Method for producing porous device
09622847 ยท 2017-04-18
Assignee
Inventors
- Wei-Hsiang Chang (Duluth, GA)
- Stephen Lee Laffoon (Atlanta, GA)
- Christopher S. D. Lee (Atlanta, GA)
- David Lee Safranski (Atlanta, GA)
Cpc classification
A61F2002/30316
HUMAN NECESSITIES
B29C67/202
PERFORMING OPERATIONS; TRANSPORTING
C08J2371/00
CHEMISTRY; METALLURGY
B29K2071/00
PERFORMING OPERATIONS; TRANSPORTING
A61F2002/30065
HUMAN NECESSITIES
C08J9/32
CHEMISTRY; METALLURGY
C08J9/26
CHEMISTRY; METALLURGY
International classification
C08J9/00
CHEMISTRY; METALLURGY
Abstract
A method for making a polymer with a porous layer from a solid piece of polymer is disclosed. In various embodiments, the method includes heating a surface of a solid piece of polymer to a processing temperature below a melting point of the polymer and holding the processing temperature while displacing a porogen layer through the surface of the polymer to create a matrix layer of the solid polymer body comprising the polymer and the porogen layer. In at least one embodiment, the method also includes removing at least a portion of the layer of porogen from the matrix layer to create a porous layer of the solid piece of polymer.
Claims
1. A method for forming a solid thermoplastic body with pores distributed through at least a portion of the solid thermoplastic body, the method comprising: heating a surface region of a solid piece of thermoplastic to a processing temperature about one to twenty-nine degrees Celsius less than a melting point of the thermoplastic; holding the processing temperature below the melting point of the thermoplastic while displacing the surface region of the thermoplastic through a granular porogen layer to create a matrix region of the solid thermoplastic body comprising the thermoplastic and the granular porogen; and cooling the matrix region to cease displacement of the granular porogen through the thermoplastic.
2. A method for forming a solid thermoplastic body with pores distributed through at least a portion of the solid thermoplastic body, the method comprising: heating a surface region of a solid piece of thermoplastic to a processing temperature below a melting point of the thermoplastic, wherein the surface region of the solid piece of thermoplastic comprises less than one half of the solid piece of thermoplastic; holding the processing temperature below the melting point of the thermoplastic while pressing the surface region of the thermoplastic onto a granular porogen layer thereby causing the granular porogen to displace within the surface region creating a matrix region of the solid thermoplastic body comprising at least a portion of the surface region of the solid piece of thermoplastic and at least a portion of the granular porogen layer; and cooling the matrix region to cease displacement of the granular porogen through the thermoplastic.
3. The method of claim 2, wherein the granular porogen layer is laterally constrained such that the granular porogen layer has a substantially constant depth while the surface region of the thermoplastic is pressed onto the granular porogen layer.
4. The method of claim 3, wherein the granular porogen layer has the substantially constant depth of at least approximately 0.2 mm.
5. The method of claim 2, the method further comprising: distributing the granular porogen layer on a working surface; positioning the surface region of the solid piece of thermoplastic such that the surface region is in contact with at least a portion of the porogen layer prior to heating the surface region; and pressing the surface region of the thermoplastic onto the granular porogen layer comprises subjecting the granular porogen layer to compression between the surface region of the solid piece of thermoplastic and the working surface.
6. A method for forming a solid thermoplastic body with pores distributed through at least a portion of the solid, the method comprising: distributing a porogen layer on a working surface; positioning a surface of a solid piece of thermoplastic such that the surface is in contact with at least a portion of the porogen layer; heating a surface region of the solid piece of thermoplastic to a processing temperature below a melting point of the thermoplastic, wherein the surface region of the solid piece of thermoplastic comprises less than a third of the solid piece of thermoplastic; holding the processing temperature below the melting point of the thermoplastic while compressing the porogen layer between the surface of the solid piece of thermoplastic and the working surface thereby causing the porogen to displace within the surface region of the solid piece of thermoplastic creating a matrix region of the solid thermoplastic body, wherein the matrix region comprises at least a portion of the surface region of the solid piece of thermoplastic and at least a portion of the porogen layer; cooling the matrix region to cease displacement of the porogen through the thermoplastic; and removing at least a portion of the porogen layer from the matrix region to create a porous region of the solid piece of thermoplastic after completion of a preselected period of processing time.
