Cutting burr shank configuration

Information

  • Patent Grant
  • 10154849
  • Patent Number
    10,154,849
  • Date Filed
    Monday, November 20, 2017
    6 years ago
  • Date Issued
    Tuesday, December 18, 2018
    5 years ago
Abstract
A cutting burr that includes a pair of axially spaced diamond-shaped portions designed to be keyed into a spindle of a locking mechanism of a high speed surgical drilling instrument and adapted to fit into a single pawl thereof to lock said cutting burr in place so as to prevent axial movement thereof and provide concentric rotation of said cutting burr without any wobbling. The orientation of both portions may be identical with respect to a center plan and diamond shape in the portion at the proximal end of the shank of the cutting tool may be larger than the intermediately located diamond shape of the other portion. The apexes of the facets of the six-sided diamond shape may be disposed below the surface of the shank of the cutting burr.
Description
BACKGROUND

When performing surgery, surgeons may utilize a surgical drilling instrument for drilling, cutting or shaping bones that utilize a numerous different kinds and sizes of cutting burrs and attachments. During certain medical operations, the cutting burr needs to be changed. The change must be done timely and efficiently in view of the surgical demands. To this end, the portion of the cutting burr, namely, the proximate end of the shank typically lacks a configuration to accommodate this change of the cutting burr.


SUMMARY

Disclosed herein is a cutting burr that provides for a quick release that is fast and simple, and which facilitates the insertion of the cutting burr into a surgical drilling instrument. The cutting burr may have a pair of axially spaced six sided diamond-shaped portions, where one diamond-shaped portion may be formed at an edge of the proximal end of the cutting burr and provides a positive connection with a drive spindle that is connected to a drive motor of the surgical drilling instrument. A second, axially disposed diamond-shaped portion is adapted to mate with a locking pawl of the surgical drilling instrument. The locking pawl engages the axially disposed diamond-shaped portion to lock the cutting burr into the surgical drilling instrument with substantially no axial movement.


In some implementations, a detent pawl is provided to hold the cutting burr within the surgical instrument when it is in a loading position. The detent pawl may engage the axially disposed diamond-shaped portion at a side opposite the locking pawl.


In some implementations, the diamond-shaped portion at the proximal end is sized such that it can be used with older surgical drilling instruments that may not be provided with a complementary receiving recess for the diamond-shaped portion.


This summary is provided to introduce a selection of concepts in a simplified form that are further described below in the detailed description. This summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used to limit the scope of the claimed subject matter.





BRIEF DESCRIPTION OF THE DRAWINGS

The foregoing summary is better understood when read in conjunction with the appended drawings. For the purposes of illustration, there is shown in the drawings exemplary implementations; however, these implementations are not limited to the specific methods and instrumentalities disclosed. In the drawings:



FIG. 1 a fragmentary top plan view illustrating the axially spaced six-sided diamond-shaped cut out portion or portions formed on the proximate end of the shank of the cutting burr;



FIG. 2 is a perspective view of FIG. 1;



FIG. 3 is another prospective view of FIG. 1 slightly turned illustrating one of the facets in each of the six-sided diamond-shaped portions;



FIG. 4 is another perspective view of FIG. 2 slightly turned illustrating the top facets of the six-sided diamond-shaped portions;



FIG. 5 is an end view taken along lines 5-5 of FIG. 3 illustrating the shape of the six-sided diamond-shaped portion formed in the cutting burr shank;



FIG. 6 is a sectional view taken along lines 6-6 of FIG. 4 illustrating the shape of the six-sided diamond-shaped portion and illustrating the different sizes and the orientation of the six-sided diamond portion formed in the cutting burr shank;



FIGS. 7A and 7B illustrate a backwards compatibility of the cutting burr of FIGS. 1-6 within a receiving portion of conventional surgical drill;



FIGS. 8A and 8B illustrate a self-alignment aspect of the diamond-shaped portion at a proximal end of the cutting burr in relation to a keyed slot of a surgical drill;



FIG. 9 is an elevated view of the cutting burr with a spherical shaped cutting bit illustrating the diamond-shaped portions formed in the shank thereof;



FIG. 10 is another elevated view of an example cutting burr; and



FIG. 11 is another elevated view of an example cutting burr.





