US20130299038A1 - Joined dissimilar materials and method - Google Patents
Joined dissimilar materials and method Download PDFInfo
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- US20130299038A1 US20130299038A1 US13/940,937 US201313940937A US2013299038A1 US 20130299038 A1 US20130299038 A1 US 20130299038A1 US 201313940937 A US201313940937 A US 201313940937A US 2013299038 A1 US2013299038 A1 US 2013299038A1
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M25/00—Catheters; Hollow probes
- A61M25/01—Introducing, guiding, advancing, emplacing or holding catheters
- A61M25/09—Guide wires
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M25/00—Catheters; Hollow probes
- A61M25/01—Introducing, guiding, advancing, emplacing or holding catheters
- A61M25/09—Guide wires
- A61M2025/09108—Methods for making a guide wire
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B33—ADDITIVE MANUFACTURING TECHNOLOGY
- B33Y—ADDITIVE MANUFACTURING, i.e. MANUFACTURING OF THREE-DIMENSIONAL [3-D] OBJECTS BY ADDITIVE DEPOSITION, ADDITIVE AGGLOMERATION OR ADDITIVE LAYERING, e.g. BY 3-D PRINTING, STEREOLITHOGRAPHY OR SELECTIVE LASER SINTERING
- B33Y80/00—Products made by additive manufacturing
Definitions
- the present invention relates to joined dissimilar materials.
- the joined materials form a guide wire configured for intravascular use.
- intravascular guidewires are used in conjunction with intravascular devices such as catheters to facilitate navigation through the vasculature of a patient.
- intravascular devices such as catheters to facilitate navigation through the vasculature of a patient.
- Such guidewires are typically very small in diameter.
- a guidewire can have multiple sections that are joined together in order to form a single wire. Joining sections of such a wire having a small diameter can be challenging, particularly where the sections being joined are configured of different materials. Because there are limitations to many present approaches, there is a need for the present invention.
- FIGS. 1A and 1B illustrate cross-sectional views of joined dissimilar materials in accordance with one embodiment.
- FIG. 2 illustrates a cross-sectional view of a joining section in accordance with one embodiment.
- FIG. 3 is a table illustrating the material content of layers of a joining section in accordance with one embodiment.
- FIG. 4 illustrates a cross-sectional view of a joining section in accordance with one embodiment.
- FIGS. 5A-5C illustrate forming a joining section in accordance with one embodiment.
- FIG. 6 illustrates a cross-sectional view of a joining section in accordance with one embodiment.
- FIG. 7 illustrates a cross-sectional view of a joining section in accordance with one embodiment.
- FIG. 8 illustrates a perspective partially ghosted view of a joining section in accordance with one embodiment.
- FIG. 9 illustrates a perspective partially ghosted view of a joining section in accordance with one embodiment.
- FIG. 10 illustrates a perspective partially ghosted view of a joining section in accordance with one embodiment.
- FIG. 11 illustrates a perspective partially ghosted view of a joining section in accordance with one embodiment.
- FIG. 1A illustrates a guidewire 10 in accordance with one embodiment.
- guidewire 10 has a proximal section 12 , a distal section 14 and a joining section 16 .
- proximal, distal and joining sections 12 , 14 and 16 are each configured of separate wire segments that are joined together at joining section 16 .
- proximal and distal sections 12 and 14 are adapted with differing diameter regions, are adapted and configured to obtain a transition in stiffness, and provide a desired flexibility characteristic.
- guidewire 10 is illustrated with a truncation in its ends, as its length may vary in accordance with particular applications.
- the proximal section 12 and the distal section 14 can generically refer to any two adjacent wire sections along any portion of guidewire 10 .
- the wire segments can be applicable to almost any intravascular device.
- they are applicable to hypotube shafts for intravascular catheters (e.g., rapid exchange balloon catheters, stent delivery catheters, etc.) or drive shafts for intravascular rotational devices (atherectomy catheters, IVUS catheters, etc.).
- proximal section 12 can be configured of a relatively stiff material, such as stainless steel wire.
- proximal section 12 can be comprised of a metal or metal alloy such as a nickel-titanium alloy, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other suitable material.
- the material used to construct proximal section 12 can be selected to be relatively stiff for pushability and torqueability.
- distal section 14 can be configured of a relatively flexible material, such as a super elastic or linear elastic alloy, wire, such as linear elastic nickel-titanium (NiTi), or alternatively, a polymer material, such as a high performance polymer.
- distal section 14 can be configured of a metal or metal alloy such as stainless steel, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other suitable material.
- the material used to configure distal section 14 can be selected to be relatively flexible for trackability.
- guidewire 10 is configured for intravascular use and can be used in conjunction with intravascular devices such as catheters to facilitate navigation through the vasculature of a patient.
- Guidewire 10 is configured in a variety of sizes, and in one embodiment, its outer diameter ranges from about 0.005 to about 0.02 inches.
- FIG. 1B illustrates an exploded view of guidewire 10 in accordance with one embodiment.
- Joining section 16 is made of two different materials.
