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首页> 外文期刊>Polish Journal of Environmental Studies >Swarm-Assisted Investment Planning of a Bioethanol Plant
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Swarm-Assisted Investment Planning of a Bioethanol Plant

机译:集群式生物乙醇工厂投资计划

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摘要

Bioethanol is a liquid fuel for which a significant increase in the share of energy sources has been observed in the economies of many countries. The most significant factor in popularizing bioethanol is the profitability of investments in construction of facilities producing this energy source, as well as the profitability of its supply chain. With the market filled with a large amount of equipment used in the bioethanol production process, it is often difficult to make an optimal decision regarding the investment. Another issue is the location of the plant itself. Economic benefits are strongly associated with costs of equipment and materials, the amount of revenue from sales, and transportation costs. This article presents an attempt to solve this problem by using several swarm algorithms - new and fast-growing optimisation techniques. By employing ant colony optimization, river formation dynamics, particle swarm optimization, and cuckoo search algorithms in the task of bioethanol plant investment planning, the overall suitability of this type of technique has been tested. Moreover, the results allow us to determine which of the preceding algorithms is the most efficient in the given task.
机译:生物乙醇是一种液体燃料,在许多国家的经济中已观察到其能源份额的显着增加。普及生物乙醇的最重要因素是建设生产这种能源的设施的投资利润,以及其供应链的利润。随着市场上充满了生物乙醇生产过程中使用的大量设备,通常很难就投资做出最佳决定。另一个问题是工厂本身的位置。经济利益与设备和材料成本,销售收入以及运输成本密切相关。本文提出了通过使用多种算法(一种新的且快速增长的优化技术)来解决此问题的尝试。通过在生物乙醇工厂投资计划中采用蚁群优化,河流形成动力学,粒子群优化和杜鹃搜索算法,已经测试了这种技术的整体适用性。此外,结果使我们能够确定在给定任务中哪种算法最有效。

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