CA1160927A - Compatible internal bone fixation plate - Google Patents
Compatible internal bone fixation plateInfo
- Publication number
- CA1160927A CA1160927A CA000375962A CA375962A CA1160927A CA 1160927 A CA1160927 A CA 1160927A CA 000375962 A CA000375962 A CA 000375962A CA 375962 A CA375962 A CA 375962A CA 1160927 A CA1160927 A CA 1160927A
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- Prior art keywords
- plate
- bone
- fixation plate
- fixation
- compatible internal
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- 208000010392 Bone Fractures Diseases 0.000 claims abstract description 29
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- 229910052751 metal Inorganic materials 0.000 claims abstract description 17
- 239000002184 metal Substances 0.000 claims abstract description 17
- 239000004699 Ultra-high molecular weight polyethylene Substances 0.000 claims abstract description 4
- 229920000785 ultra high molecular weight polyethylene Polymers 0.000 claims abstract description 4
- 206010017076 Fracture Diseases 0.000 claims description 22
- 230000035876 healing Effects 0.000 claims description 18
- 239000007787 solid Substances 0.000 claims description 14
- 230000010072 bone remodeling Effects 0.000 claims description 12
- 239000010935 stainless steel Substances 0.000 claims description 12
- 229910001220 stainless steel Inorganic materials 0.000 claims description 12
- 208000001132 Osteoporosis Diseases 0.000 claims description 8
- OKTJSMMVPCPJKN-UHFFFAOYSA-N Carbon Chemical compound [C] OKTJSMMVPCPJKN-UHFFFAOYSA-N 0.000 claims description 7
- 230000003313 weakening effect Effects 0.000 claims description 7
- 229910052799 carbon Inorganic materials 0.000 claims description 5
- 229920001903 high density polyethylene Polymers 0.000 claims description 4
- 239000004700 high-density polyethylene Substances 0.000 claims description 4
- 208000027418 Wounds and injury Diseases 0.000 claims 1
- 239000004033 plastic Substances 0.000 claims 1
- 229920003023 plastic Polymers 0.000 claims 1
- 239000000126 substance Substances 0.000 abstract description 4
- 230000002411 adverse Effects 0.000 abstract description 3
- 238000007789 sealing Methods 0.000 abstract description 2
- 229920002379 silicone rubber Polymers 0.000 abstract description 2
- 239000004945 silicone rubber Substances 0.000 abstract description 2
- 230000001766 physiological effect Effects 0.000 abstract 1
- 210000000689 upper leg Anatomy 0.000 description 12
- 239000002131 composite material Substances 0.000 description 5
- 230000006835 compression Effects 0.000 description 5
- 238000007906 compression Methods 0.000 description 5
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- FYYHWMGAXLPEAU-UHFFFAOYSA-N Magnesium Chemical compound [Mg] FYYHWMGAXLPEAU-UHFFFAOYSA-N 0.000 description 4
- 229910052749 magnesium Inorganic materials 0.000 description 4
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- 239000004568 cement Substances 0.000 description 3
- 208000029725 Metabolic bone disease Diseases 0.000 description 2
- 208000006670 Multiple fractures Diseases 0.000 description 2
- 206010049088 Osteopenia Diseases 0.000 description 2
- 208000006735 Periostitis Diseases 0.000 description 2
- WAIPAZQMEIHHTJ-UHFFFAOYSA-N [Cr].[Co] Chemical class [Cr].[Co] WAIPAZQMEIHHTJ-UHFFFAOYSA-N 0.000 description 2
- 238000013459 approach Methods 0.000 description 2
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- 230000018109 developmental process Effects 0.000 description 2
- 230000000694 effects Effects 0.000 description 2
- 239000000945 filler Substances 0.000 description 2
- 210000000245 forearm Anatomy 0.000 description 2
- 229910002804 graphite Inorganic materials 0.000 description 2
- 239000010439 graphite Substances 0.000 description 2
- 210000004394 hip joint Anatomy 0.000 description 2
- 210000002414 leg Anatomy 0.000 description 2
- 238000003754 machining Methods 0.000 description 2
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- 238000000034 method Methods 0.000 description 2
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- 238000013425 morphometry Methods 0.000 description 2
- 210000003205 muscle Anatomy 0.000 description 2
- 210000003460 periosteum Anatomy 0.000 description 2
- 238000007747 plating Methods 0.000 description 2
- 241000256844 Apis mellifera Species 0.000 description 1
- 244000186140 Asperula odorata Species 0.000 description 1
- VYZAMTAEIAYCRO-UHFFFAOYSA-N Chromium Chemical compound [Cr] VYZAMTAEIAYCRO-UHFFFAOYSA-N 0.000 description 1
- 239000004593 Epoxy Substances 0.000 description 1
- 235000008526 Galium odoratum Nutrition 0.000 description 1
- 208000035967 Long Term Adverse Effects Diseases 0.000 description 1
- CERQOIWHTDAKMF-UHFFFAOYSA-M Methacrylate Chemical compound CC(=C)C([O-])=O CERQOIWHTDAKMF-UHFFFAOYSA-M 0.000 description 1
- 229910001182 Mo alloy Inorganic materials 0.000 description 1
- 239000004098 Tetracycline Substances 0.000 description 1
- 229910001069 Ti alloy Inorganic materials 0.000 description 1
- RTAQQCXQSZGOHL-UHFFFAOYSA-N Titanium Chemical compound [Ti] RTAQQCXQSZGOHL-UHFFFAOYSA-N 0.000 description 1
- 229910000771 Vitallium Inorganic materials 0.000 description 1
- 230000002159 abnormal effect Effects 0.000 description 1
- 229910045601 alloy Inorganic materials 0.000 description 1
- 239000000956 alloy Substances 0.000 description 1
- 229910052782 aluminium Inorganic materials 0.000 description 1
- XAGFODPZIPBFFR-UHFFFAOYSA-N aluminium Chemical compound [Al] XAGFODPZIPBFFR-UHFFFAOYSA-N 0.000 description 1
- 230000033558 biomineral tissue development Effects 0.000 description 1
- 230000037118 bone strength Effects 0.000 description 1
- 229910052804 chromium Inorganic materials 0.000 description 1
- 239000011651 chromium Substances 0.000 description 1
- 229910017052 cobalt Inorganic materials 0.000 description 1
- 239000010941 cobalt Substances 0.000 description 1
- GUTLYIVDDKVIGB-UHFFFAOYSA-N cobalt atom Chemical compound [Co] GUTLYIVDDKVIGB-UHFFFAOYSA-N 0.000 description 1
- 239000000805 composite resin Substances 0.000 description 1
- 210000002808 connective tissue Anatomy 0.000 description 1
- 238000010276 construction Methods 0.000 description 1
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- 230000001054 cortical effect Effects 0.000 description 1
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- 238000010586 diagram Methods 0.000 description 1
- 210000000527 greater trochanter Anatomy 0.000 description 1
- 238000000227 grinding Methods 0.000 description 1
- 239000011796 hollow space material Substances 0.000 description 1
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- 230000007774 longterm Effects 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 230000013011 mating Effects 0.000 description 1
- 229910001092 metal group alloy Inorganic materials 0.000 description 1
- 230000000399 orthopedic effect Effects 0.000 description 1
- 230000006461 physiological response Effects 0.000 description 1
- 229920003229 poly(methyl methacrylate) Chemical class 0.000 description 1
- 229920001296 polysiloxane Polymers 0.000 description 1
- 238000011160 research Methods 0.000 description 1
- 210000004872 soft tissue Anatomy 0.000 description 1
- 239000011343 solid material Substances 0.000 description 1
- 238000005507 spraying Methods 0.000 description 1
- 229960002180 tetracycline Drugs 0.000 description 1
- 229930101283 tetracycline Natural products 0.000 description 1
- 235000019364 tetracycline Nutrition 0.000 description 1
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- 239000010936 titanium Substances 0.000 description 1
- 229910052719 titanium Inorganic materials 0.000 description 1
- 210000000623 ulna Anatomy 0.000 description 1
- 229910052720 vanadium Inorganic materials 0.000 description 1
- LEONUFNNVUYDNQ-UHFFFAOYSA-N vanadium atom Chemical compound [V] LEONUFNNVUYDNQ-UHFFFAOYSA-N 0.000 description 1
- 239000000602 vitallium Substances 0.000 description 1
- 238000003466 welding Methods 0.000 description 1
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B17/00—Surgical instruments, devices or methods
- A61B17/56—Surgical instruments or methods for treatment of bones or joints; Devices specially adapted therefor
