WO2009111864A1 - Electrical switch assembly - Google Patents

Electrical switch assembly Download PDF

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Publication number
WO2009111864A1
WO2009111864A1 PCT/CA2009/000280 CA2009000280W WO2009111864A1 WO 2009111864 A1 WO2009111864 A1 WO 2009111864A1 CA 2009000280 W CA2009000280 W CA 2009000280W WO 2009111864 A1 WO2009111864 A1 WO 2009111864A1
Authority
WO
WIPO (PCT)
Prior art keywords
plunger element
elastomeric
actuation button
dome
switch assembly
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CA2009/000280
Other languages
English (en)
French (fr)
Inventor
Christopher Larsen
Albert Beyginian
Theodor Nuica
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Omron Dualtec Automotive Electronics Inc
Original Assignee
Omron Dualtec Automotive Electronics Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Omron Dualtec Automotive Electronics Inc filed Critical Omron Dualtec Automotive Electronics Inc
Priority to JP2010550002A priority Critical patent/JP2011515011A/ja
Priority to CN200980108552.1A priority patent/CN102017036B/zh
Priority to BRPI0909335A priority patent/BRPI0909335A2/pt
Priority to DE112009000594T priority patent/DE112009000594T5/de
Publication of WO2009111864A1 publication Critical patent/WO2009111864A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H21/00Switches operated by an operating part in the form of a pivotable member acted upon directly by a solid body, e.g. by a hand
    • H01H21/02Details
    • H01H21/18Movable parts; Contacts mounted thereon
    • H01H21/22Operating parts, e.g. handle
    • H01H21/24Operating parts, e.g. handle biased to return to normal position upon removal of operating force
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H21/00Switches operated by an operating part in the form of a pivotable member acted upon directly by a solid body, e.g. by a hand
    • H01H21/02Details
    • H01H21/18Movable parts; Contacts mounted thereon
    • H01H21/22Operating parts, e.g. handle
    • H01H2021/225Operating parts, e.g. handle with push-pull operation, e.g. which can be pivoted in both directions by pushing or pulling on the same extremity of the operating member
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H2221/00Actuators
    • H01H2221/064Limitation of actuating pressure

