Abstract
Heat stroke is a life-threatening condition requiring rapid recognition and immediate cooling. Cold water immersion (CWI) is the most effective cooling modality; however, its adoption and use by emergency medical services (EMS) agencies has been limited and described primarily in case reports. In 2024, the Phoenix Fire Department (PFD) implemented a novel rapid-cooling bag and protocol for prehospital CWI across a large urban area. This study describes the implementation, patient characteristics, cooling effectiveness, and clinical outcomes of the program.
This retrospective observational study included adults with heat stroke who were treated with the PFD prehospital CWI protocol between May 1 and September 30, 2024. Prehospital, emergency department (ED), and inpatient data were evaluated from EMS charts and electronic medical records across four hospital systems. Descriptive statistics summarized demographics, treatment characteristics, cooling duration, temperature change, neurologic trajectory, and outcomes.
One hundred and eighty-three patients met study criteria as having a tympanic temperature of at least 40 °C with central nervous system dysfunction, attributable to or associated with environmental heat exposure. The median prehospital tympanic temperature was 41.4° ± 0.9 °C, and nearly one-third presented with temperatures above 42.2 °C. Median prehospital immersion time was 13.5 minutes (9-17.8, range 5-66). Prehospital time was defined as care provided outside the hospital prior to ED arrival and transfer of care. Temperature decreased from prehospital to emergency department arrival in 72.1% of patients with an average decrease of 2.0 ± 1.5 °C. The median GCS increased from prehospital, 8 (4-10), to hospital arrival, 9 (3 - 14), and hospital discharge, 15 (14-15). Survival decreased with increasing prehospital temperature and was lowest among those presenting at or above 42.2 °C. One hundred and twenty-seven (69.4%) patients were discharged neurologically intact (GCS = 15).
A prehospital CWI protocol is feasible in a large urban EMS system and provides rapid temperature reduction and improved neurologic status in patients with heat stroke. The findings suggest a meaningful clinical benefit and broad operational feasibility. Further prospective, multicenter studies are needed to define the resulting impact, optimize workflows, and guide wider adoption of prehospital immersion cooling.