- A61B17/58—Surgical instruments or methods for treatment of bones or joints; Devices specially adapted therefor for osteosynthesis, e.g. bone plates, screws or setting implements
- A61B17/68—Internal fixation devices, including fasteners and spinal fixators, even if a part thereof projects from the skin
- A61B17/80—Cortical plates, i.e. bone plates; Instruments for holding or positioning cortical plates, or for compressing bones attached to cortical plates
Landscapes
- Health & Medical Sciences (AREA)
- Orthopedic Medicine & Surgery (AREA)
- Surgery (AREA)
- Life Sciences & Earth Sciences (AREA)
- Heart & Thoracic Surgery (AREA)
- Animal Behavior & Ethology (AREA)
- Engineering & Computer Science (AREA)
- Biomedical Technology (AREA)
- Neurology (AREA)
- Medical Informatics (AREA)
- Molecular Biology (AREA)
- Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
- General Health & Medical Sciences (AREA)
- Public Health (AREA)
- Veterinary Medicine (AREA)
- Prostheses (AREA)
- Materials For Medical Uses (AREA)
- Surgical Instruments (AREA)
Abstract
43-293/U3.6 COMPATIBLE INTERNAL BONE FIXATION PLATE
Abstract of the Disclosure An internal fixation plate for bridging two portions of a broken bone is formed to have properties, in terms of bending, axial, and torsional stiffness suitable for the bone being mended. These properties include high resistance to bending and torsional stresses, and relatively low axial stiffness. One plate configuration which has been determined to have the desired stiffness properties is an elongated flat hollow metal plate or tube. Arrangements are provided for precluding bone ingrowth, and this may be achieved by filling the member with a medically inert substance, such as silicone rubber or ultra high molecular weight polyethylene, or by sealing the openings into the tubular plate. The materials of the bone fixation plate may be selected for their mechanical properties, and also as biologically inert substances which will not have adverse physiological effects when embedded in the human body.
Abstract of the Disclosure An internal fixation plate for bridging two portions of a broken bone is formed to have properties, in terms of bending, axial, and torsional stiffness suitable for the bone being mended. These properties include high resistance to bending and torsional stresses, and relatively low axial stiffness. One plate configuration which has been determined to have the desired stiffness properties is an elongated flat hollow metal plate or tube. Arrangements are provided for precluding bone ingrowth, and this may be achieved by filling the member with a medically inert substance, such as silicone rubber or ultra high molecular weight polyethylene, or by sealing the openings into the tubular plate. The materials of the bone fixation plate may be selected for their mechanical properties, and also as biologically inert substances which will not have adverse physiological effects when embedded in the human body.
Description
()927 COMPATI~LE INTERNAL BONE FIXATION PLATE
Background of the Invention This invention relates to internal bone fixation plates.
The invention described herein was made in the course of or under a grant from the National Institute of Health.
Clinical experience has established quite clearly that under appropriate conditions, the internal fixation of fractures of long bones of the human body (diaphyseal fractures) with sturdy metal plates is effective in the achievement of fracture healing. However, an undesirable consequence of the rigidity of the internal fixation plates which have been generally used up to the present time is the localized weakening or reduction in strength of the bone which accompanies the protection of the underlying bone from normal stresses after the fracture has been healed. This phenomenon of abnormal rarefaction of the bone is referred to by the medical term "osteoporosis". Following removal of the plate, the weakened bone is vulnerable to refracture and remains so for several weeks or even months, particularly in cases where two plates have been employed. Incidentally, the phrases "plating" and "plated" will frequently be employed in the present specification to refer to bones to which internal fixation plates have been applied.
In the last two decades, the overriding emphasis has been on the development of greater strength of such fixation plates through the provision of heavier plates, and the evolution of concepts such as compression plating. This approach has met with considerable success. However, up to the recent past, this approach has clearly not achieved optimum results, as the long term adverse physiological response of bone to such sturdy devices has been largely ignored.
In recent years, however, considerable interest has been generated in the possible use of less rigid internal ~,
Background of the Invention This invention relates to internal bone fixation plates.
The invention described herein was made in the course of or under a grant from the National Institute of Health.
Clinical experience has established quite clearly that under appropriate conditions, the internal fixation of fractures of long bones of the human body (diaphyseal fractures) with sturdy metal plates is effective in the achievement of fracture healing. However, an undesirable consequence of the rigidity of the internal fixation plates which have been generally used up to the present time is the localized weakening or reduction in strength of the bone which accompanies the protection of the underlying bone from normal stresses after the fracture has been healed. This phenomenon of abnormal rarefaction of the bone is referred to by the medical term "osteoporosis". Following removal of the plate, the weakened bone is vulnerable to refracture and remains so for several weeks or even months, particularly in cases where two plates have been employed. Incidentally, the phrases "plating" and "plated" will frequently be employed in the present specification to refer to bones to which internal fixation plates have been applied.
In the last two decades, the overriding emphasis has been on the development of greater strength of such fixation plates through the provision of heavier plates, and the evolution of concepts such as compression plating. This approach has met with considerable success. However, up to the recent past, this approach has clearly not achieved optimum results, as the long term adverse physiological response of bone to such sturdy devices has been largely ignored.
In recent years, however, considerable interest has been generated in the possible use of less rigid internal ~,
-2- ~927 fixation plates for fracture management, in view of the fact that the very sturdy compression plates over-protect the underlying healed fracture. In addition to a weakening of the cortex or outer wall the bone, a loss of substance of the periosteum has been noted in tests with dog femurs.
Incidentally, the term "periosteum" refers to a specialized connective tissue covering all bones and possessing bone-forming potentialities or capabilities. In addition, incomplete mineralization at the cortex beneath the sturdy metal plate was observed, and bone remodeling and improved strength and increased substance of the bone (including regression of osteopenia, to use medical terminology), started soon after removal of the rigid plate.
Reference is now made to an article entitled, "Potential Application of Graphite and Methyl Methacrylate Resin Composites as Internal Fixation Plates", By S. L-Y.
Woo and W. H. ~keson, ~. Levenetz, R. D. Coutts, J. V.
Matthews, and D. Amiel, Journal of Biomedical Materials Research, Vol. 8, No. 5, September 1~74, Pages 321 to 338.
In that paper we described a graphite fiber methyl methacrylate composite (GFMM) material which was employed to form softer places used in the study of fracture healing in dog radii. Traditional sturdy stainless steel plates with tenfold higher axial and flexural stiffness were used as controls. Using combined biomechanical testing and morphometric methods, we noted that at four months postplating, the torsional strength of the whole radius was similar for the composite and the metal plated sides.
