Article of clothing with control button

Information

  • Patent Grant
  • 11033059
  • Patent Number
    11,033,059
  • Date Filed
    Thursday, November 5, 2015
    8 years ago
  • Date Issued
    Tuesday, June 15, 2021
    2 years ago
  • CPC
  • Field of Search
    • US
    • 219 211000
    • 219 212000
    • 219 527-529
    • 219 546-549
    • 002 069000
    • 024 114900
    • 439 037000
    • 362 296010
    • CPC
    • A41D13/0051
    • A41D1/02
    • A41D1/005
    • H05B1/02
    • H05B3/342
    • G02B6/0021
    • G02B6/0036
    • G02B6/0073
    • H01R2103/00
    • H01R24/38
    • H01R24/76
  • International Classifications
    • A41D13/005
    • Term Extension
      122
Abstract
An article of clothing and method of assembly. The article of clothing includes a button assembly with an interface having a first edge and a second edge. An outer shell is coupled to the button assembly. The outer shell defines a first opening for receiving the interface and having a border. A frame defines a second opening for receiving the interface and is positioned between the button assembly and the outer shell with the first opening and the second opening being substantially aligned. A portion of the outer shell folds over the frame, and the frame inhibits the border of the outer shell from pulling away from at least one of the first edge and the second edge of the interface.
Description
FIELD OF INVENTION

The present invention generally relates to clothing articles and, more particularly, to a clothing article with an electronic control button.


SUMMARY

In one independent embodiment, an article of clothing may generally include a button assembly having an interface with a first edge and a second edge, an outer shell coupled to the button assembly and defining a first opening for receiving the interface, the first opening including a border, and a frame defining a second opening for receiving the interface. The frame may be positioned between the button assembly and the outer shell with the first opening and the second opening substantially aligned. A portion of the outer shell folds over the frame, and the frame may inhibit the border of the outer shell from pulling away from at least one of the first edge and the second edge of the interface. In some constructions, the frame may include a rigid material; the outer shell may include a polyester material.


The interface may include a face accessible through the first opening and a base, the face defining a face periphery, the base defining a base periphery, the base extending beyond the face periphery, the portion of the outer shell folding over the frame being in contact with the base. The frame may extend beyond the base periphery on at least two edges. The frame may extend beyond the base periphery on all edges of the base periphery.


The button assembly may include electronics coupled to the interface, and a protective layer defining a third opening for receiving the interface, the protective layer being coupled to the outer shell with the first opening and the third opening substantially aligned. The protective layer is a first protective layer, and the button assembly may also include a second protective layer, the first protective layer and the second protective layer covering the electronics coupled to the interface. An inner shell may be coupled to the outer shell, the inner shell covering an inside of the button assembly.


The outer shell and the button assembly may be sewn together. The frame may not be permanently attached to the outer shell and the button assembly. The interface may include a face defining a face periphery, and the second opening may have a shape complementary to the face periphery. The face periphery may be substantially the same as the shape of the second opening.


The article of clothing may further include a heating array coupled to the button assembly; a battery pack for supplying power to the heating array; and a controller configured to selectively provide power from the battery pack to the heating array. The interface may be configured to select a setting for the heating array. The article of clothing may further include a battery compartment to receive the battery pack. The controller may be configured to control operation of the heating array based on a user input from the interface. The user input, through the interface, may indicate an area of the article of clothing being heated with the heating array.


The interface has a height, and, when the frame is positioned between the button assembly and the outer shell, a generally planar surface may be created by the interface and the outer shell. The interface may include at least one control button. The interface may include at least two control buttons.


In another independent embodiment, a method of assembling an article of clothing may be provided. The article of clothing may include an outer shell defining a first opening, and a button assembly having a first protective layer defining a second opening. The method may generally include aligning the first opening of the outer shell with the second opening of the first protective layer; providing a frame having a third opening; positioning the frame between the outer shell and the first protective layer while aligning the third opening with the first opening and the second opening; and positioning an interface of the button assembly within the first opening.


In yet another independent embodiment, an article of clothing may generally include a button assembly including an interface, the interface including a face defining a face periphery and a base extending beyond the face periphery and defining a base periphery having a plurality of edges; an outer shell coupled to the button assembly, the outer shell having an outer surface and defining a first opening for receiving the interface, the first opening having a border; and a frame defining a second opening for receiving the interface, the frame being positioned between the button assembly and the outer surface of the outer shell with the first opening and the second opening substantially aligned, the face of the interface being accessible through the first opening and the second opening, the frame extending beyond the base periphery on at least two of the plurality of edges of the base periphery and inhibiting the border of the outer shell from pulling away from at least one of a first edge and a second edge of the face periphery.


In a further independent embodiment, an article of clothing may generally include a button assembly including an interface having a first edge, a second edge, and a face defining a face periphery; an outer shell coupled to the button assembly, the outer shell having an outer surface and defining a first opening for receiving the face of the interface, the first opening having a border; and a frame defining a second opening for receiving the face of the interface, the frame being positioned between the button assembly and the outer surface of the outer shell with the first opening and the second opening substantially aligned, the frame inhibiting the border of the outer shell from pulling away from at least one of the first edge and the second edge of the interface, the frame not being fastened to the outer shell or to the button assembly.


Other independent aspects of the invention will become apparent by consideration of the detailed description, claims and accompanying drawings.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a front perspective view of a jacket.



FIG. 2 is a back view of the jacket shown in FIG. 1.



FIG. 3 is an electrical block diagram for the jacket shown in FIG. 1



FIG. 4 is a schematic diagram of the jacket shown in FIG. 1.



FIG. 5 is a perspective view of a battery receptacle of the jacket shown in FIG. 1.



FIG. 6 is a perspective view of a battery pack for the jacket shown in FIG. 1.



FIG. 7 is an exploded view of the battery pack shown in FIG. 6.



FIG. 8 is an exploded view of a control button assembly of the jacket shown in FIG. 1.



FIG. 9 is a perspective view of a control button assembly.



FIGS. 10-14 illustrate various views of the control button assembly shown in FIG. 9.



FIG. 15 illustrates an outer shell border pulling away from edges of an interface.



FIG. 16 is a cross-sectional view of an assembly of an outer shell, a frame and the control button assembly shown in FIG. 13.



FIG. 17 is an exploded view of the assembly between the outer shell, the frame and the control button assembly shown in FIG. 13.



FIGS. 18-22 illustrate a method of assembling an outer shell, a frame, and a control button assembly.



FIGS. 23-25 illustrate another method of assembling an outer shell, a frame, and a control button assembly.



FIG. 26 illustrates an outer shell border being held in place by a frame.



FIG. 27 is a perspective view of an alternative construction of a jacket and a control button assembly.



FIG. 28 illustrates another method of assembling a jacket.



FIG. 29 is a cross-section view of an assembly the outer shell and the control button assembly shown in FIG. 28.



FIG. 30 illustrates yet another method of assembling a jacket.



FIG. 31 illustrates a further method of assembling a jacket.



FIG. 32 illustrates another method of assembling a jacket.



FIG. 33 illustrates yet another method of assembling a jacket.



FIGS. 34-35 illustrate a further method of assembling a jacket.



FIG. 36 is a perspective view of an alternative construction of a control button assembly shown in FIG. 27.



FIGS. 37-41 include various views of the control button assembly shown in FIG. 36.





DETAILED DESCRIPTION

Before any independent embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other independent embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting.


Use of “including” and “comprising” and variations thereof as used herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Use of “consisting of” and variations thereof as used herein is meant to encompass only the items listed thereafter and equivalents thereof.



