Multi-lumen instrument guide

Information

  • Patent Grant
  • 7744606
  • Patent Number
    7,744,606
  • Date Filed
    Saturday, December 4, 2004
    19 years ago
  • Date Issued
    Tuesday, June 29, 2010
    14 years ago
  • CPC
  • US Classifications
    Field of Search
    • US
    • 606 130000
    • 606 096000
    • 606 098000
    • 606 087000
    • 606 102000
    • 408 075000
    • 600 429000
    • D11 3
    • D11 6
    • D11 11
    • 411 001000
    • 411 002000
    • 411 427000
    • 411 436000
    • 411 437000
  • International Classifications
    • A61B19/00
    • Term Extension
      489
Abstract
This document discusses, among other things, a method of manufacture including a mold having at least one pin, and surrounding the pin with a hardenable material to form a first guide layer. The mold and pin are removed from the resulting first guide layer, to define a substantially untapered first instrument passage that corresponds to the geometry of the pin. Optionally, the first instrument passage includes at least five substantially untapered channels including a central channel. The first instrument passage is aligned with a substantially untapered second instrument passage of a stacked second guide layer. In a further example, the first and second guide layers are coupled to a guide coupler that cooperatively aligns the first and second instrument passages. The guide layers can be used with a trajectory guide for image guided surgery.
Description
RELATED APPLICATIONS

This application is related to U.S. patent application Ser. No. 11/005,607, filed on Dec. 4, 2004, entitled “INSTRUMENT GUIDING STAGE APPARATUS AND METHOD FOR USING SAME,” the disclosure of which is incorporated herein by reference in its entirety.


This application is related to U.S. patent application Ser. No. 10/370,090, filed on Feb. 20, 2003, entitled “TRAJECTORY GUIDE WITH ANGLED OR PATTERNED GUIDE LUMENS OR HEIGHT ADJUSTMENT,” the disclosure of which is incorporated herein by reference in its entirety.


TECHNICAL FIELD

This document relates generally to guiding instruments and in particular, but not by way of limitation, to a multi-lumen insert, such as for use with a trajectory guide for surgically guiding instruments.


BACKGROUND

Neurosurgery sometimes involves inserting an instrument through a burr hole or other entry portal into a subject's brain toward a target region of the brain. Because of the precision needed to reach the target, while avoiding nearby structures that are often critical to brain function, precise guidance devices and techniques are needed. In one such technique a multi-lumen instrument guide is included within a trajectory guide mounted to the skull. An instrument is inserted through a guide lumen of the instrument guide, which steers it toward the target.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is an exploded view illustrating guide layers and a guide coupler.



FIG. 2 is a perspective view illustrating a first guide layer.



FIG. 3 is a perspective view illustrating a centered instrument guide coupled to a trajectory alignment assembly.



FIG. 4 is a perspective view illustrating an offset instrument guide coupled to a trajectory alignment assembly.



FIG. 5 is a perspective view illustrating an instrument guide coupled to a trajectory alignment assembly and a translating stage with an instrument extending through the instrument guide.



FIG. 6 is a block diagram illustrating a method for manufacturing an instrument guide.





DETAILED DESCRIPTION

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. These embodiments are described in sufficient detail to enable those skilled in the art to practice the invention, and it is to be understood that other embodiments may be utilized and that structural changes may be made without departing from the scope of the present invention. Therefore, the following detailed description is not to be taken in a limiting sense, and the scope of the present invention is defined by the appended claims and their equivalents.


In this document, the terms “a” or “an” are used, as is common in patent documents, to include one or more than one. Furthermore, all publications, patents, and patent documents referred to in this document are incorporated by reference herein in their entirety, as though individually incorporated by reference. In the event of inconsistent usages between this documents and those documents so incorporated by reference, the usage in the incorporated references(s) should be considered supplementary to that of this document; for irreconcilable inconsistencies, the usage in this document controls.


In order to accurately plunge an instrument into the brain, the instrument typically must be aligned to and guided on the proper trajectory toward the target. The better an instrument is aligned to and held on the ideal trajectory, the more accurate will be the guidance and placement of the instrument at the target.


Many surgical instruments are long, thin, slightly flexible tubes or rods. Guiding such an instrument, therefore, typically involves guiding a round tube in a round guide hole (also referred to as a guide lumen) as the tube passes through the hole (and beyond, toward the target). The guided instrument should remain as nearly concentric to and as nearly parallel to the guide lumen as possible. This concentricity and parallelism should extend even at relatively long distances from the exit of the guide lumen. Stated another way, the instrument's concentricity and parallelism to the ideal trajectory should be adequate at a specified target distance from the guiding apparatus.


Among the characteristics that will improve tubular instrument guidance are: (1) a tighter fit between an inner diameter of the guide lumen and an outer diameter of the tubular instrument; (2) a longer axial engagement or guidance of the tubular instrument with the guide lumen (i.e., a long-bore in the guide lumen); (3) a shorter distance from the guide lumen exit to the target (i.e., placing the guiding apparatus closer to the brain or other target); and/or (4) a stiffer instrument being guided toward the target.


However, manufacturing long, small-bore holes, such as needed for instrument guidance, can be difficult and costly, particularly where a pattern of multiple small-bore holes is required, instead of a single small-bore hole, and even more particularly where the multiple small-bore holes must be closely spaced to each other. Small-bore holes are typically made by techniques including: drilling (such as normal machining, laser drilling, electrical discharge machining (EDM), or the like); molding material around a pin, then removing the pin; or extruding a tube with an inside diameter equal to that of the desired small-bore hole.


Drilled holes often have a practical limit on the obtainable depth. An adequately long, straight, drilled hole suitable for accurate instrument guidance is often difficult or impossible to obtain. Although exotic methods such as laser drilling or EDM may work, their costs are typically high and the materials with which they may be used are typically limited. Even if a single long small-bore hole can be drilled, for example, drilling another nearby hole can be very difficult because the drill bit may wander or break through the material separating the adjacent small-bore holes.


Molding long holes is possible. However, molding draft (i.e., taper) is usually required, especially for long holes. Even with such molding draft, as a practical matter, molded small-bore holes are limited to a modest length. The pins that form such holes are typically too weak and flexible when they are made too long. Moreover, drafted holes will affect the tightness of fit between the instrument and the hole, making it difficult for a drafted molded hole to provide adequate instrument guidance.


An extruded tube may alternatively be inserted as a liner in a larger diameter hole to more snugly guide the tubular instrument. Alternatively, the wider end of the tapered small-bore hole could be plugged with a sleeve to narrow its effective inner diameter. However, each of these techniques proves difficult when multiple closely-spaced small-bore holes are needed. The material separating the closely-spaced holes becomes too thin and frangible.


