Zhang Ya, Zhang Yi, Jiang Qin, Wang Hua-Qiao, Qiu Liang-Xing, Wang Chao
Department of Orthodontics, Affiliated Hospital of Stomatology, Chongqing Medical University,Chongqing Key Laboratory of oral Diseases and Biomedical Sciences,Chongqing Municipal Key Laboratory of Oral Biomedical Engineering of Higher Education. Chongqing 401147. E-mail:
Shanghai Kou Qiang Yi Xue. 2018 Apr;27(2):117-122.
To evaluate the biomechanical effect of arch wire deformation, height of micro-implant and lever-arm on movement of the maxillary anterior teeth in the lingual retraction force system.
Nonlinear 3-D finite element model of lingual orthodontic force system with micro-implant was constructed. When the arch-wire was set to be flexible body and rigid body, lingual retraction force system using sliding mechanism, the height of micro-implant and lever-arm was 0, 3, 5, 7 mm to alveolar ridge crest of the middle point of maxillary second premolars and maxillary first molars. The initial movement and hydrostatic pressure of anterior teeth were calculated.
In the lingual retraction force system with micro-implant using sliding mechanism, when the wire was set to be flexible body, retroclination primary displacements of maxillary anterior teeth were found because of wire deformation. The maxillary lateral incisor's primary displacement became larger with the height of micro-implant increased. When the wire was set to be rigid body, the teeth tended to be slightly tipping, and with the increase of height of micro-implant, the change of movement tendency was not obvious. High value of periodontal ligament hydrostatic pressure was observed in the lingual retraction force system of maxillary anterior teeth with micro-implant when the wire was flexible, exceeding the capillary pressure. When the wire was rigid, the value of periodontal ligament hydrostatic pressure was small within the upper limit value of capillary pressure.
Deformation of wire has a great influence on initial teeth movement and periodontal hydrostatic pressure. In clinic, using more rigid wire and reducing the initial force may reduce the risk of orthodontic root absorption.
评估在舌侧牵引矫治力系统中,弓丝变形、微种植体高度及力臂对上颌前牙移动的生物力学影响。
构建含微种植体的舌侧正畸力系统的非线性三维有限元模型。当弓丝设定为柔性体和刚体时,采用滑动机制的舌侧牵引矫治力系统,微种植体高度及力臂相对于上颌第二前磨牙和上颌第一磨牙中点牙槽嵴顶分别为0、3、5、7 mm。计算前牙的初始移动及牙周膜静水压。
在采用滑动机制的含微种植体舌侧牵引矫治力系统中,当弓丝设定为柔性体时,由于弓丝变形,上颌前牙出现舌倾初始位移。上颌侧切牙的初始位移随微种植体高度增加而增大。当弓丝设定为刚体时,牙齿倾向于轻微倾斜,且随着微种植体高度增加,移动趋势变化不明显。当弓丝为柔性体时,含微种植体的上颌前牙舌侧牵引矫治力系统中观察到牙周膜静水压值较高,超过毛细血管压力。当弓丝为刚体时,牙周膜静水压值在毛细血管压力上限值内较小。
弓丝变形对牙齿初始移动及牙周膜静水压有很大影响。在临床上,使用更刚性的弓丝并降低初始力可能会降低正畸牙根吸收的风险。