In-vehicle input device
10095364 ยท 2018-10-09
Assignee
Inventors
- Hiroyuki Bannai (Tokyo, JP)
- I Ka (Tokyo, JP)
- Atsushi Masuda (Tokyo, JP)
- Kazuhiko Hiratsuka (Tokyo, JP)
- Marcello Milli (Tokyo, JP)
Cpc classification
G06F2203/04107
PHYSICS
B60K35/00
PERFORMING OPERATIONS; TRANSPORTING
G06F3/04886
PHYSICS
G06F3/0445
PHYSICS
B60K35/10
PERFORMING OPERATIONS; TRANSPORTING
B60K35/60
PERFORMING OPERATIONS; TRANSPORTING
International classification
G06F3/041
PHYSICS
G06F3/0488
PHYSICS
Abstract
An in-vehicle input device includes a touch panel including a lower electrode, an upper electrode, and a spacer, and is capable of detecting a capacitance between the lower electrode and the upper electrode. The device has an operation surface located above the upper electrode. The operation surface includes a plurality of operation areas. The spacer has a plurality of openings that coincide with the operation areas in plan view. The device further includes a suppression layer that is disposed between the operation surface and the upper electrode or disposed on an upper surface of the operation surface. The suppression layer eliminates or reduces formation of a capacitance between the upper electrode and an operator. The device detects an input operation based on a change in distance between the lower electrode and the upper electrode in response to pressing any of the operation areas by the operator.
Claims
1. An on-vehicle input device comprising: a touch panel including: a lower electrode; an upper electrode facing the lower electrode; an operation surface located above the upper electrode, the operation surface including a plurality of operation areas; a spacer disposed between the lower electrode and the upper electrode, the spacer having a plurality of openings disposed under the operation areas such that the operation areas are superimposed on the corresponding operation areas in plan view; and a first suppression layer disposed between the operation surface and the upper electrode, or disposed on an upper surface of the operation surface, the first suppression layer being made of a conductive metal to be a first shield eliminating or reducing formation of a capacitance between the upper electrode and an operator; and a second suppression layer disposed below the lower electrode on a side opposite to the upper electrode, the second suppression layer being made of a conductive metal to be a second shield eliminating or reducing formation of a capacitance between the lower electrode and the operator, wherein the device is configured to detect an input operation by an operator, based on a change in a distance between the lower electrode and the upper electrode in the openings in response to the operator's pressing any of the operation areas.
2. The on-vehicle input device according to claim 1, further comprising: a first detecting mechanism configured to detect the input operation when the lower electrode and the upper electrode come into contact with each other; and a second detecting mechanism configured to detect the input operation based on a change in capacitance caused by the change in the distance between the lower electrode and the upper electrode.
3. The on-vehicle input device according to claim 2, wherein the first detecting mechanism detects a switch operation performed on the operation area and the second detecting mechanism detects a slide operation performed on the operation area.
4. The on-vehicle input device according to claim 3, wherein the plurality of operation areas include a first operation area for the first detection mechanism and a second operation area for the second detection mechanism, and the plurality of opening include a first opening corresponding to the first operation area and a second opening corresponding to the second operation area, and wherein the device detects a flick operation when a switch operation performed on the second operation area is detected within a predetermined time period after a slide operation onto the first operation area is detected.
5. The on-vehicle input device according to claim 1, wherein the plurality of operation areas include a plurality of third operation areas, and the plurality of openings include a plurality of third openings corresponding to the third operation areas, and wherein each of the third openings is filled with an elastic member and each of the third areas is formed as a protrusion protruding upward from the operation surface.
6. The on-vehicle input device according to claim 1, further comprising: a conductive contact member disposed on at least one of facing surfaces of the lower and upper electrodes, the contact member protruding into corresponding one of the openings.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(11) An in-vehicle input device according to the present invention will be described with reference to the drawings. The in-vehicle input device according to the present invention is used to operate various systems and apparatuses in a vehicle, for example, an air-conditioner, a cruise control system, and an in-vehicle audio system. Applications of the in-vehicle input device according to the present invention are not limited to the following embodiments and may be appropriately modified. As used herein, unless otherwise noted, the term +X direction refers to the rightward direction in the drawings, the term X direction refers to the leftward direction, the term +Y direction refers to the direction away from an operator, the term Y direction refers to the direction closer to the operator, the term +Z direction refers to the upward direction, and the term Z direction refers to the downward direction.
