Self-Resilient Reconfigurable Assembly Systems with In-process Quality Improvement
Self-Resilient Reconfigurable Assembly Systems with In-process Quality Improvement
批准号:
EP/K019368/1
负责人:
Darek Ceglarek
金额:
$255.22万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2013
资助国家:
英国
项目状态:
已结题
起止时间:
2013 至 --
中文摘要
全球化和不断变化的客户需求导致了产品的定制化、多样性和上市时间,加剧了汽车、航空航天和全球制造业的巨大竞争。制造商面临着巨大的压力,要在不牺牲质量的情况下快速、经济地满足不断变化的客户需求。为了应对这些挑战,制造商提供了灵活且可重新配置的装配系统。然而,一个主要的挑战是如何以低投资和能力获得高产品质量和生产能力的产品系列的产量灵活性,同时允许快速生产。克服这些挑战涉及三个方面的要求,这是本方案的重点:(1)模型可重构装配系统体系结构。系统架构应有目的地考虑到由产品系列组合和产品需求引发的未来不确定性。这将需要最大限度地减少系统的可变性,同时最大化系统的可重用性,以保持成本;(2)开发新的方法,能够根据给定的系统可变性要求预测工艺能力和管理产品质量;以及(3)利用新兴技术并将它们快速集成到现有的生产系统中,例如,新的连接工艺(远程激光焊接)和新材料。该项目将通过开发具有自我弹性的可重构装配系统来解决这些因素,该系统能够从(I)6-sigma质量故障中自我恢复;以及(Ii)设计和制造中的变化。通过这样做,它将在以下方面超越最新水平和实践:(1)由于当前的系统架构在应对不断变化的要求方面面临重大挑战,这一举措将通过整合不确定性模型、必要变化的决策模型和系统变化模型,纳入涉及必要变化的成本、时间和风险;(2)目前的过程中质量监测系统使用基于点的测量,有限的6西格玛故障根本原因识别。它们很少快速纠正操作缺陷,并且没有提供深入的信息来了解与零件和子组件变形相关的制造缺陷并对其进行建模。通常,现有的基于表面的扫描仪用于零件检测,而不是过程中的质量控制。该项目将把基于表面的在线测量与自动根本原因分析、前馈/反馈过程调整和控制相结合,以增强系统对故障或质量/生产率下降的反应。该研究将针对具有多扇区应用的可重构装配系统进行。它将涉及以下方面的系统可变性/适应性和过程中质量改进:(I)用于实施新兴连接技术的汽车车门组件,例如远程激光焊接(RLW),用于精确的闭环系统表面质量控制;(Ii)机身组件,用于预测工艺能力,也用于精确的闭环系统表面质量控制。结果将给英国的高附加值制造业带来显著的好处。它将通过加速引入新的生态友好型工艺,例如RLW,进一步加强该部门。它将促进一系列学科的跨学科合作,如数据挖掘和过程挖掘、先进计量学、制造和复杂性科学等。可重构装配系统(RAS)与过程中质量改进(IPQI)的集成是一个新兴领域,这一倡议将有助于将其发展成为一个国际重要的研究领域。研究结果将为工程课程的组成部分提供参考,尤其是与培养未来工程师领导高价值制造业和数字经济有关的内容。
英文摘要
Globalization and ever-changing customer demands resulting in product customization, variety and time to market have intensified enormous competition in automotive and aerospace, manufacturing worldwide. Manufacturers are under tremendous pressures to meet changing customer needs quickly and cost effectively without sacrificing quality. Responding to these challenges manufacturers have offered flexible and reconfigurable assembly systems. However, a major challenge is how to obtain production volume flexibility for a product family with low investment and capability to yield high product quality and throughput while allowing quick production ramp-up. Overcoming these challenges involves three requirements which are the focus of this proposal: (1) Model reconfigurable assembly system architecture. The system architecture should purposefully take into account future uncertainties triggered by product family mix and product demands. This will require minimizing system changeability while maximizing system reusability to keep cost down; (2) Develop novel methodologies that can predict process capability and manage product quality for given system changeability requirements; and (3) Take advantage of emerging technologies & rapidly integrate them into existing production system, for e.g., new joining processes (Remote Laser Welding) and new materials.This project will address these factors by developing a self-resilient reconfigurable assembly system with in-process quality improvement that is able to self-recover from (i) 6-sigma quality faults; and (ii) changes in design and manufacturing. In doing so, it will go beyond state-of-the-art and practice in following ways: (1) Since current system architectures face significant challenges in responding to changing requirements, this initiative will incorporate cost, time and risks