- joining section 16 is made of a material that is compatible with the material of which proximal section 12 is made. As such, proximal section 12 can be readily and easily welded to first end 16 a of joining section 16 , because of the compatible materials. Furthermore, on a second end 16 b directly adjacent distal section 14 , joining section 16 is made of a material that is compatible with the material of which distal section 14 is made. As such, distal section 14 can be readily and easily welded to second end 16 b of joining section 16 , because of the compatible materials.
- first end 16 a of joining section 16 is stainless steel and proximal section 12 is also stainless steel.
- second end 16 b of joining section 16 is nickel-titanium (NiTi) and distal section 14 is also nickel-titanium. In this way, first end 16 a is readily weldable to proximal section 12 and second end 16 b is readily weldable to distal section 14 .
- first end 16 a of joining section 16 is a metal or metal alloy such as nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other similar material and proximal section 12 is of a highly similar material.
- second end 16 b of joining section 16 is made of a relatively flexible material, such as a super elastic or linear elastic alloy, and distal section 14 is of a highly similar material. In this way, first end 16 a is readily weldable to proximal section 12 and second end 16 b is readily weldable to distal section 14 .
- Forming joining section 16 which is made of two different materials, can be accomplished in a variety of ways consistent with the exemplary embodiments.
- FIG. 2 illustrates one embodiment of joining section 16 formed via layer sections.
- joining section 16 consists of a plurality of layer sections, in one example, layers 20 - 30 .
- the material in each of the layers 20 - 30 varies from one layer to the next.
- layer 20 of joining section 16 is all stainless steel
- layer 21 is mostly stainless steel, but also includes a small amount of nickel-titanium.
- Each of layers 22 - 29 then progressively includes increasing amounts of nickel-titanium and decreasing amounts of stainless steel.
- Layer 30 is all nickel-titanium.
- layer 20 is readily weldable to stainless steel proximal section 12 and layer 30 is readily weldable to a nickel-titanium distal section 14 .
- FIG. 3 illustrates the material content, as a percentage, for each of the layers of joining section 16 in one example.
- layer 20 is 100% stainless steel and 0% nickel-titanium
- layer 21 is 90% stainless steel and 10% nickel-titanium
- layer 22 is 80% stainless steel and 20% nickel-titanium
- layer 23 is 70% stainless steel and 30% nickel-titanium, and so forth, until layer 30 , which is 0% stainless steel and 100% nickel-titanium.
- more or less layers can be used in order to more gradually or more steeply change the material content of joining section 16 from one of its end to the other.
- 11 layers are shown, but more or fewer layers can be used in accordance with various embodiments.
- various other percentages of material changes can be used. In the illustrations, the percentages of material changes from one layer to the next are shown in increments of 10, but larger or smaller increments can be used in accordance with various embodiments.
- the layer sections of joining section 16 are formed via three-dimensional screen printing or Direct Typing Process (DTP).
- DTP Three-dimensional screen printing, or DTP, is a known process for producing three-dimensionally shaped objects via a layering process. DTP uses to form a green compact by printing a liquefied metallic powder composition onto a substrate, and then repeating layer by layer until the green compact is obtained and the compact is sintered to a metal.
- a green compact is formed in order to make joining section 16 .
- a metal-containing paste is mixed and then pressed through a sieve or mask.
- the paste also contains an organic binder and a carrier liquid, for example, water.
- a first layer such as layer 20 , is printed by pushing the paste through a screen with a first print.
- the metal-containing paste includes a first metal material and includes none of a second metal material.
- the first layer is then allowed to dry.
- a second layer is then printed on the first dried layer.
- the composition of the paste is varied such that the amount of the first metal material is reduced and the amount of the second metal material is increased from none.
- Each subsequent layer is then printed over the dried previous layer, gradually adjusting the composition of the metal-containing paste between each printing such that a gradient progressing from the first metal material to the second metal material is produced in the green compact.
- the green compact is debindered and sintered, whereby a joining section, such as joining section 16 of FIG. 2 , is obtained.
- the individual printed layers of the green compact are on the order of 10-40 ⁇ m.
- two or more layers may be printed before the composition of the paste is varied. In this way, a gradient progressing from the first metal material to the second metal material is still produced in the green compact, but each layer illustrated in FIG. 2 may actually represent two or more actual printed layers.
- the first material in the above-described three-dimensional screen printing or DTP is stainless steel and the second material is nickel-titanium.
- first material is nickel-titanium and the second material is stainless steel.
- still other materials can be used so that each end of the joining section 16 has a material composition that is compatible with the adjoining piece to which it will be connected or welded.
- FIG. 4 illustrates one embodiment of joining section 16 formed via an electroplating or electrodeposition process.
- joining section 16 includes a first section 40 and a second section 42 , such that first end 16 a of joining section 16 is on first section 40 and second end 16 b of joining section 16 is on second section 42 .
- sections 40 and 42 are of different materials, and in one example, first section 40 is stainless steel and second section 42 is nickel-titanium (NiTi). In this way, first end 16 a is readily weldable to proximal section 12 and second end 16 b is readily weldable to distal section 14 , as in FIG. 1A .
- first section 40 is metal, such as metal alloy, stainless steel, nickel, iron, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other similar material and proximal section 12 is of a similar material.