First Embodiment
(12) An exemplary configuration of an in-vehicle input device 100 according to a first embodiment of the present invention will be described with reference to
(13) As illustrated in
(14) Referring to
(15) As illustrated in
(16) As illustrated in
(17) The lower sheet 11 excluding the lower electrode 11a and the insulating layer 13b of the upper sheet 13 are made of insulating plastic, such as polyethylene terephthalate (PET). The lower electrode 11a and the upper electrode 13a are made of conductive metal.
(18) In addition to the touch panels 10, the in-vehicle input device 100 includes an input detecting circuit (not illustrated) electrically connected to the touch panels 10. Thus, the in-vehicle input device 100 can determine the capacitance C0 between the lower electrode 11a and the upper electrode 13a and detect contact between the lower electrode 11a and the upper electrode 13a.
(19) As illustrated in
(20) As described above, the operation surface 15a is included in an upper surface of the operation sheet 15. In other words, the operation surface 15a including the operation areas 15b is disposed above the upper electrode 13a. As illustrated in
(21) The operation areas 15b have marks, representing characters and symbols, such as +, , >, <, TEMP, and MODE, printed or imprinted on the operation surface 15a, which is flat. The operation areas 15b are located at positions above, or corresponding to the above-described openings 12a. When any of the operation areas 15b having the marks is pressed downward (depression), information associated with the above-described character or symbol can be input. A surface on which marks are printed is not limited to the operation surface 15a. Marks may be printed on a lower surface of the operation sheet 15 or on the suppression layer 14. Alternatively, the marks may be printed on a film-shaped member separate from the operation sheet 15, and the film-shaped member with the printed marks may be bonded to the upper surface or the lower surface of the operation sheet 15 or the suppression layer 14.
(22) The suppression layer 14 formed by, for example, printing or applying conductive metal, such as silver, is disposed between the upper sheet 13 and the operation sheet 15 as described above. Consequently, the suppression layer 14 functions as a shielding layer 14a that acts as a shield between the upper electrode 13a included in the upper sheet 13 and the operation surface 15a included in the upper surface of the operation sheet 15. Thus, the suppression layer 14 eliminates or reduces the formation of a capacitance between the operator and the upper electrode 13a. If the operator touches the operation surface 15a including the operation areas 15b with the finger 65, the suppression layer 14 will isolate the upper electrode 13a from the operator. While the operator's finger 65 is merely placed on the operation surface 15a, the capacitance C0 between the lower electrode 11a and the upper electrode 13a is not changed.
(23) The suppression layer 14 may be disposed on the upper surface of the operation sheet 15, or on an upper surface of the operation surface 15a, instead of between the upper sheet 13 and the operation sheet 15. In such a case, while the operator's finger 65 is merely placed on the operation surface 15a, the capacitance C0 between the lower electrode 11a and the upper electrode 13a is not changed.
(24) The suppression layer 14 or the shielding layer 14a may be included in the upper sheet 13 such that the layer is disposed on an upper surface of the insulating layer 13b or disposed under the operation sheet 15. In the present embodiment and other embodiments of the present invention, the upper sheet 13 and the operation sheet 15 are different sheets. The components from the upper electrode 13a to the operation surface 15a may be included in a single sheet.
(25) In some embodiments, only the suppression layer 14 is disposed so as to extend over the upper electrode 13a. In the present embodiment, as described above, the lower suppression layer 16 that serves as a lower shielding layer 16a is disposed on a lower surface of the lower sheet 11. In this arrangement, if the operator's finger 65 is placed under the touch panel 10, the capacitance C0 between the lower electrode 11a and the upper electrode 13a will not be changed. The lower suppression layer 16, or the lower shielding layer 16a is disposed on the lower surface of the lower sheet 11. Preferably, the suppression layer 14 completely isolates the upper electrode 13a from the operator to completely prevent formation of a capacitance between the upper electrode 13a and the operator. If the suppression layer 14 does not completely isolate the upper electrode 13a from the operator, it will be necessary to set a threshold so that an operation is not detected when a capacitance formed by an operator's touch on the operation surface 15a without any depression is less than the threshold. This may allow the operation surface 15a to include a dead zone unresponsive to an operator's depression on the operation surface 15a, leading to poor response. In contrast, as long as the suppression layer 14 can completely isolate the upper electrode 13a from the operator and thus completely prevent the formation of a capacitance between the upper electrode 13a and the operator, such a dead zone will not be formed, thus enhancing ease of operation.
