Baldry Mark, Timchenko Victoria, Menictas Chris
School of Mechanical and Manufacturing Engineering, University of New South Wales, Kensington 2033, NSW, Australia.
School of Mechanical and Manufacturing Engineering, University of New South Wales, Kensington 2033, NSW, Australia.
J Therm Biol. 2018 Aug;76:8-20. doi: 10.1016/j.jtherbio.2018.06.008. Epub 2018 Jun 25.
This study presents a novel, thermoelectric cryotherapy cap that aims to provide effective and controlled scalp cooling to prevent hair loss for chemotherapy patients. The cap's design consists of multiple thermoelectric coolers (TECs) evenly spaced and bonded to a soft thermal interface material, tightly fitted to a patient's head. A numerical model is developed to assess the performance of alternative cap designs in relation to their ability to achieve hair follicle hypothermia. Under ideal conditions, 26.5 W of heat removal from the scalp is required to achieve the clinically-significant follicle temperature target of 22 °C. Temperature maps of the subcutaneous tissue are generated to visualise the development of hypothermic follicles, and thereby assess the effectiveness of the cap design. Transient studies show that cooling to the therapeutic temperature can be achieved within 40 min. To avoid the possibility of cold-induced tissue damage, individual thermoelectric cooling modules should not be operated at a cooling flux beyond approximately 3175 W/m. This may be achieved with 38 modules evenly spaced in a checkerboard arrangement, each providing 0.7 W of cooling to the scalp.
本研究提出了一种新型的热电冷冻疗法帽,旨在为化疗患者提供有效且可控的头皮冷却,以防止脱发。该帽的设计由多个均匀间隔并粘结到柔软热界面材料上的热电冷却器(TEC)组成,紧密贴合患者头部。开发了一个数值模型,以评估替代帽设计在实现毛囊低温方面的性能。在理想条件下,需要从头皮去除26.5瓦的热量,才能达到22°C这一具有临床意义的毛囊温度目标。生成皮下组织的温度图,以可视化低温毛囊的发展,从而评估帽设计的有效性。瞬态研究表明,在40分钟内可冷却至治疗温度。为避免冷诱导组织损伤的可能性,单个热电冷却模块的运行冷却通量不应超过约3175瓦/平方米。这可以通过38个模块以棋盘状均匀间隔排列来实现,每个模块为头皮提供0.7瓦的冷却。