Definitions

  • the invention relates to electrical switches and more particularly to electrical switches utilizing an elastomeric portion for actuating the switch BACKGROUND [0003]
  • electrical switches are often used for controlling electro-mechanical systems such as power windows, sunroofs, door locks, power mirrors, etc. These switches may often be integrated into a console or door frame along with other components and accessories. Due to the repeated use of many of the electrical switches, durability and reliability are paramount. Moreover, a malfunctioning switch can prevent the use of an important feature such as the ability to open or close a door window.
  • Various prior art window switches teach specific arrangements for implementing switches in an automobile.
  • such prior art switches teach multi- functional switches using a single toggle or "actuator knob".
  • a single window switch may be used to provide dual-stage operation in both forward and rearward directions.
  • the common application for such switches is to provide manual and automatic window operation for opening and closing same, wherein the application of a first force operates the window switch in a manual mode, and the application of a second force, being greater than the first force, operates the window switch in an automatic mode.
  • the window continues to open without further tilting of the actuator knob.
  • these window switches offer tactile feedback to the user enabling the user to discern between the manual mode and the automatic mode.
  • collapsible elastomeric domes are operated on by a actuator knob to bridge contacts on an underlying circuit board to in turn operate the switch.
  • the elastomeric domes will often have a limited lifespan, which can vary according to the material used, the experience of any abnormal or irregular forces acting on the domes and the frequency of use. Abnormal and irregular forces can be affected by the actuating mechanism used and the force applied by the user and can cause the dome and thus the switch to fail prematurely.
  • a switch assembly comprising a body; an actuation button pivotally supported by the body; an electrical circuit portion underlying the actuation button; an elastomeric portion overlying the electrical circuit portion, the elastomeric portion having at least one collapsible dome formed therein for providing a connection on the electrical circuit portion when the dome is in a collapsed position; a plunger element supported by the body between the actuation button and the elastomeric portion, the plunger element comprising a first upwardly directed portion bearing against the actuation button such that movement ofthe actuation button causes the plunger element to move towards the elastomeric portion, and a second downwardly directed portion aligned with the collapsible dome such that the movement of the actuation button beyond a predetermined threshold causes the plunger element to collapse the elastomeric dome; and a limiting mechanism between said plunger element and said elastomeric portion to restrict the movement beyond a lower limit to protect overloading ofthe coll
  • a switch assembly comprising a body; an actuation button pivotally supported by the body; an electrical circuit portion underlying the actuation button; an elastomeric portion overlying the electrical circuit portion, the elastomeric portion having at least one collapsible dome formed therein for providing a
  • the plunger element supported by the body between the actuation button and the elastomeric portion, the plunger element comprising a first upwardly directed portion bearing against the actuation button such that movement of the actuation button causes the plunger element to move towards the elastomeric portion, and a second downwardly directed portion aligned with the collapsible dome such that the movement of the actuation button beyond a predetermined threshold causes the plunger element to collapse the elastomeric dome, and at least one profiled portion for interacting with a complementary profiled portion on the body to restrict movement of the plunger element in the plane defined by the electrical circuit portion.
  • a switch assembly comprising a body; an actuation button pivotally supported by the body; an electrical circuit portion underlying the actuation button; an elastomeric portion overlying the electrical circuit portion, the elastomeric portion having at least one active collapsible dome formed therein for providing a connection on the electrical circuit portion when the dome is in a collapsed position and comprising at least one passive collapsible dome formed therein for providing tactile feedback during operation of the actuation button without operating on the electrical circuit portion; and a plunger element supported by the body between the actuation button and the elastomeric portion, the plunger element comprising a first upwardly directed portion bearing against the actuation button such that movement of the actuation button causes the plunger element to move towards the elastomeric portion, a second downwardly directed portion aligned with the active collapsible dome such that the movement of the actuation button beyond a predetermined threshold causes the plunger element to collapse the elasto
  • Figure 1 is a partial perspective view of a control console in the interior of an automobile comprising an electrical switch assembly.
  • Figure 2 is an exploded perspective view of the window switch assembly shown in Figure 1.
  • Figure 3 is a sectional view of the switch assembly along the line III-III shown in Figure 1 in a neutral position.
  • Figure 4 is a sectional view of the switch assembly showing a manual operation position.
  • Figure 5 is a sectional view of the switch assembly showing a transitional position.
  • Figure 6 is a sectional view of the switch assembly showing an automatic operation position.
  • Figure 7 is a sectional view of the switch assembly showing a full travel position.
  • Figure 8 is a profile view of the plunger element and a portion of the elastomeric portion shown in Figure 7.
  • Figure 9 is another embodiment of the lower limiting mechanism shown in Figure 8.
  • Figure 10 is yet another embodiment of the lower limiting mechanism shown in Figure 8.
  • Figure 11 is a sectional view of the switch assembly showing the interaction between the plunger element and the body for limiting fore and aft movements.