FIG. 1 illustrates an article of clothing, such as a jacket 10, including an electrical component to be controlled. In the illustrated construction, the jacket 10 is a heated jacket similar to that described and illustrated in U.S. Patent Application Publication No. US2011/0108538A1, published May 12, 2011, and in U.S. Patent Application Publication No. US2013/0037531A1, published Feb. 14, 2013, the entire contents of both of which are hereby incorporated by reference. In other constructions (not shown), the jacket 10 may include, in addition to or as an alternative to a heating component, another component to be controlled, such as, for example, a component for cooling, illumination, communication, power supply, combinations thereof, etc.


The jacket 10 may be constructed in various sizes to fit a variety of users. The jacket 10 includes typical jacket features such as a torso body 12, arms 14, a collar 16, and front pockets 18. In other constructions (not shown), the article of clothing may have another configuration (e.g., overalls, a vest, a hooded garment, pants, etc.).


The jacket 10 also includes an outer shell 20 and an inner shell 22 (FIG. 2). In the illustrated embodiment, the outer shell 20 is made from a polyester material and is constructed to protect the user from wind, rain, and other weather elements. In some embodiments, the outer shell 20 has an outer surface that is exposed to the elements and that may be waterproof, windproof, or a combination thereof. The inner shell 22 provides an inner lining for the jacket 10 for additional warmth and comfort. In some embodiments, the inner shell 22 lines the inside of the jacket including the torso body 12, the arms 14, the collar 16, and the pockets 18. In other embodiments, the inner shell 22 lines only select areas of the jacket 10. For example, in some embodiments, the inner shell 22 lines the torso body 12, but not the arms 14. The inner shell 22 is coupled to the outer shell 20 by sewing along at least the borders of the jacket 10.


As shown in FIG. 3, the illustrated jacket 10 also includes a control button assembly 24, a heating array 26, a heater control module 28, and a battery compartment 30 (FIGS. 2 and 3). The heating array 26 includes a core heating array 32 and a pocket heating array 34. As shown in FIG. 4, the core heating array 32 includes a right chest heating module 36, a left chest heating module 38, and a back heating module 40. The pocket heating array 34 includes a right pocket heating module 42 and a left pocket heating module 44. The heating arrays 32, 34 may include resistive heating coils formed of carbon fibers, high-density carbon fibers, or other heating devices.


The core heating array 32 and pocket heating array 34 are controlled via the heater control module 28 and the control button assembly 24. The user interacts with the control button assembly 24 to control operation of the heating array 26. The heating array 26 receives electrical energy from a battery pack 46 (FIG. 6-7) received in the battery compartment 30 and converts said electrical energy into heat. In other embodiments, the heating array 26 can include more or less heater modules and/or the heater modules may be positioned elsewhere throughout the jacket 10. In some embodiments, the jacket 10 includes a single heater module in the torso body 12 instead of multiple heater modules.


As shown in FIG. 2, the battery compartment 30 is located on a lower portion of the back torso body. In other embodiments, the battery compartment 30 may be located elsewhere on the jacket 10. The battery compartment 30 includes a zipper 48, providing selective access by a user to the battery compartment 30 in order to access the battery pack 46 and other electrical components. The battery compartment 30 includes a battery receptacle 50 (FIG. 5) configured to receive the battery pack 46.


In the illustrated embodiment, the battery receptacle 50 also includes a USB type port 52 for communicating with and charging other electronic devices, such as a digital media player, an iPod®, a smartphone, or another similar device. The battery receptacle 50 receives electrical energy from the battery pack 46 and supplies the electrical energy to the heater control module 28 for distribution to the heating arrays 32, 34. The battery receptacle 50 transmits the electrical energy through a heater supply cable 54 (FIG. 4). The heater supply cable 54 is detachably coupled to the battery receptacle 50. In some embodiments, the battery receptacle 50 may also include a battery state-of-charge indicator including, for example, one or more LEDs.


In the illustrated embodiment, the battery receptacle 50 is configured to receive a battery pack, such as the battery pack 46 shown in FIG. 6. The illustrated battery pack 46 is a 12-volt lithium-based battery pack and is also operable to power other devices, such as a power tool (not shown; e.g., a drill, a pipe cutter, an impact driver, a saw, etc.), a non-motorized device (not shown; e.g., a sensing device (a camera, a sensor, a multi-meter, a scanner, etc.)), etc.


In other embodiments, the battery receptacle 50 may have a different construction to accommodate different type of battery packs (e.g., having a different voltage, chemistry, interface, etc.). For example, in some embodiments (not shown), the battery receptacle 50 may receive an 18-volt battery pack or another type of battery pack.


As illustrated in FIGS. 6-7, the battery pack 46 includes a casing 56, an outer housing 58 coupled to the casing 56, and a plurality of battery cells 60 positioned within the casing 56. The casing 56 is shaped and sized to fit within a cavity 62 of the battery receptacle 50 shown in FIG. 5 or, alternatively, in a power tool or non-motorized sensing device to connect the battery pack 46 to the tool or device. The casing 56 includes an end cap 64 to substantially enclose the battery cells 60 within the casing 56. The illustrated end cap 64 includes two power terminals 66 configured to mate with corresponding power terminals 68 (FIG. 3) extending within the cavity 62 of the battery receptacle 50. In other embodiments, the end cap 64 may also include sense or communication terminals that are configured to mate with corresponding terminals within the battery receptacle 50 or a tool.


The outer housing 58 includes a latching mechanism 70 for positively engaging the battery pack 46 with the battery receptacle 50. The latching mechanism 70 includes latching tabs 72 and resilient actuating portions 74. The latching tabs 72 are configured to engage corresponding recesses within the cavity 62 of the battery receptacle 50. The resilient actuating portions 74 are coupled to the latching tabs 72 and are configured for a user to selectively disengage the latching tabs 72 from the battery receptacle 50.


As shown in FIG. 7, the illustrated battery pack 46 includes three battery cells 60 positioned within the casing 56 and electrically coupled to the terminals 66. The battery cells 60 provide operational power (e.g., DC power) to the jacket 10 or other device (e.g., a power tool, non-motorized device, etc.). In the illustrated embodiment, the battery cells 60 are arranged in series, and each battery cell 60 has a nominal voltage of approximately four-volts (4.0V), such that the battery pack 46 has a nominal voltage of approximately twelve-volts (12V). The cells 60 also have a capacity rating of approximately 1.4 Ah.


In other embodiments (not shown), the battery pack 46 may include more or fewer battery cells 60, and the cells 60 can be arranged in series, parallel, or a serial and parallel combination. For example, the battery pack 46 can include a total of six battery cells in a parallel arrangement of two sets of three series-connected cells. The series-parallel combination of battery cells creates a battery pack having a nominal voltage of approximately 12V and a capacity rating of approximately 2.8 Ah.


In other embodiments, the battery cells 60 may have different nominal voltages, such as, for example, 3.6V, 3.8V, 4.2V, etc., and/or may have different capacity ratings, such as, for example, 1.2 Ah, 1.3 Ah, 2.0 Ah, 2.4 Ah, 2.6 Ah, 3.0 Ah, etc. In other embodiments, the battery pack 46 can have a different nominal voltage, such as, for example, 10.8V, 14.4V, etc.


In the illustrated embodiment, the battery cells 60 are lithium-ion battery cells having a chemistry of, for example, lithium-cobalt (Li—Co), lithium-manganese (Li—Mn), or Li—Mn spinel. In other embodiments, the battery cells 60 may have other suitable lithium or lithium-based chemistries. In yet other embodiments, the battery cells 60 have a non-lithium based chemistry such as, for example, nickel-based chemistry battery packs.


