LED decorative lighting assembly having two parallel conductors and an insulating portion encapsulating portions of the conductors and a space there between

Information

  • Patent Grant
  • 10907781
  • Patent Number
    10,907,781
  • Date Filed
    Monday, April 13, 2020
    5 years ago
  • Date Issued
    Tuesday, February 2, 2021
    4 years ago
  • Inventors
  • Original Assignees
    • Blooming International Limited
  • Examiners
    • May; Robert J
    Agents
    • Christensen, Fonder, Dardi & Herbert PLLC
Abstract
A light string defining a lengthwise, central axis, comprising a wire set that includes a first conductor in parallel with a second conductor; and an insulation layer, wherein the insulation layer encapsulates a portion of the first conductor, a portion of the second conductor, and a space therebetween. The insulation layer defines a plurality of gaps such that portions of the first and second conductors are uninsulated. The light string also includes first and second pluralities of LED assemblies in electrical connection with the wire set. Each of the first plurality of LED assemblies is configured to emit light of a first color in a first direction; and each of the second plurality of LED assemblies is configured to emit light of a second color in a second direction, the second direction being opposite to the first direction.
Description
FIELD OF THE DISCLOSURE

The present disclosure relates to decorative lighting assemblies. More specifically, the present disclosure relates to a light string including a wire set having a plurality of LED light assemblies disposed along its length.


BACKGROUND

Light strings commonly include a pair of twisted wires with sockets disposed along the length of the light string. Bulbs, generally incandescent bulbs, are inserted into the sockets. The light strings may then be wrapped around objects or suspended to create a decorative lighting effect. For example, some light strings may be wrapped around a tree or plant to create a decorative lighting effect in an outdoor setting. However, it can be time consuming to arrange the bulbs and sockets in a uniform and pleasing manner and twisted pair wires are prone to kinks and tangles. Further, in traditional light strings, the wire is bulky and easily visible. A light string that is not prone to tangle, that minimizes wire and light size, and that has some uniformity to the lights would be well received by the industry.


SUMMARY

A light string in accordance with embodiments has a wire and a plurality of LED assemblies. The wire includes a first conductor in parallel with a second conductor such that an interior edge of the first conductor and an interior edge of the second conductor defines a space there between. An insulation layer encapsulates the first conductor, the second conductor, and the space there between. The insulation layer has a plurality of gaps such that portions of the first and second conductors are uninsulated.


Each of the plurality of LED assemblies has a base or mount having front, back, left, right, top, and bottom sides. An LED is electrically mounted to the front side of the base and a lens cover is affixed to the front side of the base, covering the LED. A first conductive terminal of the bottom of the base is in electrical contact with the first conductor of the wire, and a second conductive terminal of the bottom of the base is in electrical contact with the second conductor of the wire. A first solder portion encapsulates a portion of the left side of the base, the first conductive terminal, and a portion of the first conductor, and a second solder portion encapsulates a portion of the right side of the base, the right conductive terminal, and a portion of the second conductor. In embodiments, first and second solder portions may also contact, partially cover, or partially encapsulate portions of the front side or surface of the base.


In embodiments, the wire may include a second plurality of LED assemblies. Each of the second plurality of LED assemblies may include a base or mount where a first conductive terminal of the bottom of the mount is in electrical contact with the second conductor of the wire, and a second conductive terminal of the bottom of the mount is in electrical contact with the first conductor of the wire.


In embodiments, the wire may be attached to a power plug at one end. In embodiments, the wire may also be attached to a receptacle configured to receive a power plug, at another end. In embodiments, the wire may include a plurality of protective layers. Each of the protective layers can encapsulate a gap and an LED assembly.