Another technique would be to align two shorter, separated multi-lumen guides. However, aligning the guides to each other is difficult, and the user must spear the instrument through a guide lumen not only at the proximal guide, but at the distal guide as well. This can be awkward for the user, and it is possible that the instrument could enter the wrong guide lumen in the more distal guide, thereby deflecting along the wrong trajectory into the brain and away from the desired target.


Drilling, molding, extrusion, and other techniques, therefore, all present problems when multiple closely-spaced small-bore holes are needed. Opting for a shorter bore instrument guide, however, will compromise the accuracy with which the instrument can be guided toward the target.


Among other things, the present inventors have recognized difficulties with ordinary manufacturing techniques to construct multi-lumen instrument guides with tight tolerance passages to provide accurate targeting of instruments. The present inventors have also recognized an unmet need for reducing trauma to the brain through enhanced flexibility in instrument targeting where the center to center distance of passages within multi-lumen instrument guides is reduced (i.e., instruments are able to accurately traverse around blood vessels, vital tissues, and the like).



FIG. 1 is an exploded perspective view of an example of an instrument guide 100. The instrument guide 100 includes at least two guide layers 102. In the example shown in FIG. 1, the instrument guide 100 includes ten guide layers 102. Optionally, the instrument guide 100 includes additional guide layer 102 or fewer guide layers 102. In one example, the instrument guide 100 includes a guide coupler 104 carrying the guide layers 102. In one example, the inner surface 106 of the guide coupler 104 defines a guide layer lumen 108. The guide layer lumen 108 is cylindrical in one example. In another example, the guide layer lumen 108 has a different geometry, for example a rectangle, triangle, oval or the like. Optionally, the inner surface 106 is sized and shaped to snugly retain the guide layers 102. In another example, one or more ridges 107 extend from the inner surface 106 into the guide layer lumen 108. In one example, the ridges 107 are disposed along the inner surface 106 approximately every 90 degrees. In another example, the ridges 107 are disposed at lesser or greater increments. Optionally, the ridges 107 have a triangular cross-sectional geometry. In an example, the base of a ridge 107 extends from the inner surface 106 to an edge within the guide layer lumen 108.


In an example, the guide coupler 104 includes an upper portion 110 and a lower portion 112. In one example, the upper portion 110 has a smaller outer perimeter than the lower portion 112. In other words, the upper portion 110 is narrower than the lower portion 112. In the example of FIG. 1, the upper portion 110 is parallel to a longitudinal center axis 111 of the guide coupler 104 and offset from the longitudinal center axis 111. In other words, the longitudinal center axis 113 of the upper portion 110 is offset from the longitudinal center axis 111 of the guide coupler 104. In another example, the upper portion 110 longitudinal center axis 113 is aligned with the longitudinal center axis 111 of the guide coupler 104.


The guide coupler upper portion 110 optionally includes keys 114 disposed around the outer perimeter of the upper portion 110. In one example, the keys 114 are disposed around an outer perimeter of the upper portion 110 at 90 degree increments. The outer perimeter of the upper portion 110, in an example, includes a first recess 116. In the example shown in FIG. 1, the first recess 116 extends circumferentially around the upper portion 110. In another example, the first recess 116 extends part way around the upper portion 110. In yet another example, a second recess 118 extends around the lower portion 112. Optionally, the second recess 118 extends part way around the lower portion 112. A flange 120 is interposed between the upper portion 110 and lower portion 112. In an example, the flange 120 has an outer perimeter greater than that of the upper portion 110 and lower portion 112. In another example, the flange 120 extends part way around the guide coupler 104.


In one example, the guide coupler 104 and guide layer 102 are constructed with hardenable materials such as, but not limited to, polycarbonate, injection molded plastics, epoxies and the like. In another example, the guide coupler 104 and guide layer 102 are made, at least partially, with a thermoplastic having polyamide with the trade name Grilamid®, which is registered to EMS-Grivory. In still another example, the guide coupler 104 and guide layer 102 are made with any biocompatible material. Optionally, the guide coupler 104 and guide layer 102 are constructed with differing materials.



FIG. 2 is a perspective view of a guide layer 102. In one example, the outer perimeter 200 of the guide layer 102 has a substantially cylindrical geometry and the guide layer 102 has a diameter of approximately 0.4 inches. In another example, the outer perimeter 200 has a different geometry, for example rectangular, triangular, ovular or the like. In an example, the outer perimeter 200 is sized and shaped to snugly fit within the inner surface 106 of the guide coupler 104. In an example, the guide layer 102 includes grooves 202 disposed around the outer perimeter 200. In the example shown in FIG. 2, four grooves 202 are disposed around the guide layer 102. Optionally, fewer or additional grooves 202 are disposed around the guide layer 102. In one example, the grooves 200 extend from an upper surface of the guide layer 102 to a lower surface. In another example, the grooves 202 are disposed around the guide layer 102 at approximately 90 degree increments. In yet another example, the grooves 202 are disposed at differing increments. In one option, the grooves 202 have a corresponding geometry to ridges 107. In an example, the grooves have a triangular geometry. In another example, the ridges 107 are sized and shaped to snugly fit within the grooves 202. The ridges 107 and grooves 202 cooperatively align different stacked guide layers 102 with the guide coupler 104, and with each other, when the guide layers 102 are disposed within the guide layer lumen 108. In still another example, ridges extend from the guide layers 102 into grooves disposed on the inner surface 106 of the guide coupler 104. Optionally, the guide layers and the guide coupler have non-circular geometries (e.g., triangular, ovular, and the like) that facilitate alignment without the ridges and grooves.


The guide layer 102 optionally further includes at least one substantially untapered instrument passage 204. The instrument passage 204 extends through the guide layer 102 and is non-threaded. In another example, the instrument passage 204 is a channel disposed on the guide layer 102. In yet another example, the instrument passage 204 is a lumen disposed within the guide layer 102. The longitudinal center axis 205 of the instrument passage 204, is optionally coincident with the longitudinal center axis of the guide layer 102. In another example, the longitudinal center axis 205 of the instrument passage 204 is parallel to but offset from the longitudinal center axis 205 of the guide layer 102. In still another example, the instrument passage 204 longitudinal center axis 205 is not parallel with the longitudinal center axis of the guide layer 102. In other words the instrument passage 204 is at an angle to the longitudinal center axis of the guide layer 102. The instrument passage 204 has an inner diameter that is circular, elliptical, rounded, chamfered or the like, in one example.