DETAILED DESCRIPTION

As used herein, the term “cutting burr” may be analogous with terms such as bit, drill bit, surgical drill bit and the like. The term “attachment” may have several meanings within the text of this application, but when generalized as a component of a surgical drilling instrument it refers to a portion of the instrument that attaches to the end of the motor/locking mechanism and receives the cutting burr. An “attachment” may be a controlled depth attachment, a minimally invasive attachment and the like. The surgical drilling instrument may include an integral motor (electric or pneumatic) and a locking mechanism and an attachment releasably connected to the locking mechanism.


High speed surgical drills are increasingly being used by surgeons when performing delicate bone dissection in areas such as the cervical and lumbar spine. Such surgical drills operate at very high R.P.M., and are able to rotationally drive multiple types of attachments and cutting burrs. As will be described below, a cutting burr of the present disclosure includes a shank that defines two substantially diamond-shaped portions. The substantially diamond-shaped portions provide for ease of insertion and removal of the cutting burr to and from a compatible surgical drill. The substantially diamond-shaped portions also enable the surgical drill to direct higher levels of torque to the cutting burr during surgical procedures.


Referring to FIGS. 1-6, the cutting burr is generally illustrated by reference numeral 10. The attachment portion 12 of the shank 16 of the cutting burr 10 is generally shown as reference numeral 12. A proximal end 14 of the shank 16 is formed with a pair of axially spaced six-sided diamond-shaped portions 18 and 20. As shown in FIGS. 4 and 5, an upper surface of portion 18 includes an apex 32 and a pair of facets 34 and 34a also fairing to side edges 34b and 34c. The side edges 34b and 34c may be curved to match the radius of curvature of an outer surface of the shank 16. As shown in FIGS. 4 and 6, an upper surface 24 of the portion 20 includes apex 26 and a pair of facets 30 and 30a fairing from the apex 26 to the side edges 30b and 30c. The side edges 30b and 30c may be curved to match the radius of curvature of an outer surface of the shank 16.


As shown in the FIGS. the diametrical dimensions of the vertices in both portions is less than the diameter of the main body of the shank. The shank 16 may include an annular groove 29. The lower surfaces of the pair of six-sided diamond portions 18 and 20 are a mirror image of the upper surface. While the diamond-shaped portions 18 and 20 are described as being “diamond-shaped,” it is noted that such terminology is intended to encompass any six-sided (hexagon) shape having a cross-section with flat edges that meet at a six vertices, curved edges that meet at six points, or some combination of both to form the six sides. The flat and curved edges, and combinations thereof, may be applied to other polygon shapes having different numbers of sides.


The diamond-shaped portion 18 at the outermost proximal end is designed to be inserted into a mating drive portion of a surgical drill, as will be described with reference to FIGS. 8A and 8B. The diamond-shaped portion 20 is provided as an abutment surface of a retractable locking pawl of the surgical drill to provide axial locking of the shank 16 within the surgical drill. The locking pawl may axially abut the adjacent abutment surface of the diamond-shaped portion 20 to axially lock the cutting burr 10 in place, thus providing substantially zero axial movement. For example, an engagement portion of locking pawl may be contoured having a generally V-shape with inner surfaces that fit against the facets 30 and 30a of the diamond-shaped portion 20.


As shown in FIG. 3, a back wall 42 may be formed perpendicular with relation to the central line A and faces a front wall 40 that is tapered from the facet (e.g., 30a) to the outside diameter of the shank 16. In accordance with some aspects, an engagement face of the locking pawl may abut against the back wall 42 to provide axial locking of the cutting burr 10 within the surgical drill. A tapered front wall 40 may facilitate the engagement of the locking pawl into the diamond-shaped portion 20.


The diamond-shaped portion 20 may also be engaged by a detent pawl of the surgical drill. For example, an engagement end of detent pawl may be contoured, e.g., having a generally hill shape to partially fit into the diamond-shaped portion 20 on an opposite side of the engagement end of the locking pawl. The detent pawl may be provided to apply a sufficient force on the diamond-shaped portion 20 to allow the cutting burr 10 to be moved in and out of the surgical drill, while reducing the likelihood that the cutting burr will inadvertently fall out of the surgical drill when in a loading position.