In embodiments, the base can extend radially outward a distance greater than the radial distance of an exterior edge of the first conductor. In other embodiments, the base may not extend radially outward a distance greater than the radial distance of the exterior edge of the first conductor, but rather, may extend so as to be at or even with the exterior edge, or may extend such that the base does not reach the exterior edge. The exterior edge of the first conductor is opposite the interior edge. In embodiments, the base extends radially outward a distance greater than the radial distance of an exterior edge of the second conductor. The exterior edge of the second conductor is opposite the interior edge. In embodiments, the lens cover extends radially outward a distance greater than the radial distance of the interior edge of the first conductor. In embodiments, the lens cover extends radially outward a distance greater than the radial distance of the interior edge of the second conductor.


In embodiments, each of the plurality of LED assemblies may include a plurality of LEDs. In embodiments, each of the plurality of the LED assemblies is configured to produce a single color of light. In embodiments, each of the plurality of the LED assembly is configured to produce multiple colors of light.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a top view of a wire according to an embodiment of the disclosure.



FIG. 2 is a cross sectional view of a wire according to an embodiment of the disclosure.



FIG. 3 is a top view of a wire with a plurality of LED assemblies according to an embodiment of the disclosure.



FIG. 4 is a cross sectional view of a wire and LED assembly according to an embodiment of the disclosure.



FIG. 5 is a bottom view of a wire with a plurality of LED assemblies according to an embodiment of the disclosure.



FIG. 6 is a top view of a wire according to embodiments of the disclosure.



FIG. 7 is a top view of a plurality of wires and a power plug according to embodiments of the disclosure.





DETAILED DESCRIPTION

Referring to FIG. 1, a top view of a wire 10 is illustrated having a first conductor 13, a second conductor 15, an insulation layer 11, and central axis 17. Referring also to FIGS. 2-5, first conductor 13 and second conductor 15 are parallel to central axis 17 and define a space between the first and second conductors. Although wire 10 is described as a “wire”, it will be understood that wire 10 may be considered a wire system, a wire assembly, a wire set, or even a pair of wires.


Insulation layer 11, which in an embodiment may comprise PVC material, encapsulates first conductor 13, second conductor 15, and the space therebetween in a nonconductive material. As depicted, a substantially flat joining or bridging portion 12 of insulation layer 11 joins insulated conductors 13 and 15, such that the joining portion 12 of insulation layer 11 supports conductors 13 and 15 and creates a separating structure between the conductors. As depicted, the joining portion 12 of insulating layer 11 may be substantially flat and rectangular in cross section, as depicted specifically in FIG. 2. The joining portion of insulation layer 11 causes a predetermined spacing or length L between insulated conductors 13 and 15. The length L may vary depending on a desired separation or spacing of conductors 13 and 15, which may be determined in part by a size of the LED assemblies. 101, as described further below. Length L, in an embodiment is greater than a diameter of conductor 13 or conductor 15. In another embodiment, length L is less than a diameter of conductor 13 or of conductor 15. In embodiments, length L may vary from a length that is approximately one conductor diameter to a length that five conductor diameters. In an embodiment, and as depicted, length L is approximately three conductor diameters.


Wire 10 defines a plurality of gaps 19 where first conductor 13 second conductor 15 are not encapsulated by insulation layer 11. Gaps 19 may facilitate electrical connections with first conductor 13 and second conductor 15.


In an embodiment, first conductor 13 and second conductor 15 may each comprise single-strand conductors (depicted), which may primarily comprise copper. In alternative embodiments, first conductor 13 and second conductor 15 may each comprise multi-strand conductors, such as a 3-strand conductor, 4-strand conductor, and so on. The number of conductive strands for each conductor may be in a range of one conductive strand to eight conductive strands, or even more, depending in some cases on a desired wire size and lighting application. In an embodiment, each conductor 13 and 15 may comprise a relatively small “size” wire have a relatively small cross-sectional area, similar to, or the same as, a 27 AWG wire or conductor, or 0.102 mm2. In some such small-size embodiments, each conductor 13 and 15 may be equivalent to 25 AWG to 28 AWG, depending on the lighting application and resultant expected current flow through the conductors. In other embodiments, conductors 13 and 15 may be larger, similar to a traditional 22 AWG wire size, or in a range of 22 AWG to 25 AWG.