Morphometric studies using tetracycline labelling techniques showed significantly higher cortical porosity on the metal plated side (14~) as compared to the GFMM plated side (6.3%)-However, the mere selection o~ softer or less rigidmaterials to avoid long term adverse effects runs counter to the basic immediate problem of firmly setting the broken bones in their desired relative position. Obviously, if the
Incidentally, the term "periosteum" refers to a specialized connective tissue covering all bones and possessing bone-forming potentialities or capabilities. In addition, incomplete mineralization at the cortex beneath the sturdy metal plate was observed, and bone remodeling and improved strength and increased substance of the bone (including regression of osteopenia, to use medical terminology), started soon after removal of the rigid plate.
Reference is now made to an article entitled, "Potential Application of Graphite and Methyl Methacrylate Resin Composites as Internal Fixation Plates", By S. L-Y.
Woo and W. H. ~keson, ~. Levenetz, R. D. Coutts, J. V.
Matthews, and D. Amiel, Journal of Biomedical Materials Research, Vol. 8, No. 5, September 1~74, Pages 321 to 338.
In that paper we described a graphite fiber methyl methacrylate composite (GFMM) material which was employed to form softer places used in the study of fracture healing in dog radii. Traditional sturdy stainless steel plates with tenfold higher axial and flexural stiffness were used as controls. Using combined biomechanical testing and morphometric methods, we noted that at four months postplating, the torsional strength of the whole radius was similar for the composite and the metal plated sides.
Morphometric studies using tetracycline labelling techniques showed significantly higher cortical porosity on the metal plated side (14~) as compared to the GFMM plated side (6.3%)-However, the mere selection o~ softer or less rigidmaterials to avoid long term adverse effects runs counter to the basic immediate problem of firmly setting the broken bones in their desired relative position. Obviously, if the
3 ~L~tiQ9;27 internal fixation plate is too soft or flexible, a single plate will not hold the bones sufficiently firmly to permit prompt fracture healing.
Accordingly, a principal object of the present invention is to provide an internal bone fixation plate which is not only sufficiently rig;d to provide immobilization in the early stages of fracture healing, but is not so rigid as to cause bone deterioration following the initial healing stage.
Summary of the Invention In accordance with the present invention, it has been determined that it is primarily resistance to bending and torsion which is needed during the initial stages of fracture healing, and it is relatively low resistance to axial stress which is required during the later stages of healing to avoid osteoporosis and the other a~verse effects which occur when the normal axial stress is not received by the bone.
Further, it has been determined that bone fixation plates having the desirable mechanical features and which are compatible with bone strength are achieved when the fixation plate is formed in a manner similar to the structure of a bone, with a rigid outer shell and a hollow or nonstructural central core.
In one embodiment, a fixation plate having the desired mechanical characteristics is ormed of a hollow plate which has a tubular cross-section, and which is also curved somewhat to fit the outside curvature of normal long human bonesl such as those of the arm or the leg. In addition, ; openings into the center of the fixation plate are blocked from bone or soft tissue ingrowth, either by closing these openings or by filling the central portion of the hollow fixation plate with a polymeric material, such as ultra high molecular weight polyethylene or silicone which are medically inert. In addition, suitable holes are provided
Accordingly, a principal object of the present invention is to provide an internal bone fixation plate which is not only sufficiently rig;d to provide immobilization in the early stages of fracture healing, but is not so rigid as to cause bone deterioration following the initial healing stage.
Summary of the Invention In accordance with the present invention, it has been determined that it is primarily resistance to bending and torsion which is needed during the initial stages of fracture healing, and it is relatively low resistance to axial stress which is required during the later stages of healing to avoid osteoporosis and the other a~verse effects which occur when the normal axial stress is not received by the bone.
Further, it has been determined that bone fixation plates having the desirable mechanical features and which are compatible with bone strength are achieved when the fixation plate is formed in a manner similar to the structure of a bone, with a rigid outer shell and a hollow or nonstructural central core.
In one embodiment, a fixation plate having the desired mechanical characteristics is ormed of a hollow plate which has a tubular cross-section, and which is also curved somewhat to fit the outside curvature of normal long human bonesl such as those of the arm or the leg. In addition, ; openings into the center of the fixation plate are blocked from bone or soft tissue ingrowth, either by closing these openings or by filling the central portion of the hollow fixation plate with a polymeric material, such as ultra high molecular weight polyethylene or silicone which are medically inert. In addition, suitable holes are provided
-4-through the elongated fixation plate to secure it to the two portions of the bone which are being set.
From a broad aspect, it is contemplated that an elongated internal bone fixation plate, provided with conventional openings at either end for securing to the two parts of a broken bone, is formed to have relatively high resistance to bending and torsion, but relatively low axial stiffness, thereby providing both the initial strength for early healing of the bone, and the subsequent low axial stiffness needed to inhibit weakening of the bone through over protection.
Although the hollow tubular configuration outlined hereinabove is preferred, the desired structural properties of high torsional stiffness and resistance to bending, and relatively low axial stiffness may be achieved in other ways. For example, carbon filament sheet material may be impregnated with surgical epoxy, methyl methacrylate cement, or other biocompatible polymeric cementing material, and rolled up; and the resultant elongated roll may be flattened and molded to the configuration of a conventional internal bone fixation plate. By selecting suitable carbon filament thicknesses, proper orientation of the filaments forming the sheet material, the density of the sheet material, as well as the nature of the cementing material, the aesired anisotropic mechanical properties may be obtainefl.
In the preferred embodiments, the fixation plates are about the same in their external dimensions to the sturdy solid metal plates which have been employed, and are hollow structural members of biologically inert metal, such as stainless steel or of the known metals employed in conventional solid metallic plates. The wall thickness of the active hollow portion bridging the bone fracture, is preferably less than ten percent of the maximum transverse dimension of the fixation plate. For example, a wall thickness for stainless steel of about 0.02~ inch may be employed with a plate which has an overall width of about ~609,~7 0.375 inch and a thickness of about 0.153 inch. Under these conditions bending and torsional stiffness is more than two-thirds that of a rigid plate (i.e. solid plate of same width and thick-ness), and axial stiffness is less than one-third that of such a plate. With somewhat greater wall thickness, such as one-fifth of the maximum transverse dimension, a significant reduction in axial stiffness would be achieved, with some reduction in osteoporosis, as compared with a solid plate, but the thinner wall thickness is preferred. With metals of different mechanical properties, it is to be expected that some departures from the figures set forth herein will be appropriate.
In accordance with a broad aspect of the invention, a compatible internal fixation plate for disphyseal bone fractures includes a hollow elongated flat metal plate formed of biologically inert material, with the plate being provided with a plurality of transverse openings at each end for securing the plate to the bone on both sides of the fracture. The fixation plate may also have a continuous outer metallic surface with opposed inner walls spaced apart from one another to provide high bending and torsional stiff-ness, but relatively low axial stiffness relative to a conventional solid metal fixation plate; and advantageously includes arrange-ments for precluding bone ingrowth into the metal-free central zone of said plate. This construction provides good bending and torsional rigidity for early fracture healing, and the low axial stiffness of the plate inhibits osteoporosis and bone weakening during later stages of bone remodeling before the plate is removed.
It is also noted that, as compared with fixation plates of U shaped or other similar non-tubular cross-sectional configur-_5_ ation, the tubular or hollow fixation plates will have greatly increased torsional stiffness, in the order of ten times or more that of the U-shaped fixation plates. Typical prior U-shaped or non-closed cross-sectional configuration fixation plates are shown in United States Patents 2,406,832, granted September 3, 1946 to M. G. Hardinge; and 4,040,129, granted August 9, 1977 to S. G.