(26) Operations of the in-vehicle input device 100 will now be described with reference to
(27) When the operator's finger 65 presses any of the operation areas 15b of the operation surface 15a, the upper sheet 13 is curved and deformed downwardly as indicated by alternate long and two short dashes lines in
(28) As illustrated in
(29) As illustrated in
(30) The first detecting unit illustrated in
(31) The second detecting unit illustrated in
(32) In the above description of the in-vehicle input device 100 according to this embodiment, the operation area 15b located farther from the operator (in the +Y direction) of the operation areas 15b in
Modification of First Embodiment
(33) An exemplary configuration and operations of the in-vehicle input device 110 according to a modification of the first embodiment of the present invention will now be described with reference to
(34) As illustrated in
(35) The in-vehicle input device 110 differs from the in-vehicle input device 100 in that each touch panel 18 includes a contact member 19 as illustrated in
(36) Referring to
(37) Referring to
(38) Since the contact member 19 is disposed on the upper surface of the lower electrode 11a in the in-vehicle input device 110, the distance between the lower electrode 11a and the upper electrode 13a is less than that in the above-described in-vehicle input device 100.
(39) Assuming that the operation area 15b is used to detect an input operation based on contact between the lower electrode 11a and the upper electrode 13a when the operator firmly presses the operation area 15b with the finger 65 to bring the upper electrode 13a into contact with the lower electrode 11a, namely, the operation area 15b is used as the first detecting unit, a switch operation can be easily performed with a small pressure to provide contact between the lower electrode 11a and the upper electrode 13a.
(40) Assuming that the operation area 15b is used to detect an input operation based on a change in capacitance C1 formed between the lower electrode 11a and the upper electrode 13a when the operator lightly presses the operation area 15b with the finger 65 and slides the finger to change the distance between the lower electrode 11a and the upper electrode 13a, namely, the operation area 15b is used as the second detecting unit, the capacitance C1 between the lower electrode 11a and the upper electrode 13a is greater than the capacitance C0 in the in-vehicle input device 100. A change in the capacitance C1 caused by a change in the distance between the lower electrode 11a and the upper electrode 13a is accordingly greater than that in the capacitance C0. Thus, such a slide operation can be easily performed with a small pressure.
(41) When the operation area 15b is used as the first detecting unit in the in-vehicle input device 100 or 110, namely, when the operation area 15b is used for a switch operation, the operation area 15b may be merely pressed. The operation area 15b may have a relatively small detection range. In other words, the opening 12a of the spacer 12 may have a relatively small area. On the other hand, when the operation area 15b is used as the second detecting unit, namely, when the operation area 15b is used for a slide operation, the operation area 15b requires a relatively large detection range. In other words, the length of the opening 12a of the spacer 12 in a sliding direction in which the operator slides the finger 65 needs to be set relatively long.
(42) If the length of the opening 12a in the sliding direction in which the operator slides the finger 65 is long, the operation sheet 15 including the operation surface 15a would deform or sag over time. The distance between the lower electrode 11a and the upper electrode 13a would change accordingly. In spite of the absence of any operation in the operation area 15b, it might be erroneously determined that an operation has been performed in the operation area 15b.
(43) A second embodiment and a third embodiment of the present invention are intended to reduce aging effects of the operation sheet 15.
Second Embodiment
(44) An exemplary configuration and operations of the in-vehicle input device 200 according to the second embodiment of the present invention will now be described with reference to
(45) In the in-vehicle input device 200, the same components as those in the in-vehicle input device 100 are designated by the same reference numerals. A detailed description of these components is omitted.
