Shakouri Ehsan, Mobini Alimohammad
Faculty of Engineering, Islamic Azad University-North Tehran Branch, Tehran, Iran.
Proc Inst Mech Eng H. 2019 Apr;233(4):424-431. doi: 10.1177/0954411919832038. Epub 2019 Mar 7.
The performance of airbag and its deployment are based on a fast exothermic-chemical reaction. The hot gas resulting from the chemical reaction which results in airbag deployment can cause thermal damage and skin burning for the car passenger. The thermal burns due to airbags are of two types: burns due to direct contact with the airbag surface and burns resulting from exposure to the hot gas leaving the deflation vents of the airbag. In this research, for experimental study of the burns resulting from exposure of the skin to airbag, using infrared thermography, the extent of temperature rise of the airbag surface was detected and measured from the zero moment of its inflation. Next, using Henriques equation, the extent of thermal damage caused by airbag deployment and its resulting burn degree was calculated. The results indicated that during the inflation of airbag, the maximum temperature of its surface can be 92 °C ± 2 °C. Furthermore, if the vehicle's safety system functions within the predicted time intervals, the risk of thermal damage is virtually zero. However, if even a slight delay occurs in detachment of the passenger's head and face off the airbag, second- and third-degree burns could develop.
安全气囊的性能及其展开基于快速的放热化学反应。化学反应产生的热气导致安全气囊展开,这可能会对车内乘客造成热损伤和皮肤灼伤。安全气囊造成的热灼伤有两种类型:因直接接触安全气囊表面而导致的灼伤,以及因暴露于从安全气囊放气口排出的热气而导致的灼伤。在本研究中,为了对皮肤暴露于安全气囊导致的灼伤进行实验研究,使用红外热成像技术,从安全气囊充气的零时刻开始检测并测量其表面温度上升的程度。接下来,使用亨里克斯方程,计算安全气囊展开造成的热损伤程度及其导致的烧伤程度。结果表明,在安全气囊充气过程中,其表面的最高温度可达92°C±2°C。此外,如果车辆的安全系统在预测的时间间隔内正常运行,热损伤的风险几乎为零。然而,如果乘客的头部和面部与安全气囊分离哪怕稍有延迟,就可能会出现二度和三度烧伤。