- second section 42 is made of a relatively flexible material, such as a super elastic or linear elastic alloy, and distal section 14 is of a similar material. In this way, first end 16 a of first section 40 is readily weldable to proximal section 12 and second end 16 b of second section 42 is readily weldable to distal section 14 .
- FIGS. 5A-5C illustrate one embodiment of a process for electrodeposition of joining section 16 .
- a mask 52 is deposited on a conductive substrate 50 .
- Mask 52 defines an opening above conductive substrate 50 that is shaped to match the profile desired for joining section 16 , in one example, cylindrical.
- FIG. 5B illustrates an electrodeposition process whereby first section 40 is formed within the opening of mask 52 by energizing conductive substrate 50 .
- the deposition of first section 40 is achieved by putting a negative charge on conductive substrate 50 and immersing conductive substrate 50 and mask 52 into a first electrolyte solution that contains a salt of the metal to be deposited as first section 40 .
- conductive substrate 50 is made the cathode of an electrolytic cell.
- the metallic ions of the salt carry a positive charge and are thus attracted to conductive substrate 50 . When they reach the negatively charged conductive substrate 50 , it provides electrons to reduce the positively charged ions to metallic form.
- first section 40 is metal, such as metal alloy, stainless steel, nickel, iron, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other similar material
- metal such as metal alloy, stainless steel, nickel, iron, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other similar material
- one of these materials is dissolved in the electrolytic solution as positively charged ions.
- FIG. 5C illustrates formation of second section 42 , which is built up on first section 40 . Ions of the material that make up second section 42 are then contained within a second electrolytic solution in which mask 52 and conductive substrate 50 are submerged, and when conductive substrate 50 is energized, second section 42 is formed within mask 52 against first section 40 under the force of the energized conductive substrate 50 .
- section 42 when section 42 is relatively flexible material, such as nickel-titanium (NiTi) or a super elastic or linear elastic alloy, one of these materials is dissolved in the electrolytic solution as positively charged ions.
- NiTi nickel-titanium
- a super elastic or linear elastic alloy one of these materials is dissolved in the electrolytic solution as positively charged ions.
- first section 40 can be formed by other means and then placed within mask 52 on conductive substrate 50 . Then, second section 42 can be formed over first section 42 within mask 52 with an electrodeposition process using conductive substrate 50 as described above.
- FIGS. 6 and 7 illustrate other embodiments of joining section 16 formed with an electrodeposition process.
- joining section 16 includes first section 60 and second section 62 .
- First and second sections 60 and 62 are formed with an electrodeposition process as explained above.
- a conductive substrate 50 and mask corresponding to the shape of first and second sections 60 and 62 are used to electrodeposit one or both of first and second sections 60 and 62 .
- first section 60 includes first extended portion 60 a and second section 62 includes second extended portion 62 a, which overlap along joint 65 .
- first or second section 60 or 62 can be electroplated first (or otherwise formed) and then the other section is electroplated on to the already formed section.
- Joint 65 is perpendicular to first and second ends 16 a and 16 b of joining section 16 .
- having a feature such as joint 65 running perpendicular to ends 16 a and 16 b can provide increased holding force between first and second section 60 and 62 when there is significant pulling or torque applied to proximal section 12 and distal section 14 , which are respectively coupled to ends 16 a and 16 b.
- joining section 16 includes first section 70 and second section 72 .
- First and second sections 70 and 72 are formed with an electrodeposition process as explained above.
- a conductive substrate 50 and mask corresponding to the shape of first and second sections 70 and 72 are used to electrodeposit one or both of first and second sections 70 and 72 .
- first section 70 includes plug portion 70 a and second section 72 is configured to receive plug portion 70 a.
- first or second section 70 or 72 can be electroplated first (or otherwise formed) and then the other section is electroplated on to the already formed section.
- having a features such as plug 70 a formed within a receiving cavity of second section 72 can provide increased holding force between first and second section 70 and 72 when there is significant pulling or torque applied to proximal section 12 and distal section 14 , which are respectively coupled to ends 16 a and 16 b.
- joining section 16 may be fabricated using LIGA or lithography and electroforming techniques.
- the LIGA process includes X-ray deep lithography, electroforming and molding.
- a polymer layer (resist) sensitive X-radiation is exposed to X-radiation by the shadow produced by an X-ray mask, which transfers to the resist an exact image of the absorber structures on the mask.
- the exposed areas are dissolved selectively by wet chemical methods. Somewhat complex or intricate configurations are possible using lithography techniques.
- the structural areas exposed after the developing process can be filled up with various metals by electrodeposition. Once the metal is built up, the remaining resist is removed, and only the metal structures remain in place.
- EFAB® technology is used to create joining section 16 .
- EFAB® technology is a known process for forming micro-structures by stacking a set of thin metal layers, somewhat similar to rapid prototyping technologies.
- the EFAB® process is driven by a three-dimensional CAD of the final device.
- the manufacturing starts with a blank substrate and then grows the device layer-by-layer by depositing and precisely planerizing metals. In one example, two metals are deposited (for example, one for the first section and one for the second section of a joining section).
- FIGS. 8-11 illustrate embodiments of embodiments of joining section 16 formed with an electro-forming process, such as electrodeposition, EFAB® process or a lithography process.