In the example shown in FIG. 2, the instrument passage 204 includes five substantially untapered channels 206A-E. In other words, the diameter of the approximately cylindrical channels 206A-E remains substantially unchanged throughout the guide layer 102, and throughout the middle additional stacked guide layers 102. The substantially untapered characteristic of the channels 206A-E ensures there is a tight clearance between instruments and the guide layers 102. The substantially untapered channels 206A-E, in one example, include a slight taper so at least a portion of the inner diameter of the channels 206A-E provides a tight tolerance slidable coupling with an instrument. In an example, the channels 206A-E are interconnected, as shown in FIG. 2. A common inner surface of instrument passage 204 defines the channels 206A-E. In another example, channels 206A-E are separate and distinct cylindrical lumens rather than being interconnected. In an example, the channels 206A-D are disposed around substantially centered channel 206E, such as at 90 degree increments approximately. This can be conceptualized as a North-South-East-West configuration about the centered channel 206E. Optionally, some or all of channels 206A-E are not interconnected. In one example, additional channels are provided in guide layer 102. In still another example, the channels are disposed within guide layer 102 in a different pattern, for example a three by three matrix of channels, or the like. In yet another example, the instrument passage includes two or more channels disposed in a pattern. Referring again to the example shown in FIG. 2, each of the channels 206A-E, optionally have a diameter of about 0.075 inches and are spaced from the other adjacent channels 206A-E about 0.0787 inches center-to-center.


In the example of FIG. 1, the instrument guide 100 includes multiple guide layers 102 stacked within guide coupler 104. The guide layers 102 are disposed within guide layer lumen 108, such as with the ridges of the guide coupler 104 disposed within grooves 202 of the guide layers 102. This retains the individual guide layers 102 within the guide layer lumen 108 in a desired orientation. In other words, the ridges 107 and corresponding grooves 202 align the instrument passage 204 of one guide layer 102 with the instrument passages 204 of the other guide layers 102 disposed within the guide layer lumen 108. Further, the channels 206A-E of one guide layer 102 are also aligned with the channels 206A-E of the other guide layers 102 through the cooperative relationship of the ridges 107 and grooves 202. The channels 206A-E thus define substantially untapered passages extending through the stacked guide layers 102. In other words, the channels 206A-E are sized and shaped to create tight tolerance passages that accurately maintain a consistent diameter through the entire stack of guide layers 102. This ensures accurate tracking of instruments snugly coupled to the guide layers 102 within channels 206A-E and fed through the instrument guide 100.


The substantially untapered channels 206A-E of the guide layers 102, shown in FIG. 1, are symmetrical in the example described above. As a result, the guide layers 102 can be assembled in any orientation in which they will fit into the guide layer lumen 108 (e.g. by disposing the ridges 10 within the grooves 202) and define the substantially untapered passages extending through the stacked guide layers 102. The guide layers 102, in one example, are substantially identical and interchangeable. Interchangeable guide layers 102 expedite assembly of the instrument guide 100 as the guide layers are stacked in any order or orientation (for instance, top side down or bottom side up) within the guide coupler 104.


In another example, the guide layers 102 include channels 206A-E that have a slight taper (described above). When the guide layers 102 are stacked in the guide coupler 104 the channels 206A-E provide substantially untapered passages. The effect of the greater clearance between the channels 206A-E and an instrument caused by the slight taper is lessened as at least a portion of the inner diameters of the channels 206A-E provides a tight tolerance slidable coupling to instruments. Coupling the guide layers 102 together further overcomes the effect of the slight taper as each elongated passage includes multiple tight tolerance inner diameter portions that slidably couple with the instruments. As a result, channels 206A-E provide substantially untapered passages when the guide layers 102 are stacked.



FIG. 3 shows a perspective view of an instrument guide 301 coupled to a trajectory alignment assembly 300. The instrument guide 301 of FIG. 3 is similar to the instrument guide 100. However, the instrument guide 301 includes an instrument passage 204 with a centered channel 206E that is substantially coincident with a longitudinal axis of the instrument guide 301. Trajectory alignment assembly 300 includes a base ring 302. In one example, the base ring 302 is coupled to an instrument immobilizer or other fixture that is disposed around a burr hole in a patient's skull. In another example, the base ring 302 is coupled to the skull or another portion of the body. A rotatable base 304 is coupled to the base ring 302 and operable to rotate around the base ring 302. A saddle slide 306 is disposed on an arcuate top portion of the rotatable base 304. In an example, the saddle slide 306 is slidably coupled to the rotatable base 304. In one example, fasteners 308, such as thumbscrews or the like, extend through the saddle slide 306 and the rotatable base 304. The fasteners 308 are disposed within slots 310 in the saddle slide 306. In an example, the saddle slide 306 is slidable over the rotatable base 304 when the fasteners 308 are loosened. The saddle slide 306 includes an instrument guide lumen carrying the instrument guide 301.


As described above, the lower portion 110 of the guide coupler 104 includes the recess 118. In an example, thumbscrew 312 extends through the wall of saddle slide 306 that defines the instrument guide lumen. When tightened, the thumbscrew 312 engages against the surface defining the recess 118 to securely retain the instrument guide 100 within the instrument guide lumen. Thus, the recess 118 assists in preventing the instrument guide from moving into or out of the instrument guide lumen when the thumbscrew 312 is secured. In another example, the guide coupler 104 includes keys extending from the lower portion 110. These keys are sized and shaped to fit within corresponding grooves in the trajectory alignment assembly. The relation of the keys to the grooves of the trajectory alignment assembly 300 substantially prevents unwanted relative rotation between the instrument guide 100 and the trajectory alignment system 300.


In another example, the trajectory alignment assembly 300 is then rotationally and arcuately moveable to orient the channels 206A-E of instrument guide 100 along a desired track through the burr hole and into the skull. In other words, the trajectories defined by channels 206A-E are positionable arcuately and rotationally to extend through the burr hole and into the skull. One example of the trajectory alignment assembly 300 is further described in U.S. patent application Ser. No. 10/671,913, filed on Sep. 25, 2003, which is assigned to the assignee of the present application and which is incorporated by reference herein in its entirety. Additional examples of trajectory guide assemblies are shown in U.S. patent application Ser. No. 09/828,451, filed on Apr. 6, 2001, which is assigned to the assignee of the present patent application, and which is incorporated by reference herein in its entirety.



FIG. 4 is a perspective view of the instrument guide 100 coupled to the trajectory alignment assembly 300. The instrument guide 100 of FIGS. 1 and 4 is similar to the instrument guide 301, described above. However, the instrument guide 100 includes an instrument passage 204 with an offset channel 206E that is substantially parallel to a longitudinal axis of the instrument guide 100, but offset therefrom.



