thermoelectric module is covered with a hydrophobic coating made of PDMS and MWCNT. The cold side transfers heat to the evaporation zone using a heat sink. Aerogel evaporators are cross-linked with chitosan and polyurethane, which reduces the enthalpy of evaporation and facilitates efficient interfacial evaporation to remove heat and return it to refrigeration. Additionally, with the addition of Fresnel lenses and wind energy to the enhancement device, the system achieved an evaporation rate of 3.445 kg m h and an open-circuit voltage of 201.12 mV under 1 kW m solar irradiation. The AC-CTEM system also demonstrated long-term stability and effectiveness in treating various types of non-potable water. Furthermore, we demonstrated the practical utility of the system by successfully cultivating grass seeds and powering electronic equipment. The AC-CTEM system exemplifies a practical energy-saving approach for the development of highly efficient co-generation systems.
太阳能凭借其可持续性,因其产生绿色电力和清洁水的潜力而备受关注。本文提出了一种结合发电和蒸发冷却的多级能量转换联产系统(覆盖有气凝胶和冷却器的多壁碳纳米管热电模块,AC - CTEM)。在光吸收表面,热电模块的热侧覆盖有由聚二甲基硅氧烷(PDMS)和多壁碳纳米管制成的疏水涂层。冷侧使用散热器将热量传递到蒸发区。气凝胶蒸发器与壳聚糖和聚氨酯交联,这降低了蒸发焓并促进了高效的界面蒸发以去除热量并将其返回制冷。此外,通过在增强装置中添加菲涅耳透镜和风能,该系统在1kW/m²的太阳辐射下实现了3.445kg/m²·h的蒸发速率和201.12mV的开路电压。AC - CTEM系统在处理各种类型的非饮用水方面也表现出长期稳定性和有效性。此外,我们通过成功种植草籽和为电子设备供电证明了该系统的实际效用。AC - CTEM系统是开发高效联产系统的一种切实可行的节能方法。