As shown by the a comparison of the sectional views of the diamond-shaped portions 18 and 20 (FIGS. 5 and 6), the two diamond shapes may be different in size, where the diamond shape in diamond-shaped portion 18 is larger than the diamond shape of the diamond-shaped portion 20. As illustrated, the vertices 32 and 36 fall below the outer diameter of the shank 16 and both diamond shapes are in axial alignment with each other and may be oriented in parallel relationship. In some implementations, the diamond-shaped portion 20 and the diamond-shaped portion 18 may be the same size, or the diamond-shaped portion 18 may be larger than the diamond-shaped portion 20. In the various configurations, the vertices 26 and 32 of diamond-shaped portions 20 and 18, respectively, are along a same line and in a same plane as the center line A. Exemplary dimensions of the six-sided diamond diamond-shaped portions 18 and 20 are listed in degrees)(°) and inches (″) and may be substantially as follows:


The angle of the facets of the six-sided diamond in the diamond-shaped portion 20−a=47°;


The width of the facets of the six-sided diamond in the diamond-shaped portion 20−b=0.046″;


The width of the facets of the six-sided diamond in the diamond-shaped portion 18−c=0.065″;


The width of the shank 16 at the space between diamond-shaped portions 18 and 20−d=0.029″;


The length of the diamond-shaped portion 20−e=0.068″; and


The length between the proximal end and the back wall of diamond-shaped portion 18f=0.149″. This dimension may contribute to the feature of substantially reducing the axial play of the cutting burr.


Thus, in accordance with the above, the diamond-shaped portions 18 and 20 provide sufficient cross-sectional dimensions to meet strength and reliability requirements needed for high-speed, large force surgical applications. Facets 34 and 34a of the diamond shape 18 provide positive engagement surfaces in both clockwise and counter-clockwise rotational directions and are sufficiently sized to withstand rotations forces in either direction without wobbling within the surgical drill. For example, some surgical drills provide bi-directional rotation, allowing the surgeon to selectively reverse rotation for various surgical techniques. In conventional designs, there may be rotational play between a bit end and a drive portion. However, the symmetrical diamond facets 34 and 34a of the diamond-shaped portion 18 provide substantial drive surfaces in either direction.


With reference to FIGS. 7A and 7B, the diamond-shaped portion 18 at the outermost proximal end of the cutting burr 10 is designed to have unidirectional backward compatibility with older drill instruments in accordance with aspects of the disclosure. For example, a conventional drill instrument may include an insert 106 that defines a generally rectangular slot 105 having rounded side walls. The rounded side walls may be shaped with a radius of curvature that parallels the outer wall of the insert 106. Conventional cutting burrs may include a complementary generally rectangular portion having rounded side walls that is received by the slot 105. The insert 106 may be driven by a motor, thus providing rotational force on the cutting burr.


As shown in FIG. 7A, in accordance with some implementations, facets 34a and 34d of the diamond-shaped portion 18 engage the inner walls of the slot 105. The dimension c of the diamond-shaped portion 18, noted above, may be sized such that the surface area of the facets 34a and 34d is substantial enough to withstand the torque provided by the motor of the conventional drill instrument. Thus, the cutting burr 10 of the present disclosure may be utilized by conventional drill instruments.


Referring now to FIGS. 8A and 8B, in some implementations, the cutting burr 10 of the present disclosure provides for a level of self-alignment within the insert 106. The insert 106 may be provided in a compatible surgical drill and define a diamond-shaped key slot 107, a pointed shaped inlet end 109, and opposing holes 110 that formed in the insert 106 for receiving dowel pin which may serve to locate the cutting burr 10 when inserted into the key slot 107. The inlet end 109 serves to facilitate the alignment and insertion of the cutting burr 10 as it is advanced toward and into the key slot 107 of the insert 106. For example, if the diamond-shaped portion 18 is not in alignment with the key slot 107 (FIG. 8A), a bottom surface of the diamond-shaped portion 18 will contact an apex 111 of the inlet end 109 causing the cutting burr 10 to rotate into alignment with the key slot 107. As such, the cooperative engagement of the diamond-shaped portion 18 and inlet end 109 facilitates the easy insertion of the cutting burr 10 into the compatible surgical drill. As such, the diamond portion 18 serves to provide a secure connection in the key slot 107.



FIGS. 9, 10, and 11 illustrate different example cutting bits 22 provided at a distal end on the shank 16. As described above, the shank 16 may include the attachment portion 12. The cutting bits 22 may be milled or cut-out portions. The cutting burr 10 in FIG. 9 exemplifies a fluted ball or drill bit; the cutting burr 10 in FIG. 10 exemplifies a diamond ball; and the cutting burr 10 in FIG. 11 exemplifies a twist drill. The cutting bits 22 are presented only as examples and are not intended to limit the scope of the present disclosure as numerous variations are possible.


