索引超出了数组界限。
[1] Welch-Phillips A, Gibbons D, Ahern DP, et al. What is finite element
analysis?[J]. Clin Spine Surg, 2020, 33(8): 323-324.
[2] 张美超,焦培峰. 骨科三维有限元力学仿真的建模[J]. 中华创伤
骨科杂志, 2013, 15(1): 10-12.
[3] Wang XD, Feng MS, Hu YC. Establishment and finite element
analysis of a three-dimensional dynamic model of upper cervical
spine instability[J]. Orthop Surg, 2019, 11(3): 500-509.
[4] 肖广润,杨建东,林升元,等. 有限元分析在脊柱外科中的应用
及研究进展[J]. 国际骨科学杂志, 2020, 41(6): 347-351.
[5] Guan W, Sun Y, Qi X, et al. Spinal biomechanics modeling and finite
element analysis of surgical instrument interaction[J]. Comput Assist
Surg (Abingdon), 2019, 24(sup 1): 151-159.
[6] Berton A, Salvatore G, Giambini H, et al. A 3D finite element model
of prophylactic vertebroplasty in the metastatic spine: Vertebral
stability and stress distribution on adjacent vertebrae[J]. J Spinal Cord
Med, 2020, 43(1): 39-45.
[7] Wu W, Han Z, Hu B, et al. A graphical guide for constructing a
finite element model of the cervical spine with digital orthopedic
software[J]. Ann Transl Med, 2021, 9(2): 169.
[8] Manickam PS, Roy S. The biomechanical study of cervical spine: a
finite element analysis[J]. Int J Artif Organs, 2022, 45(1): 89-95.
[9] 高军伟,夏英鹏. 有限元分析法在我国脊柱外科的应用现状及医
工合作前景展望[J]. 中国医疗器械信息, 2018, 24(18): 12-13.
[10] 胡勇,董伟鑫,袁振山,等. 上颈椎结构损伤对C1-C2 和C2-C3
节段稳定性影响的生物力学研究[J]. 中华创伤杂志, 2015, 31(4):
360-365.
[11] Goel A, Kaswa A, Shah A. Role of atlantoaxial and subaxial spinal
instability in pathogenesis of spinal“ degeneration”–related cervical
kyphosis[J]. World Neurosurg, 2017, 101: 702-709.
[12] Li Z, Song G, Su Z, et al. Development, validation, and application
of ligamentous cervical spinal segment C6-C7 of a six-year-old child
and an adult[J]. Comput Methods Programs Biomed, 2020, 183:
105080.
[13] Sun X, Sun S, Zhang T, et al. Biomechanical comparison of
noncontiguous cervical disc arthroplasty and noncontiguous cervical
discectomy and fusion in the treatment of noncontinuous cervical
degenerative disc disease: a finite element analysis[J]. J Orthop Surg
Res, 2020, 15(1): 36.
[14] John JD, Kumar GS, Yoganandan N, et al. Influence of cervical
spine sagittal alignment on range of motion after corpectomy: a finite
element study[J]. Acta Neurochir (Wien), 2021, 163(1): 251-257.
[15] Jiang Q, Yan Z, Derrouiche A, et al. Biomechanical response of
a novel intervertebral disc prosthesis using functionally graded
polymers: a finite element study[J]. J Mech Behav Biomed Mater,
2019, 94: 288-297.
[16] Subramani AV, Whitley PE, Garimella HT, et al. Fatigue damage
prediction in the annulus of cervical spine intervertebral discs using
finite element analysis[J]. Comput Methods Biomech Biomed Engin,
2020, 23(11): 773-784.
[17] 于栋,刘侃,时宗庭,等. 动力失衡模型兔颈椎间盘病理改变
及终板软骨细胞的迁移凋亡规律[J]. 中国组织工程研究, 2022,
26(11): 1675-1679.
[18] Hua W, Zhi J, Wang B, et al. Biomechanical evaluation of adjacent
segment degeneration after one- or two-level anterior cervical discectomy and fusion versus cervical disc arthroplasty: A finite
element analysis[J]. Comput Methods Programs Biomed, 2020, 189:
105352.