Referring to FIG. 3, a top view of a wire 10 is illustrated having a plurality of LED assemblies 100 within a gap 19. An LED assembly 101 includes a mount or base 101, a LED 103 capable of emitting light, and a lens cover 105. As shown in FIGS. 2 and 3, mount 101 has a front side 111 opposite a back side 113, a top side 115 opposite a bottom side 117, and a left side 119 opposite a right side 121. Bottom side 117 includes a first electrical contact and a second electrical contact. First and second electrical contacts are configured to allow an electrical connection between conductors 13 and 15 of wire 10 and LED 103, such that each LED assembly 101 and each LED 103 is electrically connected to one another in parallel.


LED 103 is affixed to front side 111 of mount 101. In embodiments, LED 103 may emit monochromatic light. In embodiments, LED 103 may be adapted to emit a plurality of colored lights, such as red, green and blue (RGB). Lens cover 105 is affixed to front side 111 of mount 101. In embodiments, lens cover 105 fully encapsulates LED 103. In embodiments, lens cover 105 is rectangular. In embodiments, lens cover 105 is partially spherical. In embodiments, lens cover 105 is opaque. In embodiments, lens cover 105 is translucent. In embodiments, lens cover 105 is transparent. In embodiments, lens cover 105 is tinted.


LED 103 in an embodiment may be a light-emitting diode mounted to a substrate, thereby forming an LED “chip”, and may include other structure, such as connecting leads, terminals and so on, as would be understood by one of ordinary skill.


Mount 101 is positioned across first conductor 13 and second conductor 15 such that front side 111 is generally orthogonal to central axis 17 of wire 10. Mount 101 is further placed such that bottom side 117 is in physical and electrical contact with wire 10. In embodiments, the first electrical contact of LED assembly 100 may be placed in connection with first conductor 13 and the second electrical contact of LED assembly 100 may be placed in connection with second electrical conductor 15. In embodiments, the first electrical contact may be placed in connection with the second electrical conductor 15 and the second electrical contact may be placed in connection with the first electrical conductor 13. In embodiments, two mounts 101 may be placed in gap 19 where back side 113 of first mount 101 of a first LED assembly 101a is adjacent to back side 113 of second mount 101 of a second LED assembly 101b, such that first LED assembly 101a is back-to-back with second LED assembly 101b, as depicted. In such an embodiment, first LED assembly 101a faces in a first direction D1 which is parallel to central axis 17, and emits light in the first direction D1; second LED assembly 101b faces in a second direction D2 which is parallel to central axis 17, and emits light in the second direction D2, the second direction D2 being opposite to the first direction D1. Light emitted in first direction D1 may be partially reflected or refracted on portions of insulation layer 11a, including portion 12a; light emitted in second direction D2 may be partially reflected or refracted on portions of insulation layer 11b, including portion 12b. Such reflection and/or refraction may create a unique lighting effect as compared to directing light in an upward or downward direction, such light not reflecting or refracting off of insulation layer 11.


In an embodiment, a spacing between back sides 113 of adjacent LED assemblies 101 may be approximately a thickness of mount 111. In other embodiments a spacing between assemblies 101 may be greater than the thickness of a mount 111. In an alternate embodiment, assemblies 101 may be located such that a portion of one LED assembly 101 physically contacts a portion of another LED assembly 101.