- joining section 16 respectively includes first section 80 , 90 , 100 , and 110 and second section 82 , 92 , 102 , and 112 .
- First and second sections 80 , 90 , 100 , 110 and 82 , 92 , 102 , 112 are formed with an electro-forming process, such as electrodeposition, EFAB® process or a lithography process.
- first section 80 includes first and second plug portions 80 a and 80 b, and second section 82 is configured to receive first and second plug portions 80 a and b .
- second section 82 is ghosted and first and second plug portions 80 a and b are illustrated in dotted lines.
- first and second plug portions 80 a and 80 b can be formed with electro-forming processes, such as electrodeposition, EFAB® process or a lithography process.
- having features such as plug portions 80 a and 80 b formed within a receiving cavity of second section 82 can provide increased holding force between first and second section 80 and 82 when there is significant pulling or torque applied to proximal section 12 and distal section 14 , which are respectively coupled to ends 16 a and 16 b.
- first section 90 includes plug portion 90 a
- second section 92 is configured to receive plug portion 90 a.
- second section 92 is ghosted and plug portion 90 a is illustrated in dotted lines.
- plug portion 90 a can be formed with electro-forming processes, such as electrodeposition, EFAB® process or a lithography process.
- having a feature such as plug portion 90 a formed within a receiving cavity of second section 92 can provide increased holding force between first and second section 90 and 92 when there is significant pulling or torque applied to proximal section 12 and distal section 14 , which are respectively coupled to ends 16 a and 16 b.
- first section 100 includes plug portion 100 a
- second section 102 is configured to receive plug portion 100 a.
- second section 102 is ghosted and plug portion 100 a is illustrated in dotted lines.
- plug portion 100 a can be formed with electro-forming processes, such as electrodeposition, EFAB® process or a lithography process.
- having a feature such as plug portion 100 a formed within a receiving cavity of second section 102 can provide increased holding force between first and second section 100 and 102 when there is significant pulling or torque applied to proximal section 12 and distal section 14 , which are respectively coupled to ends 16 a and 16 b.
- first section 110 includes first and second plug portions 110 a and 110 b, and second section 112 is configured to receive first and second plug portions 110 a and b .
- second section 112 is ghosted and first and second plug portions 110 a and b are illustrated in dotted lines.
- first and second plug portions 110 a and 110 b can be formed with electro-forming processes, such as electrodeposition, EFAB® process or a lithography process.
- having features such as plug portions 110 a and 110 b formed within a receiving cavity of second section 112 can provide increased holding force between first and second section 110 and 112 when there is significant pulling or torque applied to proximal section 12 and distal section 14 , which are respectively coupled to ends 16 a and 16 b.
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Abstract
A method of forming a wire includes providing a first wire section comprising a first material and providing a second wire section comprising a second material different from the first material. A joining section is formed having a first end and a second end such that the first end of the joining section comprising a material that is compatible with the first material and such that the second end of the joining section comprising a material that is compatible with the second material. The first wire section is welded to the first end of the joining section and the second wire section is welded to the second end of the joining section. Forming the joining section includes forming the joining section via a process selected from a group comprising electrodeposition, three-dimensional printing, direct typing process, LIGA, lithography and stacking processes.
Description
- This application is a divisional of U.S. patent application Ser. No. 12/813,847, entitled “JOINED DISSIMILAR MATERIALS AND METHOD,” having a filing date of Jun. 11, 2010, and is incorporated herein by reference.
- The present invention relates to joined dissimilar materials. In one embodiment, the joined materials form a guide wire configured for intravascular use. For example, intravascular guidewires are used in conjunction with intravascular devices such as catheters to facilitate navigation through the vasculature of a patient. Such guidewires are typically very small in diameter. In some applications, a guidewire can have multiple sections that are joined together in order to form a single wire. Joining sections of such a wire having a small diameter can be challenging, particularly where the sections being joined are configured of different materials. Because there are limitations to many present approaches, there is a need for the present invention.
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FIGS. 1A and 1B illustrate cross-sectional views of joined dissimilar materials in accordance with one embodiment. -
FIG. 2 illustrates a cross-sectional view of a joining section in accordance with one embodiment. -
FIG. 3 is a table illustrating the material content of layers of a joining section in accordance with one embodiment. -
FIG. 4 illustrates a cross-sectional view of a joining section in accordance with one embodiment. -
FIGS. 5A-5C illustrate forming a joining section in accordance with one embodiment. -
FIG. 6 illustrates a cross-sectional view of a joining section in accordance with one embodiment. -
FIG. 7 illustrates a cross-sectional view of a joining section in accordance with one embodiment. -
FIG. 8 illustrates a perspective partially ghosted view of a joining section in accordance with one embodiment. -
FIG. 9 illustrates a perspective partially ghosted view of a joining section in accordance with one embodiment. -
FIG. 10 illustrates a perspective partially ghosted view of a joining section in accordance with one embodiment. -
FIG. 11 illustrates a perspective partially ghosted view of a joining section in accordance with one embodiment. - In the following Detailed Description, reference is made to the accompanying drawings, which form a part hereof, and in which is shown by way of illustration specific embodiments in which the invention may be practiced. In this regard, directional terminology, such as “top,” “bottom,” “front,” “back,” “leading,” “trailing,” etc., is used with reference to the orientation of the Figure(s) being described. Because components of embodiments of the present invention can be positioned in a number of different orientations, the directional terminology is used for purposes of illustration and is in no way limiting. It is to be understood that other embodiments may be utilized and structural or logical changes may be made without departing from the scope of the present invention. The following detailed description, therefore, is not to be taken in a limiting sense, and the scope of the present invention is defined by the appended claims.