FIG. 5 is a perspective view of an instrument guide 400 coupled to a trajectory alignment assembly 300 and a translating stage 500, which is also sometimes referred to as a microdrive introducer. The translating stage 500 includes a base 502. In an example, the base 502 includes an orifice 503 within which the upper portion 110 of the instrument guide 400 is located. The upper portion 110 includes the recess 116. A thumbscrew 504, or other fastener, is tightened and engages the surface defining the recess 116 to retain the translating stage 500 around the instrument guide 400. In an example, the instrument guide 400 is adapted to couple with the translating stage 500. In one example, a first stage 506 is moveably coupled to the base 502. In another example, the first stage 506 is translatable toward or away from the instrument guide 400. The first stage 506 moves in directions substantially parallel to the channels 206A-E in instrument guide 400. A second stage 508 is moveably coupled to the first stage 506. In an example, the second stage 508 is independently translatable toward or away from the instrument guide 400.


In the example of FIG. 5, the first stage 506 includes a stop 510 for a guide tube 512. In another example, the guide tube 512 includes a flange that engages the stop 510. The guide tube 512 is plunged through one of the channels 206A-E of the instrument guide 400. In an example, the instrument guide channels 206A-E are sized and shaped to snugly pass the outer perimeter of the guide tube 512. This provides an accurate track to a desired target for the guide tube 512. In another example, a different instrument 514 is retained in a retaining assembly 516 coupled to the second stage 508. In one example, tightening of the thumbscrew 518 retains the instrument 514. In another example, the instrument 514 is plunged through the guide tube 512 toward a target. The guide tube 512 is sized and shaped to snugly pass the outer perimeter of the instrument 514. The coupling of the guide layer 102 to the guide tube 512 and the coupling of the guide tube 512 to the instrument 514 provides an accurate track to the target. The trajectory defined by the substantially untapered channel 206E, in this example, is translated to the instrument 514 and guide tube 512 to provide precise tracking to a desired target. The substantially untapered inner surface of the channels 206A-E provides snug coupling between the guide layer 102 and the guide tube 512 so the guide tube 512 and instrument 514 mirror the trajectory of the channels 206A-E.


In another example, additional tubes are disposed between the inner surface of the guide tube 512 and the instrument 514. In one example, the instrument 514 has a smaller diameter, and a spacer tube is provided to snugly couple between the instrument 514 and the guide tube 512. In still another example, the instrument 514 is a stimulation or sensing electrode, catheter, or the like. Additional examples of translatable stages, guide tubes, and instruments are shown in U.S. application Ser. No. 11/005,607 filed on Dec. 4, 2004, which is assigned to the assignee of the present patent application, and which is incorporated by reference herein in its entirety.



FIG. 6 is a block diagram showing a method of manufacture 600. As shown in block 602, at least a mold having at least one pin is provided. In an example, the pin has a substantially untapered outer perimeter sized and shaped to correspond to the inner surface of the guide layer 102 that defines the substantially untapered instrument passage 204 and channels 206A-E. As shown in block 604, the pin is then surrounded with a hardenable material, such as Grilamid®, polycarbonate, injection molded plastics, epoxies or the like. This material hardens (i.e., solidifies) to form the first guide layer 102. Then, in block 606, the mold is broken away or otherwise removed from around the first guide layer 102. The first guide layer 102 is molded in substantially the same shape as the inner surface of the mold. In one example, the inner surface of the mold substantially corresponds to the outer perimeter of the guide layer 102. In one example, the inner surface of the mold includes at least one ridge disposed thereon. In another example, four ridges are positioned about 90 degrees around the mold inner surface. The ridges define corresponding grooves 202 on the outer perimeter of the first guide layer 102. As shown in block 608, the pin is removed from the first guide layer 102. In one example, the first guide layer 102 is pushed off of the pin. In an example, the inner surface of the first guide layer 102 corresponds to the outer surface of the pin. In other words, the first guide layer 102 includes an instrument passage 204 and corresponding channels 206A-E defined by the geometry of the pin. Because the pin has a substantially untapered outer perimeter, the instrument passage 204 and channels 206A-E correspondingly are substantially untapered. In another example, the substantially untapered passage 204 and channels 206A-E are formed by laser drilling, EDM and the like.


As shown in block 610, the first instrument passage is aligned with a second instrument passage of the first guide layer and second guide layer, respectively. In one example, the first and second instrument passages are sized and shaped to snugly pass a medical instrument. In another example, the first guide layer 102 is positioned within a guide coupler, for example guide coupler 104. Optionally, the first guide layer 102 is disposed within the guide layer lumen 108, and the guide layer 102 is sized and shaped to snugly fit within the guide coupler 104. In one example, the first guide layer 102, including at least one groove 202, is positioned within the guide coupler 104 so at least one ridge 107 is disposed within the groove 202. In still another example, a second guide layer 102 is then positioned within the guide coupler 104. Optionally, the second guide layer 102 includes a substantially untapered instrument passage 204 and associated channels 206A-E. The channels 206A-E of the second guide layer 102 are aligned with those of the first guide layer 102. In one option, the second guide layer 102 includes a groove 202, such that the ridge 107 is disposed within the groove 202 of the second guide layer 102. This aligns the instrument passage 204 and channels 206A-E of the first and second guide layers 102.


In still another example, the first guide layer 102 is adhered to the second guide layer 102 and/or the guide coupler 104. The guide layers 102 are affixed with adhesives, ultrasonic bonding, snaps, press pins, screws and the like. The top guide layer 102 and bottom guide layer 102 are adhered to the guide coupler 104, for instance, with an adhesive including cyanoacrylate. In yet another example, the guide layers 102 are interference fit with the guide coupler 104. Optionally, additional guide layers 102 are disposed within the guide coupler 104 to define extended passages through aligned channels 206A-E. With additional guide layers 102, the top guide layer 102 and the bottom guide layer 102 retain the additional guide layers 102 within the guide coupler 104.


The various embodiments of the instrument guide and method for making the same in this document are presented as illustrative examples, and are not intended to be limiting. The instrument guide embodiments discussed in this document will be capable of use with a variety of instruments including sensing and stimulation electrodes, catheters, biopsy probes or the like. The instrument guide includes substantially untapered channels that allow snug coupling between the channels and instruments. In another example, the untapered channels allow snug coupling between the channels and tubes interposed between the channels and the instruments. In still another example, the substantially untapered channels provide snug slidable coupling between long, thin instruments and tubes.