Steineman et al.
other objects, features, and advantages of the present invention will become apparent from a consideration of the follow-ing detailed description and from the accompanying drawings.
Brief Description of the Drawings Figure 1 is a diagram indicating the axial tension andcompression stresses of an intact upper leg bone or femur;
Figure 2A and Figure 2B illustrate the differences in loads on internal fixation plates during early fracture healing, and later bone remodeling, respectively;
Figure 3 illustrates an experimental model of a plated magnesium tube simulating the stresses in a long bone, such as the femur;
-5a-"
.
-6- ~ ~ ~ ~
Figure 4 is a comparison of bending and axial stiffness of three different internal fixation plate designs;
Figure 5 is an isometric view of an internal fixation plate having a metallic outer shell and a polymeric filler;
Figures 6 and 7 are top and side views, respectively, of the fixation plate of Figure 5;
Figure 8 is a cross-sectional view taken along lines VIIl-VIII of Figure ~;
Figure 9 is a cross-sectional view through an alternative embodiment of the invention;
Figures 10, 11 and 12 are three views of an alternative hollow fixation plate; and Figure 13 shows a modified form of the fixation plate of Figures 10 through 12.
Detailed Description Referring more particularly to the drawings, Figure 1 shows a femur 12 with the end 14 forming part of the knee joint shown to the left, and the substantially spherical end 16 which forms part of the hip joint appearing to the right in Fig. 1. The protruberance 18 is medically known as the "greater trochanter", to which several muscles are attached.
In medical terminology, the "medial" side is toward the center of the body, and the "lateral" side is toward the outside of the body. In Figure 1, the medial side of the femur is shown toward the bottom of the figure, and the lateral side is toward the top of the figure. This is readily confirmed by the fact that the ball 16 which extends inward toward the hip joint from the main portion of the leg extends downward in the showing of Figure 1. The graphs in Figure 1 shown by the solid lines 20 and 22, represent the axial stress in the cortex, or outer wall of the femur along the length of the medial side (Reference numeral 20) which is under compression, and along the lateral side (Reference numeral 22), which is under tension. It is noted that the .
~L~ ~g27 internal fixation plate 24 is affixed to the lateral side of the femur (normally under tension). When a single plate is used, it is obviously much better from a stress standpoint to have the plate located on the side of the femur which is under tension, rather than that which is under compression, and which will therefore remain pressed together under normal stress conditions.
The normal heavy internal fixation plates are o~ten made of special alloys such as "Zimalloy" or "Vitalliumn.
The test of Fig. l used a Vitallium fixation plate. With the plate in place, the plot 26 indicates very little stress in the lateral cortex, as all of the stress is being absorbed by the plate. However, on the medial side, the plot 2~ indicates only a modest departure from the normal unplated characteristic 20. The soft or more flexible GFMM
plates produce the characteristics 30 and 32 which are moderate departures from the other two characteristics and are intermediate the previously discussed plots. As mentioned above, the problem with the ~FMM softer and more flexible plate is that a single plate does not tend to provide enough rigidity and strength against bending and torsional movement to adequately insure initial setting and healing of the bone.
Referring now to Figures 2A and 2B, Figure 2A
indicates diagrammatically the forces which are present during initial fracture healing; and Figure 2B shows the forces present during bone remodeling. In Figure 2~, the internal fixation plate 24-l has been secured by the screws 34 to the femur 12 on both sides of the break 36. The break 36 is shown somewhat enlarged and will normally be set with the two matching portions in close engagement with one another. In all events, during the initial fracture healing phase, the plate 24-l will be subject to significant bending and torsion stresses, as indicated by the arrows which appear in Figure 2A and by the exaggerated configuration of the showing of the plat~ 24-2 imme~iately adjacent the plate O9~27 24-l.
Figure 2B shows the bone remodeling phase, during the time period following the initial week or so when fracture healing occurs. As indicated by the arrows 38 and as discussed hereinabove, during this stage the plate 24-3 is in tension, and the opposite, medial, side of the femur is in compression, as indicated by the arrows 40.
As mentioned hereinabove, during the bone remodeling stage as shown in Figure 2~, the very high strength and sturdy nature of the solid metallic fixation plates which are generally used has caused a weakening and a porosity in the cortex of the bone, particularly on the lateral side of the femur and underlying the fixation plate which is carrying substantially all of the load.
It may be seen from Figures 2~ and 2B, that the strength required of the fixation plate during the fracture healing stage is resistance to bending and torsion; while during the bone remodeling stage, a relatively low axial stiffness would be desirable to prevent atrophying, osteoporosis, or osteopenia of the lateral cortex of the bone. The present invention involves the development of fixation plates having the desired high resistance to bending and torsion, but relatively low axial stiffness.
Figure 3 shows a magnesium tube 44 which was employed to simulate a long bone, with the cortex of the bone being simulated by the hollow shell of the magnesium tube 44.
fixation plate 46 was secured to the tube as shown in Figure 3, and stress was measured directly by the strain gauges ~l, 52 and 53. The stress at point 54 directly beneath the fixation plate within the wall of the magnesium tube could not be measured experimentally, and therefore was calculated.
Figure 4 shows the results of tests using the arrangement of Figure 3, with three different types of fixation plates. The bar graphs are identified in the legend associated with Figure 4 and the open bar graphs .~
represent results obtained with a solid rectangular stainless steel fixation plate 3.9 millimeters in thickness.
The stippled bar graphs represent a softer titanium alloy of solid material which was 2.2 millimeters thick. This softer and more flexible fixation plate, in which some interest has recently been shown, is principally formed of titanium, with 6 percent aluminum and 4 percent vanadium. The bar graphs shown provided with sectioning lines represent the results of hollow stainless steel fixation plates having a total thickness of 3.9 millimeters, the same as the solid rectangular stainless steel elements, but the wall thickness of the stainless steel outer shell was only 1/2 Oæ a millimeter.
Focusing on the differences between the open bar graph showings and those which are cross-sectioned, it may be seen that the bending stiffness represented by the bar 56 is very nearly es great as that of the solia stainless steel fixation plate as represented by the bar graph 58. On the other hand, the axial stiffness for the new hollow type of fixation plate as shown by the bar fiO is in the order of one third of the solid stainless steel plate represented by the bar graph 62. Similarly, the stress which would occur during bone remodeling is very low for the solid stainless steel plate, as indicated by the bar graph 64, while it is relatively high for the hollow element, as represented by the bar graph 66. This relatively high axial stress during bone remodeling means that osteoporosis and the other adverse effects mentioned hereinabove, will be minimized.
The stippled bars in Figure 4 are typical of the softer or less stiff isotropic bone fixation elements which have been proposed during the last five or ten years. They permit relatively high axial stress during bone remodeling, but do not provide adequate bending or torsional stiffness during the fracture healing phase to be satisfactory.
Incidentally, in connection with the showings of Figure 4, the torsional stiffness generally follows the bending stiffness for the fixation plates under consideration, and therefore has not been shown separately.
Figure ~ is an isometric view, and Figures 6, 7 and are conventional top,side, and cross-sectional views of a fixation plate in accordance with the present invention. As shown in Figure 5, the fixation plate includes a continuous outer tubular body 72 and filler material 74, which may be ultra high density polyethylens, located within the tubular shell to prevent bone ingrowth. The outer tubular shell may be made of any of a number of known biologically inert metallic alloys, such as the cobalt, chromium, molybdenum alloys known under the trademark "ZIMALLOY", for example.
The high density polyethylene is also biologically inert, and has good mechanical strength for supporting the screws, while also having relatively low compressional stiffness.