One skilled in the art will recognize that a variety of lighting effects may be achieved by varying the polarity to a plurality of LED assemblies 100 disposed along an axial length of wire 10. For example, in the embodiment depicted in FIG. 3, LED assembly 101a is connected with an electrical polarity that is opposite to LED assembly 101b. In such an embodiment, for a first voltage polarity between conductors 13 and 15, e.g., 13 is positive, 15 is negative, only LED assembly 101a will emit light due to a positive bias; for a second voltage polarity between conductors 13 and 15, e.g., conductor 15 is positive and conductor 13 is negative, only assembly 101b will emit light. In such an embodiment, a voltage polarity between conductors 13 and 15 may be switched to select which of LED assemblies 101 will be turned on and emit light. This may be particularly useful if adjacent LED assemblies 101 emit light of different colors, e.g., LED assembly 101a is red, and LED assembly 101b is green, such that switching the polarity switches the color of the light emitted. In such an embodiment, the light string might also include an optional controller or control device, with a processor and power electronics, to control voltage switching.


Mount 101 may be joined to wire 10 through the use of solder 107. Molten solder 107 applied near the intersection of the top side 115 and left side 119 of mount 101 will flow down left side 119 towards wire 10. Molten solder 107 applied near the intersection of the top side 115 and right side 121 of mount 101 will flow down right side 121 towards wire 10. Upon reaching first and second conductors 13, 19, molten solder 107 will flow around each of the two conductors 15, 19. In embodiments, solder 107 may substantially cover left side 119 of mount 101. In embodiments, solder 107 may substantially cover right side 121 of mount. As illustrated in FIG. 5, in embodiments, solder 107 may cover portions of first and second conductors 13, 19.


In embodiments, solder 107 may also flow over, or otherwise contact a portion of front side 111. In one such embodiment, the first and second electrical contacts may be positioned partially or fully on front side 111. Alternatively, solder 107 and/or the electrical contacts may be positioned partially or fully on back side 113.


As depicted in FIG. 6, wire 10 may include power plug 201 at a first end and receptacle 203 at a second end. In embodiments, power plug 201 may be configured to be directly attached to a power source. In embodiments, two or more wires 10 may be joined such that plug 201 of a second wire 10 is inserted into receptacle 203 of a first wire 10. Extending wire 10 in this manner allows a user more flexibility in achieving desired lighting effects.


Gaps 19 and LED assemblies 100 may be encapsulated in a protective layer 211. In embodiments, protective layer 211 may be translucent. In embodiments, protective layer 211 may be a non-conductive material. In embodiments, protective layer 211 is flexible. In an embodiment, protective layer 211 may comprise an ultraviolet (UV) adhesive that hardens or cures when exposed to UV light.


Referring to FIG. 7, wire 10 may include a coaxial terminal or contact set 205. In embodiments, power plug 201 may be configured to receive coaxial terminal or contact set 205. In embodiments, coaxial terminal or contact set 205 makes an electric connection with power plug 201, such that when power plug 201 is connected to a power source, power is transmitted to wire 10. In embodiments, receptacle 203 may be configured to receive coaxial terminal or contact set 205. For example, receptacle 203 of wire 10.1 may receive coaxial terminal or contact set of wire 10.2, such that power received by wire 10.1 may be transmitted to wire 10.2.


The embodiments above are intended to be illustrative and not limiting. Additional embodiments are within the claims. In addition, although aspects of the present invention have been described with reference to particular embodiments, those skilled in the art will recognize that changes can be made in form and detail without departing from the spirit and scope of the invention, as defined by the claims.


Persons of ordinary skill in the relevant arts will recognize that the invention may comprise fewer features than illustrated in any individual embodiment described above. The embodiments described herein are not meant to be an exhaustive presentation of the ways in which the various features of the invention may be combined. Accordingly, the embodiments are not mutually exclusive combinations of features; rather, the invention may comprise a combination of different individual features selected from different individual embodiments, as understood by persons of ordinary skill in the art.