7. The method of claim 6, wherein the preselected period of processing time is about twenty to forty minutes.
8. The method of claim 7, wherein the lap shear strength between the porous region and the remainder of the solid piece of thermoplastic after cooling is approximately 20-25 MPa.
9. The method of claim 6, wherein the preselected period of processing time is less than twenty minutes.
10. The method of claim 9, wherein the lap shear strength between the porous region and the remainder of the solid piece of thermoplastic after cooling is less than approximately 20 MPa.
11. A method for forming a solid thermoplastic body with pores distributed through at least a portion of the solid thermoplastic body, the method comprising: heating a surface region of a solid piece of thermoplastic to a processing temperature below a melting point of the thermoplastic for a preselected period of processing time of about twenty to forty minutes; holding the processing temperature below the melting point of the thermoplastic while displacing the surface region of the thermoplastic through a granular porogen layer to create a matrix region of the solid thermoplastic body comprising the thermoplastic and the granular porogen; cooling the matrix region to cease displacement of the granular porogen through the thermoplastic; and removing at least a portion of the granular porogen layer from the matrix region to create a porous region of the solid piece of thermoplastic after completion of the preselected period of processing time.
12. The method of claim 11, wherein: the preselected period of time is approximately 30 minutes; and the resulting lap shear strength of the porous region and the remainder of the solid piece of thermoplastic after cooling is approximately 21 MPa.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(12) This application is related to and incorporates by reference herein the following U.S. patent applications:
(13) U.S. patent application Ser. No. 12/997,343, entitled Material and Method for Producing the Same, filed on Jun. 12, 2009;
(14) U.S. patent application Ser. No. 13/935,478, entitled Porous Polymer Layer and Methods of Manufacture, filed Jul. 3, 2013.
(15) Whether or not a term is capitalized is not considered definitive or limiting of the meaning of a term. As used in this document, a capitalized term shall have the same meaning as an uncapitalized term, unless the context of the usage specifically indicates that a more restrictive meaning for the capitalized term is intended. However, the capitalization or lack thereof within the remainder of this document is not intended to be necessarily limiting unless the context clearly indicates that such limitation is intended.
(16) For the purpose of promoting an understanding of the principles of the present disclosure, reference will now be made to the embodiments illustrated in the drawings and specific language will be used to describe the same. It will, nevertheless, be understood that no limitation of the scope of the disclosure is thereby intended; any alterations and further modifications of the described or illustrated embodiments, and any further applications of the principles of the disclosure as illustrated therein are contemplated as would normally occur to one skilled in the art to which the disclosure relates. All limitations of scope should be determined in accordance with and as expressed in the claims.
(17) Overview
(18) According to particular embodiments, the systems and methods herein are directed to a process for producing a porous polymer including: 1) heating a surface of a solid piece of polymer to a processing temperature below a melting point of the polymer; 2) holding the processing temperature while displacing a porogen layer through the surface of the polymer to create a matrix layer of the solid polymer body comprising the polymer and the porogen layer; and 3) removing at least a portion of the porogen layer from polymer. In one or more embodiments, the processing temperature is approximately one (1) to 38 degrees below a melting point of a polymer. As will be understood by one of ordinary skill in the art, different polymers may have different melting temperatures and some polymers may exhibit melting properties at more than one temperature.
(19) This process results in interfacial shear strength between the porous layer and solid polymer body that increases with longer processing times that are above a predetermined processing temperature (Tp), but below a melting point of the polymer. Further, pressure applied to exert polymer flow of polyetheretherketone (PEEK) at a constant rate is significantly correlated statistically (i.e. p-value less than 0.05 as calculated by linear regression analysis) with processing time above a defined processing temperature of 330 degrees Celsius for up to 30 to 45 minutes. This correlation is counter to expected results and indicates that polymer flow viscosity increases with increased processing time below PEEK's melting point of 343 degrees Celsius (e.g., increased processing time at about one to 13 degrees below 343 degrees Celsius, or between about 330 and 342 degrees Celsius).
