Heatwaves and Occupational Health: Emerging Risks and Adaptive Public Health Strategies Under Climate Change—A Narrative Review
Abstract
1. Introduction
- What are the primary physiological mechanisms and health impact pathways through which extreme heatwaves affect occupational populations?
- Why do existing workplace heat adaptation strategies often underperform, and what structural constraints limit their implementation?
- What integrated strategies can enhance occupational heat resilience across diverse climatic, economic, and regulatory contexts?
2. Methodology
3. Global and National Trends in the Prevalence of Heatwaves
4. Research Focuses on Heatwaves
4.1. Definition of Heatwaves
4.2. Determinants and Drivers of Heatwaves
5. Health Impacts and Physiological Mechanisms of Heatwaves
5.1. Acute Heat-Related Illnesses
5.2. Chronic Diseases
5.3. Mental Health Issues
5.4. Infectious Disease Risks
6. Occupational Health Risks from Heatwaves
7. Quantitative Assessment and Prediction of Heatwaves
7.1. Calculation and Occupational Monitoring of Heatwaves
7.2. Heatwave Detection and Forecasting
8. Response Measures and Resilience Building for Extreme Heat Events
8.1. Strengthening Urban and Regional Heatwave Response Systems
8.2. Enhancing Occupational Heat Resilience
9. Conclusions
10. Strengths and Limitations of This Review
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Category | Health Outcome | Key Evidence/Findings | Occupational Relevance | References |
|---|---|---|---|---|
| Acute Heat-Related Illnesses | Heat cramps | Caused by fluid and sodium loss during physical activity; early warning sign of heat exhaustion | Disproportionately observed among outdoor and manual workers | [56,57] |
| Heat exhaustion | Most common heat illness; symptoms include headache, dizziness, syncope | Triggered by combined high ambient temperature and dehydration during work | [57] | |
| Heat stroke | Systemic inflammatory response, coagulation dysfunction, multi-organ injury | ED visit rates rise ~75% per 1 °C above 22 °C; repeated occupational exposure lowers onset threshold | [58,60,61,62,63,64] | |
| Chronic Diseases | Cardiovascular disease | Increased ACS risk; synergistic effect with particulate matter | Sustained metabolic heat production amplifies cardiovascular strain | [67,68,69] |
| Chronic kidney disease | Recurrent dehydration → subclinical AKI → cumulative renal damage | Documented in sugarcane workers in Central America, India, Sri Lanka | [70,71,72] | |
| Diabetes/Hyperglycemia | Higher prevalence in high-temperature worker groups (3.8% vs. 1.8%) | Autonomic dysfunction and impaired glucose tolerance under heat | [75,76,77] | |
| Mental Health | Affective disorders | Hospital admissions increase 7.3% during heatwaves (>26.7 °C) | Additional risks from physical fatigue, sleep disruption, productivity pressure | [79] |
| Neuroses | Hospital admissions increase 9.1% during heatwaves | Cognitive strain may impair safety-critical performance | [79] | |
| Developmental disorders | Hospital admissions increase 64% during heatwaves | Limited occupation-specific evidence | [79] | |
| Infectious Diseases | Vector-borne diseases | Altered vector physiology and distribution; expanded mosquito breeding | Outdoor workers face prolonged environmental exposure | [90,92] |
| COVID-19 | Temporal co-occurrence with heatwave surges documented | Altered work–rest cycles and reduced protective measures | [84] | |
| Occupational-Specific | Chemical toxicity | Enhanced absorption via increased ventilation and vasodilation | Workers exposed to hazardous chemicals at heightened risk | [99] |
| Occupational injuries | Reduced performance and cognitive function | Accident risk increases under extreme temperatures | [100,101] | |
| Neurasthenia | Reported in workers with prolonged heat exposure | Direct occupational exposure evidence | [101] |
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Wang, X.; Hu, L.; Zhang, S.; Hong, S.; Zhu, Z.; Hu, G.; Jia, G. Heatwaves and Occupational Health: Emerging Risks and Adaptive Public Health Strategies Under Climate Change—A Narrative Review. Climate 2026, 14, 83. https://doi.org/10.3390/cli14040083
Wang X, Hu L, Zhang S, Hong S, Zhu Z, Hu G, Jia G. Heatwaves and Occupational Health: Emerging Risks and Adaptive Public Health Strategies Under Climate Change—A Narrative Review. Climate. 2026; 14(4):83. https://doi.org/10.3390/cli14040083
Chicago/Turabian StyleWang, Xiaoli, Lihua Hu, Siyu Zhang, Shiyi Hong, Ziqi Zhu, Guiping Hu, and Guang Jia. 2026. "Heatwaves and Occupational Health: Emerging Risks and Adaptive Public Health Strategies Under Climate Change—A Narrative Review" Climate 14, no. 4: 83. https://doi.org/10.3390/cli14040083
APA StyleWang, X., Hu, L., Zhang, S., Hong, S., Zhu, Z., Hu, G., & Jia, G. (2026). Heatwaves and Occupational Health: Emerging Risks and Adaptive Public Health Strategies Under Climate Change—A Narrative Review. Climate, 14(4), 83. https://doi.org/10.3390/cli14040083