Claims
  • 1. A light string comprising: a wire set comprising: a first conductor in parallel with a second conductor such that an interior edge of the first conductor and an interior edge of the second conductor defines a space there between; andan insulation layer, wherein the insulation layer encapsulates a portion of the first conductor, a portion of the second conductor, and a space therebetween, the insulation layer defining a plurality of gaps such that portions of the first and second conductors are uninsulated; anda first plurality of LED assemblies, each of the first plurality of LED assemblies comprising: a base having front, back, left, right, top, and bottom sides;an LED electrically mounted to the front side of the base; anda lens cover affixed to the front side of the base and covering the LED,wherein a first conductive terminal of the bottom of the base is in electrical contact with the first conductor of the wire, and a second conductive terminal of the bottom of the base is in electrical contact with the second conductor of the wire, anda first solder portion encapsulates a portion of the left side of the base, the first conductive terminal, and a portion of the first conductor, anda second solder portion encapsulates a portion of the right side of the base, the right conductive terminal, and a portion of the second conductor.
  • 2. The light string of claim 1, wherein the wire comprises a second plurality of LED assemblies wherein a first conductive terminal of the bottom of the base is in electrical contact with the second conductor of the wire, and a second conductive terminal of the bottom of the base is in electrical contact with the first conductor of the wire.
  • 3. The light string of claim 2, wherein each of the first plurality of LED assemblies are positioned to direct light having a first color in a first direction, and each of the second plurality of LED assemblies are positioned to direct light having a second color in a second direction, the first color being different from the second color and the first direction being different from the second direction.
  • 4. The light string of claim 3, wherein the first direction is opposite the second direction.
  • 5. The light string of claim 3, wherein the first direction and the second direction are parallel to a lengthwise, central axis of the light string.
  • 6. A method of making the light string of claim 5, comprising soldering the first plurality of LED assemblies to the wire set such that LEDs of the first plurality of LED assemblies faces the first direction and soldering the second plurality of LED assemblies to the wire set such that the second plurality of LED assemblies faces the second direction.
  • 7. The light string of claim 1, wherein the wire set is configured to attached to a power plug.
  • 8. The light string of claim 1, wherein the wire comprises a receptacle configured to receive a power plug.
  • 9. The light string of claim 1, wherein the wire comprises a plurality of protective layers, wherein each of the protective layers encapsulates a gap and a LED assembly.
  • 10. The light string of claim 1, wherein the base extends radially outward a distance greater than the radial distance of an exterior edge of the first conductor, the exterior edge being opposite the interior edge.
  • 11. The light string of claim 1, wherein the base extends radially outward a distance greater than the radial distance of an exterior edge of the second conductor, the exterior edge being opposite the interior edge.
  • 12. The light string of claim 1, wherein the lens cover extends radially outward a distance greater than the radial distance of the interior edge of the first conductor.
  • 13. The light string of claim 1, wherein the lens cover extends radially outward a distance greater than the radial distance of the interior edge of the second conductor.
  • 14. The light string of claim 1, wherein each of the plurality of LED assemblies comprises a plurality of LEDs.
  • 15. The light string of claim 1, wherein each of the plurality of the LED assemblies is configured to produce a single color of light.
  • 16. The light string of claim 1, wherein each of the plurality of the LED assembly is configured to produce multiple colors of light.
  • 17. A light string defining a lengthwise, central axis, comprising: a wire set comprising: a first conductor in parallel with a second conductor; andan insulation layer, wherein the insulation layer encapsulates a portion of the first conductor, a portion of the second conductor, and a space therebetween, the insulation layer defining a plurality of gaps such that portions of the first and second conductors are uninsulated; anda first plurality of LED assemblies in electrical connection with the wire set, each of the first plurality of LED assemblies comprising: a base portion;an LED connected to the base portion and configured to emit light of a first color in a first direction; anda second plurality of LED assemblies in electrical connection with the wire set, each of the second plurality of LED assemblies comprising: a base portion;an LED connected to the base portion and configured to emit light of a second color in a second direction, the second direction being opposite to the first direction.
  • 18. The light string of claim 17, wherein the first direction and the second direction are both parallel to the lengthwise, central axis of the light string.
  • 19. The light string of claim 17, wherein each of the first plurality of LED assemblies is electrically connected to the wire set in a first electrical polarity configuration, and each of the second plurality of LED assemblies is electrically connected to the wire set in a second electrical polarity configuration, the first electrical polarity configuration being opposite to the first electrical polarity configuration.
  • 20. The light string of claim 19, wherein the base portions of the first and second plurality of LED assemblies are mounted on a top portion of first and second conductors of the wire set, the top portion facing in a direction orthogonal to the lengthwise, central axis.
Priority Claims (1)
Number Date Country Kind
2018 1 0195592 Mar 2018 CN national
CROSS-REFERENCE TO RELATED APPLICATIONS