Referring back to FIG. 3, the heater control module 28 receives inputs from the control button assembly 24 and selectively powers the heating arrays 32, 34. The heater control module 28 is coupled to a chest portion 75 of the jacket 10 (FIG. 1). The heater control module 28 may be configured to monitor a plurality of conditions of the jacket 10 including, but not limited to, an amount of current drawn by the heating arrays 32, 34.


The heater control module 28 includes, for example, a microprocessor, microcontroller, etc., and is configured to communicate with a controller of the battery pack 46. In the illustrated embodiment, the battery controller provides information to the heater control module 28 related to a battery pack temperature and/or voltage level. The heater control module 28 and the battery controller may also include low voltage monitors and state-of-charge monitors. The monitors are used to determine whether the battery pack 46 is experiencing a low voltage condition, which may prevent proper operation of the heating arrays 32, 34 or if the battery pack 46 is in a state-of-charge that makes the battery pack 46 susceptible to being damaged. If such a low voltage condition or state-of-charge exists, the heating arrays 32, 34 are shut down or the battery pack 46 is otherwise prevented from further discharging current to prevent the battery pack from becoming further depleted and/or damaged.


The heater control module 28 receives a user input from the control button assembly 24 that specifies whether the heating arrays 32, 34 are activated and may, in some embodiments, specify particular heating modules to be activated. For example, the control button assembly 24 may be activated to turn the heating array 32, 34 on to automatically set to an initial predetermined thermal output setting. If the control button assembly 24 is already activated (e.g., pressed), the control button assembly 24 changes the operation of the heating modules 36-44. For example, the control button assembly 24 may be used for the jacket 10 to switch between a high setting, a medium setting, and low setting. The heating modules 36-44 provide a high, medium, and low thermal output, respectively. In some embodiments, when the control button assembly 24 is first activated, the jacket 10 enters a pre-heat mode. The jacket 10 may remain in the pre-heat mode for a predetermined period of time before the heater control module 28 switches the heating modules 36-44 to the medium setting. The user may at any point adjust the thermal output setting with the control button assembly 24.


Referring back to FIG. 1, the illustrated control button assembly 24 is located on the front of the jacket 10. The control button assembly 24 is positioned on an upper corner of the jacket 10 to provide ease of access to the user. As shown in FIG. 8, the control button assembly 24 includes an interface 86, a display portion 80 (FIG. 3), electronics, and protective layers 82, 84. The control button assembly 24 is coupled to the heater control module 28 to provide the heater control module 28 with user input information to control the heating arrays 32, 34.


The illustrated interface 86 includes a first heater control button 76 and a second heater control button 78. In the illustrated embodiment, the first and second heater control buttons 76, 78 are push buttons for ease of use. In the illustrated embodiment, the first heater control button 76 is an on/off button for the heating modules 36-44. In the illustrated embodiment, the heating modules 36-44 turn on after the on/off button 76 is pressed and held for a designated period of time (e.g., 1.5 seconds).


Once activated the heating arrays 36-44 may, in some embodiments, be automatically set to an initial predetermined thermal output setting. In the illustrated embodiment, subsequent presses of the on/off button 76 change the thermal output setting according to a sequence (e.g., high, medium, low then back to high and so on). The on/off button 76 is configured to turn the heating modules 36-44 off after being pressed and held for designated period of time (e.g., 1.5 seconds). In other embodiments, the number of thermal output settings, the initial thermal output setting, and the sequence of thermal output settings could vary.


In the illustrated embodiment, the second heater control button 78 is a zone button to determine which heating modules 36-44 are activated. The zone button 78 controls whether the core heating array 32, the pocket heating array 34, or both heating arrays 32, 34 are turned on/off. In other embodiments, the control button assembly 24 may include more than one zone button 78. For example, the control button assembly may include a zone button 78 for each heating module 36-44 to provide more localized heating control.


As shown in FIGS. 8-14, the illustrated interface 86 generally has a rectangular shape with two opposite corners cut-out or slanted. The interface 86 includes a face 88 and a base 90. The face 88 is accessible to the user through an opening on the outer shell 20. The base 90, on the other hand, couples the interface 86 to the protective layers 82, 84 and holds the interface 86 in position.


As shown in FIGS. 9-14, the face 88 defines a face periphery 92, while the base 90 defines a base periphery 94. The base periphery 94 extends beyond the face periphery 92 on all sides to provide structural support to the face 88. As illustrated, the face periphery 92 and the base periphery 94 include six total edges, a top edge 92a, 94a, a bottom edge 92b, 94b, a right edge 92c, 94c, a left edge 92d, 94d, a lower slanted corner 92e, 94e, and an upper slanted corner 92f, 94f. As also shown in FIGS. 8-13, the face 88 has a depth 96.


As shown in FIG. 10, an electronics protection portion 98 is coupled to the base 90. The electronics protection portion 98 protects wires that may be associated with the control buttons 76, 78, as well as other electronic components of the control button assembly 24.


The display portion 80 of the control button assembly 24 indicates a status of the heating modules 36-44. The display portion 80 may include, for example, one or more LEDs. The display portion 80 may light in different colors based on the thermal output setting of the jacket 10 and/or may indicate which heating array 32, 34 is currently activated. For example, in the pre-heat mode, the display portion 80 flashes red. At a low thermal output setting, the display portion 80 glows blue. At a medium thermal output setting, the display portion 80 glows white. At a high thermal output setting, the display portion 80 glows red.


Other embodiments may use various other colors or patterns to indicate thermal output settings. Still other embodiments may additionally or alternatively indicate other conditions, such as a state of charge of the battery pack 46. In the illustrated embodiment, the display portion 80 includes a backlight that illuminates both the on/off button 76 and the zone button 78. In other embodiments, the display portion 80 may be separate from the control button assembly 24.


Referring back to FIG. 8, the control button assembly 24 also includes the first protective layer 82 and the second protective layer 84 to cover and protect the electronics of the control button assembly 24. In the illustrated embodiments, the protective layers 82, 84 are water and dust resistant. In other embodiments, the protective layers 8284 may be made from different types of materials (e.g., UV protective material).


As shown in FIG. 8, the interface 86 is positioned between the protective layers 82, 84. The first protective layer 82 defines an opening 100 with opening perimeter 102 of a shape complementary to (e.g., substantially the same as) the shape of the face periphery 92 of the interface 86. Because the opening perimeter 102 and the face periphery 92 have substantially the same shape, the face 88 of the interface 86 is positioned within the opening 100. The first protective layer 82 then rests on the portion of base 90 of the interface 86 that extends beyond the face periphery 92.


The second protective layer 84 is positioned on a back side of the interface 86. The second protective layer 84, however, does not include an opening. Rather, the second protective layer 84 covers the electronics associated with the interface 86. The second protective layer 84 is then connected to the first protective layer 82. The connection between the first and second protective layers 82, 84 keeps the interface 86 in place. Generally, the closer the first and second protective layers 8284 are connected, the more securely the interface 86 is positioned within the opening 100 (e.g., because the interface 86 has less space to move). In some embodiments, the interface 86 may be secured to at least the second protective layer 84, for example, by glue, other adhesive, etc.


In the illustrated embodiments, the protective layers 82, 84 are sewn together. In other embodiments, the protective layers 82, 84 are connected differently. For example, in other embodiments, the first and second protective layers 82, 84 may be glued, stapled, clipped welded, combinations thereof, etc.