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FIG. 1A illustrates aguidewire 10 in accordance with one embodiment. In one embodiment,guidewire 10 has aproximal section 12, adistal section 14 and a joiningsection 16. In one case, proximal, distal and joiningsections section 16. In some embodiments, proximal anddistal sections FIG. 1 ,guidewire 10 is illustrated with a truncation in its ends, as its length may vary in accordance with particular applications. - As used herein, the
proximal section 12 and thedistal section 14 can generically refer to any two adjacent wire sections along any portion ofguidewire 10. Furthermore, although discussed with specific reference to guidewires, the wire segments can be applicable to almost any intravascular device. For example, they are applicable to hypotube shafts for intravascular catheters (e.g., rapid exchange balloon catheters, stent delivery catheters, etc.) or drive shafts for intravascular rotational devices (atherectomy catheters, IVUS catheters, etc.). - In one example,
proximal section 12 can be configured of a relatively stiff material, such as stainless steel wire. Alternatively,proximal section 12 can be comprised of a metal or metal alloy such as a nickel-titanium alloy, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other suitable material. In general, the material used to constructproximal section 12 can be selected to be relatively stiff for pushability and torqueability. - Also, in some embodiments,
distal section 14 can be configured of a relatively flexible material, such as a super elastic or linear elastic alloy, wire, such as linear elastic nickel-titanium (NiTi), or alternatively, a polymer material, such as a high performance polymer. Alternatively,distal section 14 can be configured of a metal or metal alloy such as stainless steel, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other suitable material. In general, the material used to configuredistal section 14 can be selected to be relatively flexible for trackability. - In one embodiment,
guidewire 10 is configured for intravascular use and can be used in conjunction with intravascular devices such as catheters to facilitate navigation through the vasculature of a patient. Guidewire 10 is configured in a variety of sizes, and in one embodiment, its outer diameter ranges from about 0.005 to about 0.02 inches. -
FIG. 1B illustrates an exploded view ofguidewire 10 in accordance with one embodiment. Joiningsection 16 is made of two different materials. - For example, on a
first end 16 a directly adjacentproximal section 12, joiningsection 16 is made of a material that is compatible with the material of whichproximal section 12 is made. As such,proximal section 12 can be readily and easily welded tofirst end 16 a of joiningsection 16, because of the compatible materials. Furthermore, on asecond end 16 b directly adjacentdistal section 14, joiningsection 16 is made of a material that is compatible with the material of whichdistal section 14 is made. As such,distal section 14 can be readily and easily welded tosecond end 16 b of joiningsection 16, because of the compatible materials. - In one embodiment,
first end 16 a of joiningsection 16 is stainless steel andproximal section 12 is also stainless steel. Also,second end 16 b of joiningsection 16 is nickel-titanium (NiTi) anddistal section 14 is also nickel-titanium. In this way,first end 16 a is readily weldable toproximal section 12 andsecond end 16 b is readily weldable to distalsection 14. - In one embodiment,
first end 16 a of joiningsection 16 is a metal or metal alloy such as nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other similar material andproximal section 12 is of a highly similar material. Also,second end 16 b of joiningsection 16 is made of a relatively flexible material, such as a super elastic or linear elastic alloy, anddistal section 14 is of a highly similar material. In this way,first end 16 a is readily weldable toproximal section 12 andsecond end 16 b is readily weldable to distalsection 14. Forming joiningsection 16, which is made of two different materials, can be accomplished in a variety of ways consistent with the exemplary embodiments. -
FIG. 2 illustrates one embodiment of joiningsection 16 formed via layer sections. In one embodiment, joiningsection 16 consists of a plurality of layer sections, in one example, layers 20-30. In one embodiment, the material in each of the layers 20-30 varies from one layer to the next. For example, in one example,layer 20 of joiningsection 16 is all stainless steel,layer 21 is mostly stainless steel, but also includes a small amount of nickel-titanium. Each of layers 22-29 then progressively includes increasing amounts of nickel-titanium and decreasing amounts of stainless steel.Layer 30 is all nickel-titanium. As such,layer 20 is readily weldable to stainlesssteel proximal section 12 andlayer 30 is readily weldable to a nickel-titaniumdistal section 14. -
FIG. 3 illustrates the material content, as a percentage, for each of the layers of joiningsection 16 in one example. As such,layer 20 is 100% stainless steel and 0% nickel-titanium,layer 21 is 90% stainless steel and 10% nickel-titanium,layer 22 is 80% stainless steel and 20% nickel-titanium,layer 23 is 70% stainless steel and 30% nickel-titanium, and so forth, untillayer 30, which is 0% stainless steel and 100% nickel-titanium. - In other embodiments, more or less layers can be used in order to more gradually or more steeply change the material content of joining
section 16 from one of its end to the other. In the illustration, 11 layers are shown, but more or fewer layers can be used in accordance with various embodiments. Also, various other percentages of material changes can be used. In the illustrations, the percentages of material changes from one layer to the next are shown in increments of 10, but larger or smaller increments can be used in accordance with various embodiments. - In one embodiment, the layer sections of joining