This application claims the benefit of U.S. Provisional Patent Application No. 62/833,530, filed Apr. 12, 2019, this application is a Continuation-in-Part of U.S. application Ser. No. 16/298,935, filed Mar. 11, 2019 which claims priority to 62/682,683, filed Jun. 8, 2019, all of which are incorporated herein in their entireties.

US Referenced Citations (197)
Number Name Date Kind
4379609 Hardesty Apr 1983 A
4438998 Myers Mar 1984 A
4460234 Bogese Jul 1984 A
4593966 Meyer Jun 1986 A
4675575 Smith et al. Jun 1987 A
4761720 Solow Aug 1988 A
4812956 Chen Mar 1989 A
4895532 Bogese, II Jan 1990 A
4908743 Miller Mar 1990 A
5106306 Ditzig Apr 1992 A
5109324 Ahroni Apr 1992 A
5150964 Tsui Sep 1992 A
5245519 Openiano Sep 1993 A
5454737 Saba Oct 1995 A
5645342 Chang Jul 1997 A
5697815 Drewnicki Dec 1997 A
5747940 Openiano May 1998 A
5834901 Shen Nov 1998 A
5975717 Rahman Nov 1999 A
6042418 Cummings Mar 2000 A
6086221 Wu Jul 2000 A
6086222 Juba Jul 2000 A
6091204 Chen Jul 2000 A
6113432 Liao Sep 2000 A
6146207 Mulot Nov 2000 A
6367952 Gibboney, Jr. Apr 2002 B1
6582094 Liu Jun 2003 B2
6592238 Cleaver et al. Jul 2003 B2
6604841 Liu Aug 2003 B2
6609814 Ahroni Aug 2003 B2
6777891 Lys et al. Aug 2004 B2
6914194 Fan Jul 2005 B2
7048550 Hyland et al. May 2006 B2
7062442 Sugar Jun 2006 B2
7088904 Ryan, Jr. Aug 2006 B2
7131748 Kazar et al. Nov 2006 B2
7160140 Mrakovich et al. Jan 2007 B1
7186005 Hulse Mar 2007 B2
7235815 Wang Jun 2007 B2
7250730 Allen Jul 2007 B1
7253566 Lys et al. Aug 2007 B2
7338327 Sticker et al. Mar 2008 B2
7481555 Huang et al. Jan 2009 B2
7494244 Van Diep Feb 2009 B1
7554266 Chen Jun 2009 B1
7569996 Holmes Aug 2009 B2
7784961 Rawlings Aug 2010 B1
7905753 Siev et al. Mar 2011 B2
7926978 Tsai Apr 2011 B2
7976191 Gibboney Jul 2011 B2
8076872 Sauerlander Dec 2011 B2
8203275 Ruxton Jun 2012 B2
8371716 Shen Feb 2013 B2
8397381 Tsai Mar 2013 B2
8454186 Chen Jun 2013 B2
8454187 Chen Jun 2013 B2
8469734 Chen Jun 2013 B2
8469750 Chen Jun 2013 B2
8480278 Wasem Jul 2013 B2
8562175 Chen Oct 2013 B2
8568015 Chen Oct 2013 B2
8569960 Chen Oct 2013 B2
8592845 Chen Nov 2013 B2
8598805 Tremblay Dec 2013 B2
8608342 Chen Dec 2013 B2
8622576 Zhan Jan 2014 B2
8641229 Li Feb 2014 B2
8680773 Hering et al. Mar 2014 B2
8876321 Chen Nov 2014 B2
8974072 Chen Mar 2015 B2
9044056 Chen Jun 2015 B2
9055777 Chen Jun 2015 B2
