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A systematic methodology to transform campuses in the developing world into sustainable communities

机译:一种将发展中国家的校园转变为可持续社区的系统方法

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In the relentless pursuit of human race to build a better world with technology, there lurk some blind spots in the developing world, and foremost among them is "sustainable access to energy". In this project, we develop and demonstrate a systematic methodology for institutional campuses to transform themselves into energy sustainable communities. The methodology starts with an investigation of the electricity consumption trend, followed by the determination of the seasonally variant solar generation capacity. We then compute the minimal geographical area to reach sustainability and present an economic viability model taking into account local energy costs. The methodology is experimentally piloted in a 400-acre campus community of 10000+ residents in rural monsoon dominated tropics of Southern India. Sustainability can be achieved through the deployment of 20 acres' solar panels together generating 13,369 MWh (annually). On the consumption side, smart control panels can help to limit usage to 4,338 MWh, allowing the possibility that a surplus of 9,031 MWh to be re-routed to humanitarian causes of lighting up adjoining low income village households (which otherwise would have been without power), powering campus vehicles and dining services, with potential to reduce the overall carbon footprint by 6452 tons. The initial investment gets paid back in eleven years' time, which is about half the panel lifespan, thereby proving economic viability. Our methodology provides a validated replicable roadmap for developing world communities aspiring to boldly transform into net zero carbon sustainability, thereby realizing the United Nations COP21 mandate.
机译:在人类不懈地追求用技术建设更美好世界的过程中,发展中国家潜伏着一些盲点,其中最重要的是“可持续获取能源”。在这个项目中,我们开发并演示了一种系统的方法,用于机构校园将自己转变为能源可持续发展的社区。该方法首先调查用电量趋势,然后确定季节性变化的太阳能发电量。然后,我们计算最小的地理区域以实现可持续性,并提出考虑当地能源成本的经济可行性模型。该方法在印度南部以季风为主的热带地区,由10,000多个居民组成的400英亩校园社区中进行了实验性试验。可持续性可以通过部署20英亩的太阳能电池板(每年产生13369 MWh)来实现。在消费方面,智能控制面板可以帮助将使用量限制为4,338 MWh,从而有可能将剩余的9,031 MWh重新路由到人道主义原因,从而点亮相邻的低收入村庄家庭(否则将没有电) ),为校园车辆和餐饮服务提供动力,有可能将总碳足迹减少6452吨。最初的投资将在十一年内收回,大约是面板寿命的一半,从而证明了经济可行性。我们的方法为希望大胆地转变为零碳可持续性的发展中国家社区提供了经过验证的可复制路线图,从而实现了联合国COP21的授权。

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