The control button assembly 24 is then coupled to the jacket 10 via the first protective layer 82. To make the interface 86 accessible to the user, the outer shell 20 defines a shell opening 104 (FIG. 17). The shell opening 104 includes a border 108 having a shape complementary to (e.g., substantially the same as) the shape of the face periphery 92. The face 88 of the interface 86 becomes accessible to the user through the shell opening 104, and the edges 92 of the face 88 are near and in contact with the border 108 of the shell opening 104.


The outer shell 20 and the control button assembly 24 are coupled via the first protective layer 82. In other words, the first protective layer 82 and the outer shell 20 are sewn (or otherwise joined) together. To maintain the interface 86 in a position in which the face 88 of the interface 86 is accessible through the shell opening 104, the opening 100 of the first protective layer 82 is substantially aligned with the shell opening 104. When the opening 100 of the first protective layer 82 is aligned with the shell opening 104, the face 88 of the interface 86 becomes accessible to the user.


When a user wears the jacket 10, the user exerts a stretching force along the length of the jacket defined by a vertical axis L shown in FIG. 15. In other words, when the user wears the jacket 10 a top side (i.e., side near the collar 16) and a bottom side (i.e., near the edge of the jacket) are pulled apart, and the outer shell 20 is stretched. When the outer shell 20 is stretched, as described above, the border 108 of the shell opening 104 may pull away from the face periphery 92 of the interface 86, as shown in FIG. 15. Over time, such pulling precipitates wear on the jacket 10 and on the connection between the first protective layer 82 and the outer shell 20. In some situations, the control button assembly 24 may become detached from the outer shell 20. When the control button assembly 24 is detached from the outer shell 20, the user may have difficulty interacting with the interface 86 to control the heating arrays 32, 34. Also, the jacket 10 may be perceived as a low-quality and carelessly designed product.


To limit or eliminate this condition, in the embodiment shown in FIG. 16, a rigid frame 110 is positioned between the control button assembly 24 and the outer shell 20. The frame 110 may inhibit the border 108 from pulling away from the face periphery 92 of the interface 86. As shown in FIG. 16, a portion 112 of the outer shell 20 folds over the frame 110 and is in contact with the base 90 of the interface 86 (i.e., the frame 110 is positioned between a first outer portion of the outer shell 20 and a second portion 112 of the outer shell 20). In some embodiments, the outer shell 20 may not be in direct contact with the base 90 (e.g., a separate piece may be placed between the outer shell 20 and the base 90. Nevertheless, the base 90 of the interface 86 is positioned beneath the outer shell 20 and beneath the frame 110. The portion 112 of the outer shell 20 is also joined with the first protective layer 82. The frame 110 holds the outer shell border 108 close to the face periphery 92, thereby preventing the outer shell 20 from pulling away, even when a stretching force is exerted on the jacket 10.


When fully assembled, the interface 86 creates a generally planar surface 119 with the outer shell 20, which can be more clearly seen in FIG. 16. The thickness of the face 88 is substantially equal to the thickness of the frame 110 and the folded layers of the outer shell 20.



FIG. 17 illustrates the general placement of the outer shell 20, the frame 110, and the control button assembly 24. For illustrative purposes, the outer shell 20 is not shown to be joined to the first protective layer 82. However, the outer shell 20 remains joined (e.g., sewn together) with the first protective layer 82.


The illustrated frame 110 is made from a generally rigid material to withstand the stretching force on the jacket 10. The frame 110 defines a frame opening 114. The frame opening 114 has a shape complementary to (e.g., substantially the same as) the perimeter shape of the interface 86 and allows the face 88 to be accessible through the frame opening 114. In the illustrated embodiment, the frame opening 114 outlines the same polygonal shape of the face 88 of the interface 86. In particular, the illustrated frame opening 114 includes edges mostly forming a rectangular shape with an upper slanted corner and a lower slanted corner.


Referring back to FIG. 16, the frame 110 extends beyond the base periphery 94 of the interface 86, thus providing more support for the outer shell 20. In the illustrated embodiment, the frame 110 extends beyond the base periphery 94 of the interface 86 on all edges 94a-f. In the illustrated embodiment, however, the frame 110 does not extend beyond the electronics protection portion 98 of the interface 86. In other embodiments (not shown), the frame 110 may extend beyond fewer than all edges of the base periphery 94 (e.g., beyond one, two, three, or more edges). In other embodiments (not shown), the frame 110 can additionally extend beyond the electronics protection portion 98.


The frame 110 is positioned between the control button assembly 24 and the outer shell 20. When assembling the jacket 10 and, in particular, when positioning the interface 86 to be accessible by the user, the frame opening 114 becomes substantially aligned with the opening 100 of the first protective layer 82, and with the shell opening 104. The frame opening 114, the opening 100 of the first protective layer 82, and the shell opening 104 are approximately the same size and are sized to tightly accommodate the face 88 of the interface 86.


In the illustrated embodiments, the frame 110 is not permanently attached to the outer shell 20 or to the control button assembly 24. In other words, the frame 110 is not fastened to the outer shell 20 or to the control button assembly 24. Rather, the frame 110 is held in place by the attachment between the outer shell 20 and the control button assembly 24. The frame 110 fits in the space between the outer shell 20 and the control button assembly 24. Because the outer shell 20 and the first protective layer 82 are joined (e.g., sewn together), the frame 110 does not shift or move. The frame 110 does not become disassembled because the frame opening 114 does not accommodate the control button assembly 24 and because the stretching force on the jacket 10 prevents the frame 110 from moving excessively.


The inner shell 22, as discussed above, is coupled to the outer shell 20. The inner shell 22 covers the inside of the control button assembly 24, such that the face 88 of the interface 86 but not the electronic components for the control button assembly 24 are visible.



FIGS. 18-26 illustrate methods for assembling the jacket 10 with the frame 110 and the control button assembly 24. FIG. 18 illustrates a portion of the outer shell 20 and the first protective layer 82. The portion of the outer shell 20 defines the shell opening 104. The first protective layer 82 includes the opening 100.


As shown in FIGS. 18-19B, the outer shell 20 also includes sewing edges 116 defining the shell opening 104. As shown in FIG. 19A, the shell opening 104 and the opening 100 of the first protective layer 82 are aligned, and the sewing edges 116 of the outer shell 20 are folded inwardly toward the first protective layer 82. FIG. 19B shows the sewing edges 116 folded inwardly and attached to the first protective layer 82 and the shape of the opening of the first protective layer 82 and the shell opening 104. As previously discussed, the shape of the openings 100, 104, 114 is substantially the same as and follows the shape of the face periphery 92 of the interface 86.


As shown in FIG. 20, in some embodiments, the frame 110 is added once the first protective layer 82 and the outer shell 20 have been joined. In the illustrated embodiment, the frame 110 is added by passing the first protective layer 82 through the frame opening 114. Passing the first protective layer 82 through the frame opening 114 aligns the frame opening 114 with the opening 100 of the first protective layer 82 and with the shell opening 104. Therefore, the openings 100, 104, 114 define an area to receive the face 88 of the interface 86. Once the first protective layer 82 is passed through the frame opening 114, the frame 110 is positioned between the outer shell 20 and the first protective layer 82. FIG. 20 illustrates the frame 110 already in position (i.e., between the outer shell 20 and the first protective layer 82) in phantom. In the illustrated embodiment, the frame opening 114 is slightly larger than the shell opening 104 and the opening 100 of the first protective layer 82 to accommodate the thickness of the first protective layer 82 and/or the outer shell 20 between the face periphery 92 and the frame opening 114.