In accordance with the conventional techniques, the fixation plate includes three standard circular holes 76 at one end, and two standard size holes 78 at the other end, with one elongated hole or opening 80 intermediate the two circular holes 78 at the second end. As best shown in Figure 6, the central hole 80 is employed in the course of pulling the two parts of the fractured bone more closely together. More specifically, the fixation plate is initially secured to one portion of the broken bone by three screws through the holes 76. Then one screw is fastened through the outer portion of the hole 80 furtherest away from the holes 76 and is left slightly loose without full tightened engagement with the rim of the fixation plate.
Pressure is then brought to bear on the screw extending through the outer portion of the hole ~0, relative to the fixation plate 72, and the mating surfaces of the bone, where it has been broken, are brought closer together. Then the two additional screws are fastened into the bone through the outer holes 78, and the third screw through the opening is further tightened. This completes the mechanical securing of the fixation plate to the two portions of the ~L6~ 7 broken bone.
Other structural features which may be noted include the counter sinking of the holes, so that the screwheads do not extend significantly above the surface of the plate, as such protrusion could interfere with the movement of muscles or other tissues past the fixation plate. Also, as best shown in Figure 8, the plate may be slightly curved to better fit the rounded outer surface of the bones to which it is to be secured.
Incidentally, in the course of the manufacture of the fixation plate as shown in Figures 5 through 8, an initial circular thin walled tube is reformed through the use of successive mandrels to the shape indicated in Figure 8.
High density polyethylene material is then molded into the center of the tube. After it has hardened, the holes and counter sinking machining operations are accomplished.
The fixation plates are made in a number of standard sizes. One unit suitable for use with the bones of the forearm, the radiùs or the ulna, could be 3.55 inches in length, 0.153 inches in thickness, and 0.~75 inches in lateral extent. The wall thickness of the metal tubing could be in the order of 0.28 inches. The spacing between the holes 76 may be in the order of 0.375 inches. The holes may be 7/64th inch countersunk holes formed to match the head configuration of Woodruff type screws. The outer holes 76 and 78 may be located in the order of ~.175 inch from the end of the fixation plate. The corners may be provided with a slight radius and the tubes should be deburred and carefully polished to avoid any rough edges which might be abrasive to tissue.
In the foregoing paragraph, typical dimensions for a fixation plate applicable to fractures of the forearm were given. It is to be understood that fixation plates are formed in many sizes and configurations to suit the needs of orthopedic surgeons for various types of broken bones.
Accordingly, the dimensions set forth hereinabove are merely representative and are not to be considered as limiting.
Figure 9 is a cross-sectional showing of an alternative fixation plate in accordance with the invention in which a composite plate formed of a rolled-up sheet of carbon filament fibers 89 and a suitable cementing material such as methyl methacrylate 86, is employed. More specifically, a sheet of carbon filament fibers is formed by laying out two layers of the fibers on a flat surface, with the two layers at a suitable angle relative to one another, and applying a suitable cement such as methacrylate to them by spraying or the like. The cement impregnated fiber sheet material is then rolled up tightly to form a spiral roll.
The resultant roll is then placed in a mold having an inner surface configuration corresponding to the outer cross-sectional configuration as shown in Figures 8 or 9.Subsequently, after the composite fixation plate has hardened, it is su~ject to machining operations to provide the holes as indicated in Figure 6, for example, and the outer surface of the composite fixation plate is smoothed by appropriate sanding, grinding or other similar operations, to provide a smooth exterior surface. The resultant plate has similar anisotropic properties to the tubular unit of Figures 5 through 8, in that it has high resistance to bending and torsional stress, but low axial stiffness.
Another alternative bone fixation plate is shown in Figures 10 through 12. The overall external configuration of the plate of Figures 10 through 12 is similar to that of the fixation plate of Figures 5 through 8. It is formed from a conventional solid stainless steel or other 3~ biologically inert metal plate 88, having an opening 90 milled into its central portion. A plate 92 of the same material is wel~ed over the opening 90 to form the central tubular active portion of the fixation plate, which will bridge the bone fracture. Figure 11 is a central cross-sectional view taken along lines XI-XI of Figure 10;
and Figure 12 is a cross-sectional view taken along line ~0~'~7 XII-XII of Figure 11, through the central hollow or tubular portion of the plate. Figure 13 is a cross-sectional showing of an alternative embodiment in which the hollow space is filled with material 94 having low resistance to longitudinal stress, and which will preclude bone or tissue ingrowth in the event the welding of the plate 92 into place is not 100 percent perfect and has left a few small openings. The material 94 may be ultra high density polyethylene silicone rubber or other polymeric material.
Incidentally, the dimensions and the wall thickness of the hollow portion (0.028 inch) may be substantially the same for the embodiments of Figures 10 through 13 as for that of Figures 5 through 8. Accordingly, bone or tissue ingrowth may be precluded when hollow metallic fixation plates are employed, either by sealing the opening or openings into the plate or by the presence of biologically inert material of low mechanical stiffness within the hollow fixation plate.
In conclusion, it is to be understood that the foregoing detailed ~escription and the accompanying drawings merely describe specific embodiments of the invention.
Other specific dimensions and materials may be employed to achieve the same results. For example, instead of filling the tubular fixation plate with ultra high molecular weight polyethylene, other materials having relatively low mechanical stiffness and which are biologically inert may be employed. Accordingly, the present invention is not limited to that precisely as shown in the drawings and as described hereinabove.
From a broad aspect, it is contemplated that an elongated internal bone fixation plate, provided with conventional openings at either end for securing to the two parts of a broken bone, is formed to have relatively high resistance to bending and torsion, but relatively low axial stiffness, thereby providing both the initial strength for early healing of the bone, and the subsequent low axial stiffness needed to inhibit weakening of the bone through over protection.
Although the hollow tubular configuration outlined hereinabove is preferred, the desired structural properties of high torsional stiffness and resistance to bending, and relatively low axial stiffness may be achieved in other ways. For example, carbon filament sheet material may be impregnated with surgical epoxy, methyl methacrylate cement, or other biocompatible polymeric cementing material, and rolled up; and the resultant elongated roll may be flattened and molded to the configuration of a conventional internal bone fixation plate. By selecting suitable carbon filament thicknesses, proper orientation of the filaments forming the sheet material, the density of the sheet material, as well as the nature of the cementing material, the aesired anisotropic mechanical properties may be obtainefl.
In the preferred embodiments, the fixation plates are about the same in their external dimensions to the sturdy solid metal plates which have been employed, and are hollow structural members of biologically inert metal, such as stainless steel or of the known metals employed in conventional solid metallic plates. The wall thickness of the active hollow portion bridging the bone fracture, is preferably less than ten percent of the maximum transverse dimension of the fixation plate. For example, a wall thickness for stainless steel of about 0.02~ inch may be employed with a plate which has an overall width of about ~609,~7 0.375 inch and a thickness of about 0.153 inch. Under these conditions bending and torsional stiffness is more than two-thirds that of a rigid plate (i.e. solid plate of same width and thick-ness), and axial stiffness is less than one-third that of such a plate. With somewhat greater wall thickness, such as one-fifth of the maximum transverse dimension, a significant reduction in axial stiffness would be achieved, with some reduction in osteoporosis, as compared with a solid plate, but the thinner wall thickness is preferred. With metals of different mechanical properties, it is to be expected that some departures from the figures set forth herein will be appropriate.
