ASTM F1798-1997(2003) Standard Guide for Evaluating the Static and Fatigue Properties of Interconnection Mechanisms and Subassemblies Used in Spinal Arthrodesis Implants《脊椎关节固定术植入用.pdf
《ASTM F1798-1997(2003) Standard Guide for Evaluating the Static and Fatigue Properties of Interconnection Mechanisms and Subassemblies Used in Spinal Arthrodesis Implants《脊椎关节固定术植入用.pdf》由会员分享,可在线阅读,更多相关《ASTM F1798-1997(2003) Standard Guide for Evaluating the Static and Fatigue Properties of Interconnection Mechanisms and Subassemblies Used in Spinal Arthrodesis Implants《脊椎关节固定术植入用.pdf(10页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: F 1798 97 (Reapproved 2003)Standard Guide forEvaluating the Static and Fatigue Properties ofInterconnection Mechanisms and Subassemblies Used inSpinal Arthrodesis Implants1This standard is issued under the fixed designation F 1798; the number immediately following the designation indica
2、tes the year oforiginal adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This guide covers the measurement of uniaxi
3、al staticand fatigue strength, and resistance to loosening of the com-ponent interconnection mechanisms of spinal arthrodesis im-plants.1.2 The purpose of this guide is to provide a means ofmechanically characterizing different designs of spinal implantinterconnections. Ultimately, the various compo
4、nents and in-terconnections should be combined for static and fatiguetesting of the spinal implant construct. It is not the intention ofthis guide to address the analysis of spinal implant constructsor subconstructs or to define levels of performance of spinalimplants as insufficient knowledge is av
5、ailable to predict theconsequences of the use of particular spinal implant designs.1.3 This guide sets out definitions for use in measuring thestrength of component interconnections of spinal implants,possible test methods themselves, and the reporting of testresults.1.4 The values stated in SI unit
6、s are to be regarded asstandard.1.5 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitati
7、ons prior to use.2. Referenced Documents2.1 ASTM Standards:2E 4 Practices for Force Verification of Testing MachinesE 6 Terminology Relating to Methods of Mechanical Test-ingE 468 Practice for the Presentation of Constant AmplitudeFatigue Test Results from Metallic MaterialsE 739 Practice for Statis
8、tical Analysis of Linear or Linear-ized Stress-Life (S-N) and Strain-Life (e-N) Fatigue DataE 1150 Definitions of Terms Relating to Fatigue3F 383 Practice for Static Bend and Torsion Testing ofIntramedullary Rods3F 1582 Terminology Relating to Spinal Implants3. Terminology3.1 Definitions of Terms Sp
9、ecific to This Standard:3.1.1 active length of longitudinal elementthe span be-tween rigid supports (for example, 50 mm is the active lengthin Fig. 1, Fig. 2, Fig. 3(a), Fig. 3(b), and Fig. 4.3.1.2 global coordinate systemspinal column motion hassix degrees of freedom, having translational motion al
10、ong, androtational motion about three axes. The axes are labeledanterior-posterior or a-p (X), medial-lateral or transverse (Y),and caudal-cranial or axial (Z). This coordinate system is righthanded with +X in the anterior direction, +Y towards the leftside of the body, and +Z in the cranial directi
11、on. Positiverotations are defined by the right hand rule (See Fig. 5(a).3.1.3 gripping capacitythe maximum applied load ormoment across an interconnection mechanism within the first1.5 mm of permanent displacement or 5 of permanent rotationbetween the connected components.3.1.4 local coordinate syst
12、emthe spines global coordi-nate system shall be applied locally at the position of theinterconnection. The local direction, z, shall be centeredthrough the longitudinal element of the x-y plane. The localdirection, x, shall be defined parallel to the axis of a screw orback of a hook. The local trans
13、verse axis, y, shall be parallel toa transverse element (See Fig. 5(b) and Fig. 5(c).3.1.5 loosening torquethe torque required to disconnectthe various threaded fasteners that might comprise the im-plants interconnection mechanism.3.1.6 major directions of loadingdirections of the pre-dominant force
14、s and moments (relative to the local axes) towhich vertebral connection elements are subjected, (that is,axial load, Fz; A-P load, Fx; axial torsion, Mz; and flexion-extension moment, My).1This guide is under the jurisdiction of ASTM Committee F04 onMedical andSurgical Materials and Devices and is t
15、he direct responsibility of SubcommitteeF04.25 on Spinal Devices .Current edition approved Nov. 1, 2003. Published November 2003. Originallyapproved in 1997. Last previous edition approved in 1997 as F 1798 97.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Custo
16、mer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.3Withdrawn.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.1.7 maximum run out loa
17、d/momentthe maximum loador moment that can be applied to a subassembly where all thetested constructs have withstood 2.5 3 106 cycles without afailure.3.1.8 relevant directions of loadingthose directions ofloading in which a particular component interconnection isdesigned to provide resistance to lo
18、ading. For example, aparticular spinal hook may be designed to withstand a positiveaxial load, A-P load, and flexion-extension moment, but not anegative axial load or axial torsion. Hence, positive axial load,A-P load, and flexion-extension moment are relevant directionsof loading.3.1.9 spinal arthr
19、odesis implantan implant applied to thespine with the specific intention of providing temporarycorrection and stability to vertebrae while bony fusion occurs.3.1.10 subassembly failurepermanent deformation result-ing from fracture, plastic deformation, loosening or slippagethat renders the subassemb
20、ly ineffective or unable to ad-equately resist load.3.1.11 subassembly permanent deformationthe displace-ment (mm) or angular displacement (degree of the subassem-bly relative to the unloaded condition remaining after theapplied load moment or torque has been removed. Care mustbe taken to insure the
21、 loading fixtures are rigid and do notcontribute to the measurement of deflection.3.1.12 tightening torquethe specified torque that is ap-plied to the various threaded fasteners that might comprise theimplants interconnection mechanism.3.1.13 ultimate load/moment of the subassemblymaximum load or mo
22、ment applied to a subassembly (see PointE in Fig. 6).3.1.14 yield load/moment of the subassemblythe load ormoment required to produce a permanent deformation equal to0.020 times the active length of the longitudinal element (seePoint D in Fig. 6).4. Summary of Test Methods4.1 Vertebral attachment co
23、mponents (for example, hook,screws, bands) and transverse elements must be attached tolongitudinal elements (for example, rods, plates) to form spinalimplant subassemblies.4.2 The interconnections are tested only in the relevantdirections of loading by applying loads at specific locationsrelative to
24、 the local coordinate system.4.3 The interconnections and subassemblies are tested stati-cally in a load to failure mode and also can be tested cyclicallyto estimate the maximum run out value at 2.5 3 106cycles.5. Significance and Use5.1 Spinal implants are generally composed of severalcomponents th
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