Moreover, providing multiple aligned guide layers defines substantially untapered elongated passages that accurately track instruments fed therethrough. The tight tolerance between the inner diameter of the guide layers and the outer diameter of the instrument enhances the accuracy of guidance for the instrument while still allowing slidable movement. Accurate placement of the instrument is achieved where the instrument is aligned to a desired trajectory and maintained on the desired trajectory during plunging. Because the substantially untapered passage provides an elongated passage with a tight tolerance to the instrument, the instrument is precisely plunged into the brain, for instance, even after the instrument exits the elongated passage. As a result, a plunged instrument fed through the substantially untapered passage of the instrument guide remains parallel and coincident to a desired trajectory.


Making an instrument guide with an elongate passage without stacking guide layers requires, in one example, tapering of the channel with a correspondingly tapered molding pin. When the channel is not tapered removal of the pin often distorts the channel because the pin is drawn over a relatively long distance. Tapering of the channel helps avoid distortion as the tapered pin is drawn along the channel a shorter distance. However, the resulting tapered channel less accurately tracks instruments disposed therein because its proximal portion is less snugly fit to the instrument. As a result of the excessive clearance between the instrument and the proximal portion of the instrument guide the instrument tracks less accurately. Additionally, where it is desirable to have closely packed elongate passages, for instance in image guided surgery, using tapered channels undesirably spaces the channels from each other.


Alternatively, molding is performed around adjacent guide tube liners. As described above, in an example where the instrument guide is used in image guided surgery it is desirable to have closely packed elongate passages. Using tube liners undesirably spaces the passages from each other. Moreover, elongate passages are also drilled. However, when multiple closely spaced elongate passages are desired a drill bit can move or ‘wander,’ and break into the nearby passages.


In the method disclosed herein, when drawing the untapered pin through a guide layer the drawn distance is relatively short allowing for a substantially untapered lumen and corresponding channels. In one example, this distance is the thickness of the first layer, which is less than about a quarter of an inch. The instrument guide thus provides elongate substantially untapered passages defined by the channels of stacked guide layers.


In another example, an instrument guide having passages angled with respect to a longitudinal center axis of the instrument guide is made using the techniques described herein. In one example, separate molds are provided for each guide layer of the angled instrument guide. The separate molds include angled pins disposed within the molds. In another example, the pins are integral to the molds. The pins are selectively oriented within each mold so guide layers formed from the molds provide continuous substantially untapered and angled passages when the channels of each guide layer are aligned. In other words, the pin position within each mold is varied so that when the guide layers are stacked an angled continuous substantially untapered passage is formed. One example of an instrument guide having angled passages is further described in U.S. patent application Ser. No. 10/370,090, filed on Feb. 20, 2003, which is assigned to the assignee of the present application and which is incorporated by reference herein in its entirety.


It is to be understood that the above description is intended to be illustrative, and not restrictive. Many other embodiments will be apparent to those of skill in the art upon reading and understanding the above description. It should be noted that embodiments discussed in different portions of the description or referred to in different drawings can be combined to form additional embodiments of the present application. The scope of the invention should, therefore, be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled.