section 16 are formed via three-dimensional screen printing or Direct Typing Process (DTP). Three-dimensional screen printing, or DTP, is a known process for producing three-dimensionally shaped objects via a layering process. DTP uses to form a green compact by printing a liquefied metallic powder composition onto a substrate, and then repeating layer by layer until the green compact is obtained and the compact is sintered to a metal. - In one embodiment, a green compact is formed in order to make joining
section 16. Initially, a metal-containing paste is mixed and then pressed through a sieve or mask. In one embodiment, the paste also contains an organic binder and a carrier liquid, for example, water. A first layer, such aslayer 20, is printed by pushing the paste through a screen with a first print. In the first screen print, the metal-containing paste includes a first metal material and includes none of a second metal material. The first layer is then allowed to dry. A second layer is then printed on the first dried layer. Between the printing of the first and second layers, however, the composition of the paste is varied such that the amount of the first metal material is reduced and the amount of the second metal material is increased from none. - Each subsequent layer is then printed over the dried previous layer, gradually adjusting the composition of the metal-containing paste between each printing such that a gradient progressing from the first metal material to the second metal material is produced in the green compact. Subsequently, the green compact is debindered and sintered, whereby a joining section, such as joining
section 16 ofFIG. 2 , is obtained. - In one embodiment, the individual printed layers of the green compact are on the order of 10-40 μm. As such, in one example, two or more layers may be printed before the composition of the paste is varied. In this way, a gradient progressing from the first metal material to the second metal material is still produced in the green compact, but each layer illustrated in
FIG. 2 may actually represent two or more actual printed layers. - In one embodiment, the first material in the above-described three-dimensional screen printing or DTP is stainless steel and the second material is nickel-titanium. In another embodiment, first material is nickel-titanium and the second material is stainless steel. In other embodiments, still other materials can be used so that each end of the joining
section 16 has a material composition that is compatible with the adjoining piece to which it will be connected or welded. -
FIG. 4 illustrates one embodiment of joiningsection 16 formed via an electroplating or electrodeposition process. In one embodiment, joiningsection 16 includes afirst section 40 and asecond section 42, such thatfirst end 16 a of joiningsection 16 is onfirst section 40 andsecond end 16 b of joiningsection 16 is onsecond section 42. Each ofsections first section 40 is stainless steel andsecond section 42 is nickel-titanium (NiTi). In this way,first end 16 a is readily weldable toproximal section 12 andsecond end 16 b is readily weldable todistal section 14, as inFIG. 1A . - In one embodiment,
first section 40 is metal, such as metal alloy, stainless steel, nickel, iron, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other similar material andproximal section 12 is of a similar material. Also in one embodiment,second section 42 is made of a relatively flexible material, such as a super elastic or linear elastic alloy, anddistal section 14 is of a similar material. In this way,first end 16 a offirst section 40 is readily weldable toproximal section 12 andsecond end 16 b ofsecond section 42 is readily weldable todistal section 14. -
FIGS. 5A-5C illustrate one embodiment of a process for electrodeposition of joiningsection 16. InFIG. 5A , amask 52 is deposited on aconductive substrate 50.Mask 52 defines an opening aboveconductive substrate 50 that is shaped to match the profile desired for joiningsection 16, in one example, cylindrical. -
FIG. 5B illustrates an electrodeposition process wherebyfirst section 40 is formed within the opening ofmask 52 by energizingconductive substrate 50. In one example, the deposition offirst section 40 is achieved by putting a negative charge onconductive substrate 50 and immersingconductive substrate 50 andmask 52 into a first electrolyte solution that contains a salt of the metal to be deposited asfirst section 40. In other words,conductive substrate 50 is made the cathode of an electrolytic cell. The metallic ions of the salt carry a positive charge and are thus attracted toconductive substrate 50. When they reach the negatively chargedconductive substrate 50, it provides electrons to reduce the positively charged ions to metallic form. - In one embodiment, when
first section 40 is metal, such as metal alloy, stainless steel, nickel, iron, nickel-chromium alloy, nickel-chromium-iron alloy, cobalt alloy, or other similar material, one of these materials is dissolved in the electrolytic solution as positively charged ions. -
FIG. 5C illustrates formation ofsecond section 42, which is built up onfirst section 40. Ions of the material that make upsecond section 42 are then contained within a second electrolytic solution in which mask 52 andconductive substrate 50 are submerged, and whenconductive substrate 50 is energized,second section 42 is formed withinmask 52 againstfirst section 40 under the force of the energizedconductive substrate 50. - In one embodiment, when
section 42 is relatively flexible material, such as nickel-titanium (NiTi) or a super elastic or linear elastic alloy, one of these materials is dissolved in the electrolytic solution as positively charged ions. - In another embodiment,
first section 40 can be formed by other means and then placed withinmask 52 onconductive substrate 50. Then,second section 42 can be formed overfirst section 42 withinmask 52 with an electrodeposition process usingconductive substrate 50 as described above. -
FIGS. 6 and 7 illustrate other embodiments of joiningsection 16 formed with an electrodeposition process. In one example, joiningsection 16 includesfirst section 60 andsecond section 62. First andsecond sections conductive substrate 50 and mask corresponding to the shape of first andsecond sections second sections - In one embodiment,