In accordance with a broad aspect of the invention, a compatible internal fixation plate for disphyseal bone fractures includes a hollow elongated flat metal plate formed of biologically inert material, with the plate being provided with a plurality of transverse openings at each end for securing the plate to the bone on both sides of the fracture. The fixation plate may also have a continuous outer metallic surface with opposed inner walls spaced apart from one another to provide high bending and torsional stiff-ness, but relatively low axial stiffness relative to a conventional solid metal fixation plate; and advantageously includes arrange-ments for precluding bone ingrowth into the metal-free central zone of said plate. This construction provides good bending and torsional rigidity for early fracture healing, and the low axial stiffness of the plate inhibits osteoporosis and bone weakening during later stages of bone remodeling before the plate is removed.
It is also noted that, as compared with fixation plates of U shaped or other similar non-tubular cross-sectional configur-_5_ ation, the tubular or hollow fixation plates will have greatly increased torsional stiffness, in the order of ten times or more that of the U-shaped fixation plates. Typical prior U-shaped or non-closed cross-sectional configuration fixation plates are shown in United States Patents 2,406,832, granted September 3, 1946 to M. G. Hardinge; and 4,040,129, granted August 9, 1977 to S. G.
Steineman et al.
other objects, features, and advantages of the present invention will become apparent from a consideration of the follow-ing detailed description and from the accompanying drawings.
Brief Description of the Drawings Figure 1 is a diagram indicating the axial tension andcompression stresses of an intact upper leg bone or femur;
Figure 2A and Figure 2B illustrate the differences in loads on internal fixation plates during early fracture healing, and later bone remodeling, respectively;
Figure 3 illustrates an experimental model of a plated magnesium tube simulating the stresses in a long bone, such as the femur;
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.
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Figure 4 is a comparison of bending and axial stiffness of three different internal fixation plate designs;
Figure 5 is an isometric view of an internal fixation plate having a metallic outer shell and a polymeric filler;
Figures 6 and 7 are top and side views, respectively, of the fixation plate of Figure 5;
Figure 8 is a cross-sectional view taken along lines VIIl-VIII of Figure ~;
Figure 9 is a cross-sectional view through an alternative embodiment of the invention;
Figures 10, 11 and 12 are three views of an alternative hollow fixation plate; and Figure 13 shows a modified form of the fixation plate of Figures 10 through 12.
Detailed Description Referring more particularly to the drawings, Figure 1 shows a femur 12 with the end 14 forming part of the knee joint shown to the left, and the substantially spherical end 16 which forms part of the hip joint appearing to the right in Fig. 1. The protruberance 18 is medically known as the "greater trochanter", to which several muscles are attached.
In medical terminology, the "medial" side is toward the center of the body, and the "lateral" side is toward the outside of the body. In Figure 1, the medial side of the femur is shown toward the bottom of the figure, and the lateral side is toward the top of the figure. This is readily confirmed by the fact that the ball 16 which extends inward toward the hip joint from the main portion of the leg extends downward in the showing of Figure 1. The graphs in Figure 1 shown by the solid lines 20 and 22, represent the axial stress in the cortex, or outer wall of the femur along the length of the medial side (Reference numeral 20) which is under compression, and along the lateral side (Reference numeral 22), which is under tension. It is noted that the .
~L~ ~g27 internal fixation plate 24 is affixed to the lateral side of the femur (normally under tension). When a single plate is used, it is obviously much better from a stress standpoint to have the plate located on the side of the femur which is under tension, rather than that which is under compression, and which will therefore remain pressed together under normal stress conditions.
The normal heavy internal fixation plates are o~ten made of special alloys such as "Zimalloy" or "Vitalliumn.
The test of Fig. l used a Vitallium fixation plate. With the plate in place, the plot 26 indicates very little stress in the lateral cortex, as all of the stress is being absorbed by the plate. However, on the medial side, the plot 2~ indicates only a modest departure from the normal unplated characteristic 20. The soft or more flexible GFMM
plates produce the characteristics 30 and 32 which are moderate departures from the other two characteristics and are intermediate the previously discussed plots. As mentioned above, the problem with the ~FMM softer and more flexible plate is that a single plate does not tend to provide enough rigidity and strength against bending and torsional movement to adequately insure initial setting and healing of the bone.
Referring now to Figures 2A and 2B, Figure 2A
indicates diagrammatically the forces which are present during initial fracture healing; and Figure 2B shows the forces present during bone remodeling. In Figure 2~, the internal fixation plate 24-l has been secured by the screws 34 to the femur 12 on both sides of the break 36. The break 36 is shown somewhat enlarged and will normally be set with the two matching portions in close engagement with one another. In all events, during the initial fracture healing phase, the plate 24-l will be subject to significant bending and torsion stresses, as indicated by the arrows which appear in Figure 2A and by the exaggerated configuration of the showing of the plat~ 24-2 imme~iately adjacent the plate O9~27 24-l.
Figure 2B shows the bone remodeling phase, during the time period following the initial week or so when fracture healing occurs. As indicated by the arrows 38 and as discussed hereinabove, during this stage the plate 24-3 is in tension, and the opposite, medial, side of the femur is in compression, as indicated by the arrows 40.
As mentioned hereinabove, during the bone remodeling stage as shown in Figure 2~, the very high strength and sturdy nature of the solid metallic fixation plates which are generally used has caused a weakening and a porosity in the cortex of the bone, particularly on the lateral side of the femur and underlying the fixation plate which is carrying substantially all of the load.
It may be seen from Figures 2~ and 2B, that the strength required of the fixation plate during the fracture healing stage is resistance to bending and torsion; while during the bone remodeling stage, a relatively low axial stiffness would be desirable to prevent atrophying, osteoporosis, or osteopenia of the lateral cortex of the bone. The present invention involves the development of fixation plates having the desired high resistance to bending and torsion, but relatively low axial stiffness.
Figure 3 shows a magnesium tube 44 which was employed to simulate a long bone, with the cortex of the bone being simulated by the hollow shell of the magnesium tube 44.
fixation plate 46 was secured to the tube as shown in Figure 3, and stress was measured directly by the strain gauges ~l, 52 and 53. The stress at point 54 directly beneath the fixation plate within the wall of the magnesium tube could not be measured experimentally, and therefore was calculated.
Figure 4 shows the results of tests using the arrangement of Figure 3, with three different types of fixation plates. The bar graphs are identified in the legend associated with Figure 4 and the open bar graphs .~
represent results obtained with a solid rectangular stainless steel fixation plate 3.9 millimeters in thickness.
The stippled bar graphs represent a softer titanium alloy of solid material which was 2.2 millimeters thick. This softer and more flexible fixation plate, in which some interest has recently been shown, is principally formed of titanium, with 6 percent aluminum and 4 percent vanadium. The bar graphs shown provided with sectioning lines represent the results of hollow stainless steel fixation plates having a total thickness of 3.9 millimeters, the same as the solid rectangular stainless steel elements, but the wall thickness of the stainless steel outer shell was only 1/2 Oæ a millimeter.
Focusing on the differences between the open bar graph showings and those which are cross-sectioned, it may be seen that the bending stiffness represented by the bar 56 is very nearly es great as that of the solia stainless steel fixation plate as represented by the bar graph 58. On the other hand, the axial stiffness for the new hollow type of fixation plate as shown by the bar fiO is in the order of one third of the solid stainless steel plate represented by the bar graph 62. Similarly, the stress which would occur during bone remodeling is very low for the solid stainless steel plate, as indicated by the bar graph 64, while it is relatively high for the hollow element, as represented by the bar graph 66. This relatively high axial stress during bone remodeling means that osteoporosis and the other adverse effects mentioned hereinabove, will be minimized.
