Comparison of observational ergonomic methods: a case study in the automotive industry

André Cardoso, Hatice K Gonçalves, Guilherme Deola Borges, Ana Pombeiro, Ana Colim, P. Carneiro, P. Arezes
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Abstract

The increased automation of the car manufacturing process, in which much of the assembly has been delegated from man to machine, has done much to relieve workers of the burden of heavy lifting. However, despite ergonomic improvements in the workplace, many jobs still require workers to perform repetitive tasks [1]. In the automotive industry, Work-related Musculoskeletal Disorders (WMSD) are one of the most common occupational problems due to repetitive working tasks. Workers that perform manual work are often prone to awkward postures, repetitive movements, forceful exertions, and overextensions, which are some of the main factors for the arising of WMSD [2]. Besides, these work-related factors, also the personal factors contribute to the occurrence of this kind of injury, making WMSD a complex condition that involves contributions from many factors [3,4]. The current study aims to compare different observational methods commonly used to assess the WMSD risk in repetitive tasks. To accomplish this goal a case of study in assembly workstation of an automotive company in Portugal was applied. It was selected methods that are widely used by ergonomists and are validated for implementation in the industry [5,6]. Therefore, the following methods were applied to an assembly workstation: (i) Rapid Upper-Limb Assessment (RULA), (ii) Occupational Repetitive Actions (OCRA), (ii) Key Indicator Method – Manual Handling Operations (KIM-MHO), and (iv) Revised Strain Index (RSI) This multi-method approach was very important, as it allowed for a more comprehensive assessment, which will support the proposals for improvement The results show that workstation present a considerable WMSD risk in 3 of 4 methods applied. These results suggest that a change to the workstation is necessary. A possible solution would be to implement a Human-robot collaboration solution, in order to reduce the physical demands associated with repetitive movements [7] to which workers are subjected. [1]Spallek, M.; Kuhn, W.; Uibel, S.; Van Mark, A.; Quarcoo, D. Work-Related Musculoskeletal Disorders in the Automotive Industry Due to Repetitive Work - Implications for Rehabilitation. J. Occup. Med. Toxicol. 2010, 5 (1), 1–6. https://doi.org/10.1186/1745-6673-5-6.[2]Naik, G.; Khan, M. R. Prevalence of MSDs and Postural Risk Assessment in Floor Mopping Activity Through Subjective and Objective Measures. Saf. Health Work 2020, 11 (1), 80–87. https://doi.org/10.1016/j.shaw.2019.12.005.[3]Park, J.; Kim, Y.; Han, B. Work Sectors with High Risk for Work-Related Musculoskeletal Disorders in Korean Men and Women. Saf. Health Work 2018, 9 (1), 75–78. https://doi.org/10.1016/j.shaw.2017.06.005.[4]Thetkathuek, A.; Meepradit, P.; Sa-ngiamsak, T. A Cross-Sectional Study of Musculoskeletal Symptoms and Risk Factors in Cambodian Fruit Farm Workers in Eastern Region, Thailand. Saf. Health Work 2018, 9 (2), 192–202. https://doi.org/10.1016/j.shaw.2017.06.009.[5]Dempsey, P. G.; Mcgorry, R. W.; Maynard, W. S. A Survey of Tools and Methods Used by Certified Professional Ergonomists. Appl. Ergon. 2005, 36, 489–503. https://doi.org/10.1016/j.apergo.2005.01.007.[6]Pascual, S. A.; Naqvi, S. An Investigation of Ergonomics Analysis Tools Used in Industry in the Identification of Work-Related Musculoskeletal Disorders An Investigation of Ergonomics Analysis Tools Used in Industry in the Identification of Work-Related Musculoskeletal Disorders. Int. J. Occup. Saf. Ergon. 2015, 3548 (2), 237–245. https://doi.org/10.1080/10803548.2008.11076755.[7]Colim, A.; Faria, C.; Cunha, J.; Oliveira, J.; Sousa, N.; Rocha, L. Physical Ergonomics Improvement and Safe Design of an Assembly Workstation with Collaborative Robotics. Saf. (Unpublished under-review) 2021, 1–19.
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观察人体工程学方法的比较:以汽车工业为例
汽车制造过程的自动化程度越来越高,其中大部分组装工作已从人交给机器,这大大减轻了工人搬运重物的负担。然而,尽管工作场所的人体工程学有所改进,但许多工作仍然需要工人执行重复的任务。在汽车工业中,与工作相关的肌肉骨骼疾病(WMSD)是由于重复性工作任务而引起的最常见的职业问题之一。从事体力劳动的工人往往姿势笨拙、动作重复、用力过猛和伸展过度,这些都是造成WMSD[2]的主要因素。除了这些与工作相关的因素外,个人因素也会导致此类伤害的发生,使WMSD成为一种复杂的疾病,涉及多种因素[3,4]。本研究旨在比较用于评估重复性工作中WMSD风险的不同观察方法。为实现这一目标,以葡萄牙某汽车公司的装配工作站为例进行了研究。所选择的方法被人类工效学家广泛使用,并在行业中得到了验证[5,6]。因此,将以下方法应用于装配工作站:(i)快速上肢评估(RULA)、(ii)职业重复动作(OCRA)、(ii)关键指标方法-手动处理操作(kimmho)和(iv)修订应变指数(RSI)这种多方法方法非常重要,因为它允许进行更全面的评估,这将支持改进建议。结果显示,在应用的4种方法中,有3种工作站存在相当大的WMSD风险。这些结果表明,更换工作站是必要的。一种可能的解决方案是实现人机协作解决方案,以减少与工人遭受的重复性运动[7]相关的体力需求。[1] Spallek m;库恩,w;Uibel,美国;范马克,A.;重复性工作引起的汽车工业中与工作相关的肌肉骨骼疾病-对康复的影响。j . Occup。医学毒物,2010,5(1),1 - 6。https://doi.org/10.1186/1745 - 6673 - 5 - 6所示。[2]奈克,g;主客观测量中拖地活动中MSDs患病率和姿势风险评估。Saf。卫生工作2020,11(1),80-87。j . https://doi.org/10.1016/j.shaw.2019.12.005。[3]公园;金,y;韩国男性和女性与工作相关的肌肉骨骼疾病的高危工作部门。Saf。卫生工作,2018,9(1),75-78。https://doi.org/10.1016/j.shaw.2017.06.005。[4]Thetkathuek, a;Meepradit p;泰国东部地区柬埔寨水果农场工人肌肉骨骼症状和危险因素的横断面研究。Saf。卫生工作,2018,9(2),192-202。https://doi.org/10.1016/j.shaw.2017.06.009.[5]邓普西,p.g.;麦克戈里,r.w.;梅纳德,W. S.《经认证的专业人体工程学专家使用的工具和方法的调查》。达成。生物医学工程学报,2005,36(3):489-503。https://doi.org/10.1016/j.apergo.2005.01.007.[6]帕斯夸尔,s.a;工业中用于识别与工作有关的肌肉骨骼疾病的工效学分析工具的研究。Int。j . Occup。Saf。生物工程学报,2015,35(2),237-245。https://doi.org/10.1080/10803548.2008.11076755。[7]Colim, a;法,c;达,j .;奥利维拉,j .;苏萨:;协同机器人装配工作站的物理工效学改进与安全设计。Saf。(未发表,审稿中)2021,1-19。
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