[19] Chen WM, Jin J, Park T, et al. Strain behavior of malaligned cervical
spine implanted with metal-on-polyethylene, metal-on-metal, and
elastomeric artificial disc prostheses: a finite element analysis[J]. Clin
Biomech (Bristol, Avon), 2018, 59: 19-26.
[20] 夏天,孙宇,王少波,等. 保留单侧肌肉韧带复合体单开门椎管
扩大成形术治疗颈椎后纵韧带骨化症对颈后肌群的影响[J]. 中国
脊柱脊髓杂志, 2020, 30(3): 212-218.
[21] Liao S, Jung MK, H?rnig L, et al. Injuries of the upper cervical spine:
how can instability be identified?[J]. Int Orthop, 2020, 44(7): 1239-
1253.
[22] Zhao Q, Yang Y, Wu P, et al. Biomechanical study of the C5-C8
cervical extraforaminal ligaments[J]. J Orthop Surg Res, 2020, 15(1):
477.
[23] Wang K, Deng Z, Wang H, et al. Influence of variations in stiffness
of cervical ligaments on C5-C6 segment[J]. J Mech Behav Biomed
Mater, 2017, 72: 129-137.
[24] 陈爽. 按摩推拿治疗神经根型颈椎病的疗效观察[J]. 继续医学教
育, 2020, 34(11): 165-166.
[25] Odate S, Shikata J, Soeda T, et al. Surgical results and complications
of anterior decompression and fusion as a revision surgery after initial
posterior surgery for cervical myelopathy due to ossification of the
posterior longitudinal ligament[J]. J Neurosurg Spine, 2017, 26(4):
466-473.
[26] 龙军. 经穴按摩结合颈肩保健操预防颈椎病效果观察[J]. 中医临
床研究, 2020, 12(29): 93-95.
[27] Zou G, Wang G, Li J, et al. Danger of injudicious use of tui-na
therapy in ankylosing spondylitis[J]. Eur Spine J, 2017, 26(Suppl 1):
178-180.
[28] Deng Z, Wang K, Wang H, et al. A finite element study of traditional
Chinese cervical manipulation[J]. Eur Spine J, 2017, 26(9): 2308-
2317.
[29] Ramírez León JF, Rugeles Ortíz JG, Martínez CR, et al. Surgical
treatment of cervical radiculopathy using an anterior cervical
endoscopic decompression[J]. J Spine Surg, 2020, 6(Suppl 1):
S179-S185.
[30] Li X, Jin L, Liang C, et al. Adjacent-level biomechanics after singlelevel
anterior cervical interbody fusion with anchored zero-profile
spacer versus cage-plate construct: a finite element study[J]. BMC
Surg, 2020 ,20(1): 66.
[31] Zhao L, Chen J, Liu J, et al. Biomechanical analysis on of anterior
transpedicular screw-fixation after two-level cervical corpectomy
using finite element method[J]. Clin Biomech (Bristol, Avon), 2018,
60: 76-82.
[32] Ren J, Li R, Zhu K, et al. Biomechanical comparison of percutaneous
posterior endoscopic cervical discectomy and anterior cervical
decompression and fusion on the treatment of cervical spondylotic
radiculopathy[J]. J Orthop Surg Res, 2019, 14(1): 71.
[33] 王奇,杨雍,费琦,等. 改良颈椎后路单开门椎管扩大成形术
三维有限元模型的建立与验证[J]. 中华医学杂志, 2017, 97(21):
1633-1637.
[34] 王鹏,汤猛,周立,等. 颈椎单开门成形微钛板固定稳定性的有
限元分析[J]. 中国矫形外科杂志, 2021, 29(22): 2072-2077.
[35] Nikkhoo M, Cheng C, Wang J, et al. Development and validation
of a geometrically personalized finite element model of the lower
ligamentous cervical spine for clinical applications[J]. Comput Biol
Med, 2019, 109: 22-32.
[36] Herron MR, Park J, Dailey AT, et al. Febio finite element models of
the human cervical spine[J]. J Biomech, 2020, 113: 110077.