Once the first protective layer 82 and the outer shell 20 are joined by, for example, sewing the two fabrics together, and the frame 110 is installed, the interface 86 is positioned such that the face 88 of the interface 86 is accessible through the shell opening 104. FIG. 21A illustrates the back side (or inside side) when the interface 86 is positioned in the jacket 10. As shown in FIG. 21A, the frame 110 extends beyond the base periphery 94 of the interface 86. FIG. 21B illustrates the front side (or outside side) of the jacket 10 once the interface 86 has been placed appropriately. As seen in FIG. 21B, the face 88 of the interface 86 is accessible through the shell opening 104 while the base 90 of the interface 86 provides support for the face 88.


After the interface 86 has been positioned with the face 88 accessible through openings 100, 104, 114, the second protective layer 84 is added to the control button assembly 24. As shown in FIG. 22, the second protective layer 84 is placed on the back side of the interface 86 and is sewn (or otherwise joined) to the first protective layer 82 as shown by the illustrated sew lines 118. The interface 86 and the first protective layer 82 are shown in phantom to show the relationship between the first protective layer 82, the interface 86, and the second protective layer 84. As shown in FIG. 22, the second protective layer 84 leaves an open portion toward the bottom of the interface 86 to accommodate any wires associated with the interface 86.



FIGS. 23-26 illustrate another method of assembling the jacket 10 in which the frame 110 is added later in the process. As shown in FIGS. 23-24, the outer shell 20 is first connected to the first protective layer 82 and is then passed through the frame opening 114 until the openings 100, 104, 114 are aligned. In some embodiments, the outer shell 20 is formed in panels before assembly of the jacket 10, such that only a portion of the outer shell 20 (e.g., a panel) is passed through the frame opening 114. FIG. 25 illustrates the final placement of the frame 110 between the outer shell 20 and the control button assembly 24 (e.g., the first protective layer 82). FIG. 25 also illustrates the position of the frame 110 if it would have been incorporated as shown in FIG. 19, and after the control button assembly 24 has been assembled.


As shown in FIG. 26, the outer shell 20 is then folded over the frame 110. FIG. 26 illustrates the outer shell 20 and the face 88 of the interface 86 positioned within the aligned openings 100, 104, 114. As shown in FIG. 26, the border 108 of the shell opening 104 does not pull away from the edges of the face periphery 92, thereby limiting or eliminating the condition illustrated in FIG. 15.



FIGS. 28-35 illustrate alternative methods of limiting or eliminating the condition illustrated in FIG. 15. These alternative method(s) can be applied individually, or in combination with one or more other methods described with respect to FIGS. 18-26 and 28-35 and with or without the frame 110.



FIG. 28 illustrates another construction for an interface 130 of the jacket 10 and another assembly method. As shown in FIG. 28, the interface 130 includes a face 132 and a base 134. The face 132 defines a face periphery 136 and the base 134 defines a base periphery 138. In the illustrated embodiment, the face periphery 136 extends beyond the base periphery 138 creating a shoulder 140 on the backside of the interface 130. The face periphery 136 provides an integrated flange for the interface 130. Due to the construction of the interface 130, the face 132 is placed outside the shell opening 104, although the electronic components remain located inside the jacket 10.


As shown in FIG. 28, an adhesive film 142 is applied between the shoulder 140 of the interface 130 and the outer shell 20. The adhesive film 142 is formed (e.g., laser cut, stamped, etc.) to follow the shape of the shoulder 140 of the interface 130. FIG. 29 shows the assembled interface 130 and the outer shell 20, with the adhesive film 142 positioned between the interface 130 and the outer shell 20.



FIG. 30 illustrates another assembly method, and, as shown in FIG. 30, instead of the frame 110, an adhesive film 144 is positioned in the area between the face periphery 92 and the base periphery 94. The adhesive film 144 is formed (e.g., laser cut, stamped, etc.) to follow the shape of the interface 86 and is applied to secure the interface 86 to the outer shell 20. Although not explicitly shown in FIG. 30, the first protective layer 82 may be positioned between the adhesive film 144 and interface 86. The adhesive film 144 then holds the interface 86 to the outer shell 20.


In another alternative method (see FIG. 31), the shape of the shell opening 104 may be changed, e.g., to compensate for the pulling on the outer shell 20, to fit more tightly to the interface 86, etc. As shown in FIG. 30, the border 108, at the top and bottom, is smaller than the actual size of the face 88 of the interface 86. By making the border 108 slightly smaller, the face 88 of the interface 86 is more tightly secured in place. Furthermore, the illustrated control button assembly 24 also includes a wire support 146 for the interface 86.


In another alternative method (see FIG. 32), an adhesive film 148 is placed between the outer shell 20 and the inner shell 22. The adhesive film 148 between the outer shell 20 and the inner shell 22 provides some support for the interface 86. As shown in FIG. 32, the adhesive film 148 is cut in the same shape as the face 88 of the interface 86.


In yet another alternative method (see FIG. 33), a top stitch 150 is added around the shell opening 104 to surround the face 88 of the interface 86. The top stitch 150 also adds support to the shell opening and helps the border 108 to remain close to the edges of the face periphery 92.



FIGS. 34-35 illustrate reducing a height of the base 90 of the interface 86. FIG. 35 illustrates a larger depth of the base 90 which pushes away the outer shell 20, causing the border 108 of the outer shell 20 to pull away from the face periphery 92. With the reduced height (see FIG. 34), the outer shell 20 is more securely placed and positioned in relation to the interface 86.



FIG. 27 illustrates a jacket 10 with an alternative construction of a control button assembly 24. The illustrated jacket 10 includes a border 120 outlining the interface 86, in particular the face 88 of the interface 86.



FIGS. 35-41 illustrate the alternative embodiment of the control button assembly 24 shown in FIG. 27. The illustrated alternative control button assembly 24 includes a single control button 160 instead of two control buttons 76, 78. The control button 160 performs similar functions to the on/off button 76 described above. The control button 160 includes similar components to the interface 86 shown in FIGS. 7-12 and common components have the same reference numbers plus 1000.


Thus, the invention may provide, among other things, an article of clothing, such as a jacket, with a frame to provide support and structure to the outer shell, in particular, near a control button assembly.


One or more independent features and/or independent advantages of the invention may be set forth in the claims.