(20) As will be understood by one of ordinary skill in the art, polymer flow or polymer flow viscosity, as used herein may refer to any flow of a particular polymer and may not necessarily mean flow of a polymer above a melting point of the particular polymer. In specific embodiments, polymer flow and polymer flow viscosity refer to flow of a polymer below a melting point of the polymer. Alternately, polymer flow or polymer flow viscosity may be referred to as polymer resistance to displacement or the like.
(21) As will be understood by one of ordinary skill in the art, any suitable materials may be used in the above process. In at least one embodiment, the polymer in the above exemplary process is polyetheretherketone (PEEK). In one or more embodiments, the porogen in the above exemplary process is sodium chloride grains arranged in one or more layers, such that when the polymer is heated it at least partially flows between the gaps of the layers of the sodium chloride particles.
(22) Exemplary Process
(23) Turning now to
(24) Any surface of the solid piece of polymer may be heated. In a particular embodiment shown in
(25) The solid piece of polymer may be any suitable material. In a particular embodiment, the polymer is polyetheretherketone (PEEK). In various embodiments, the polymer is any other suitable thermoplastic with similar properties as PEEK, such as any polymer with multiple endotherms and/or broad endotherms and/or any polymer that exhibits flow above the glass transition. The polymer may be, for example, carbon fiber reinforced PEEK, polymethylmethacrylate (PMMA), polycarbonate (PC), polyphenylsulfone (PPSU), polyphenylenesulfide (PPS), polyethersulfone (PES), polyparaphenylene (also known as self-reinforcing polyphenylene or SRP), or thermoplastic polyurethane (TPU).
(26) The processing temperature may be any suitable temperature and may depend upon the melting point for the particular polymer. In a particular embodiment, the polymer is PEEK, with a melting point of about 343 degrees Celsius. In these embodiments (and others), the processing temperature may be any suitable range below the melting point of PEEK (e.g., 343 degrees Celsius). In one or more embodiments, as discussed below, the processing temperature is about one (1) to 38 degrees below the melting point of PEEK (e.g., the processing temperature is approximately 305 to 342 degrees Celsius). In at least one embodiment, the processing temperature is about 330 degrees Celsius for PEEK. In another embodiment, the processing temperature is about 340 degrees Celsius for PEEK. As will be understood by one of ordinary skill in the art, the processing temperature, in particular embodiments, is the processing temperature of the polymer surface.
(27) At step 120, the process continues with holding the processing temperature while displacing a porogen layer through the surface of the polymer to create a matrix layer of the solid polymer body including the polymer and the porogen layer. In various embodiments, the porogen layer includes particles of one or more particular materials such as sodium chloride grains or other salts, sugars, polymers, metals, etc.
(28) The particles of the porogen layer may be arranged in any suitable way. In various embodiments, the particles of the porogen layer are arranged in a regular lattice pattern, with each particle touching at least one other particle. In some embodiments, the particles of the porogen layer are arranged in an irregular geometric pattern and/or are packet down without a planned geometric pattern.
(29) Further, the particles of the porogen layer may be of any suitable size and shape. In particular embodiments, the particles of the porogen layer may be pre-processed such that they are one or more specific shapes, such as substantially spherical, substantially cubic, etc. In at least one embodiment the particles of the porogen layer are packed, irregular grains of a salt.
(30) In various embodiments, the porogen layer is displaced through the surface of the polymer by holding the processing temperature by applying pressure to the polymer to force the polymer (which may be viscous from heating, as discussed herein) through gaps between the porogen layer (e.g., the porogen is packed and arranged such that there are gaps between the particles). In at least one embodiment, the result is a matrix layer with polymer in gaps between the particles of the porogen layer.
(31) In embodiments where the porogen layer is located at a side surface or more than one surface of the piece of polymer, pressure may be applied in one or more directions to the solid piece of polymer. In one or more such embodiments, pressure may be applied to all sides of the solid piece of polymer (e.g., to create a structure with more than one porous surface).
(32) The porogen layer may be displaced through the surface of the polymer to any suitable depth. In a particular embodiment, the porogen layer is displaced through the surface of the polymer to a depth of approximately 0.2 mm to 2.0 mm.