Claims
  • 1. An article of manufacture comprising: an instrument guide formed by a plurality of separate and identical guide layers defining a longitudinal guide passage for guiding a surgical instrument to access an anatomic target site, the plurality of guide layers including at least:a first guide layer including a substantially untapered and non-threaded first instrument passage;a second guide layer identical to the first guide layer, the second guide layer including a substantially untapered and non-threaded second instrument passage, wherein the second instrument passage is aligned with the first instrument passage, and wherein the second guide layer is removably stacked atop the first guide layer and in contact with the first guide layer, wherein each of the first and second instrument passages defines a central channel and a plurality of channels surrounding the central channel, the central passage and each of the surrounding channels of the first and second guide layers aligned for providing uninterrupted access to the anatomic target site; andan elongated guide coupler having first and second open ends, the guide coupler having an inner surface defining a guide layer lumen through the first and second ends, the guide layer lumen sized and shaped to stackably receive the first and second guide layers.
  • 2. The article of manufacture of claim 1, wherein the at least two or more channels are substantially parallel to each other.
  • 3. The article of manufacture of claim 1, wherein the plurality of surrounding channels includes four surrounding channels circumferentially surrounding the central channel at 90 degree increments, each of the four surrounding channels open to and communicating with the central channel.
  • 4. The article of manufacture of claim 1, wherein the first guide layer and second guide layer include polyamide.
  • 5. The article of manufacture of claim 1, wherein the guide coupler includes at least one longitudinal ridge disposed along the inner surface of the guide coupler, and wherein each of the first and second guide layers includes an outer surface with at least one longitudinal groove, and the longitudinal ridge disposed within at least one corresponding longitudinal groove of each of the the first and second guide layers.
  • 6. The article of manufacture of claim 5, further including a plurality of parallel longitudinal ridges and a plurality of corresponding parallel longitudinal grooves.
  • 7. The article of manufacture of claim 6, wherein the inner surface of the guide coupler is substantially cylindrical and the plurality of parallel longitudinal ridges includes four longitudinal ridges with a triangular cross-sectional geometry equally spaced about the inner surface of the guide coupler.
  • 8. The article of manufacture of claim 7, wherein the outer surfaces of the first guide layer and the second guide layer are substantially cylindrical and sized and shaped to snugly fit within the inner surface of the guide coupler and the plurality of longitudinal grooves includes four triangularly shaped longitudinal grooves equally spaced about the outer surfaces.
  • 9. The article of manufacture of claim 1, wherein the guide layer lumen is substantially aligned with a longitudinal center axis of the guide coupler.
  • 10. The article of manufacture of claim 1, wherein the guide layer lumen is substantially parallel to a longitudinal center axis of the guide coupler and offset from the longitudinal center axis.
  • 11. The article of manufacture of claim 1, further comprising a translatable stage coupled to the guide coupler, wherein the translatable stage includes a first stage moveably coupled to a base and a second stage moveably coupled to the first stage.
  • 12. The article of manufacture of claim 11, wherein at least a portion of the guide coupler is disposed within an orifice in the base, the guide coupler including a plurality of keys on an outer surface for keyed coupling to the base.
  • 13. The article of manufacture of claim 11, wherein the first stage and the second stage are moveable substantially parallel to the substantially untapered first instrument passage and the second instrument passage.
  • 14. The article of manufacture of claim 1, further comprising a trajectory guide coupled to the guide coupler, wherein the trajectory guide includes a base ring, a rotatable base moveably coupled to the base ring and a saddle slide moveably coupled to an arcuate surface of the rotatable base.
  • 15. The article of manufacture of claim 14, wherein at least a portion of the guide coupler is disposed within the saddle slide.
  • 16. The article of manufacture of claim 1, wherein the first guide layer and the second guide layer are cylindrical.
  • 17. An article of manufacture comprising: an instrument guide defining a longitudinal axis and a longitudinal guide passage along the longitudinal axis for guiding a surgical instrument to access an anatomic target site, the instrument guide including:a plurality of separate and substantially identical guide layers, each guide layer including a substantially untapered and non-threaded instrument passage, the guide layers stackable in contact with one another to form a continuous stack of a selectable number of guide layers, such that the instrument passages of all the guide layers are aligned along the longitudinal axis and define the longitudinal guide passage, wherein each instrument passage includes a central channel and a plurality of surrounding channels circumferentially surrounding the central channel, the central passage and each of the surrounding channels providing uninterrupted access to the anatomic target site, and wherein the surrounding channels are interconnected and are open to and communicate with the central channel; andan elongated guide coupler having first and second open ends, the elongated guide coupler having an inner surface defining a guide layer lumen through the first and second ends, the guide layer lumen sized and shaped to slidably receive the continuous stack of the plurality of guide layers.
  • 18. The article of manufacture of claim 17, wherein the guide coupler includes an upper portion, a lower portion and a flange interposed between the upper portion and the lower portion, the upper portion having a smaller outer perimeter than the lower portion, the flange having an outer perimeter greater than that of the upper portion and the lower portion.
  • 19. The article of manufacture of claim 18, wherein the upper portion has longitudinal axis parallel to and offset from a longitudinal axis of the lower portion.
  • 20. The article of manufacture of claim 18, wherein the flange extends part way around the guide coupler.