Claims
  • 1. An article of clothing comprising: a button assembly including an interface having a first edge and a second edge;an outer shell coupled to the button assembly, the outer shell having an outer surface and outer shell edges defining a first opening for receiving the interface, the first opening having a border;a frame defining a second opening for receiving the interface, the frame being positioned between the button assembly and the outer surface of the outer shell with a portion of the first opening and the second opening aligned, the frame inhibiting the border of the first opening from pulling away from at least one of the first edge and the second edge of the interface;a heating array coupled to the button assembly;a battery pack for supplying power to the heating array;a controller configured to selectively provide power from the battery pack to the heating array; the controller being configured to control operation of the heating array based on a user input from the interface; anda protective layer defining a third opening configured as a through-hole for receiving the interface, the protective layer being coupled to the outer shell with at least portions of the first opening and the third opening aligned, the protective layer including a fabric;wherein the outer shell edges extend through the second opening and the third opening and are folded over the frame and the protective layer.
  • 2. The article of clothing of claim 1, wherein the frame includes a rigid material.
  • 3. The article of clothing of claim 1, wherein the outer shell includes a polyester material.
  • 4. The article of clothing of claim 1, wherein the interface includes a face and a base, the face being accessible through the first opening and defining a face periphery, the base defining a base periphery having a plurality of edges, the base extending beyond the face periphery, the base being beneath the outer shell edges folded over the frame.
  • 5. The article of clothing of claim 4, wherein the frame extends beyond the base periphery on at least two edges of the base periphery.
  • 6. The article of clothing of claim 4, wherein the button assembly includes electronics coupled to the interface.
  • 7. The article of clothing of claim 6, wherein the protective layer is a first protective layer, and wherein the button assembly also includes a second protective layer, the first protective layer and the second protective layer covering the electronics coupled to the interface.
  • 8. The article of clothing of claim 7, further comprising an inner shell coupled to the outer shell, the inner shell covering an inside of the button assembly.
  • 9. The article of clothing of claim 1, wherein the outer shell and the button assembly are sewn together.
  • 10. The article of clothing of claim 1, wherein the frame is not fastened to the outer shell.
  • 11. The article of clothing of claim 1, wherein the interface includes at least one control button communicating with the controller.
  • 12. The article of clothing of claim 1, wherein the interface has a height, and wherein, when the frame is positioned between the button assembly and the outer shell, a generally planar surface is created by the interface and the outer shell.
  • 13. The article of clothing of claim 11, wherein the interface includes at least two control buttons.
  • 14. An article of clothing comprising: a button assembly including an interface having a protection portion configured to accommodate electrical wires, the interface including a face defining a face periphery and a base extending beyond the face periphery and defining a base periphery having a plurality of edges;an outer shell coupled to the button assembly, the outer shell having an outer surface and outer shell edges defining a first opening for receiving the interface, the first opening having a border;a frame defining a second opening for receiving the interface, the frame being positioned between the button assembly and the outer surface of the outer shell with a portion of the first opening and the second opening aligned, the face of the interface being accessible through the first opening and the second opening, the base periphery extending beyond the first opening and the second opening, the frame extending beyond the base periphery on at least two of the plurality of edges of the base periphery and inhibiting the border of the first opening from pulling away from at least one of a first edge and a second edge of the face periphery; anda heater electrically coupled to the button assembly, wherein operation of the heater is controllable based on a user input from the interface;a protective layer defining a third opening configured as a through-hole for receiving the interface, the protective layer being coupled to the outer shell with the first opening and the third opening substantially aligned, the protective layer including a fabric;wherein the outer shell edges extend through the second opening and the third opening and are folded over the frame and the protective layer.
  • 15. The article of clothing of claim 1, wherein the second opening is a through-hole.
  • 16. The article of clothing of claim 14, wherein the first and second openings are through-holes, and wherein at least a portion of the interface extends through the through-holes.
  • 17. The article of clothing of claim 14, wherein the button assembly further comprises an electronic display.
  • 18. The article of clothing of claim 17, wherein the electronic display includes at least one LED.
  • 19. The article of clothing of claim 17, wherein the electronic display emits light in one of a first color or a second color.
  • 20. The article of clothing of claim 14, wherein the button assembly includes a backlight.
  • 21. An article of clothing comprising: a button assembly including an interface having a first edge and a second edge;an outer shell coupled to the button assembly, the outer shell having an outer surface and outer shell edges defining a first opening for receiving the interface, the first opening having a border;a frame defining a second opening for receiving the interface, the frame being positioned between the button assembly and the outer surface of the outer shell with a portion of the first opening and the second opening aligned, the frame inhibiting the border of the first opening from pulling away from at least one of the first edge and the second edge of the interface;a heater in electrical communication with the button assembly, wherein operation of the heater is controllable based on a user input from the interface; anda protective layer defining a third opening for receiving the interface;wherein the outer shell edges extend through the second opening and the third opening and are folded over the frame and the protective layer.
  • 22. The article of clothing of claim 21, wherein the protective layer is coupled to the outer shell, wherein the frame is held in place by the coupling between the outer shell and the protective layer.
  • 23. The article of clothing of claim 1, wherein the protective layer is a first protective layer, and wherein the button assembly also includes a second protective layer disposed at a back of the interface, the first protective layer and the second protective layer joined to each other around a portion of the interface and leaving an open portion for accommodating wires.
  • 24. The article of clothing of claim 14, wherein the protective layer is a first protective layer, and wherein the button assembly also includes a second protective layer disposed at a back of the interface, the first protective layer and the second protective layer joined to each other around a portion of the interface and leaving an open portion for accommodating wires.
  • 25. The article of clothing of claim 1, wherein the interface further defines a third edge, a fourth edge, a fifth edge, and a sixth edge, and wherein the first through sixth edges form a generally rectangular shape with an upper slanted corner and a lower slanted corner.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application claims priority to U.S. Provisional Patent Application No. 62/076,001, filed Nov. 6, 2014, the entire contents of which is hereby incorporated by reference.

