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An Environmental and Economic Trade-off Analysis of Manufacturing Process Chains to Inform Decision Making for Sustainability.

机译:制造过程链的环境与经济权衡分析,以为可持续性决策提供依据。

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摘要

Increasing costs, consumer awareness, and environmental legislation have driven industry to reduce its resource consumption and the impact from that consumption. So, both traditional economic objectives (e.g., cost, time, and quality) and environmental objectives (e.g., CO2 emissions) have become strategically relevant for the manufacturing sector. For many manufacturing companies, production systems have a major influence on the environmental footprint of a product and therefore represent a major opportunity to minimize the company's overall environmental impact. Currently within industry, there is not an accurate, effective, or widely accepted method to assess the resource consumption of process chains used to manufacture a product. As a result, this information is often not considered when making decisions about what processes to use. A considerable part of the energy and resource demand in manufacturing is determined during production planning. An important component of this planning is determining the process chains to be used. Process chains are a combined sequence of specifically arranged, single processes used to manufacture a product. As manufacturing processes are very resource intensive, it is now necessary to assess the resource consumption as well as the economics of these process chains. Because of this, additional information must be considered when selecting the process chains used to manufacture a product.;Many life cycle assessment (LCA) tools focus on the materials and final disposition of a product, but do not include detailed information or data on the manufacturing required to fabricate the product. Sustainability impacts of discrete manufacturing processes and product value streams are needed to develop more complete LCAs. The development of a methodology and user tool to quantify sustainability impacts, leading to the identification of gaps and opportunities, is essential to facilitate decision making to support sustainability in manufacturing facilities.;To address these issues, this dissertation proposes an approach to evaluate and quantify the resource use in addition to the environmental and economic impacts associated with discrete manufacturing processes as part of a complex process chain. A methodology to evaluate multiple process chain configurations will be presented.;First, a database of industrial assessment metrics was compiled. This database allows users to sort and select from a list of key metrics in order to choose the metrics that are relevant for the performance that they want to measure. Next, an industrial assessment methodology was developed. This methodology gives users an overview of the key areas to address when conducting an industrial assessment. This methodology, which was applied to three case studies, can be used in combination with the key metrics.;In the second part of the dissertation, a resource consumption assessment and mapping methodology for complex manufacturing process chains was developed. This systematic methodology was developed to identify and quantify the resource consumption (energy, water, materials) for discrete manufacturing processes. The processes mapped include: welding (manual and robotic), cutting (plasma arc and laser), rework (air carbon arc cutting and hand grinding), and machining (milling).;Next, a model consisting of database modules for each process was developed. This model quantifies the sustainability impacts (energy, water, and material consumption, waste generation, emissions, and resource consumption cost) of manufacturing process chains. The model was validated using a case study with Caterpillar Inc. for a process chain including welding, plasma arc cutting, laser cutting, and milling.;Next, a process chain assessment tool was created. This tool enables manufacturers to assess the resource consumption and associated impacts of multiple fabrication process chain configurations. This enables a more comprehensive assessment compared to other software tools. Finally, a methodology modeled after the Six Sigma DMAIC (Define, Measure, Analyze, Improve, Control) process was presented to show how to translate the results from the model and tool to an Environmental Value Stream Map and to translate those results into improvements in manufacturing systems. This methodology was validated on a machining operation in a Caterpillar facility.;This research has developed and evaluated an effective approach for the analysis of energy, water, and other resource use in multiple processes in a manufacturing process chain. This allows manufacturers to better understand the resource consumption and environmental and economic impacts of fabrication process chains used to make a product. This dissertation helps to provide the technical understanding and tools to enable designers and manufacturing engineers to create manufacturing systems that are truly more sustainable. The implementation of this work can be directly applied to assessing and optimizing manufacturing process chains and the work presented in this dissertation directly contributes to the realization of a sustainable and prosperous manufacturing sector.
机译:成本增加,消费者意识增强和环境法规推动了行业减少其资源消耗以及该消耗的影响。因此,传统的经济目标(例如,成本,时间和质量)和环境目标(例如,CO2排放量)在战略上都与制造业相关。对于许多制造公司而言,生产系统对产品的环境足迹具有重大影响,因此,这是将公司整体环境影响降至最低的主要机会。当前在工业中,没有一种准确,有效或被广泛接受的方法来评估用于制造产品的过程链的资源消耗。因此,在决定要使用的过程时,通常不会考虑此信息。生产计划中确定了制造中相当一部分能源和资源需求。该计划的重要组成部分是确定要使用的过程链。工艺链是用于制造产品的专门安排的单个工艺的组合序列。由于制造过程非常耗费资源,因此现在有必要评估资源消耗以及这些过程链的经济性。因此,在选择用于制造产品的过程链时,必须考虑其他信息。;许多生命周期评估(LCA)工具都专注于产品的材料和最终处置,但不包括有关产品的详细信息或数据。制造产品所需的制造。开发更完整的LCA需要离散制造过程和产品价值流的可持续性影响。开发一种方法和用户工具以量化可持续性影响,从而找出差距和机遇,对于促进决策以支持制造设施的可持续性至关重要。为了解决这些问题,本论文提出了一种评估和量化方法除了与离散制造过程相关的环境和经济影响外,还作为复杂过程链的一部分使用资源。将提出一种评估多个过程链配置的方法。首先,建立了工业评估指标数据库。该数据库允许用户对关键指标的列表进行排序和选择,以便选择与他们要衡量的性能相关的指标。接下来,开发了一种工业评估方法。该方法为用户提供了进行工业评估时要解决的关键领域的概述。该方法应用于三个案例研究,可以与关键指标结合使用。在论文的第二部分,开发了一种用于复杂制造过程链的资源消耗评估和绘图方法。开发这种系统的方法论是为了识别和量化离散制造过程的资源消耗(能源,水,材料)。映射的过程包括:焊接(手动和机器人),切割(等离子弧和激光),返工(空气碳弧切割和手工研磨)和机加工(铣削)。接下来,一个模型由每个过程的数据库模块组成发达。该模型量化了制造流程链的可持续性影响(能源,水和材料消耗,废物产生,排放和资源消耗成本)。使用Caterpillar Inc.的案例研究对模型进行了验证,该模型用于包括焊接,等离子弧切割,激光切割和铣削的过程链。接下来,创建了过程链评估工具。该工具使制造商能够评估资源消耗以及多个制造过程链配置的相关影响。与其他软件工具相比,这可以进行更全面的评估。最后,提出了一种以六西格玛DMAIC(定义,测量,分析,改进,控制)流程为模型的方法,以说明如何将模型和工具的结果转换为环境价值流图,并将这些结果转化为改进后的结果。制造系统。该方法论已在卡特彼勒工厂的机加工操作中得到验证。该研究已经开发并评估了一种有效的方法来分析能量,水以及制造流程链中多个流程中的其他资源使用。这使制造商可以更好地了解资源消耗以及用于制造产品的制造过程链的环境和经济影响。本文有助于提供技术理解和工具,以使设计师和制造工程师能够创建真正更可持续的制造系统。这项工作的实施可以直接用于评估和优化制造过程链,而本文中提出的工作直接有助于实现可持续和繁荣的制造业。

著录项

  • 作者

    Robinson, Stefanie Lynn.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Engineering Mechanical.;Sustainability.;Engineering Industrial.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 243 p.
  • 总页数 243
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:17

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