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Life-cycle energy analysis of prefabricated building components: an input-output-based hybrid model

机译:预制建筑构件的生命周期能量分析:基于输入-输出的混合模型

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As an effective strategy for improving the productivity of the construction industry, prefabricated construction has attracted concerns worldwide. This study investigated the life-cycle energy use of prefabricated components and the corresponding effect on the total embodied energy use for a number of real building projects. Result showed that the life-cycle energy use of prefabricated components ranged from 7.33 GJ/m(3) for precast staircase to 13.34 GJ/m(3) for precast form. The recycling process could achieve 16%-24% energy reduction. This study also found that apart from reusability, energy savings are also obtained from waste reduction and high quality control, saving 4%-14% of the total life-cycle energy consumption. All these advantages can be regarded as important environment friendly strategies provided by precast construction. The linear regression analysis indicated that the average increment in energy use was nearly linearly correlated with prefabrication rate. Precast facade and form are identified as energy-intensive components compared with the conventional construction method. Therefore, the challenge lies in improving the integrality and quality of the prefabrication technique while reducing its dependence on energy-intensive materials. Besides, attention should be focused on improving the maturity of the precast market to avoid additional energy consumption during prophase investigation. (C) 2015 Elsevier Ltd. All rights reserved.
机译:作为提高建筑业生产率的有效策略,预制建筑已引起全球关注。这项研究调查了许多实际建筑项目中预制构件的生命周期能耗以及对总体现能耗的相应影响。结果表明,预制构件的生命周期能耗范围从预制楼梯的7.33 GJ / m(3)到预制楼梯的13.34 GJ / m(3)。回收过程可实现16%-24%的能耗降低。这项研究还发现,除了可重复使用性之外,减少废物和高质量控制还可以节省能源,从而节省了整个生命周期能耗的4%-14%。所有这些优点可以看作是预制建筑提供的重要的环境友好策略。线性回归分析表明,平均能源消耗增量与预制率几乎呈线性关系。与传统的施工方法相比,预制的外墙和形式被确定为能源密集型组件。因此,挑战在于提高预制技术的完整性和质量,同时降低其对高能耗材料的依赖性。此外,应将注意力集中在改善预制市场的成熟度上,以避免在前期调查期间增加能耗。 (C)2015 Elsevier Ltd.保留所有权利。

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