  • 21. The article of manufacture of claim 18, further comprising a translating stage coupled to the guide coupler, the translating stage defining an orifice, and wherein the upper portion includes a plurality of keys disposed around an outer perimeter of the upper portion, the plurality of keys engageable with the orifice.
  • 22. The article of manufacture of claim 18, wherein the upper portion includes a recess extending circumferentially around an outer perimeter of the upper portion.
  • 23. The article of manufacture of claim 18, wherein the lower portion includes a recess extending circumferentially around an outer perimeter of the lower portion.
  • 24. The article of manufacture of claim 18, wherein each guide layer has a cylindrical outer surface and wherein the guide layer lumen of the guide coupler has a cylindrical inner surface, wherein the inner and outer surfaces include cooperating alignment ridges and grooves respectively.
  • 25. The article of manufacture of claim 17, wherein the plurality of guide layers includes at least ten guide layers.
  • 26. An article of manufacture comprising: an instrument guide defining a longitudinal axis and a longitudinal guide passage along the longitudinal axis for guiding a surgical instrument to access an anatomic target site, the instrument guide including:a plurality of separate and substantially identical guide layers, each guide layer including a substantially untapered and non-threaded instrument passage, the guide layers stackable in contact with one another to form a continuous stack of a selectable number of guide layers, such that the instrument passages of all the guide layers are aligned along the longitudinal axis and define the longitudinal guide passage, wherein each instrument passage includes a central channel and a plurality of surrounding channels circumferentially surrounding the central channel, the central passage and the surrounding channels providing uninterrupted access to the anatomic target site, and wherein the surrounding channels are interconnected and are open to and communicate with the central channel, and wherein each guide layer has a cylindrical outer surface and a plurality of longitudinal grooves formed on the cylindrical outer surface; andan elongated guide coupler having first and second open ends, the guide coupler having a cylindrical inner surface defining a guide layer lumen through the first and second ends, the inner surface defining a plurality of longitudinal ridges, the guide layer lumen sized and shaped to receive the continuous stack of separate guide layers such that each longitudinal ridge is received in a corresponding groove of each guide layer, the guide coupler including an upper portion, a lower portion and a flange interposed between the upper portion and the lower portion, the upper portion having a smaller outer perimeter than the lower portion, the flange having an outer perimeter greater than that of the upper portion and the lower portion, the lower portion having a longitudinal axis parallel to and offset from a central longitudinal axis of the guide layer lumen.
  • 27. The article of manufacture of claim 26, wherein the plurality of longitudinal ridges includes four longitudinal ridges having triangular cross-sections and equally spaced about the inner surface.
  • 28. The article of manufacture of claim 26, wherein the plurality of guide layers includes at least ten guide layers.
US Referenced Citations (301)
Number Name Date Kind
431187 Foster Jul 1890 A
438801 Delehanty Oct 1890 A
873009 Baxter Dec 1907 A
1129333 Clarke Feb 1915 A
1664210 Hall Mar 1928 A
2119649 Roosen Jun 1938 A
2135160 Beekhuis Nov 1938 A
2497820 Kielland Feb 1950 A
2686890 Davis Aug 1954 A
3010347 Kron Nov 1961 A
3016899 Stenvall Jan 1962 A
3017887 Heyer Jan 1962 A
3055370 McKinney et al. Sep 1962 A
3055371 Kulick, G., et al. Sep 1962 A
3115140 Volkman Dec 1963 A
3135263 Connelley Jr. Jun 1964 A
3223087 Vladyka et al. Dec 1965 A
3262452 Hardy et al. Jul 1966 A
3273559 Evans Sep 1966 A
3282152 Myer Nov 1966 A
3402710 Paleschuck Sep 1968 A
3444861 Schulte May 1969 A
3457922 Ray Jul 1969 A
3460537 Zeis Aug 1969 A
3508552 Hainault Apr 1970 A
3672352 Summers Jun 1972 A
3760811 Andrew et al. Sep 1973 A
3817249 Nicholson Jun 1974 A
3893449 Lee et al. Jul 1975 A
3981079 Lenczycki Sep 1976 A
4013080 Froning Mar 1977 A
4026276 Chubbuck May 1977 A
4040427 Winnie Aug 1977 A
4131257 Sterling Dec 1978 A
4230117 Anichkov et al. Oct 1980 A
4265252 Chubbuck et al. May 1981 A
4312337 Donohue Jan 1982 A
4318401 Zimmerman Mar 1982 A
4328813 Ray May 1982 A
4341220 Perry Jul 1982 A
4345606 Littleford Aug 1982 A
4350159 Gouda Sep 1982 A
4355645 Mitani et al. Oct 1982 A
4386602 Sheldon et al. Jun 1983 A
4418894 Mailliet et al. Dec 1983 A
4448195 LeVeen et al. May 1984 A
4463758 Patil et al. Aug 1984 A
4475550 Bremer et al. Oct 1984 A
4483344 Atkov et al. Nov 1984 A
4571750 Barry Feb 1986 A
4572198 Codrington Feb 1986 A
4579120 MacGregor Apr 1986 A
4592352 Patil Jun 1986 A
4598708 Beranek Jul 1986 A
4608977 Brown Sep 1986 A
4617925 Laitinen Oct 1986 A
4618978 Cosman Oct 1986 A
4629451 Winters et al. Dec 1986 A
4638798 Shelden et al. Jan 1987 A
4660563 Lees Apr 1987 A
4665928 Linial et al. May 1987 A
4699616 Nowak et al. Oct 1987 A
4705436 Robertson et al. Nov 1987 A
4706665 Gouda Nov 1987 A
4733661 Palestrant Mar 1988 A
4755642 Parks Jul 1988 A
4791934 Brunnett Dec 1988 A
4793355 Crum et al. Dec 1988 A
4798208 Faasse, Jr. Jan 1989 A
4805615 Carol Feb 1989 A
4805634 Ullrich et al. Feb 1989 A
4807620 Strul et al. Feb 1989 A
4809694 Ferrara Mar 1989 A
4824436 Wolinsky Apr 1989 A
4826487 Winter May 1989 A
4869247 Howard, III et al. Sep 1989 A
4883053 Simon Nov 1989 A
4896673 Rose et al. Jan 1990 A
4902129 Siegmund et al. Feb 1990 A
4922924 Gambale et al. May 1990 A
4955891 Carol Sep 1990 A
4957481 Gatenby Sep 1990 A
4986280 Marcus et al. Jan 1991 A
4986281 Preves et al. Jan 1991 A
4989608 Ratner Feb 1991 A
4991579 Allen Feb 1991 A
4998938 Ghajar et al. Mar 1991 A
5006122 Wyatt et al. Apr 1991 A
5024236 Shapiro Jun 1991 A
5027818 Bova et al. Jul 1991 A
5030223 Anderson et al. Jul 1991 A
5050608 Watanabe et al. Sep 1991 A
5052329 Bennett Oct 1991 A
5054497 Kapp et al. Oct 1991 A
5057084 Ensminger et al. Oct 1991 A
5057106 Kasevich et al. Oct 1991 A
5065761 Pell Nov 1991 A
5078140 Kwoh Jan 1992 A
5078142 Siczek et al. Jan 1992 A
5080662 Paul Jan 1992 A
5087256 Taylor et al. Feb 1992 A
5099846 Hardy Mar 1992 A
5102402 Dror et al. Apr 1992 A
5116344 Sundqvist et al. May 1992 A
5116345 Jewell et al. May 1992 A
5120322 Davis et al. Jun 1992 A
5125888 Howard et al. Jun 1992 A
5142930 Allen et al. Sep 1992 A
5143086 Duret et al. Sep 1992 A
5154179 Ratner Oct 1992 A
5154723 Kubota et al. Oct 1992 A
5163430 Carol Nov 1992 A
5166875 Machida et al. Nov 1992 A
5171217 March et al. Dec 1992 A
5174297 Daikuzono et al. Dec 1992 A