involving necessary changes by integrating uncertainty models; decision models for needed changes; and system change modelling; and (2) Current in-process quality monitoring systems use point-based measurements with limited 6-sigma failure root cause identification. They seldom correct operational defects quickly and do not provide in-depth information to understand and model manufacturing defects related to part and subassembly deformation. Usually, existing surface-based scanners are used for parts inspection not in-process quality control. This project will integrate in-line surface-based measurement with automatic Root Cause Analysis, feedforward/feedback process adjustment and control to enhance system response to fault or quality/productivity degradation. The research will be conducted for reconfigurable assembly system with multi-sector applications. It will involve system changeability/adaptation and in-process quality improvement for: (i) Automotive door assembly for implementing an emerging joining technology, e.g. Remote Laser Welding (RLW), for precise closed-loop surface quality control; and (ii) Airframe assembly for predicting process capability also for precise closed-loop surface quality control. Results will yield significant benefits to the UK's high value manufacturing sector. It will further enhance the sector by accelerating introduction of new emerging eco-friendly processes, e.g., RLW. It will foster interdisciplinary collaboration across a range of disciplines such as data mining and process mining, advanced metrology, manufacturing, and complexity sciences, etc. The integration of reconfigurable assembly systems (RAS) with in-process quality improvement (IPQI) is an emerging field and this initiative will help to engender the development into an internationally important area of research. The results of the research will inform engineering curriculum components especially as these relate to training future engineers to lead the high value manufacturing sector and digital economy.
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DOI:
10.1115/1.4046743
发表时间:
2020-04
期刊:
Journal of Manufacturing Science and Engineering
影响因子:
--
作者:
[Chen Luo;P. Franciosa;Zhijie Mo;D. Ceglarek]
通讯作者:
Chen Luo;P. Franciosa;Zhijie Mo;D. Ceglarek
DOI:
10.1016/j.cirp.2015.04.119
发表时间:
2015-01-01
期刊:
CIRP ANNALS-MANUFACTURING TECHNOLOGY
影响因子:
4.1
作者:
[Ceglarek, Dariusz, Colledani, Marcello, Bolognese, Luca]
通讯作者:
Bolognese, Luca
DOI:
10.1016/j.jmsy.2019.08.003
发表时间:
2019-10-01
期刊:
JOURNAL OF MANUFACTURING SYSTEMS
影响因子:
12.1
作者:
[Babu, Manoj, Franciosa, Pasquale, Ceglarek, Dariusz]
通讯作者:
Ceglarek, Dariusz
DOI:
10.1016/j.cad.2023.103481
发表时间:
2020-10
期刊:
Comput. Aided Des.
影响因子:
--
作者:
[Manoj Babu;P. Franciosa;Prashant Shekhar;D. Ceglarek]
通讯作者:
Manoj Babu;P. Franciosa;Prashant Shekhar;D. Ceglarek
Developing a well-received pre-matriculation program: the evolution of MedFIT.
制定广受好评的预科课程:MedFIT 的演变。
DOI:
10.1007/978-3-319-11970-0_12
发表时间:
2022
期刊:
Discover education
影响因子:
--
作者:
[Allen A]
通讯作者:
Allen A
共 7 条
WIMRC - Star Recruit in Automotive Engineering
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批准号:EP/E044506/1
-
项目类别:Fellowship
-
资助金额:$168.97万
-
财政年份:2007
-
负责人:Darek Ceglarek
-
依托单位:
海外基金