9060409 Bowers et al. Jun 2015 B2
9066617 Chen Jun 2015 B2
9157587 Chen Oct 2015 B2
9166323 Lampert et al. Oct 2015 B2
9179793 Chen Nov 2015 B2
9220361 Chen Dec 2015 B1
9222656 Chen Dec 2015 B2
9279551 Vissenberg et al. Mar 2016 B2
9291318 Benson Mar 2016 B1
9318840 Siev et al. Apr 2016 B2
9386652 Lee Jul 2016 B1
9439528 Chen Sep 2016 B2
9441800 Chen Sep 2016 B1
9441823 Chen Sep 2016 B1
9468062 Rybicki Oct 2016 B2
9526286 Chen Dec 2016 B2
9572446 Chen Feb 2017 B2
9593831 Chen Mar 2017 B2
9763298 Yu Mar 2017 B2
9648919 Chen May 2017 B2
9655211 Altamura et al. May 2017 B2
9671074 Chen Jun 2017 B2
9677748 Chen Jun 2017 B1
9677749 Chen Jun 2017 B2
9788384 Harris Oct 2017 B1
9845925 Chen Dec 2017 B2
9883566 Chen Jan 2018 B1
9899765 Wagner Feb 2018 B2
9907136 Leung et al. Feb 2018 B2
9939117 Peng Apr 2018 B1
10006596 Yu et al. Jun 2018 B2
10103493 Siev et al. Oct 2018 B2
10123387 Lai Nov 2018 B2
10136497 Harris Nov 2018 B2
10178887 Chen Jan 2019 B1
10184654 Chen Jan 2019 B1
10205073 Altamura Feb 2019 B2
10288235 Chen May 2019 B1
10288236 Chen May 2019 B1
10578260 Chen Mar 2020 B1
10624166 Shao Apr 2020 B1
10697598 Chen et al. Jun 2020 B1
20020027778 Ko Mar 2002 A1
20030063463 Sloan et al. Apr 2003 A1
20040012950 Pan Jan 2004 A1
20040080281 **Pan Apr 2004 A1
20040090770 Primeau May 2004 A1
20040096596 Palmer, III et al. May 2004 A1
20040165384 Allen Aug 2004 A1
20040246718 Fan Dec 2004 A1
20050174065 Janning Aug 2005 A1
20060158878 Howell Jul 2006 A1
20060221609 Ryan, Jr. Oct 2006 A1
20070015396 Mrakovich et al. Jan 2007 A1
20070177402 Wu Aug 2007 A1
20070230174 Hicks Oct 2007 A1
20070262725 Koren Nov 2007 A1
20080049424 Wang Feb 2008 A1
20080084695 Hsu Apr 2008 A1
20080084702 Cheung Apr 2008 A1
20080094828 Shao Apr 2008 A1
20080218092 Chang et al. Sep 2008 A1
20090154156 Lo et al. Jun 2009 A1
20090278463 Tang Nov 2009 A1
20090302771 Peng Dec 2009 A1
20100001664 Shih Jan 2010 A1
20100141161 Hering et al. Jun 2010 A1
20100157598 Tsai Jun 2010 A1
20100277084 Lee Nov 2010 A1
20110062875 Altamura Mar 2011 A1
20110074300 Hsu Mar 2011 A1
20110148311 Neuman Jun 2011 A1
20110210677 Hering et al. Sep 2011 A1
20110228535 Shao Sep 2011 A1
20110305022 Chen Dec 2011 A1
20110310601 Shao Dec 2011 A1
20110316442 Sako et al. Dec 2011 A1
20120007510 Horng Jan 2012 A1
20120039070 Shen et al. Feb 2012 A1
20120075863 Chen Mar 2012 A1