5186174 Schlondorff et al. Feb 1993 A
5201742 Hasson Apr 1993 A
5207223 Adler May 1993 A
5207688 Carol May 1993 A
5211165 Dumoulin et al. May 1993 A
5221264 Wilk et al. Jun 1993 A
5222499 Allen et al. Jun 1993 A
5230338 Allen et al. Jul 1993 A
5230623 Guthrie et al. Jul 1993 A
5242415 Kantrowitz et al. Sep 1993 A
5246448 Chang Sep 1993 A
5257998 Ota et al. Nov 1993 A
5263939 Wortrich Nov 1993 A
5263956 Nobles Nov 1993 A
5267970 Chin et al. Dec 1993 A
5269305 Corol Dec 1993 A
5279309 Taylor et al. Jan 1994 A
5279575 Sugarbaker Jan 1994 A
5280427 Magnusson et al. Jan 1994 A
5290266 Rohling et al. Mar 1994 A
5291890 Cline et al. Mar 1994 A
5300080 Clayman et al. Apr 1994 A
5305203 Raab et al. Apr 1994 A
5306272 Cohen et al. Apr 1994 A
5309913 Kormos et al. May 1994 A
5330485 Clayman et al. Jul 1994 A
5354283 Bark et al. Oct 1994 A
5361763 Kao et al. Nov 1994 A
5366446 Tal et al. Nov 1994 A
5375588 Yoon Dec 1994 A
5375596 Twiss et al. Dec 1994 A
5380302 Orth Jan 1995 A
5383454 Bucholz Jan 1995 A
5387220 Pisharodi Feb 1995 A
5394457 Leibinger et al. Feb 1995 A
5405330 Zunitch et al. Apr 1995 A
5423832 Gildenberg Jun 1995 A
5423848 Washizuka et al. Jun 1995 A
5445166 Taylor Aug 1995 A
5452720 Smith et al. Sep 1995 A
5464446 Dreessen et al. Nov 1995 A
5470307 Lindall Nov 1995 A
5474564 Clayman et al. Dec 1995 A
5483961 Kelly et al. Jan 1996 A
5494034 Schlondorff et al. Feb 1996 A
5494655 Rocklage et al. Feb 1996 A
5515160 Schulz et al. May 1996 A
5517990 Kalfas et al. May 1996 A
5528652 Smith et al. Jun 1996 A
5541377 Stuhlmacher Jul 1996 A
5572905 Cook, Jr. Nov 1996 A
5572999 Funda et al. Nov 1996 A
5575798 Koutrouvelis Nov 1996 A
5618288 Calvo et al. Apr 1997 A
5622170 Schulz Apr 1997 A
5638819 Manwaring et al. Jun 1997 A
5639276 Weinstock et al. Jun 1997 A
5643286 Warner et al. Jul 1997 A
5647361 Damadian Jul 1997 A
5649936 Real Jul 1997 A
5658272 Hasson Aug 1997 A
5662600 Watson et al. Sep 1997 A
5667514 Heller Sep 1997 A
5695501 Carol et al. Dec 1997 A
5713858 Heruth et al. Feb 1998 A
5755697 Jones et al. May 1998 A
5776064 Kalfas et al. Jul 1998 A
5776143 Adams Jul 1998 A
5776144 Leysieffer et al. Jul 1998 A
5788713 Dubach et al. Aug 1998 A
5807033 Benway Sep 1998 A
5809694 Postans et al. Sep 1998 A
5810712 Dunn Sep 1998 A
5817106 Real Oct 1998 A
5823975 Stark et al. Oct 1998 A
5833627 Shmulewitz et al. Nov 1998 A
5843150 Dreessen et al. Dec 1998 A
5851183 Bucholz Dec 1998 A
5865817 Moenning et al. Feb 1999 A
5865842 Knuth et al. Feb 1999 A
5871445 Bucholz Feb 1999 A
5871487 Warner et al. Feb 1999 A
5873822 Ferre et al. Feb 1999 A
5891034 Bucholz Apr 1999 A
5891157 Day et al. Apr 1999 A
5927277 Baudino et al. Jul 1999 A
5950629 Taylor et al. Sep 1999 A
5954687 Baudino Sep 1999 A
5957933 Yanof et al. Sep 1999 A
5957934 Rapoport et al. Sep 1999 A
5964705 Truwit et al. Oct 1999 A
5980535 Barnett et al. Nov 1999 A
5984930 Maciunas et al. Nov 1999 A
5993463 Truwit Nov 1999 A
5997471 Gumb et al. Dec 1999 A
6006126 Cosman Dec 1999 A
6018094 Fox Jan 2000 A
6021343 Foley et al. Feb 2000 A
6024729 Dehdashtian et al. Feb 2000 A
6030223 Sugimori Feb 2000 A
6039725 Moenning et al. Mar 2000 A
6042540 Johnston et al. Mar 2000 A
6044304 Baudino Mar 2000 A
6058323 Lemelson May 2000 A
6071288 Carol et al. Jun 2000 A
6076008 Bucholz Jun 2000 A
6079681 Stern et al. Jun 2000 A
6110182 Mowlai-Ashtiani Aug 2000 A
6117143 Hynes et al. Sep 2000 A
6120465 Guthrie et al. Sep 2000 A
6135946 Konen et al. Oct 2000 A
6179826 Aebischer et al. Jan 2001 B1
6195577 Truwit et al. Feb 2001 B1
6206890 Truwit Mar 2001 B1
6210417 Baudino et al. Apr 2001 B1
6231526 Taylor et al. May 2001 B1
6236875 Bucholz et al. May 2001 B1
6238402 Sullivan, III et al. May 2001 B1
6254532 Paolitto et al. Jul 2001 B1
6257407 Truwit et al. Jul 2001 B1
6261300 Carol et al. Jul 2001 B1
6267769 Truwit Jul 2001 B1
6267770 Truwit Jul 2001 B1
6273896 Franck et al. Aug 2001 B1
6282437 Franck et al. Aug 2001 B1
6290644 Green, II et al. Sep 2001 B1
6298262 Franck et al. Oct 2001 B1
6315770 de la Torre et al. Nov 2001 B1
6321104 Gielen et al. Nov 2001 B1
6327491 Franklin et al. Dec 2001 B1
6356792 Errico et al. Mar 2002 B1
6368329 Truwit Apr 2002 B1
6400992 Borgersen et al. Jun 2002 B1
6457963 Tawara et al. Oct 2002 B1
6482182 Carroll et al. Nov 2002 B1
6488620 Segermark et al. Dec 2002 B1
6491699 Henderson et al. Dec 2002 B1
6529765 Franck et al. Mar 2003 B1
6537232 Kucharczyk et al. Mar 2003 B1
6546277 Franck et al. Apr 2003 B1
6546279 Bova et al. Apr 2003 B1
6547795 Schneiderman Apr 2003 B2
6556857 Estes et al. Apr 2003 B1
6609020 Gill et al. Aug 2003 B2
6610100 Phelps et al. Aug 2003 B2
6632184 Truwit Oct 2003 B1
6655014 Babini Dec 2003 B1
6662035 Sochor Dec 2003 B2
6676669 Charles et al. Jan 2004 B2
6706050 Giannadakis Mar 2004 B1
6726678 Nelson et al. Apr 2004 B1
6746471 Mortier et al. Jun 2004 B2
6752812 Truwit Jun 2004 B1
6765122 Stout Jul 2004 B1
6773443 Truwit et al. Aug 2004 B2
6782288 Truwit et al. Aug 2004 B2
6802323 Truwit et al. Oct 2004 B1
6902569 Parmer et al. Jun 2005 B2
6913478 Lamirey Jul 2005 B2
6944895 Truwit Sep 2005 B2
6960216 Kolb et al. Nov 2005 B2
7204840 Skakoon et al. Apr 2007 B2
7479146 Malinowski Jan 2009 B2
20010014771 Truwit et al. Aug 2001 A1
20010027271 Franck et al. Oct 2001 A1
20010037524 Truwit Nov 2001 A1
20020010479 Skakoon et al. Jan 2002 A1
20020019641 Truwit Feb 2002 A1
20020022847 Ray et al. Feb 2002 A1
20020052610 Skakoon et al. May 2002 A1
20020077646 Truwit et al. Jun 2002 A1
20020156372 Skakoon et al. Oct 2002 A1
20030079287 Truwit May 2003 A1
20030187351 Franck et al. Oct 2003 A1
20030208122 Melkent et al. Nov 2003 A1
20040059260 Truwit Mar 2004 A1
20040176750 Nelson et al. Sep 2004 A1
20040243147 Lipow Dec 2004 A1
20040255991 Truwit et al. Dec 2004 A1
20040260323 Truwit et al. Dec 2004 A1
20040267284 Parmer et al. Dec 2004 A1
20060192319 Solar Aug 2006 A1
20060195119 Mazzocchi et al. Aug 2006 A1
20070250078 Stuart Oct 2007 A1
20070299427 Yeung et al. Dec 2007 A1
20080004632 Sutherland et al. Jan 2008 A1
Foreign Referenced Citations (32)
Number Date Country
3108766 Sep 1982 DE
3937052 May 1990 DE
29612100 Sep 1996 DE
19726141 Jan 1999 DE
19826078 Aug 1999 DE
19808220 Sep 1999 DE
19820808 Nov 1999 DE
0386936 May 1990 EP
0427358 May 1991 EP
0609085 Aug 1994 EP
0724865 Aug 1996 EP
0832611 Apr 1998 EP
0904741 Mar 1999 EP
2237993 May 1991 GB
2329473 Mar 1999 GB
2346573 Aug 2000 GB
WO-8809151 Dec 1988 WO
WO-9522297 Aug 1995 WO
WO-9610368 Apr 1996 WO
WO-9633766 Oct 1996 WO
WO-9703609 Feb 1997 WO
WO-9721380 Jun 1997 WO
WO-9742870 Nov 1997 WO
WO-9817191 Apr 1998 WO
WO-9825535 Jun 1998 WO
WO-9851229 Nov 1998 WO
WO-0001316 Jan 2000 WO
WO-0018306 Apr 2000 WO
WO-0124709 Apr 2001 WO
WO-0149197 Jul 2001 WO
WO-0176498 Oct 2001 WO
WO-2004026161 Apr 2004 WO
Related Publications (1)
Number Date Country
20060122627 A1 Jun 2006 US