Thus, as described above, a cutting burr is provided with an attachment end that has a configuration and dimensions that serve to facilitate the insertion of the cutting burr into the surgical cutting instrument. When locked in the running position there is a structure that prevents the cutting burr from having any axial movement. Also, there is a positive connection such that the cutting burr rotates concentrically without any wobbling motion.


While particular aspects of the present subject matter described herein have been shown and described, it will be apparent to those skilled in the art that, based on the teachings herein, changes and modifications may be made without departing from the subject matter described herein and its broader aspects and, therefore, the appended claims are to encompass within their scope all such changes and modifications as are within the true spirit and scope of the subject matter described herein.

Claims
  • 1. A cutting burr comprising: a shank with an engagement end at a proximal end of the shank to be received by a surgical instrument,a pair of axially spaced diamond-shaped portions for coupling the cutting burr to a drive mechanism of a surgical instrument, the pair of axially spaced diamond-shaped portions including: a first diamond-shaped portion formed at the proximal end of the shank;a second diamond-shaped portion spaced along the shank between the first diamond-shaped portion and a distal end of the shank;wherein a length of the first diamond-shaped portion in an axial direction along the shank is greater than a length of the second diamond-shaped portion in an axial direction along the shank,wherein the first diamond-shaped portion is adapted to be inserted into a surgical instrument and to accept rotational engagement forces, andwherein the second diamond-shaped portion is adapted to be engaged by a locking pawl to prevent axial movement of the cutting burr within a surgical instrument.
  • 2. The cutting burr of claim 1, wherein the first diamond-shaped portion has a first pair of facets that meet at a first apex and an opposing second pair of facets that meet a second apex, the first and second pair of facets coupled by opposing side edges, wherein the second-diamond shaped portion has a third pair of facets that meet at a third apex and an opposing fourth pair of facets that meet at a fourth apex, the third and fourth pair of facets coupled by opposing side edges,wherein each of the side edges of the first and second diamond-shaped portions defining a curved surface.
  • 3. The cutting burr of claim 2, wherein each of the side edges of the first and second diamond-shaped portions have a radius of curvature corresponding to a radius of curvature of the shank.
  • 4. The cutting burr of claim 3, wherein the second diamond-shaped portion includes: a tapered front wall extending from an outer perimeter of the shank toward the third pair of facets, the front wall located between the third pair of facets and the distal end of the shank, anda back wall extending from the third pair of facets to the outer perimeter of the shank, the back wall perpendicular to a longitudinal axis of the shank, the back wall located between the third pair of facets and the proximal end of the shank.
  • 5. The cutting burr of claim 4, wherein the length of the second diamond-shaped portion is measured between the tapered front wall and the back wall, the length of the second-diamond shaped portion is approximately 0.068 inches.
  • 6. The cutting burr of claim 3, wherein the first diamond-shaped portion includes a tapered front wall extending from an outer perimeter of the shank toward the first pair of facets, wherein the length of the first diamond-shaped portion is measured between the proximal end of the shank and the tapered front wall of the first diamond-shaped portion.
  • 7. The cutting burr of claim 6, wherein the length of the first diamond-shaped portion is approximately 0.149 inches.