  • Figure 12 is a partial perspective view showing portion A identified in Figure 11.
  • Figure 13 is a sectional plan view along the line XIII-XIII in Figure 7, showing the interaction between the plunger element and the body for limiting side-to-side movements.
  • Figure 14 is an enlarged view of the interactions shown in Figure 11.
  • Figures 15(a) and 15(b) illustrate an active collapsible dome and a passive collapsible dome in a neutral position.
  • Figures 16(a) and 16(b) illustrate the active collapsible dome and the passive collapsible dome in a collapsed position.
  • a switch assembly of the type utilizing an elastomeric portion may be configured to restrict or limit movement of the moveable components. It has also been found that restricting relative movement of the components can minimize rattling due to vibration of the switch assembly without requiring additional components to fix them in place.
  • the elastomeric pad comprises one or more collapsible domes that are positioned such that a plunger element supported by the switch assembly collapses the domes when an actuation button is tilted.
  • the plunger element in one aspect, may have a limiting mechanism to limit downward movement of the plunger element such that the collapsible domes are not overloaded.
  • the body and plunger may also be formed with complementary profiled portions that restrict any one or more of fore/aft, side-to-side and up/down movements of the plunger with respect to the body to prevent abnormal loading on the collapsible domes to increase the lifecycle of the elastomeric portion and to minimize rattling of the plunger element within the body of the switch assembly.
  • both single position,and dual position switches can be interchanged by modifying certain ones of the elastomeric domes such that they are passive thus enabling the same switch assembly to be used for both double and single detent operations by simply replacing the elastomeric portion with one having such passive domes.
  • Figure 1 illustrates a control console 10 in the interior of a vehicle that supports and houses a switch assembly 20 by exposing a portion thereof through an aperture 12.
  • the control console 10 may be located on a door, central console or any other portion of the vehicle where a switch assembly 20 is to be located.
  • FIG. 2 shows an exploded assembly view of the switch assembly 20.
  • a limited number of reference numerals are shown in Figure 2, which refer only to the components that are, in this embodiment, assembled to provide the switch assembly 20.
  • the switch assembly 20 is comprised of a base portion 24 that provides an interface to an electrical connector or harness (not shown) for interfacing with vehicle's electrical system.
  • the base 24 supports a printed circuit board (PCB) 32, which in turn supports an overlying elastomeric portion 34.
  • PCB printed circuit board
  • the elastomeric portion 34 comprises, in this example, a set of four collapsible elastomeric domes 36, which are pressed and collapsed during operation of the switch assembly 20 to in turn operate on the PCB 32 as will be explained in greater detail below.
  • the switch assembly 20 also comprises a main body 22, which acts as a shroud or covering for the elastomeric portion 34, the PCB 32 and any connections between the PCB 32 and the base 24.
  • the body 22 also locates a pair of plunger elements 44 such that they are aligned with respective ones of the elastomeric domes 36.
  • the plunger elements 44 are operated on by a tiltable actuation button, commonly referred to as an actuator knob 64. Where the switch assembly 20 is used for controlling a vehicle window, the actuator knob 64 may also be referred to as a window knob
  • the actuator knob 64 is rotatably supported atop the body and during movement thereof operates the plunger elements 44. It can be seen that the plunger elements 44 are oppositely directed and as will be explained below, one will operate upon a forward tilt (downward push) of the actuator knob 64 while another will operate upon a rearward tilt (upward pull) of the actuator knob 64. In general, both plunger elements 44 operate in a similar manner and thus the operation of only one needs to be described in detail.
  • Figure 3 a sectional view along the line III-III in Figure 1 is shown.
  • Figure 3 illustrates a neutral position for the switch assembly 20 and shows the interaction of the components shown in Figure 2, when the switch assembly 20 is assembled. It can be seen in Figure 3 that the body 22 covers the plunger element 44, the elastomeric
  • the body 22 comprises a top portion 25 configured to include an upstanding, open ended post 28 that provides a pivot pin 30 on each side (see Figure 2) for pivotally attaching the actuator knob 64.
  • the body 22 fits over the base 24 while securing the elastomeric portion 34 over the PCB 32.
  • the elastomeric portion 34 includes a downwardly extending skirt 35 that fits between the edge of the PCB 32 and the body 22 when assembled as shown in Figure 3.
  • the collapsible domes 36 are also shown in greater detail in Figure 3.
  • the domes 36 comprise a centrally positioned, inwardly and downwardly directed actuator 38 with a contact 40 affixed to the lower end thereof.
  • the domes 36 also include a collapsible annular ring 35 (see also Figure 14) of elastomeric material connecting the actuator 38 to the base of the elastomeric portion 34 that when collapsed causes downward movement of the actuator 38 and contact 40 towards the PCB 32, such that the contact 40 may engage an underlying portion of the PCB 32.
  • the plunger element 44 is seated atop a pair of domes 36, with a frontward foot 46 aligned with a frontward dome 36 and a rearward foot 48 aligned with a rearward dome 36, where in this example, the frontward direction is towards the left, i.e. the "front" of the switch assembly 20.
  • the frontward foot 46 and rearward foot 48 are separated by a lower body portion 50 that extends between the feet 46, 48.
  • the lower body portion 50 is separated from an upper body portion 52 by a ridge 51 that provides a substantially upwardly facing surface for bearing against a portion of the body 22 during assembly as will be explained below.
  • the lower body portion 50 is profiled to include a frontward vertically oriented passage or slot 56 and a rearward vertically oriented passage or slot 58.
  • the slots 56, 58 are included to accommodate complementary profiled portions of the body 22 for restricting movement of the plunger element 44 as will be explained below.
