Simulation-based optimisation using simulated annealing for crew allocation in the precast industry

Al-Bazi, A and Dawood, N (2018) Simulation-based optimisation using simulated annealing for crew allocation in the precast industry. Architectural Engineering and Design Management, 14(1-2), pp. 109-126. ISSN 1745-2007

Abstract

Numerous different combinations of crew alternatives can be deployed within a labour-intensive manufacturing industry. This can therefore often generate a large number of possible crew allocation plans. However, inappropriate selection of these allocation plans tends to lead to inefficient manufacturing processes and ultimately higher labour allocation costs. Thus, in order to reduce such costs, more allocation systems are required. The main aim of this study is to develop a simulation-based multi-layered simulated annealing system to solve crew allocation problems encountered in labour-intensive parallel repetitive manufacturing processes. The 'multi-layered' concept is introduced in response to the problem-solving requirements. As part of the methodology used, a process simulation model is developed to mimic a parallel repetitive processes layout. A simulated annealing module is proposed and embedded into the developed simulation model for a better search for solutions. Also, a multi-layered dynamic mutation operator is developed to add more randomness to the searching mechanism. A real industrial case study of a precast concrete manufacturing system is used to demonstrate the applicability and practicability of the developed system. The proposed system has the potential to produce more cost-effective allocation plans, through reducing process-waiting times as compared with real industrial-based plans.Numerous different combinations of crew alternatives can be deployed within a labour-intensive manufacturing industry. This can therefore often generate a large number of possible crew allocation plans. However, inappropriate selection of these allocation plans tends to lead to inefficient manufacturing processes and ultimately higher labour allocation costs. Thus, in order to reduce such costs, more allocation systems are required. The main aim of this study is to develop a simulation-based multi-layered simulated annealing system to solve crew allocation problems encountered in labour-intensive parallel repetitive manufacturing processes. The 'multi-layered' concept is introduced in response to the problem-solving requirements. As part of the methodology used, a process simulation model is developed to mimic a parallel repetitive processes layout. A simulated annealing module is proposed and embedded into the developed simulation model for a better search for solutions. Also, a multi-layered dynamic mutation operator is developed to add more randomness to the searching mechanism. A real industrial case study of a precast concrete manufacturing system is used to demonstrate the applicability and practicability of the developed system. The proposed system has the potential to produce more cost-effective allocation plans, through reducing process-waiting times as compared with real industrial-based plans.

Item Type: Article
Uncontrolled Keywords: parallel repetitive processes; crew allocation; precast concrete industry; manufacturing simulation; simulated annealing; case studies; multilayers; annealing; simulation; computer simulation; concrete industry; problem solving; manufacturing; precast concrete; reinforced concrete; manufacturing industry
Index terms: module, reinforced concrete, problem solving, precast concrete, precast concrete industry, manufacturing simulation, annealing, methodology, parallel repetitive process, simulated annealing, simulation-based optimization, case study, process simulation, crew allocation, manufacturing process, multilayer, computer simulation, manufacturing industry, concrete industry
Subjects: management, manufacturing engineering, architectural elements, specialized materials and systems, algorithms, decision-making and reasoning, research methods, performance, industry analysis, data collection methods, materials science, building materials, modelling and simulation
Topics: Site Management, Design Practice, Digital Applications, Quality Management, Business Strategy, Research Practice, Engineering Principles, Construction Materials
Descriptive scope: 5 PCTEA

N.B. Descriptive scope is a count of how many of the five facets of empirical research are indicated by the words used in title, abstract and keywords. It is not intended as a judgement on the research; merely a count of the kind of word we would expect to indicate Phenomenon, Concepts, Theoretical framing, Empirical techniques, Analytical techniques. If all five are present, then a code of “5 PCTEA” will indicate this. If you feel the coding for this record is questionable, we welcome discussion around the terms we matched or the way we categorized them. The facet you would expect may not be coded, or a facet may be coded inappropriately. This can also bear on a larger question, of which facets should be treated as defining in construction management research. Please get in touch, and we will look at it. More details here