  • 8. The cutting burr of claim 3, further comprising: an insert sized and configured to mate with the first diamond-shaped portion, the insert including a generally rectangular shaped slot defined by substantially flat opposing side walls extending between curved end walls,wherein a width of the slot measured between the opposing side walls corresponds to a width of the first diamond-shaped portion, such that the first diamond-shaped portion does not rotate within the insert.
  • 9. The cutting burr of claim 8, wherein a radius of curvature of the curved end walls of the slot corresponds to a radius of curvature defined by an outer surface of the insert.
  • 10. The cutting burr of claim 8, wherein a radius of curvature of the curved end walls of the slot corresponds to the radius of curvature defined by the side edges of the first diamond-shaped portion.
  • 11. The cutting burr of claim 8, wherein the insert further includes: a diamond-shaped key slot sized and configured to receive the first diamond-shaped portion, anda pointed-shaped inlet end that facilitates an alignment and insertion of the cutting burr as it is advanced toward and into the keyed slot,wherein, during coupling, contact between the proximal end of the shank and the pointed-shaped inlet end causes the shank to rotate thereby bringing the first diamond-shaped portion into alignment with the keyed slot.
  • 12. The cutting burr of claim 11, wherein the insert includes a hole extending through at least one of the sidewalls of the insert, where a dowel pin received within the hole locates the cutting burr and first diamond-shaped portion within the keyed slot.
  • 13. The cutting burr of claim 2, wherein the side edges of the first diamond shaped-portion define an arc length around a perimeter of the shank greater than an arc length of the side edges of the second diamond-shaped portion.
  • 14. The cutting burr of claim 2, wherein the first diamond-shaped portion extends to the proximal end of the shank.
  • 15. The cutting burr of claim 2, wherein a height of the first diamond-shaped portion measured between the first and second apexes and perpendicular to a longitudinal axis of the shank is less than a diameter of the shank, wherein a height of the second diamond-shaped portion measured between the third and fourth apexes and perpendicular to the longitudinal axis of the shank is less than the diameter of the shank.
  • 16. The cutting burr of claim 15, wherein the height of the first diamond-shaped portion is greater than a height of the second diamond-shaped portion.
  • 17. The cutting burr of claim 2, wherein each of the facets defines a substantially flat surface, wherein a width of the first-diamond shaped portion is greater than a width of a second diamond-shaped portion.
  • 18. The cutting burr of claim 17, wherein one facet of the first pair of facets is parallel with a diagonally opposite facet of the second pair of facets, the width of the first diamond-shaped portion measured between the one facet and the diagonally opposite facet, wherein the width of the first diamond-shaped portion is approximately 0.065 inches.
  • 19. The cutting burr of claim 1, wherein a length of the shank extending between the first and second diamond-shaped portions is approximately 0.029 inches.
  • 20. The cutting burr of claim 1, further comprising: an annular groove extending around a perimeter of the shank located axially between the second diamond-shaped portion and the distal end of the shank,wherein the groove defines a first tapered wall adjacent the distal end of the shank, a second tapered wall adjacent the proximal end of the shank, and a cylindrically-shaped portion extending therebetween,wherein a diameter of the cylindrically-shaped portion of the groove corresponds to a height of the second diamond-shaped portion measured between opposing apexes of the second diamond-shaped portion.
CROSS-REFERENCE TO RELATED APPLICATIONS