  • the upper body portion 52 is offset towards the frontward foot 46 and frontward slot 56 such that it is aligned with a cam 72 formed in an extension 70 extending from the underside of the actuator knob 64. In this way, tilting the actuator knob 64 translates into movement of the cam 72 against the upper body portion 52 thus forcing movement of the plunger element 44 according to the
  • the plunger element 44 also comprises a downwardly extending limiting mechanism, which in this embodiment is a post 54 aligned with the cam 72 and upper body portion 52 along the line of action of the actuator knob 64.
  • the post 54 is sized so as to not interfere with the collapsing of the domes 36 but to ensure that the plunger element 44 does not overload the domes 36 by overstressing the collapsible rings 35.
  • the post 54 avoids the need to fix the plunger element 44 to the body 22 thus decreasing the number of components and the time for assembly.
  • the actuator knob 64 is rotatably supported by the upstanding post 28 using the pair of inwardly extending pins 30 that fit through corresponding holes of a pair of extensions 70 (i.e. one for acting on each plunger element 44).
  • the actuator knob 64 has a profiled outer shell that comprises a front curved portion 68 and an upper curved portion 66 integrally formed to provide an ergonomic feel for the user.
  • the actuator knob 64 is profiled so that it may be pressed on the upper portion 66 to effect a frontward tilt and pulled using the front portion 68 to effect a rearward tilt.
  • Figure 4 illustrates a first operating position that is often referred to as a "snap over" point wherein the collapsible ring 35 of the forward dome 36 begins to collapse and where the user would experience a maximum opposing force and tactile feedback. This is caused by frontward tilting of the actuation knob 64 about the pin 30 a certain distance which causes the cam 72 to roll over the upper body portion 52 of the plunger element 44, which in turn pushes the forward foot 46 in a generally downward direction.
  • the dome 36 fully collapses and the contact 40 engages the underlying portion of the PCB 32 thus initiating the first operating mode.
  • the switch assembly 20 is used for a power window in a vehicle and the first operating mode is the manual "open window” or "window down” mode.
  • the snap over point for the rear dome 36 occurs roughly at the same time as the initiation of the first operating mode because the collapse of the frontward dome 36 causes the entire plunger element 44 to move in a downward direction.
  • the rear foot 48 begins to move the rear dome 36 past its snap over point to a second operating position wherein the contact 40 on the rear dome 36 engages the
  • the second operating position provides automatic window movement such that the window continues to lower until it is fully opened. It can be appreciated that in the opposite direction, the automatic setting will cause the window to automatically close until fully closed.
  • FIG 7 shows the plunger element 44 and elastomeric portion 34 in isolation to illustrate the relative sizing and configuration of the post 54, feet 46, 48 and lower body portion 50. It can be seen that the post 54 resists further downward movement of the feet 46, 48 whilst not interfering with the collapsing of the domes 36.
  • the post 54 is generally aligned with the cam 72 and upper body portion 52 such that it is along the line of action during operation. This configuration is used to balance the plunger element 44 with respect to the elastomeric portion 34 to avoid abnormal loads that impose shear forces on the domes 36.
  • another plunger element 44 is included in the switch assembly 20, which is used to operate the switch assembly 20 in the opposite direction, e.g. to raise or close a vehicle window.
  • the other plunger element 44 operates in the same way and thus details thereof need not be reiterated.
  • the actuating knob 64 comprises another extension 70 with a corresponding cam 72 for engaging an upper body portion 52 of the other plunger element 44.
  • the post 54 shown in Figures 2-8 is only one embodiment for providing a downward limiting mechanism between the plunger element 44 and the elastomeric portion 34.
  • Figure 9 illustrates another embodiment, wherein the limiting mechanism comprises a pair of downwardly extending ribs or blades 154 that are spaced along the lower edge 53 of the plunger element 44.
  • a pair of blades 154 are spaced between the feet 46, 48 to balance the plunger element 44, however, greater than or fewer than two blades 154 may be used depending on the cost and space constraints.
  • Figure 10 illustrates another embodiment, wherein the limiting mechanism comprises a pair of blades 254 flanking at least
  • the limiting mechanism is shown as being part of the plunger element 44 in these examples it will be appreciated that the limiting mechanism may be formed as part of the elastomeric portion 34 or body 22, e.g as an upstanding post, rib or other protrusion on the elastomeric portion 34 or a horizontal protrusion from the body 22. However, it may be noted that since the elastomeric material is softer than a plastic, which would typically be used to construct the plunger element 44, including the limiting mechanism with the elastomeric pad 34 may be less effective.
  • the limiting mechanism may generally comprise any extension or interfering element attached to or part of any one of the plunger element 44, the elastomeric portion 34, and the body 22 or other component, which is capable of interfering with movement of the plunger element 44 with respect to the elastomeric portion 34 beyond a threshold to avoid overloading the domes 36.
  • Relative movement of the plunger element can be in the fore and aft directions as well as the side to side directions and can cause uneven loading to one side of the domes 36 resulting in shear forces or even torsional forces being applied to the domes 36. It has been found that the domes 36 can withstand prolonged and repeated use when operated properly, namely when collapsed in a generally vertical direction with minimal strain in other
  • the profile of the plunger element 44 provided by the slots 56, 58 is used to locate the plunger element 44 within the body 22 by interacting with complimentary profiled portions on the body 22.