The stippled bars in Figure 4 are typical of the softer or less stiff isotropic bone fixation elements which have been proposed during the last five or ten years. They permit relatively high axial stress during bone remodeling, but do not provide adequate bending or torsional stiffness during the fracture healing phase to be satisfactory.
Incidentally, in connection with the showings of Figure 4, the torsional stiffness generally follows the bending stiffness for the fixation plates under consideration, and therefore has not been shown separately.
Figure ~ is an isometric view, and Figures 6, 7 and are conventional top,side, and cross-sectional views of a fixation plate in accordance with the present invention. As shown in Figure 5, the fixation plate includes a continuous outer tubular body 72 and filler material 74, which may be ultra high density polyethylens, located within the tubular shell to prevent bone ingrowth. The outer tubular shell may be made of any of a number of known biologically inert metallic alloys, such as the cobalt, chromium, molybdenum alloys known under the trademark "ZIMALLOY", for example.
The high density polyethylene is also biologically inert, and has good mechanical strength for supporting the screws, while also having relatively low compressional stiffness.
In accordance with the conventional techniques, the fixation plate includes three standard circular holes 76 at one end, and two standard size holes 78 at the other end, with one elongated hole or opening 80 intermediate the two circular holes 78 at the second end. As best shown in Figure 6, the central hole 80 is employed in the course of pulling the two parts of the fractured bone more closely together. More specifically, the fixation plate is initially secured to one portion of the broken bone by three screws through the holes 76. Then one screw is fastened through the outer portion of the hole 80 furtherest away from the holes 76 and is left slightly loose without full tightened engagement with the rim of the fixation plate.
Pressure is then brought to bear on the screw extending through the outer portion of the hole ~0, relative to the fixation plate 72, and the mating surfaces of the bone, where it has been broken, are brought closer together. Then the two additional screws are fastened into the bone through the outer holes 78, and the third screw through the opening is further tightened. This completes the mechanical securing of the fixation plate to the two portions of the ~L6~ 7 broken bone.
Other structural features which may be noted include the counter sinking of the holes, so that the screwheads do not extend significantly above the surface of the plate, as such protrusion could interfere with the movement of muscles or other tissues past the fixation plate. Also, as best shown in Figure 8, the plate may be slightly curved to better fit the rounded outer surface of the bones to which it is to be secured.
Incidentally, in the course of the manufacture of the fixation plate as shown in Figures 5 through 8, an initial circular thin walled tube is reformed through the use of successive mandrels to the shape indicated in Figure 8.
High density polyethylene material is then molded into the center of the tube. After it has hardened, the holes and counter sinking machining operations are accomplished.
The fixation plates are made in a number of standard sizes. One unit suitable for use with the bones of the forearm, the radiùs or the ulna, could be 3.55 inches in length, 0.153 inches in thickness, and 0.~75 inches in lateral extent. The wall thickness of the metal tubing could be in the order of 0.28 inches. The spacing between the holes 76 may be in the order of 0.375 inches. The holes may be 7/64th inch countersunk holes formed to match the head configuration of Woodruff type screws. The outer holes 76 and 78 may be located in the order of ~.175 inch from the end of the fixation plate. The corners may be provided with a slight radius and the tubes should be deburred and carefully polished to avoid any rough edges which might be abrasive to tissue.
In the foregoing paragraph, typical dimensions for a fixation plate applicable to fractures of the forearm were given. It is to be understood that fixation plates are formed in many sizes and configurations to suit the needs of orthopedic surgeons for various types of broken bones.
Accordingly, the dimensions set forth hereinabove are merely representative and are not to be considered as limiting.
Figure 9 is a cross-sectional showing of an alternative fixation plate in accordance with the invention in which a composite plate formed of a rolled-up sheet of carbon filament fibers 89 and a suitable cementing material such as methyl methacrylate 86, is employed. More specifically, a sheet of carbon filament fibers is formed by laying out two layers of the fibers on a flat surface, with the two layers at a suitable angle relative to one another, and applying a suitable cement such as methacrylate to them by spraying or the like. The cement impregnated fiber sheet material is then rolled up tightly to form a spiral roll.
The resultant roll is then placed in a mold having an inner surface configuration corresponding to the outer cross-sectional configuration as shown in Figures 8 or 9.Subsequently, after the composite fixation plate has hardened, it is su~ject to machining operations to provide the holes as indicated in Figure 6, for example, and the outer surface of the composite fixation plate is smoothed by appropriate sanding, grinding or other similar operations, to provide a smooth exterior surface. The resultant plate has similar anisotropic properties to the tubular unit of Figures 5 through 8, in that it has high resistance to bending and torsional stress, but low axial stiffness.
Another alternative bone fixation plate is shown in Figures 10 through 12. The overall external configuration of the plate of Figures 10 through 12 is similar to that of the fixation plate of Figures 5 through 8. It is formed from a conventional solid stainless steel or other 3~ biologically inert metal plate 88, having an opening 90 milled into its central portion. A plate 92 of the same material is wel~ed over the opening 90 to form the central tubular active portion of the fixation plate, which will bridge the bone fracture. Figure 11 is a central cross-sectional view taken along lines XI-XI of Figure 10;
and Figure 12 is a cross-sectional view taken along line ~0~'~7 XII-XII of Figure 11, through the central hollow or tubular portion of the plate. Figure 13 is a cross-sectional showing of an alternative embodiment in which the hollow space is filled with material 94 having low resistance to longitudinal stress, and which will preclude bone or tissue ingrowth in the event the welding of the plate 92 into place is not 100 percent perfect and has left a few small openings. The material 94 may be ultra high density polyethylene silicone rubber or other polymeric material.
Incidentally, the dimensions and the wall thickness of the hollow portion (0.028 inch) may be substantially the same for the embodiments of Figures 10 through 13 as for that of Figures 5 through 8. Accordingly, bone or tissue ingrowth may be precluded when hollow metallic fixation plates are employed, either by sealing the opening or openings into the plate or by the presence of biologically inert material of low mechanical stiffness within the hollow fixation plate.
In conclusion, it is to be understood that the foregoing detailed ~escription and the accompanying drawings merely describe specific embodiments of the invention.
Other specific dimensions and materials may be employed to achieve the same results. For example, instead of filling the tubular fixation plate with ultra high molecular weight polyethylene, other materials having relatively low mechanical stiffness and which are biologically inert may be employed. Accordingly, the present invention is not limited to that precisely as shown in the drawings and as described hereinabove.
Claims (13)
1. A compatible internal fixation plate for diaphyseal bone fractures comprising:
a hollow elongated flat metal plate formed of biologically inert material;
said plate being provided with a plurality of transverse openings at each end for securing the plate to the bone on both sides of the fracture;
said plate having a continuous outer metallic surface with opposed inner walls spaced apart from one another to provide high bending and torsional stiffness, but relatively low axial stiffness relative to a conventional solid metal fixation plate; and means for precluding bone ingrowth into the metal-free central zone of said plate;
whereby bending and torsional rigidity is provided for early fracture healing, and the low axial stiffness of the plate inhibits osteoporosis and bone weakening during later stages of bone remodeling before the plate is removed.
a hollow elongated flat metal plate formed of biologically inert material;
said plate being provided with a plurality of transverse openings at each end for securing the plate to the bone on both sides of the fracture;
said plate having a continuous outer metallic surface with opposed inner walls spaced apart from one another to provide high bending and torsional stiffness, but relatively low axial stiffness relative to a conventional solid metal fixation plate; and means for precluding bone ingrowth into the metal-free central zone of said plate;
whereby bending and torsional rigidity is provided for early fracture healing, and the low axial stiffness of the plate inhibits osteoporosis and bone weakening during later stages of bone remodeling before the plate is removed.