US Referenced Citations (312)
Number Name Date Kind
1288408 Hait et al. Dec 1918 A
1691472 Graham et al. Nov 1928 A
2156504 Liss May 1939 A
D115484 Smith Jun 1939 S
2389223 Werner Nov 1945 A
2567192 De Grazia Sep 1951 A
2581366 De Grazia Jan 1952 A
2685021 Duncan Jul 1954 A
2707284 Artzt May 1955 A
2727241 Smith Dec 1955 A
D189233 Gardner et al. Nov 1960 S
3125762 Glahe Mar 1964 A
3398406 Waterbury Aug 1968 A
3439439 Stimson Apr 1969 A
3663796 Hines et al. May 1972 A
3748436 Cossaboom Jul 1973 A
3953935 Reiner et al. May 1976 A
3988780 Armellino Nov 1976 A
3989924 Kurtzer Nov 1976 A
4279255 Hoffman Jul 1981 A
4302850 Maeshima Dec 1981 A
4322858 Douglas Apr 1982 A
4404460 Kerr Sep 1983 A
D271154 Dowling Nov 1983 S
4475252 Peyser et al. Oct 1984 A
4483020 Dunn Nov 1984 A
4507877 Vaccari et al. Apr 1985 A
4539700 Sato Sep 1985 A
4554682 Hillquist Nov 1985 A
4589134 Waldron May 1986 A
4645325 Inoue et al. Feb 1987 A
4682371 Heltman Jul 1987 A
4777344 Nash et al. Oct 1988 A
4827534 Haugen May 1989 A
D301797 Lariviere Jun 1989 S
4876724 Suzuki Oct 1989 A
D306511 Jones Mar 1990 S
D309665 Moseley Aug 1990 S
4985934 Perry Jan 1991 A
5008517 Brekkestran et al. Apr 1991 A
D318362 Aiken Jul 1991 S
5031246 Kronenberger Jul 1991 A
5032705 Batcheller et al. Jul 1991 A
5101511 Elverskog Apr 1992 A
5101515 Holt et al. Apr 1992 A
5105067 Brekkestran et al. Apr 1992 A
5148002 Kuo Sep 1992 A
D330106 Aubuchon et al. Oct 1992 S
5158039 Clark Oct 1992 A
5169225 Palm Dec 1992 A
D332514 Brandoff Jan 1993 S
5206957 Gulick May 1993 A
5230333 Yates et al. Jul 1993 A
D338773 Wilde Aug 1993 S
D341471 Cross Nov 1993 S
5302806 Simmons et al. Apr 1994 A
5302807 Zhao Apr 1994 A
D356883 Ganahl Apr 1995 S
5416310 Little May 1995 A
5451747 Sullivan et al. Sep 1995 A
5465424 Cudney et al. Nov 1995 A
5471767 Walker Dec 1995 A
5499401 Heinmiller Mar 1996 A
5603646 Tobias Feb 1997 A
5605144 Simmons et al. Feb 1997 A
5611085 Rasmussen Mar 1997 A
5617583 Yates et al. Apr 1997 A
D385088 Handysides Oct 1997 S
5777296 Bell Jul 1998 A
5784626 Odaohara Jul 1998 A
5826273 Eckes Oct 1998 A
5832538 Williams Nov 1998 A
D402788 Blankenship, Jr. Dec 1998 S
5866881 Jones, III Feb 1999 A
5893991 Newell Apr 1999 A
D414013 Group Sep 1999 S
5953758 Foster Sep 1999 A
D414913 Katz et al. Oct 1999 S
5977517 Grosjean Nov 1999 A
D421329 Adams Mar 2000 S
6049062 Jones Apr 2000 A
6060693 Brown May 2000 A
6078025 Yeung Jun 2000 A
D429058 Derosier Aug 2000 S
6098612 Nakamoto et al. Aug 2000 A
6119270 Chou Sep 2000 A
6155841 Spanyar Dec 2000 A
D437673 DesJardins et al. Feb 2001 S
D439727 Hosogai Apr 2001 S
6232674 Frey et al. May 2001 B1
6239410 Tackore May 2001 B1
6319015 Faunce Nov 2001 B1
6320161 Hansen, Jr. Nov 2001 B1
6329638 Bloodworth Dec 2001 B1
6333570 Ilg Dec 2001 B1
6342692 Hart et al. Jan 2002 B1
6350129 Gorlick Feb 2002 B1
6374418 Rindle Apr 2002 B1
D457711 Mahhabir et al. May 2002 S
6408440 Phiilips Jun 2002 B1
6439942 Pillai et al. Aug 2002 B1
D463094 Haselmayer et al. Sep 2002 S
6450168 Nguyen Sep 2002 B1
6519779 Taguchi Feb 2003 B1
6550471 Szymocha et al. Apr 2003 B2
6558016 Restauro May 2003 B1
6561814 Tilbury et al. May 2003 B2
6563424 Kaario May 2003 B1
6598235 Bulla Jul 2003 B2
6649873 Cintron, Jr. et al. Nov 2003 B1
6654963 Fayle et al. Dec 2003 B2
D487426 Johnson Mar 2004 S
6738984 Gillen et al. May 2004 B2
6792124 Tilbury et al. Sep 2004 B2
D498037 Bay Nov 2004 S
6826782 Jordan Dec 2004 B2
6854988 Marmaropoulos et al. Feb 2005 B2
6888111 Tobin May 2005 B1
D508601 Hoyt Aug 2005 S
6963055 Rock et al. Nov 2005 B2
D526467 Kent Aug 2006 S
D526469 Collier Aug 2006 S
D527868 Wager Sep 2006 S
D529687 Rindle Oct 2006 S
7117538 Bosne et al. Oct 2006 B2
D539508 Rogers et al. Apr 2007 S
7210939 Marmaropoulos et al. May 2007 B2
7230206 Randall Jun 2007 B1
D551429 Wager Sep 2007 S
D553329 Wager Oct 2007 S
D553330 Wager Oct 2007 S
D555878 Bay Nov 2007 S
D566927 Graham et al. Apr 2008 S
D568581 Wager May 2008 S
7375308 Ferguson May 2008 B2
D573312 Siepmann Jul 2008 S
D580630 Adams et al. Nov 2008 S
7448874 Willis Nov 2008 B2
7462035 Lee et al. Dec 2008 B2
RE40613 Jordan Jan 2009 E
D584482 Marsh Jan 2009 S
7476104 Marmaropoulos et al. Jan 2009 B2
D588338 Self Mar 2009 S
D588783 Olstorn Mar 2009 S
7496969 Pieczynski Mar 2009 B2
7519192 Laycock et al. Apr 2009 B1
7559768 Marmaropoulos et al. Jul 2009 B2
7560664 Ford et al. Jul 2009 B2
D598639 Holder Aug 2009 S
7618260 Daniel et al. Nov 2009 B2
7624453 Rene et al. Dec 2009 B2
7651016 Stewart Jan 2010 B2
D609432 Jennings Feb 2010 S
7653949 Kraus et al. Feb 2010 B2
D615731 Oneto, Sr. May 2010 S
7731517 Lee et al. Jun 2010 B2
7739748 Nilforushan et al. Jun 2010 B2
7753685 Lee et al. Jul 2010 B2
D622937 Bay Sep 2010 S
7816628 Fernandez et al. Oct 2010 B2
7816632 Bourke, III et al. Oct 2010 B2
D626725 Snyder et al. Nov 2010 S
D627540 Claeys Nov 2010 S
D628771 Kanada et al. Dec 2010 S
D631393 Shani Jan 2011 S
D632215 Shani Feb 2011 S
7886368 Hood Feb 2011 B2
D636973 Smith et al. May 2011 S
D638612 Benderradji May 2011 S
D639025 Holder Jun 2011 S
7959351 Thorpe Jun 2011 B1
7966667 Tomlinson et al. Jun 2011 B2
D641137 Evans Jul 2011 S
7994752 Soar Aug 2011 B2
D648924 Propst Nov 2011 S
8062797 Fisher et al. Nov 2011 B2
8105371 Giocondo, Jr. Jan 2012 B1
8107653 Wolfe Jan 2012 B2
D653836 Woyshner et al. Feb 2012 S
D654664 Evans et al. Feb 2012 S
8144911 Chiang et al. Mar 2012 B2
8157570 Chen Apr 2012 B2
D662282 Meunier-Bouchard Jun 2012 S
D662285 Rushworth Jun 2012 S
8251157 Gray et al. Aug 2012 B2
D671714 McCarroll Dec 2012 S
D672531 Kelfer Dec 2012 S
D677861 Perry Mar 2013 S
D685160 Savage Jul 2013 S
D689670 Lorenc Sep 2013 S
D692082 Lee Oct 2013 S
D692212 Coward Oct 2013 S
8564249 Lundqvist et al. Oct 2013 B2
D693093 Pasloski Nov 2013 S
D693094 Pasloski Nov 2013 S
D693096 Russo Nov 2013 S
D693543 Rao Nov 2013 S
D698524 Roberts Feb 2014 S
D698525 Roberts Feb 2014 S
D698528 Roberts et al. Feb 2014 S
D702419 Mertes Apr 2014 S
D703922 Roberts et al. May 2014 S
D704849 Hunter May 2014 S
D704924 Roberts et al. May 2014 S
D707017 Wolf et al. Jun 2014 S
D707423 Pezzimenti Jun 2014 S
D707424 Pezzimenti Jun 2014 S