  • a first tab or rib 80 extends downwardly from the top portion 25 of the body 22 through the frontward slot 56 and a second rib 82 extends downwardly from the top 25 of the body 22 through the rearward slot 58.
  • Figure 12 shows an enlarged view of portion A shown in Figure 11, which illustrates the interaction of the rib 80 and the frontward slot 56. It can be seen that the ribs 80, 82 guide the plunger element 44 in a generally vertical direction as it is moved by the actuator knob 64. The relative fore and aft movements are restricted according to the tolerances between the ribs 80, 82 and the slots 56, 58.
  • the tolerance between the frontward rib 80 and frontward slot 56 is less than that of the rearward rib 82 and rearward slot 58 since the frontward foot 46 actuates prior to the rearward foot 46 on an offset fulcrum which imparts a slight arcuate path on the rearward foot 48 as it actuates the rearward dome 36.
  • the arcuate path thus requires more room for movement of the rearward slot 58 around the fixed rib 82.
  • the ribs 80, 82 are also useful in guiding and locating the plunger element 44 in the body 22 during assembly of the switch assembly 20.
  • the transition between the lower body portion 50 and the upper body portion 52 of the plunger element 44 defines a ridge 51.
  • the ridge 51 can be formed on both sides of the plunger element 44, similar to the provision of opposite slots 56/56' and 58/58'.
  • the ridges 51 can be used to further locate the plunger element 44 in the
  • plunger element 44 during operation, is operated through the interface of the cam 72 and the upper body portion 52. As such, upward movement of the plunger element 44 is normally restricted by the actuation knob 64. However, the cam 72 only bears against the upper body portion 52 when the actuator knob 64 is being tilted forward or in the neutral position. As can be seen in Figure 2, another plunger element 44 may be used to provide a similar switching sequence in the opposite direction, e.g. to raise or close a car window. When operated in the opposite direction, the cam 72 would no longer engage the plunger element 44 as shown in Figures 3-7.
  • the plunger element 44 is prevented from escaping the body 22, vertical movement of the plunger element 44 can also cause a rattling sound in the switch assembly 20, which as discussed above is generally undesirable.
  • the upper ribs 90 keep the plunger element 44 seated in the neutral position atop the elastomeric portion 34 as shown in Figure 3.
  • the plunger element 44 can be more conveniently assembled in the body 22 by restricting movement of the plunger element 44 rather than fixing the plunger element 44 to the body 22.
  • the restricted movement of the plunger element 44 not only prevents undesirable stresses and overloading of the domes 36 by controlling movement of the plunger element 44 with respect to the elastomeric portion 34, but also reduces rattling noises caused by vibration of the switch assembly 20.
  • the movement of the plunger element 44 is restricted by providing complementary interacting profiled portions of the body 22 and the plunger element 44, e.g. by way of ribs, slots and ridges as described above.
  • the body 22 may first be overturned so that the post 38 is facing down.
  • the plunger elements 44 may then be guided into position by ensuring the ribs 80, 82, 84, 86 slide through the slots 56, 56', 58, 58'.
  • the ridges 51 will also be seated against the upper ribs 90.
  • the elastomeric portion 54 may then be inserted into the body such that the domes 36 are aligned with the plunger elements 44 and then the PCB 32 inserted such that it is contained by the skirt 35.
  • the elastomeric portion 34 and PCB 32 can be fit together first and then inserted if desired. This secures the plunger elements 44 between the elastomeric portion 34 and the body 22 and requires no further positioning of the plunger elements 44.
  • the base 24 may then be connected to the body 22 and the PCB 32 to complete the assembly. It will be appreciated that fasteners and other retaining mechanisms such as screws and clips may be used to secure the PCB 32 to the body 22 and to connect the body 22 to the base 24.
  • the actuator knob 64 may then be snapped into place by aligning the holes in the actuator knob 64 with the corresponding pins.
  • the actuator knob 64 may be attached to the base at the beginning of the assembly process.
  • the post 28 can be given a profile that distinguishes the frontward end from the rearward end to assist in orienting the actuator knob 64.
  • the switch assembly 20 shown in Figures 2-14 and described above operates in a "double-detent” fashion by utilizing the collapse of a pair of domes 36 in succession to provide two switching stages. Similar switch assemblies may require only a single stage or “single-detent” operation, e.g. one providing manual window operation only. It has been found that the body 22, plunger element 44 and actuator knob 46 used for a double-detent operation can also be used for a single-detent operation by interchanging certain ones of the "active" elastomeric domes 36 (i.e. those having contacts 40) with "passive" elastomeric domes 136 (i.e.
  • a simple replacement of the elastomeric portion 34 changes the switch assembly 20 from a double-detent switch to a single-detent switch.
  • the frontward dome 36 remains the same while the rearward dome 36 is interchanged with a passive dome 136.
  • a comparison between the active domes 36 and passive domes 136 in a neutral position is shown in Figures 15(a) and 15(b) respectively.
  • the passive dome 136 is generally similar in structure to the active dome 36 but includes modified proportions to provide no perceivable snap feel to the dome 136 commonly referred to as a "zero tactile ratio". Mechanically, this can be described as where there is no inflection of the force/displacement curve of the dome 136. This permits an increased travel of the actuator knob 46 than if only one active dome 36 were used and does not include a snap-like feel when compared to an active dome 36.
  • the passive dome 136 comprises an elongated actuator 138 when compared to the actuator 38 and does not utilize a contact 40.
  • the annular ring 135 in the passive dome 136 may be less angled with respect to the pad 134 towards the actuator 138 and such angle can be varied to achieve the zero tactile ratio. Also, since the actuator 138 is elongated, it should collapse less abruptly than the active dome 35, which masks the presence of the passive dome 136, i.e. removes the snap feel.