first section 60 includes first extendedportion 60 a andsecond section 62 includes second extendedportion 62 a, which overlap along joint 65. As with above-described embodiments, either first orsecond section section 16. In one example, having a feature such as joint 65 running perpendicular to ends 16 a and 16 b can provide increased holding force between first andsecond section proximal section 12 anddistal section 14, which are respectively coupled to ends 16 a and 16 b. - In one example, joining
section 16 includesfirst section 70 andsecond section 72. First andsecond sections conductive substrate 50 and mask corresponding to the shape of first andsecond sections second sections - In one embodiment,
first section 70 includesplug portion 70 a andsecond section 72 is configured to receiveplug portion 70 a. As with above-described embodiments, either first orsecond section plug 70 a formed within a receiving cavity ofsecond section 72 can provide increased holding force between first andsecond section proximal section 12 anddistal section 14, which are respectively coupled to ends 16 a and 16 b. - Other configurations of joining
section 16 are also possible in accordance with other embodiments and other electro-forming methods. In one embodiment, joiningsection 16 may be fabricated using LIGA or lithography and electroforming techniques. In one case, the LIGA process includes X-ray deep lithography, electroforming and molding. - In X-ray deep lithography, a polymer layer (resist) sensitive X-radiation is exposed to X-radiation by the shadow produced by an X-ray mask, which transfers to the resist an exact image of the absorber structures on the mask. The exposed areas are dissolved selectively by wet chemical methods. Somewhat complex or intricate configurations are possible using lithography techniques. When these polymer structures are produced on a metal starting layer, the structural areas exposed after the developing process can be filled up with various metals by electrodeposition. Once the metal is built up, the remaining resist is removed, and only the metal structures remain in place.
- In other embodiments, EFAB® technology is used to create joining
section 16. EFAB® technology is a known process for forming micro-structures by stacking a set of thin metal layers, somewhat similar to rapid prototyping technologies. The EFAB® process is driven by a three-dimensional CAD of the final device. The manufacturing starts with a blank substrate and then grows the device layer-by-layer by depositing and precisely planerizing metals. In one example, two metals are deposited (for example, one for the first section and one for the second section of a joining section). Somewhat complex or intricate configurations are possible using EFAB® processes. -
FIGS. 8-11 illustrate embodiments of embodiments of joiningsection 16 formed with an electro-forming process, such as electrodeposition, EFAB® process or a lithography process. In the embodiments ofFIGS. 8-11 , joiningsection 16 respectively includesfirst section second section second sections - In one embodiment illustrated in
FIG. 8 ,first section 80 includes first andsecond plug portions second section 82 is configured to receive first andsecond plug portions 80 a and b. In the illustration,second section 82 is ghosted and first andsecond plug portions 80 a and b are illustrated in dotted lines. As with first andsecond sections second plug portions plug portions second section 82 can provide increased holding force between first andsecond section proximal section 12 anddistal section 14, which are respectively coupled to ends 16 a and 16 b. - In one embodiment illustrated in
FIG. 9 ,first section 90 includesplug portion 90 a, andsecond section 92 is configured to receiveplug portion 90 a. In the illustration,second section 92 is ghosted and plugportion 90 a is illustrated in dotted lines. As with first andsecond sections plug portion 90 a can be formed with electro-forming processes, such as electrodeposition, EFAB® process or a lithography process. In one example, having a feature such asplug portion 90 a formed within a receiving cavity ofsecond section 92 can provide increased holding force between first andsecond section proximal section 12 anddistal section 14, which are respectively coupled to ends 16 a and 16 b. - In one embodiment illustrated in
FIG. 10 ,first section 100 includesplug portion 100 a, andsecond section 102 is configured to receiveplug portion 100 a. In the illustration,second section 102 is ghosted and plugportion 100 a is illustrated in dotted lines. As with first andsecond sections plug portion 100 a can be formed with electro-forming processes, such as electrodeposition, EFAB® process or a lithography process. In one example, having a feature such asplug portion 100 a formed within a receiving cavity ofsecond section 102 can provide increased holding force between first andsecond section proximal section 12 anddistal section 14, which are respectively coupled to ends 16 a and 16 b. - In one embodiment illustrated in
FIG. 11 ,first section 110 includes first andsecond plug portions second section 112 is configured to receive first andsecond plug portions 110 a and b. In the illustration,second section 112 is ghosted and first andsecond plug portions 110 a and b are illustrated in dotted lines. As with first andsecond sections second plug portions plug portions second section 112 can provide increased holding force between first andsecond section proximal section 12 anddistal section 14, which are respectively coupled to ends 16 a and 16 b. - Use of these above-described processes, such as electrodeposition, three-dimensional printing, direct typing process, LIGA, lithography or stacking processes, enables features, such as joint 65, plug 70 a,
plug portions - Although specific embodiments have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that a variety of alternate and/or equivalent implementations may be substituted for the specific embodiments shown and described without departing from the scope of the present invention. This application is intended to cover any adaptations or variations of the specific embodiments discussed herein. Therefore, it is intended that this invention be limited only by the claims and the equivalents thereof.