(33) At step 130, the process continues with removing at least a portion of the porogen layer from the matrix layer to form a solid polymer with a porous layer. As will be understood by one of ordinary skill in the art, the portion of the porogen layer to be removed may be removed in any suitable way and the method of removal may be dependent upon the composition of the porogen layer. Exemplary methods of removing all or a portion of the porogen layer include (but are not limited to): leaching, washing, etching, vaporizing, volatilizing, etc. For example, in embodiments where the porogen layer includes sodium chloride grains, some or all of the sodium chloride grains may be removed by leaching (e.g., dissolving all or a portion of the porogen layer with a particular solvent).
(34) As will be understood by one of ordinary skill in the art, any portion of the porogen layer may be removed. In various embodiments, the desired final product may include a solid polymer portion, a matrix layer, and a porous layer. In these embodiments, only a portion of the porous layer may be removed (e.g., to a certain depth), leaving a structure including a solid polymer layer, a matrix layer (including the polymer and porogen) and a porous polymer layer. In some embodiments, the desired structure does not include any of the porogen layer and substantially all of the porogen layer is removed, resulting in a structure that includes a solid polymer and a porous polymer layer. In embodiments where the matrix layer is the desired outcome, this step 130 may be omitted.
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(36) Continuing with step 1, the surface of the polymer in contact with the porogen grains is heated to a particular processing temperature under an initial pressure of about 2 PSI. In various embodiments, the particular processing temperature is below a melting point of the polymer. For example, as discussed below, PEEK exhibits melting temperatures at approximately 240 and 343 degrees Celsius.
(37) As will be understood by one of ordinary skill in the art, the initial pressure may be any suitable initial pressure. In various embodiments, the initial pressure is about 0.1 to 10 PSI. In some embodiments, the initial pressure and the final pressure are the same (e.g., the same pressure is held constant throughout the entire process).
(38) At step 2, once the polymer surface is heated to the processing temperature, additional pressure is applied to the polymer. In particular embodiments, the processing temperature and the additional pressure is held for a predetermined processing time and, as shown in step 3, the porogen is displaced within the surface of the polymer, creating a pore network (e.g., under particular conditions, the polymer flows between the porogen). According to various embodiments, the processing time is for about zero (0) to 45 minutes. In one embodiment, the processing time is for about 30 minutes.
(39) The additional pressure may be any suitable pressure. In particular embodiments the additional pressure is up to 250 PSI. In one or more embodiments, the additional pressure is between 50 and 250 PSI. In at least one embodiment, the additional pressure is about 150 PSI.
(40) At step 4, the additional pressure and heat are removed from the polymer and the polymer surface is cooled in a controlled fashion to manage solidification and crystallization. At step 5, the porogen grains are leached, leaving behind a thin porous surface layer that is integrally connected with the solid polymer body. Precise control of local temperature, pressure, and time may achieve desired pore layer characteristics. As will be understood by one of ordinary skill in the art, as shown in step 6, the introduction of surface porosity may result in expansion of the total polymer structure, indicated by the change in height, h.
(41) Exemplary Data
(42) Exemplary PEEK Data
(43) As will be further discussed herein, PEEK exhibits melting properties at two temperatures under particular conditions. As shown in
(44) Continuing with
(45) Exemplary Shear Strength Data
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(48) Exemplary Pressure Data
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(51) As will be understood by one of ordinary skill in the art,
(52) Exemplary Use Cases
(53) Materials created from the processes described herein may have a wide variety of uses. In particular embodiments, the processes described herein may be beneficial in any application where it is desired to adhere a material to the second material with different properties (e.g., adhere a first polymer with a first stiffness to a second polymer with a second stiffness). Such as, for example, adhering a soft polymer (e.g., polyethylene, polyvinyl-alcohol, or polycarbonate-urethane) to a harder polymer such as PEEK. This example may be applicable for knee or hip replacements. As a second example, porous polymers may be used in medical devices and more particularly for orthopedic applications to promote tissue ingrowth. Other exemplary uses may be aerospace, automotive, and other fields.
CONCLUSION
(54) The foregoing description of the exemplary embodiments has been presented only for the purposes of illustration and description and is not intended to be exhaustive or to limit the inventions to the precise forms disclosed. Many modifications and variations are possible in light of the above teaching.
(55) The embodiments were chosen and described in order to explain the principles of the inventions and their practical application so as to enable others skilled in the art to utilize the inventions and various embodiments and with various modifications as are suited to the particular use contemplated. Alternative embodiments will become apparent to those skilled in the art to which the present inventions pertain without departing from their spirit and scope.