Kehoe Patrick, Gibb Keely, Hurley Jason, Langlois Robert G, Green James R, Chan Adrian Dc, Toma Elton, Aubertin Cheryl, Greenwood Kim, Ibey Andrew, Redpath Stephanie
Department of Mechanical and Aerospace Engineering, Carleton University, Ottawa, ON, Canada.
National Research Council Canada, Ottawa, ON, Canada.
Proc Inst Mech Eng H. 2024 Feb;238(2):170-186. doi: 10.1177/09544119231219531. Epub 2024 Jan 25.
Exposure to excessive whole-body vibration is linked to health issues and may result in increased rates of mortality and morbidity in infants. Newborn infants requiring specialized treatment at neonatal intensive care units often require transportation by road ambulance to specialized care centers, exposing the infants to potentially harmful vibration and noise. A standardized Neonatal Patient Transport System (NPTS) has been deployed in Ontario, Canada, that provides life saving equipment to patients and safe operation for the clinical care staff. However, there is evidence that suggests patients may experience a higher amplitude of vibration at certain frequencies when compared with the vehicle vibration. In a multi-year collaborative project, we seek to create a standardized test procedure to evaluate the levels of vibration and the effectiveness of mitigation strategies. Previous studies have looked at laboratory vibration testing of a transport system or transport incubator and were limited to single degree of freedom excitation, neglecting the combined effects of rotational motion. This study considers laboratory testing of a full vehicle and patient transport system on an MTS Model 320 Tire-Coupled Road Simulator. The simulation of road profiles and discrete events on a tire-coupled road simulator allows for the evaluation of the vibration levels of the transport system and the exploration of mitigation strategies in a controlled setting. The tire-coupled simulator can excite six degrees-of-freedom motion of the transport system for vibration evaluation in three orthogonal directions including the contributions of the three rotational degrees of freedom. The vibration data measured on the transport system during the tire-coupled testing are compared to corresponding road test data to assess the accuracy of the vibration environment replication. Three runs of the same drive file were conducted during the laboratory testing, allowing the identification of anomalies and evaluation of the repeatability. The tire-coupled full vehicle testing revealed a high level of accuracy in re-creating the road sections and synthesized random profiles. The simulation of high amplitude discrete events, such as speed hump traverses, were highly repeatable, yet yielded less accurate results with respect to the peak amplitudes at the patient. The resulting accelerations collected at the input to the manikin (sensor located under the mattress) matched well between the real-world and road simulator. The sensors used during testing included series 3741B uni-axial and series 356A01 tri-axial accelerometers by PCB Piezotronics. These results indicate a tire-coupled road simulator can be used to accurately evaluate vibration levels and assess the benefits of future mitigation strategies in a controlled setting with a high level of repeatability.
全身暴露于过度振动与健康问题相关,可能导致婴儿死亡率和发病率上升。在新生儿重症监护病房需要特殊治疗的新生儿通常需要通过公路救护车转运至专科护理中心,这会使婴儿暴露于潜在有害的振动和噪音中。加拿大安大略省已部署了标准化的新生儿患者转运系统(NPTS),该系统为患者提供救生设备,并为临床护理人员提供安全操作保障。然而,有证据表明,与车辆振动相比,患者在某些频率下可能会经历更高幅度的振动。在一个多年合作项目中,我们试图创建一个标准化测试程序,以评估振动水平和缓解策略的有效性。以往的研究着眼于运输系统或运输保育箱的实验室振动测试,且仅限于单自由度激励,忽略了旋转运动的综合影响。本研究考虑在MTS 320型轮胎耦合道路模拟器上对整车和患者运输系统进行实验室测试。在轮胎耦合道路模拟器上模拟道路轮廓和离散事件,可以评估运输系统的振动水平,并在可控环境中探索缓解策略。轮胎耦合模拟器可以激发运输系统的六个自由度运动以在三个正交方向上进行振动评估,包括三个旋转自由度的影响。将轮胎耦合测试期间在运输系统上测量的振动数据与相应的道路测试数据进行比较,以评估振动环境复制的准确性。在实验室测试期间对相同的驱动文件进行了三次运行,以便识别异常情况并评估重复性。轮胎耦合整车测试表明,在重现路段和合成随机轮廓方面具有很高的准确性。对高幅度离散事件(如通过减速带)的模拟具有高度可重复性,但在患者处的峰值幅度方面产生的结果准确性较低。在人体模型输入处(位于床垫下方的传感器)收集的实际加速度与道路模拟器中的结果匹配良好。测试期间使用的数据采集器包括PCB Piezotronics公司的3741B系列单轴和356A01系列三轴加速度计。这些结果表明,轮胎耦合道路模拟器可用于在具有高度可重复性的可控环境中准确评估振动水平,并评估未来缓解策略的效果。