20120275157 Hsu Nov 2012 A1
20130078847 Chen Mar 2013 A1
20130107514 McNabb et al. May 2013 A1
20130181232 Jeromerajan Jul 2013 A1
20130249394 Fay Sep 2013 A1
20130249417 Verlinden Sep 2013 A1
20130301246 Chen Nov 2013 A1
20140055439 Lee Feb 2014 A1
20140179132 Byrne Jun 2014 A1
20140268689 Chen Sep 2014 A1
20140268818 Huang et al. Sep 2014 A1
20140355277 Lin Dec 2014 A1
20150008835 Sugiura et al. Jan 2015 A1
20150029703 Chen Jan 2015 A1
20150070878 Yu Mar 2015 A1
20150117001 Fan Apr 2015 A1
20160047516 Taylor Feb 2016 A1
20160123566 Leung May 2016 A1
20160183338 Loomis Jun 2016 A1
20160186940 Del Castillo et al. Jun 2016 A1
20160338171 Bhagat Nov 2016 A1
20160341408 Altamura Nov 2016 A1
20170023223 Tsai Jan 2017 A1
20170038055 Daniels Feb 2017 A1
20170055319 Rogers Feb 2017 A1
20170108185 He Apr 2017 A1
20170295622 Harris Oct 2017 A1
20170328527 Yang et al. Nov 2017 A1
20170343170 Yu et al. Nov 2017 A1
20180020519 Harris Jan 2018 A1
20180020520 Harris Jan 2018 A1
20180058648 Fang Mar 2018 A1
20180073708 Avery et al. Mar 2018 A1
20180110101 Kottritsch Apr 2018 A1
20180172225 Zhao Jun 2018 A1
20180172226 Zhao Jun 2018 A1
20180231226 Koo Aug 2018 A1
20180299084 Chien Oct 2018 A1
20190053348 Harris Feb 2019 A1
20190078767 Loomis Mar 2019 A1
20190081436 Onodi et al. Mar 2019 A1
20190234597 Zhu Aug 2019 A1
20190277458 Shao Sep 2019 A1
20190335559 Shao Oct 2019 A1
20200236746 Shao Jul 2020 A1
Foreign Referenced Citations (11)
Number Date Country
2 655 486 Sep 2009 CA
200982547 Nov 2007 CN
201121811 Sep 2008 CN
201897194 Jul 2011 CN
201898147 Jul 2011 CN
201966240 Sep 2011 CN
202613183 Dec 2012 CN
203703878 Jul 2014 CN
3240446 Jul 1983 DE
1 172 602 Jan 2002 EP
2 454 546 May 2009 GB
Non-Patent Literature Citations (5)
Entry
U.S. Appl. No. 16/573,890, filed Sep. 17, 2019, Inventor Shu Fa Shao.
U.S. Appl. No. 16/298,935, filed Mar. 11, 2019, Inventor Shu Fa Shao.
U.S. Appl. No. 16/219,657, filed Dec. 13, 2018, Inventor Johnny Chen.
U.S. Appl. No. 16/573,880, filed Sep. 17, 2019, Inventor Shu Fa Shao.
U.S. Appl. No. 16/547,377, filed Aug. 21, 2019, Inventor Shu Fa Shao.
Related Publications (1)
Number Date Country
20200240599 A1 Jul 2020 US
Provisional Applications (2)
Number Date Country
62833530 Apr 2019 US
62682683 Jun 2018 US
Continuation in Parts (1)
Number Date Country
Parent 16298935 Mar 2019 US
Child 16846784 US