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Journal Article

Citation

Lyu P, Song S. Saf. Health Work 2024; 15(2): 200-207.

Copyright

(Copyright © 2024, Occupational Safety and Health Research Institute)

DOI

10.1016/j.shaw.2024.03.005

PMID

39035802

PMCID

PMC11255939

Abstract

BACKGROUND: Workers are often exposed to hazardous heat due to their work environment, leading to various injuries. As a result of climate change, heat-related injuries (HRIs) are becoming more problematic. This study aims to identify critical contributing factors to the severity of occupational HRIs.

METHODS: This study analyzed historical injury reports from the Occupational Safety and Health Administration (OSHA). Contributing factors to the severity of HRIs were identified using text mining and model-free machine learning methods. The Multinomial Logit Model (MNL) was applied to explore the relationship between impact factors and the severity of HRIs.

RESULTS: The results indicated a higher risk of fatal HRIs among middle-aged, older, and male workers, particularly in the construction, service, manufacturing, and agriculture industries. In addition, a higher heat index, collapses, heart attacks, and fall accidents increased the severity of HRIs, while symptoms such as dehydration, dizziness, cramps, faintness, and vomiting reduced the likelihood of fatal HRIs.

CONCLUSIONS: The severity of HRIs was significantly influenced by factors like workers' age, gender, industry type, heat index , symptoms, and secondary injuries. The findings underscore the need for tailored preventive strategies and training across different worker groups to mitigate HRIs risks.


Language: en

Keywords

Heat-related injuries; Impact factors; Multinomial logit model; Worker safety

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