The subject matter described in this application is related to subject matter disclosed in the following commonly assigned applications: U.S. patent application Ser. No. 15/225,043 (now U.S. Pat. No. 9,820,756) filed Aug. 1, 2016, which is a continuation of U.S. patent application Ser. No. 14/223,011 (now U.S. Pat. No. 9,402,638) filed Mar. 24, 2014, which is a continuation of U.S. patent application Ser. No. 13/082,016 (now U.S. Pat. No. 8,690,876), filed on Apr. 7, 2011, entitled “CUTTING BURR SHANK CONFIGURATION,” which are incorporated herein by reference in their entirety.

US Referenced Citations (157)
Number Name Date Kind
170604 Williams Nov 1875 A
170694 Williams Dec 1875 A
RE8360 Williams Aug 1878 E
233707 Starr Oct 1880 A
233709 Starr Oct 1880 A
269627 Bonner Dec 1882 A
283745 Bartlett Aug 1883 A
287683 Johnston et al. Oct 1883 A
302870 Starr Jul 1884 A
327558 Kuder Oct 1885 A
359798 Mann Mar 1887 A
415983 Starr Nov 1889 A
418108 Browne Dec 1889 A
474011 Harrison May 1892 A
553226 Brockett Jan 1896 A
748398 Middleton Dec 1903 A
988154 Thiemer Mar 1911 A
988903 Smith Apr 1911 A
1135057 Schultis Apr 1915 A
1188533 Cobey Jun 1916 A
1433590 Ziegler Oct 1922 A
1503962 Milliken Aug 1924 A
1578397 Cone Mar 1926 A
1717663 Checkley Jun 1929 A
1726012 Bilz Aug 1929 A
1862337 Emrick Jun 1932 A
1947957 Tiliman Feb 1934 A
2012280 Johansen Aug 1935 A
2101347 Robinette Dec 1937 A
2367863 Grey Jan 1945 A
2390950 Lanfranconi Dec 1945 A
2405018 Crowley Jul 1946 A
2448817 McArthur Sep 1948 A
2473380 Ljunggren et al. Jun 1949 A
2494166 Drissner Jan 1950 A
2543290 Johansson Feb 1951 A
2614781 Engel Oct 1952 A
2686682 Csaki Aug 1954 A
2740974 Lewis Apr 1956 A
2769643 Denzler Nov 1956 A
2787010 Uphoff Apr 1957 A
2874985 March Feb 1959 A
2939643 Barsam, Jr. Jun 1960 A
2955831 Zandberg et al. Oct 1960 A
3046029 Weber et al. Jul 1962 A
3054308 Larry Sep 1962 A
3084898 Miller Apr 1963 A
3136347 Linquist Jun 1964 A
RE25804 Misuraca Jun 1965 E
3252667 Miller May 1966 A
3466971 Meyer Sep 1969 A
3533638 Sedgwick Oct 1970 A
3574374 Keller et al. Apr 1971 A
3589826 Fenn Jun 1971 A
3596917 Meyer Aug 1971 A
3599996 Holt Aug 1971 A
4032163 Holt Jun 1977 A
4055185 Waldron Oct 1977 A
4073497 Flagg Feb 1978 A
4114276 Malata Sep 1978 A
4115024 Süssmuth Sep 1978 A
4131165 Wanner Dec 1978 A
4298074 Mattchen Nov 1981 A
4303252 Snider Dec 1981 A
4325661 Tickins Apr 1982 A
4374481 Brodie Feb 1983 A
4565472 Brennsteiner et al. Jan 1986 A
4632195 Emmerich Dec 1986 A
4710075 Davison Dec 1987 A
4984667 Tjaden Jan 1991 A
5037251 Roth Aug 1991 A
5074025 Willard, III Dec 1991 A
5152642 Pitts et al. Oct 1992 A
5218890 Christ, Jr. Jun 1993 A
5271697 Johnson et al. Dec 1993 A
5421682 Obermeier et al. Jun 1995 A
5433562 Phillips et al. Jul 1995 A
5466101 Meyen Nov 1995 A
5542846 Quinn et al. Aug 1996 A
5601560 del Rio Feb 1997 A
5630818 del Rio et al. May 1997 A
5658305 Baker Aug 1997 A
5664792 Tseng Sep 1997 A
5735535 McCombs et al. Apr 1998 A
5741263 Umber et al. Apr 1998 A
5820136 Han et al. Oct 1998 A
5833246 Trott Nov 1998 A
5833704 McCombs et al. Nov 1998 A
5888200 Walen Mar 1999 A
5904687 del Rio et al. May 1999 A
5921563 Huggins et al. Jul 1999 A
5941891 Walen Aug 1999 A
5957634 Carpinetti Sep 1999 A
6033408 Gage et al. Mar 2000 A
6045564 Walen Apr 2000 A
6129363 Mack Oct 2000 A
6135461 Below et al. Oct 2000 A
RE37358 del Rio et al. Sep 2001 E
6302408 Zierpka Oct 2001 B1
6341926 Liu Jan 2002 B1
6409181 Hsueh Jun 2002 B1
6533235 Dymerski et al. Mar 2003 B1
6533291 Huggins et al. Mar 2003 B2
6572311 Vasudeva Jun 2003 B2
6607533 del Rio et al. Aug 2003 B2
6623220 Nuss et al. Sep 2003 B2
6705807 Rudolph et al. Mar 2004 B1
6725749 Liou Apr 2004 B1
6733218 del Rio et al. May 2004 B2
6769846 Campbell, Jr. et al. Aug 2004 B2
6780189 Tidwell et al. Aug 2004 B2