Claims (18)
1. A method of forming a wire comprising:
providing a first wire section comprising a first material;
providing a second wire section comprising a second material different from the first material;
forming a joining section having a first end and a second end such that the first end of the joining section comprising a material that is compatible with the first material and such that the second end of the joining section comprising a material that is compatible with the second material; and
welding the first wire section to the first end of the joining section and welding the second wire section to the second end of the joining section;
wherein forming the joining section comprises forming the joining section via a process selected from a group comprising electrodeposition, three-dimensional printing, direct typing process, LIGA, lithography and stacking processes.
2. The method of claim 1 , wherein the first material comprising one of stainless steel, nickel-chromium alloy, nickel-chromium-iron alloy, and cobalt alloy and wherein the second material comprising nickel-titanium.
3. The method of claim 1 , wherein the first end of the joining section comprises the first material and the second end of the joining section comprises the second material.
4. The method of claim 1 , wherein forming the joining section further comprises electrodepositing a first section of the joining section with the first material, thereby defining the first end, and electrodepositing a second section of the joining section with the second material, thereby defining the second end, and wherein electrodepositing the first and second sections further comprises forming a feature that couples the first and second sections.
5. The method of claim 1 , wherein forming the joining section further comprises three-dimensional screen printing the joining section such that the joining section comprises a gradient of materials progressing from the first material at the first end of the joining section to the second material at the second end of the joining section.
6. The method of claim 5 , wherein three-dimensional screen printing the joining section comprises printing at least three or more layers of different compositions.
7. The method of claim 1 , wherein forming the joining section further comprises using a lithography or stacking processes to build up the joining section and such that the joining section comprises a feature that couples the first and second materials.
8. The method of claim 1 , wherein forming the wire comprises forming such that the outer diameter of the wire is between 0.005 and about 0.02 inches.
9. A method of forming a wire comprising:
providing a first wire section comprising a first material;
providing a second wire section comprising a second material different from the first material;
forming a joining section having a first end and a second end such that the first end of the joining section comprising a material that is compatible with the first material and such that the second end of the joining section comprising a material that is compatible with the second material;
coupling the first wire section to the first end of the joining section thereby defining a first interface where the first joining section material is compatible with the first material of the first wire section across the entire first interface; and
coupling the second wire section to the second end of the joining section thereby defining a second interface where the second joining section material is compatible with the second material of the second wire section across the entire second interface.
10. The method of claim 9 , wherein forming the joining section comprises forming the joining section via a process selected from a group comprising electrodeposition, three-dimensional printing, direct typing process, LIGA, lithography and stacking processes.
11. The method of claim 9 , wherein the first material comprising one of stainless steel, nickel-chromium alloy, nickel-chromium-iron alloy, and cobalt alloy and wherein the second material comprising nickel-titanium.
12. The method of claim 9 , wherein the first end of the joining section comprises the first material and the second end of the joining section comprises the second material.
13. The method of claim 9 , wherein forming the joining section further comprises electrodepositing a first section of the joining section with the first material, thereby defining the first end, and electrodepositing a second section of the joining section with the second material, thereby defining the second end, and wherein electrodepositing the first and second sections further comprises forming a feature that couples the first and second sections.
14. The method of claim 9 , wherein forming the joining section further comprises three-dimensional screen printing the joining section such that the joining section comprises a gradient of materials progressing from the first material at the first end of the joining section to the second material at the second end of the joining section.
15. The method of claim 14 , wherein three-dimensional screen printing the joining section comprises printing at least three or more layers of different compositions.
16. The method of claim 9 , wherein forming the joining section further comprises using a lithography or stacking processes to build up the joining section and such that the joining section comprises a feature that couples the first and second materials.
17. The method of claim 9 , wherein forming the wire comprises forming such that the outer diameter of the wire is between 0.005 and about 0.02 inches.
18. A method of forming a wire comprising:
providing a first wire section comprising a first material;
providing a second wire section comprising a second material different from the first material;
forming a joining section having a first end and a second end such that the first end of the joining section comprising a material that is compatible with the first material and such that the second end of the joining section comprising a material that is compatible with the second material;
characterized in that forming the joining section comprises forming a first section of the joining section in a mask via an electroplating process, the first section defining the first end, and forming the second section of the joining section in the mask and on the first section via a further electroplating process, the second section defining the second end.
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Also Published As
Publication number | Publication date |
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US8487210B2 (en) | 2013-07-16 |
DE102011102986B4 (en) | 2023-01-12 |
DE102011102986A1 (en) | 2011-12-15 |
US20110306949A1 (en) | 2011-12-15 |
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