Bo Fu, Youjie Liu, Zhe Jin, Wei Guo, Haopeng Shi, Jiaxing Luo, Yunlong Wang, Fei Wang, Tao Jia, Xiaoping Zhang
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引用次数: 0
摘要
高性能光热材料是界面太阳能蒸发技术不可缺少的材料。利用生物质光热材料已经成为一种很有前途的界面太阳能驱动蒸发方法,主要是因为它们具有生产成本低、比表面积大、环境友好和可再生等优点。生物质光热材料。在本研究中,卷烟灰分作为一种废弃物,其含有高浓度的碳颗粒,具有显著的光热转化能力(18.30%),是一种新型的生物质光热材料,可用于太阳能收集。此外,将无纺布与废烟灰(WCA)结合制备了低成本、环保的蒸发器,蒸发器的蒸发速率达到1.16 kg m−2 h−1,蒸发效率为80.55%。然后,设计了一种能够实现长期集盐并产生电能的单向集盐装置。水电热电联产旨在有效利用水蒸发过程中释放的热能,在1.0 kW m−2的太阳辐照下,电压达到57.1 mV。WCA蒸发器为太阳能驱动海水淡化的废物利用提供了一个创新的视角。
A Solar Evaporator Based on Waste Biomass Material for Water Evaporation and Thermoelectric Conversion Application
High-performance photothermal materials are indispensable for interfacial solar evaporation technology. The utilization of biomass-based photothermal materials has emerged as a promising approach for interfacial solar-driven evaporation, primarily due to their advantageous characteristics, including low production costs, large specific surface area, environmental friendliness, and renewable characteristics. Biomass photothermal materials. In this study, as a kind of waste, cigarette ash contains a high concentration of carbon particles, which can exhibit remarkable photothermal conversion capability (18.30%), positioning it as a novel biomass-derived photothermal material for solar energy harvesting. In addition, a low-cost and environmentally friendly evaporator is prepared by combining a non-woven fabric with WCA (waste cigarette ash) and the evaporation rate of the evaporator reaches 1.16 kg m−2 h−1 with an evaporation efficiency of 80.55%. Then, a unidirectional salt collection device that can achieve long-term salt collection and generate electrical energy is designed. Water-electricity cogeneration is designed to efficiently utilize the thermal energy released during the water evaporation process, with voltage reaching 57.1 mV under 1.0 kW m−2 solar irradiation. The WCA evaporator provides an innovative perspective on waste utilization in solar-driven seawater desalination.
期刊介绍:
Advanced Sustainable Systems, a part of the esteemed Advanced portfolio, serves as an interdisciplinary sustainability science journal. It focuses on impactful research in the advancement of sustainable, efficient, and less wasteful systems and technologies. Aligned with the UN's Sustainable Development Goals, the journal bridges knowledge gaps between fundamental research, implementation, and policy-making. Covering diverse topics such as climate change, food sustainability, environmental science, renewable energy, water, urban development, and socio-economic challenges, it contributes to the understanding and promotion of sustainable systems.