Engelke, Klaus

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Journal Article

Engelke, Klaus; van Rietbergen, Bert; Zysset, Philippe (2016). FEA to Measure Bone Strength: A Review. Clinical reviews in bone and mineral metabolism, 14(1), pp. 26-37. Springer 10.1007/s12018-015-9201-1

Zysset, Philippe; Pahr, Dieter; Engelke, Klaus; Genant, Harry K.; McClung, Michael R.; Kendler, David L.; Recknor, Christopher; Kinzl, Michael; Schwiedrzik, Jakob; Museyko, Oleg; Wang, Andrea; Libanati, Cesar (2015). Comparison of proximal femur and vertebral body strength improvements in the FREEDOM trial using an alternative finite element methodology. Bone, 81, pp. 122-130. Elsevier 10.1016/j.bone.2015.06.025

Zysset, Philippe; Qin, Ling; Lang, Thomas; Khosla, Sundeep; Leslie, William D.; Shepherd, John A.; Schousboe, John T.; Engelke, Klaus (2015). Clinical Use of Quantitative Computed Tomography–Based Finite Element Analysis of the Hip and Spine in the Management of Osteoporosis in Adults: the 2015 ISCD Official Positions—Part II. Journal of clinical densitometry, 18(3), pp. 359-392. Elsevier 10.1016/j.jocd.2015.06.011

Engelke, Klaus; Lang, Thomas; Khosla, Sundeep; Qin, Ling; Zysset, Philippe; Leslie, William D.; Shepherd, John A.; Shousboe, John T. (2015). Clinical Use of Quantitative Computed Tomography–Based Advanced Techniques in the Management of Osteoporosis in Adults: the 2015 ISCD Official Positions—Part III. Journal of clinical densitometry, 18(3), pp. 393-407. Elsevier 10.1016/j.jocd.2015.06.010

Engelke, Klaus; Lang, Thomas; Khosla, Sundeep; Qin, Ling; Zysset, Philippe; Leslie, William D.; Shepherd, John A.; Schousboe, John T. (2015). Clinical Use of Quantitative Computed Tomography (QCT) of the Hip in the Management of Osteoporosis in Adults: the 2015 ISCD Official Positions—Part I. Journal of clinical densitometry, 18(3), pp. 338-358. Elsevier 10.1016/j.jocd.2015.06.012

Lu, Yongtao; Maquer, Ghislain Bernard; Museyko, Oleg; Püschel, Klaus; Engelke, Klaus; Zysset, Philippe; Morlock, Michael; Huber, Gerd (2014). Finite element analyses of human vertebral bodies embedded in polymethylmethalcrylate or loaded via the hyperelastic intervertebral disc models provide equivalent predictions of experimental strength. Journal of biomechanics, 47(10), pp. 2512-2516. Elsevier 10.1016/j.jbiomech.2014.04.015

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