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PCT/CA2009/000280 2008-03-13 2009-03-10 Electrical switch assembly Ceased WO2009111864A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
JP2010550002A JP2011515011A (ja) 2008-03-13 2009-03-10 電気スイッチアセンブリ
CN200980108552.1A CN102017036B (zh) 2008-03-13 2009-03-10 电开关组件
BRPI0909335A BRPI0909335A2 (pt) 2008-03-13 2009-03-10 conjunto de comutador elétrico.
DE112009000594T DE112009000594T5 (de) 2008-03-13 2009-03-10 Aufbau eines elektrischen Schalters

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US3635808P 2008-03-13 2008-03-13
US61/036,358 2008-03-13

Publications (1)

Publication Number Publication Date
WO2009111864A1 true WO2009111864A1 (en) 2009-09-17

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ID=41061812

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CA2009/000280 Ceased WO2009111864A1 (en) 2008-03-13 2009-03-10 Electrical switch assembly

Country Status (6)

Country Link
US (1) US8138432B2 (enExample)
JP (1) JP2011515011A (enExample)
CN (1) CN102017036B (enExample)
BR (1) BRPI0909335A2 (enExample)
DE (1) DE112009000594T5 (enExample)
WO (1) WO2009111864A1 (enExample)

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JP5698716B2 (ja) 2012-09-07 2015-04-08 株式会社東海理化電機製作所 スイッチ装置
ITTO20130733A1 (it) * 2013-09-10 2015-03-11 Bitron Spa Dispositivo di comando per microinterruttori
CN105655182B (zh) * 2016-01-11 2019-07-26 乐星汽车技术(无锡)有限公司 一种玻璃升降及后视镜调节开关
DE102017006469B3 (de) * 2017-07-08 2018-11-22 Audi Ag Bedienvorrichtung zum Verstellen eines Kraftfahrzeugbauteils und Kraftfahrzeug
US20190114936A1 (en) * 2017-10-16 2019-04-18 Frame Works, Inc. Artwork voice message system
CN112117147A (zh) * 2020-08-26 2020-12-22 宁波鹏程汽车系统有限公司 汽车组合按键
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WO2025196837A1 (en) * 2024-03-20 2025-09-25 Panasonic Life Solutions India Private Limited An improved operating panel for a switch assembly

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CN102017036A (zh) 2011-04-13
BRPI0909335A2 (pt) 2015-09-29
US20090229961A1 (en) 2009-09-17
CN102017036B (zh) 2014-03-19
US8138432B2 (en) 2012-03-20
DE112009000594T5 (de) 2011-02-10
JP2011515011A (ja) 2011-05-12

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