Landscape Architecture Department, Rhode Island School of Design, Providence, RI 02903, USA.
Int J Environ Res Public Health. 2021 Jul 15;18(14):7538. doi: 10.3390/ijerph18147538.
The current worldwide state of energy scarcity and low waste utilization has led to a decrease in the supply of ecological services, something that seriously affects the development of cities. In this study, we propose an urban self-circulation design based on multiple systems within the traditional biogas, wetland, rainwater, solar power, and urban farm systems framework to achieve effective improvements in urban waste utilization and the optimization of the urban waste-energy flow cycle. Emergy conversion is used to evaluate system optimization, and the simulation results show that the novel proposed system can effectively improve urban waste utilization with an energy output rate of 3.18 × 10, an environmental load of 4.27 × 10, and a sustainability index of 7.45 × 10 in the core system; additionally, it can improve resource utilization of small-scale cities with an energy output rate of 1.85 × 10, an environmental load of 1.20 × 10, and a sustainability index of 1.54 × 10 in the total system. The inter-system energy flow model can significantly optimize urban energy systems based on ecological models with low-emergy resource input, including biogas systems and urban farm systems. This model can reduce the environmental load and effectively compensate for the reduced supply capacity of ecosystem services caused by urbanization, making it suitable for extension to other small-scale built environments that are relatively independent and rich in natural resources.
当前,全球能源短缺和低废物利用率的状况导致生态服务的供应减少,这严重影响了城市的发展。在本研究中,我们提出了一种基于传统沼气、湿地、雨水、太阳能和城市农场系统内的多个系统的城市自我循环设计,以实现城市废物有效利用的改善和城市废物能源流循环的优化。我们使用能值转换来评估系统优化,模拟结果表明,新型提出的系统可以有效地提高城市废物利用率,核心系统的能源输出率为 3.18×10,环境负荷为 4.27×10,可持续性指数为 7.45×10;此外,它可以提高小型城市的资源利用率,总系统的能源输出率为 1.85×10,环境负荷为 1.20×10,可持续性指数为 1.54×10。基于低能值资源投入的生态模型的系统间能量流模型,可以显著优化城市能源系统,包括沼气系统和城市农场系统。该模型可以降低环境负荷,有效弥补城市化导致的生态系统服务供应能力的减少,适用于扩展到其他相对独立且自然资源丰富的小型建筑环境。