D707923 Borovicka et al. Jul 2014 S
D710573 Pezzimenti Aug 2014 S
D713128 Pezzimenti et al. Sep 2014 S
D713620 Pezzimenti et al. Sep 2014 S
D713621 Pezzimenti et al. Sep 2014 S
D714022 Mong et al. Sep 2014 S
D714526 Ingram Oct 2014 S
D714527 Borovicka Oct 2014 S
D716022 Judge et al. Oct 2014 S
D729690 Riviere Feb 2015 S
D732799 Smith Jun 2015 S
D733400 Cunningham Jul 2015 S
D734922 Docker Jul 2015 S
D736496 Gonzalez Aug 2015 S
D754947 Borovicka May 2016 S
D755478 Grosbol May 2016 S
D757398 Ingram May 2016 S
D765351 Shaw Sep 2016 S
20010047992 Deangelis et al. Dec 2001 A1
20020076949 Tilbury et al. Jun 2002 A1
20020142112 Tarrell Oct 2002 A1
20030051286 Gregg Mar 2003 A1
20030074712 Liao Apr 2003 A1
20040069761 Carr et al. Apr 2004 A1
20040070996 Carr Apr 2004 A1
20040133962 Baumel Jul 2004 A1
20040153012 Schroeder Aug 2004 A1
20040221362 Bosne et al. Nov 2004 A1
20040237169 Wood et al. Dec 2004 A1
20040256381 Haas et al. Dec 2004 A1
20040257038 Johnson et al. Dec 2004 A1
20050007406 Haas et al. Jan 2005 A1
20050098421 Kohatsu May 2005 A1
20050217004 Haberfeld Oct 2005 A1
20050246826 McCarter et al. Nov 2005 A1
20060001727 Haas et al. Jan 2006 A1
20060048263 Walsh Mar 2006 A1
20060060576 Haas et al. Mar 2006 A1
20060128169 Marmaropoulos et al. Jun 2006 A1
20060166520 Marmaropoulos et al. Jul 2006 A1
20060213895 Dennis Sep 2006 A1
20060227675 Fried Oct 2006 A1
20060277652 Okajima Dec 2006 A1
20070045269 Vassallo Mar 2007 A1
20070107111 Passman May 2007 A1
20070118960 Goodwin May 2007 A1
20070130667 Gagnon et al. Jun 2007 A1
20070151593 Jaynes Jul 2007 A1
20070287035 Marmaropoulos et al. Dec 2007 A1
20080005825 Tronvold Jan 2008 A1
20080023460 Huang Jan 2008 A1
20080024438 Collins et al. Jan 2008 A1
20080045269 Emory Feb 2008 A1
20080067163 Axinte et al. Mar 2008 A1
20080083740 Kaiserman Apr 2008 A1
20080116189 Fernandez May 2008 A1
20080163404 Carpentier et al. Jul 2008 A1
20080184459 Barnes Aug 2008 A1
20080223844 Cronn Sep 2008 A1
20090014436 Toya et al. Jan 2009 A1
20090032520 Cronn Feb 2009 A1
20090094725 Smith et al. Apr 2009 A1
20090158493 Kim Jun 2009 A1
20090178173 Schultz Jul 2009 A1
20090217440 Sutker Sep 2009 A1
20090230112 Ducharme et al. Sep 2009 A1
20090249529 Rodriguez et al. Oct 2009 A1
20090271917 Richardson Nov 2009 A1
20090289046 Richmond Nov 2009 A1
20090310290 Tennent Dec 2009 A1
20100031424 Sharpe Feb 2010 A1
20100100997 Lee Apr 2010 A1
20100115684 Freedman et al. May 2010 A1
20100186137 Gutshe Jul 2010 A1
20100198043 Holzer et al. Aug 2010 A1
20100263603 Baron Oct 2010 A1
20100283295 Smith et al. Nov 2010 A1
20100299800 Jackson, Jr. Dec 2010 A1
20110012552 Margalit Jan 2011 A1
20110016609 Phelps Jan 2011 A1
20110093998 Brennan Apr 2011 A1
20110108538 Gray et al. May 2011 A1
20110173731 McElroy et al. Jul 2011 A1
20110185469 Santuccio et al. Aug 2011 A1
20110260556 Partridge et al. Oct 2011 A1
20110306218 Chen Dec 2011 A1
20120047620 Ellis Mar 2012 A1
20120060260 Kochling Mar 2012 A1
20120062571 Malek Mar 2012 A1
20120074128 Blackford et al. Mar 2012 A1
20120091115 Mironichev et al. Apr 2012 A1
20120096622 Johnson Apr 2012 A1
20120298493 Hogan et al. Nov 2012 A1
20130019379 Shadid Jan 2013 A1
20130037531 Gray Feb 2013 A1
20130042383 Ryan et al. Feb 2013 A1
20130212772 Apostoloff Aug 2013 A1
20130227757 Chen Sep 2013 A1
20130276201 Pezzimenti Oct 2013 A1
20130334194 Chen Dec 2013 A1
20140246416 White Sep 2014 A1
20140310847 Ulriksen et al. Oct 2014 A1
20150060430 Tsuge Mar 2015 A1
20150271873 Gray et al. Sep 2015 A1
20170013889 Chen Jan 2017 A1
Foreign Referenced Citations (19)
Number Date Country
1258201 Jun 2000 CN
300874882 Jan 2009 CN
303045022 Dec 2014 CN
20012075 Nov 2000 DE
20012530 Nov 2000 DE
102004029017 Jan 2006 DE
102004029017 Jan 2008 DE
000082607-0002 Feb 2004 EM
000082607-0003 Feb 2004 EM
2793116 Nov 2000 FR
2158693 Nov 1985 GB
6251757 Sep 1994 JP
2000064112 Feb 2000 JP
D1203602 Apr 2004 JP
D1220383 Oct 2004 JP
20090182-0010 Nov 2009 NO
00047131 May 2000 RU
00089193 Jul 2004 RU
WO 2012034416 Mar 2012 WO
Non-Patent Literature Citations (11)
Entry
REI Windbreaker Fleece Vest—All Around Sturdy Bargain of a Vest, Announced Dec. 2, 2014 [ Site Visited Jul. 11, 2016] http://www.getoutdoorgear.com/1129/rei-windbrake-fleece-vest-all-around-sturdy-bargain-of-a-vest/.
Schott Shot Padding Primaloft Vest nylon Cotton Padded Vest, Announced Oct. 25, 2014 [Site Visited Jul. 11, 2016 ] http ://global. rakuten .com/en/store/super-rag/item/3142034/?s-id=borderless _recommend item_ en.
Weight Vest for Osteoporosis—Alternative Solutions, Announced Aug. 20, 2013 [ Site Visited Jul. 11, 2016] http://weightvest4osteoporosis.com/.
Burton 2013 Women's Tonic Snowboard Jacket Bright White Colorblock, Announced date N/A [Site Visited Aug. 10, 2016] http://www.xbusa.com/burton-2013-women-s-tonic-snowboard-jacket-bright-white-colorblock.html.
For 3M Fanatics, Vapor Flash Jacket—p. 23—Nike Talk, Announced Dec. 9, 2014 [Site Visited Aug. 10, 2016] http://niketalk.com/t/319284/for-3m-fanatics-vapor-flash-jacket/6606.
Hardshell Jacket ‘Rebirth’ in 2011?—Gear Junkie, Announced Nov. 18, 2010 [Site Visited Aug. 10, 2016] https://gearjunkie.com/waterproof-breathable-hardshell-jackets-2011.
United States Patent Office Notice of Allowance for U.S. Appl. No. 29/542,035 dated Jan. 26, 2017 (9 pages).
“Convertible Heated Soft-shell Jacket”, http://www.plusheat.com/by-brand/convertible-heated-soft-shell-jacket.html, pp. 1-20, 2010.
Battery Powered 12V Compatible, http://www.electricblanket.net/p-96-heated-electric-jacket-battery-12-volt-compatable.aspx, pp. 1-4, 1999.
The Home Depot. http://www.homedepot.com/p/Milwaukee-Large-M 12-Lithium-Ion-Cordless-Black-MZ-Heated-Jacket-Kit-2345-L/203461266. Customer Review from Sep. 2012. “Large M12 Lithium-Ion Cordless Black MZ Heated Jacket Kit”.
Series and Parallel Battery Configurations and Information, <https://batteryuniversity.com/index.php/learniarticle/serial_and_parallel_battery_configurations>, Jun. 18, 2019 (4 pages).
Related Publications (1)
Number Date Country
20160128393 A1 May 2016 US
Provisional Applications (1)
Number Date Country
62076001 Nov 2014 US