2. A compatible internal fixation plate as defined in claim 1 further comprising biologically inert polymeric material having relatively low stiffness substantially filling the central hollow portion of said plate.
3. A compatible internal fixation plate as defined in claim 2 wherein said polymeric material is ultra high molecular weight polyethylene.
4. A compatible internal fixation plate as defined in claim 1 wherein the wall thickness of each of the walls of said hollow fixation plate is less than one-tenth of the maximum transverse dimension of said fixation plate.
5. A compatible internal fixation plate as defined in claim 1 wherein the wall thickness of each of the walls of said hollow fixation plate is less than one-fifth of the maximum transverse dimension of said fixation plate.
6. A compatible internal fixation plate as defined in claim 1 wherein at least one surface of said plate is curved in a plane transverse to the longitudinal axis of said plate for closer engagement with the outer surface of the bone to which it is to be secured.
7. A compatible internal fixation plate as defined in claim 1 wherein said metal plate is hollow only in the central zone between said transverse openings.
8. A compatible internal bone fixation plate comprising:
an anisotropic elongated bone fixation member formed of biologically inert material;
said bone fixation member including means for providing a relatively high level of resistance to bending and torsional forces comparable to that of conventional solid metallic fixation plates;
said body member further including means for providing a relatively low axial stiffness comparable to that of a bone, and substantially less than that of conventional solid metallic fixation plates;
whereby initial bending and torsional rigidity is provided for early fracture healing, and the low axial stiffness of the plate inhibits osteoporosis and bone weakening during later stages of bone remodeling before the plate is removed.
an anisotropic elongated bone fixation member formed of biologically inert material;
said bone fixation member including means for providing a relatively high level of resistance to bending and torsional forces comparable to that of conventional solid metallic fixation plates;
said body member further including means for providing a relatively low axial stiffness comparable to that of a bone, and substantially less than that of conventional solid metallic fixation plates;
whereby initial bending and torsional rigidity is provided for early fracture healing, and the low axial stiffness of the plate inhibits osteoporosis and bone weakening during later stages of bone remodeling before the plate is removed.
9. A compatible internal bone fixation plate as defined in claim 8 wherein said plate is a hollow elongated flate metal member.
10. A compatible internal bone fixation plate as defined in claim 9 wherein said hollow member is substantially filled with high density polyethylene.
11. A compatible internal bone fixation plate as defined in claim 9 wherein said hollow member is substantially filled with biologically inert plastic material having low mechanical stiffness.
12. A compatible internal bone fixation plate as defined in claim 8 wherein said elongated bone fixation member includes carbon filament sheet material impregnated with biologically inert cementing material molded to form a relatively flat elongated fixation plate, said sheet material being spirally wound about an axis substantially parallel to the longitudinal axis of said fixation plate.
13. A compatible bone fixation number as defined in claim 9 wherein said hollow member is formed of stainless steel.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US148,204 | 1980-05-09 | ||
| US06/148,204 US4403606A (en) | 1980-05-09 | 1980-05-09 | Compatible internal bone fixation plate |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CA1160927A true CA1160927A (en) | 1984-01-24 |
Family
ID=22524744
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA000375962A Expired CA1160927A (en) | 1980-05-09 | 1981-04-22 | Compatible internal bone fixation plate |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US4403606A (en) |
| AU (1) | AU7026981A (en) |
| CA (1) | CA1160927A (en) |
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| EP2364115B1 (en) | 2008-10-15 | 2019-02-20 | Smith & Nephew, Inc. | Composite internal fixators |
| US20100152783A1 (en) * | 2008-12-11 | 2010-06-17 | Veterinary Implants Direct, Llc | Universal Surgical Plate with 30 Degree Compression Angle |
| US8221420B2 (en) | 2009-02-16 | 2012-07-17 | Aoi Medical, Inc. | Trauma nail accumulator |
| US9433439B2 (en) * | 2009-09-10 | 2016-09-06 | Innovasis, Inc. | Radiolucent stabilizing rod with radiopaque marker |
| US8801712B2 (en) * | 2010-03-08 | 2014-08-12 | Innovasis, Inc. | Radiolucent bone plate with radiopaque marker |
| EP2417923B1 (en) | 2010-08-11 | 2013-11-13 | Stryker Trauma SA | External fixator system |
| US8945128B2 (en) | 2010-08-11 | 2015-02-03 | Stryker Trauma Sa | External fixator system |
| US11141196B2 (en) | 2010-08-11 | 2021-10-12 | Stryker European Operations Holdings Llc | External fixator system |
| ITRM20100496A1 (en) * | 2010-09-27 | 2010-12-27 | Alessia Zaccardi | PLATE FOR OSTEOSYNTHESIS OF THE FEMORE IN CARBON AND SILVER |
| US9855081B2 (en) * | 2011-07-15 | 2018-01-02 | Smith & Nephew, Inc. | Fiber-reinforced composite orthopaedic device having embedded electronics |
| FI125678B (en) * | 2011-08-26 | 2016-01-15 | Bioretec Oy | BIOABSORABLE, ORIENTED, DEFORMABLE FIXATION MATERIAL AND DISC |
| US9101398B2 (en) | 2012-08-23 | 2015-08-11 | Stryker Trauma Sa | Bone transport external fixation frame |
| US9579133B2 (en) | 2013-02-01 | 2017-02-28 | James Guthlein | Internal fixation device |
Family Cites Families (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2406832A (en) * | 1945-03-05 | 1946-09-03 | Mervyn G Hardinge | Fracture plate |
| US2486303A (en) * | 1948-04-29 | 1949-10-25 | Harry Herschel Leiter | Surgical appliance for bone fractures |
| US4040129A (en) * | 1970-07-15 | 1977-08-09 | Institut Dr. Ing. Reinhard Straumann Ag | Surgical implant and alloy for use in making an implant |
| US3893196A (en) * | 1970-08-06 | 1975-07-08 | Robert F Hochman | Body implant material |
| SU400317A1 (en) * | 1971-03-30 | 1973-10-01 | PLATE FOR THE TREATMENT OF BONE FRACTURES | |
| DE2213283C2 (en) * | 1972-03-18 | 1974-03-14 | Dietrich Prof. Dr. 4401 Roxel Schoellner | Distraction device for performing an extension osteotomy |
| DE2603456C2 (en) * | 1976-01-30 | 1984-04-05 | Robert Bosch Gmbh, 7000 Stuttgart | Process for the production of a bone implant |
| US4089071A (en) * | 1976-09-08 | 1978-05-16 | Kalnberz Viktor Konstantinovic | Material for making bone endoprosthesis and endoprosthesis made of said material |
| CH613858A5 (en) * | 1977-04-22 | 1979-10-31 | Straumann Inst Ag | |
| DE2806609C2 (en) * | 1978-02-16 | 1980-03-13 | Anton Dr. 4400 Muenster Haerle | Osteosynthesis aids |
-
1980
- 1980-05-09 US US06/148,204 patent/US4403606A/en not_active Expired - Lifetime
-
1981
- 1981-04-22 CA CA000375962A patent/CA1160927A/en not_active Expired
- 1981-05-08 AU AU70269/81A patent/AU7026981A/en not_active Abandoned
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP2016918A1 (en) | 2007-07-18 | 2009-01-21 | Mario Angel Pizzicara | Blocked plate with combined holes, stability control and double angulation, to join fractured bones |
Also Published As
| Publication number | Publication date |
|---|---|
| AU7026981A (en) | 1981-11-12 |
| US4403606A (en) | 1983-09-13 |
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