000 06125cam a2200697Ii 4500
001 ocn912499046
003 OCoLC
005 20221128212918.0
006 m d
007 cr cnu---unuuu
008 150701s2015 gw a ob 001 0 eng d
010 _a 2014019935
040 _aN$T
_beng
_erda
_epn
_cN$T
_dIDEBK
_dN$T
_dEBLCP
_dYDXCP
_dOCLCQ
_dOCLCF
_dD6H
_dCOO
_dICA
_dOCLCO
_dOCLCA
_dCUV
_dAGLDB
_dOCLCQ
_dVNS
_dOCLCO
_dVTS
_dOCLCO
_dCOCUF
_dSTF
_dMERUC
_dOCLCO
_dLOA
_dZCU
_dOCLCO
_dICG
_dOCLCQ
_dTKN
_dK6U
_dDKC
_dAU@
_dOCLCO
_dOCLCQ
_dOCLCO
_dOCLCQ
_dSCB
_dOCLCQ
_dOCLCA
_dVT2
_dVLY
_dAJS
_dOCLCO
019 _a913335802
_a917875448
_a966193863
_a966471995
_a979068257
_a987647857
_a1029503776
_a1162269966
020 _a9783131731210
_q(electronic bk.)
020 _a3131731214
_q(electronic bk.)
020 _z9783131731111
020 _z3131731117
035 _a1020167
_b(N$T)
035 _a(OCoLC)912499046
_z(OCoLC)913335802
_z(OCoLC)917875448
_z(OCoLC)966193863
_z(OCoLC)966471995
_z(OCoLC)979068257
_z(OCoLC)987647857
_z(OCoLC)1029503776
_z(OCoLC)1162269966
060 4 _aWE 20
072 7 _aRD
_2lcco
072 7 _aMED
_x085000
_2bisacsh
049 _aMAIN
100 1 _aSimpson, A. Hamish R. W.,
_eauthor.
245 1 0 _aExperimental research methods in orthopedics and trauma
_c
_h[E-Book]
264 1 _aStuttgart ;
_aNew York :
_bThieme,
_c[2015]
300 _a1 online resource (xvii, 446 pages) :
_billustrations
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _aonline resource
_bcr
_2rdacarrier
588 0 _aPrint version record.
504 _aIncludes bibliographica references and index.
505 0 _aExperimental Research Methods in Orthopedics and Trauma; Title Page; Copyright; Contents; Foreword; Endorsement by the International Combined Orthopaedic Research Societies (I-CORS) Member Organizations; Preface; Acknowledgments; Contributors; 1 Why Do We Need Experimental Research?; 1 Evidence-Based Research; 2 Establishing a Basic Research Facility in Orthopedic Surgery; 3 Good Laboratory Practice and Quality Control; 4 How to Prepare for a Period in Research; 2 Structural Biomechanics; 5 Physiological Boundary Conditions for Mechanical Testing.
505 8 _a6 Static, Dynamic, and Fatigue Mechanical Testing7 Use of Human and Animal Specimens in Biomechanical Testing; 8 Whole Bone Biomechanics; 9 Biomechanics of Trabecular and Cortical Bone; 10 Biomechanics of Fracture Fixation; 11 Biomechanical Assessment of Fracture Repair; 12 Biomechanics of Cartilage; 13 Biomechanics of Joints; 14 Spine Biomechanics; 3 Functional Biomechanics; 15 Musculokeletal Dynamics; 16 Measurement Techniques; 17 Clinical Assessment of Function; 18 Functional Biomechanics with Cadaver Specimens; 4 Numerical Biomechanics; 19 Inverse Dynamics.
505 8 _a20 Principles of Finite Elements Analysis21 Validation of Finite Element Models; 22 Computational Biomechanics of Bone; 23 Numerical Simulation of Implants and Prosthetic Devices; 24 Numerical Simulation of Fracture Healing and Bone Remodelling; 5 Imaging; 25 Micro-Computed Tomography Imaging of Bone Tissue; 26 Imaging Bone; 27 Ultrasound Techniques for Imaging Bone; 28 In Vivo Scanning; 29 Imaging of Cartilage Function; 30 Histochemistry Bone and Cartilage; 31 Immunohistochemistry; 32 Molecular Imaging In Situ Hybridization; 33 Laser Scanning Confocal Microscopy and Laser Microdissection.
505 8 _a34 Image Analysis Histomorphometry Stereology6 Cellular Studies; 35 Cell Culture Research; 36 Cartilage Explants and Organ Culture Models; 37 Fluid Flow and Strain in Bone; 38 Biomechanics of Bone Cells; 7 Molecular Techniques in Bone Repair; 39 Molecular Testing; 40 Genetically Modified Models for Bone Repair; 8 In Vivo Models; 41 General Considerations for an In Vivo Model; 42 Animal Models for Bone Healing; 43 Models for Impaired Healing; 44 In Vivo Models for Bone and Joint Infections; 45 In Vivo Models for Articular Cartilage Repair; 46 In Vivo Soft Tissue Models; 9 Tissue Engineering.
505 8 _a47 Scaffolds for Tissue Engineering and Materials for Repair48 Use of Growth Factors in Musculoskeletal Research; 49 Stem Cells for Musculoskeletal Repair; 50 Biological Evaluation and Testing of Medical Devices; 10 Statistics for Experimental Research; 51 Study Design; 52 Power and Sample Size Calculation; 53 Nonparametric versus Parametric Tests; 54 How to Limit Bias in Experimental Research; Index.
520 _aFrom bioinformatics to nanotechnology, advances in basic research ultimately drive advances in clinical care. This book provides a comprehensive summary of all current research methodologies for translational and pre-clinical studies in biomechanics and orthopedic trauma surgery. With this roadmap at hand, specialists and trainees will have the tools to conduct high-quality experimental research in any area of musculoskeletal science, with a solid understanding of how the findings can be applied in patient care. Special Features: Utilizes the principles and methodology of modern, evidence-bas.
546 _aEnglish.
590 _aWorldCat record variable field(s) change: 650
650 0 _aMusculoskeletal system
_xWounds and injuries.
650 0 _aOrthopedics
_xResearch.
650 0 _aOrthopedic emergencies.
650 0 _aEmergency medicine.
650 0 _aMusculoskeletal system
_xDiseases.
650 1 2 _aBiomedical Research
650 1 2 _aOrthopedics
_xmethods
650 2 2 _aBiomechanical Phenomena
650 2 2 _aMusculoskeletal Diseases
650 2 2 _aOrthopedic Procedures
_xmethods
650 2 _aEmergency Medicine
700 1 _aAugat, Peter,
_eauthor.
856 4 0 _uhttps://search.ebscohost.com/login.aspx?custid=ns123844&authtype=ip,shib&direct=true&scope=site&db=nlebk&db=nlabk&AN=1020167
_yKingston Hospital NHS Foundation Trust OpenAthens account holders click here for access
938 _aEBL - Ebook Library
_bEBLB
_nEBL2078422
938 _aEBSCOhost
_bEBSC
_n1020167
938 _aProQuest MyiLibrary Digital eBook Collection
_bIDEB
_ncis31882642
938 _aYBP Library Services
_bYANK
_n12508345
942 _n0
994 _a92
_bN$T
999 _c92211
_d92211