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Harvesting and transport operations to optimise biomass supply chain and industrial biorefinery processes

机译:捕捞和运输操作以优化生物质供应链和工业生物精炼工艺

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In Australia, Bioenergy plays an important role in modern power systems, where many biomass resources provide greenhouse gas neutral and electricity at a variety of scales. By 2050, the Biomass energy is projected to have a 40-50 % share as an alternative source of energy. In addition to conversion of biomass, barriers and uncertainties in the production, supply may hinder biomass energy development. The sugarcane is an essential ingredient in the production of Bioenergy, across the whole spectrum ranging from the first generation to second generation, e.g., production of energy from the lignocellulosic component of the sugarcane initially regarded as waste (bagasse and cane residue). Sustainable recovery of the Lignocellulosic component of sugarcane from the field through a structured process is largely unknown and associated with high capital outlay that have stifled the growth of bioenergy sector. In this context, this paper develops a new scheduler to optimise the recovery of lignocellulosic component of sugarcane and cane, transport and harvest systems with reducing the associated costs and operational time. An Optimisation Algorithm called Limited Discrepancy Search has been adapted and integrated with the developed scheduling transport algorithms. The developed algorithms are formulated and coded by Optimization Programming Language (OPL) to obtain the optimised cane and cane residues transport schedules. Computational experiments demonstrate that high-quality solutions are obtainable for industry-scale instances. To provide insightful decisions, sensitivity analysis is conducted in terms of different scenarios and criteria.
机译:在澳大利亚,生物能源在现代电力系统中起着重要作用,在现代电力系统中,许多生物质资源可提供各种规模的温室气体中和和电力。到2050年,生物质能源预计将占40-50%的替代能源。除了生物质的转化,生产中的障碍和不确定性之外,供应还可能阻碍生物质能源的发展。在从第一代到第二代的整个范围内,例如从最初被视为废物(甘蔗渣和甘蔗渣)的木质纤维素成分生产能源,甘蔗是生物能源生产中必不可少的成分。通过结构化过程从田间可持续回收甘蔗的木质纤维素成分尚不为人所知,并且与高昂的资本支出有关,这抑制了生物能源行业的增长。在这种情况下,本文开发了一种新的调度程序,以优化甘蔗和甘蔗,运输和收获系统的木质纤维素成分的回收,同时减少相关成本和运营时间。改进了一种称为有限差异搜索的优化算法,并将其与已开发的调度传输算法集成在一起。通过优化编程语言(OPL)制定和编码开发的算法,以获得优化的甘蔗和甘蔗残渣运输计划。计算实验表明,可以为工业规模实例提供高质量的解决方案。为了提供有见地的决策,将根据不同的方案和条件进行敏感性分析。

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