Yu Yang, Yuan Chong-Yang, Dong Meng-Jie, Qu Xiu-Bo, Zhang Ji-Chuan, Wang Xiao-Yan
Department of Cariology and Endodontology, Peking University School and Hospital of Stomatology, Beijing, China.
Beijing Engineering Research Center of Advanced Elastomers, Beijing University of Chemical Technology, Beijing, China.
J Dent Sci. 2023 Jan;18(1):9-16. doi: 10.1016/j.jds.2022.08.003. Epub 2022 Aug 26.
BACKGROUND/PURPOSE: Effective filling of the lateral canals is of great significance in successful root canal treatment, but it is generally being challenging. This study aimed to evaluate the influence of relative positions of the heat carrier and lateral canal opening on gutta-percha obturation of lateral canals in a three-dimensional (3D)-printed model.
Thermal conductivity and real-time temperature transmission of gutta-percha were investigated using laser flash and thermal infrared analyses. 3D-printed root canal models with lateral canals at 1, 3, and 5 mm from the apex were fabricated, and different relative positions of the heat carrier were tested. The obturation process was recorded on video, and the obturation depth of the lateral canals was observed using X-ray micro-computed tomography.
Gutta-percha showed low thermal conductivity of 1.07 W/(m·K), and heating increased the temperature of gutta-percha above 60 °C only within 1 mm beyond the heat carrier tip. For lateral canals at 1 and 3 mm from the apex, gutta-percha penetrated further with deeper penetration of the heat carrier ( < 0.05). For 5-mm lateral canals, the heat carrier was always at apical level and the gutta-percha obturation depth was more at 2 mm apically than at 3 or 4 mm ( < 0.05).
Gutta-percha is a poor thermal conductor. The position of the heat carrier in relation to the lateral canal opening affects obturation depth. Only when the heat carrier reaches or passes the lateral canal opening can gutta-percha penetrate a lateral canal.
背景/目的:侧支根管的有效充填对根管治疗的成功具有重要意义,但通常具有挑战性。本研究旨在评估在三维(3D)打印模型中,热载体与侧支根管口的相对位置对侧支根管牙胶尖充填的影响。
采用激光闪光法和热红外分析法研究牙胶尖的热导率和实时温度传递。制作根尖1、3和5mm处有侧支根管的3D打印根管模型,并测试热载体的不同相对位置。用视频记录充填过程,并用X射线显微计算机断层扫描观察侧支根管的充填深度。
牙胶尖的热导率较低,为1.07W/(m·K),加热仅使热载体尖端1mm范围内的牙胶尖温度升高至60℃以上。对于根尖1和3mm处的侧支根管,热载体插入越深,牙胶尖的穿透越深(P<0.05)。对于5mm处的侧支根管,热载体始终位于根尖水平,牙胶尖在根尖2mm处的充填深度大于在3或4mm处(P<0.05)。
牙胶尖是一种不良的热导体。热载体相对于侧支根管口的位置影响充填深度。只有当热载体到达或通过侧支根管口时,牙胶尖才能进入侧支根管。