7011661 Riedel et al. Mar 2006 B2
7028589 Cheng Apr 2006 B1
7066940 Riedel et al. Jun 2006 B2
7114728 Chen Oct 2006 B2
7140817 Phillips et al. Nov 2006 B1
7207400 Bise et al. Apr 2007 B2
7258349 Frauhammer et al. Aug 2007 B2
7316529 Phillips et al. Jan 2008 B2
7367762 Takase et al. May 2008 B2
7465309 Walen Dec 2008 B2
7712746 Manschitz et al. May 2010 B2
7845428 Sakamaki et al. Dec 2010 B2
8273097 Malla et al. Sep 2012 B2
8403338 Hangleiter Mar 2013 B2
8690876 del Rio et al. Aug 2014 B2
8801713 del Rio et al. Aug 2014 B2
9113917 del Rio et al. Aug 2015 B2
9381023 del Rio et al. Jul 2016 B2
9402638 del Rio et al. Aug 2016 B2
20010006280 Hangleiter Jul 2001 A1
20010042964 Bedi et al. Nov 2001 A1
20020009341 Vasudeva Jan 2002 A1
20020058958 Walen May 2002 A1
20020151902 Riedel et al. Oct 2002 A1
20020159850 Ravid Oct 2002 A1
20020165549 Owusu-Akyaw et al. Nov 2002 A1
20030060829 del Rio et al. Mar 2003 A1
20030060841 del Rio et al. Mar 2003 A1
20030130663 Walen Jul 2003 A1
20030163134 Riedel et al. Aug 2003 A1
20050096661 Farrow et al. May 2005 A1
20060049587 Cornwell Mar 2006 A1
20060053974 Blust et al. Mar 2006 A1
20080119863 Mellier May 2008 A1
20080208195 Shores et al. Aug 2008 A1
20080208229 Tidwell et al. Aug 2008 A1
20090146421 Engdahl Jun 2009 A1
20090273146 Dezheng et al. Nov 2009 A1
20090326540 Estes Dec 2009 A1
20100063524 McCombs Mar 2010 A1
20100219594 Nash Sep 2010 A1
20120003057 Leyba Jan 2012 A1
20120259337 del Rio et al. Oct 2012 A1
20120275875 Gischus Nov 2012 A1
20130130663 Jung et al. May 2013 A1
20150032111 del Rio et al. Jan 2015 A1
Foreign Referenced Citations (16)
Number Date Country
2631675 Mar 2003 CN
1406700 Apr 2003 CN
1672641 Sep 2005 CN
2774405 Apr 2006 CN
2882550 Mar 2007 CN
101365390 Feb 2009 CN
02009507 Jan 1990 JP
03019703 Jan 1991 JP
07214406 Aug 1995 JP
2000052114 Feb 2000 JP
2002137111 May 2002 JP
2011136530 Jul 2011 JP
1996010962 Apr 1996 WO
2004082490 Sep 2004 WO
2008020828 Feb 2008 WO
2012138338 Oct 2012 WO
Non-Patent Literature Citations (13)
Entry
Office Action, dated Dec. 16, 2014, received in connection with JP Patent Application No. 2014503639. (English Translation).
International Preliminary Report on Patentability and Written Opinion, dated Oct. 8, 2013, received in connection with corresponding International Patent Application No. PCT/US2011/031505.
International Search Report, dated Feb. 28, 2012, received in connection with corresponding International Patent Application No. PCT/US2011/031505.
International Preliminary Report on Patentability and Written Opinion, dated Oct. 8, 2013, received in connection with related International Patent Application No. PCT/US2011/031512.
International Search Report, dated Jan. 4, 2012, received in connection with related International Patent Application No. PCT/US2011/031512.
U.S. Appl. No. 15/225,043, filed Aug. 1, 2016 (U.S. Pat. No. 9,820,756, issued Nov. 21, 2017).
U.S. Appl. No. 13/082,016, filed Apr. 7, 2011 (U.S. Pat. No. 8,690,876, issued Apr. 8, 2014).
U.S. Appl. No. 14/223,011, filed Mar. 24, 2014 (U.S. Pat. No. 9,402,638, issued Aug. 2, 2016).
Co-pending U.S. Appl. No. 15/626,407, filed Jun. 19, 2017.
Related U.S. Appl. No. 15/171,232, filed Jun. 2, 2016 (U.S. Pat. No. 9,681,879, issued Jun. 20, 2017).
Related U.S. Appl. No. 14/833,401, filed Aug. 24, 2015 (U.S. Pat. No. 9,381,023, issued Jul. 5, 2016).
Related U.S. Appl. No. 14/456,383, filed Aug. 11, 2014 (U.S. Pat. No. 9,113,917, issued Aug. 25, 2015).
Related U.S. Appl. No. 13/082,029, filed Apr. 7, 2011 (U.S. Pat. No. 8,801,713, issued Aug. 12, 2014).
Related Publications (1)
Number Date Country
20180132865 A1 May 2018 US
Continuations (3)
Number Date Country
Parent 15225043 Aug 2016 US
Child 15818314 US
Parent 14223011 Mar 2014 US
Child 15225043 US
Parent 13082016 Apr 2011 US
Child 14223011 US