(46) As illustrated in
(47) The in-vehicle input device 200 has the same fundamental configuration as that of the in-vehicle input device 100, except for the first operation area 25b and the second operation areas 25c included in an operation surface 25a illustrated in
(48) Referring to
(49) As illustrated in
(50) As illustrated in
(51) In the in-vehicle input device 200, the first operation area 25b is used as the first detecting unit and each second operation area 25c is used as the second detecting unit such that any one of the second operation areas 25c is operated as the second detecting unit in a predetermined period of time that is relatively short, for example, 0.5 seconds, after an operation of the first operation area 25b as the first detecting unit. In this embodiment, it is assumed that the second operation area 25c located farther from the operator (in the +Y direction) of the multiple second operation areas 25c is used. As illustrated in
(52) In response to such an operation, the in-vehicle input device 200 determines that a flick operation has been performed on the in-vehicle input device 200. The flick operation is an operation used for, for example, Japanese language input, and enables quick input of a target character or symbol. If the second operation area 25c is pressed in more than 0.5 seconds, for example, one second after pressing of the first operation area 25b, the in-vehicle input device 200 will determine that the first operation area 25b and the second operation area 25c have been operated individually, instead of determining that a flick operation has been performed.
(53) The second operation areas 25c are set to provide different operations. When the first operation area 25b is operated as the first detecting unit and any one of the second operation areas 25c is then operated in the above-described manner to achieve a flick operation, an operation associated with the operated second operation area 25c can be performed.
Third Embodiment
(54) An exemplary configuration and operations of the in-vehicle input device 300 according to a third embodiment of the present invention will now be described with reference to
(55) In the in-vehicle input device 300, the same components as those in the in-vehicle input device 100 are designated by the same reference numerals. A detailed description of these components is omitted.
(56) As illustrated in
(57) As illustrated in
(58) As illustrated in
(59) Referring to
(60) As illustrated in
(61) The spacer 32 differs from the spacer 12 in the in-vehicle input device 100 in that each of the third openings 32a is filled with an elastic member 39 as illustrated in
(62) In the in-vehicle input device 300, for example, the operator presses the center third operation area 35b of the multiple third operation areas 35b in
(63) In such an operation, the operator sequentially applies a pressure to the multiple third operation areas 35b with the finger 65. The third operation areas 35b can be used for a high-speed slide operation. For example, the third operation areas 35b can be used to quickly and continuously adjust the volume of the in-vehicle audio system.
(64) Each of the third openings 32a in the spacer 32 is filled with the elastic member 39. This enables a reduction in the length of each third opening 32a in the sliding direction, or the short side of the rectangular third opening 32a. Consequently, the length of the third operation area 35b in the sliding direction can be reduced.
(65) Advantages of the above-described embodiments will now be described.
(66) The in-vehicle input device 100 detects an input operation in response not to touching any of the touch panels 10 by the operator's finger 65, but to pressing any of the operation areas 15b by the finger 65. If the operator wears gloves, the operator can operate the in-vehicle input device 100. In addition, the suppression layer 14, which eliminates or reduces the formation of the capacitance C0 between the operator and the upper electrode 13a, can prevent an erroneous operation from being caused by unintended finger motion during driving. Furthermore, the operator can press the operation areas 15b of each touch panel 10 while rotating the steering wheel 60, and can thus perform an input operation regardless of an operation state of the steering wheel 60.
(67) The first detecting unit based on contact between the lower electrode 11a and the upper electrode 13a and the second detecting unit based on a change in the capacitance C0 between the lower electrode 11a and the upper electrode 13a, namely, the two different detecting units can be used differently based on the magnitude of a pressure applied to the operation area 15b.
(68) A switch operation for the first detecting unit and a slide operation for the second detecting unit can be combined. This facilitates various operations.
(69) The in-vehicle input device 200 detects a flick operation in response to an operation of any of the second operation areas 25c as the second detecting unit in a predetermined period of time after an operation of the first operation area 25b as the first detecting unit. Thus, a flick operation can be easily performed.
(70) In the in-vehicle input device 300, the length of each third opening 32a in the sliding direction can be reduced, thus reducing a likelihood that the aging deformation or sag of the operation sheet 35 may affect an operation. In addition, each third operation area 35b is the protrusion 35c protruding upward from the operation surface 35a. This facilitates an operation in the third operation area 35b having the reduced length in the sliding direction. This also eliminates the need for viewing the touch panels 30, thus increasing the safety of driving.
(71) The in-vehicle input device 110 includes the contact member 19 in each operation area 15b and can thus be operated by lightly pressing any of the operation areas 15b. It is particularly effective when the operation area 15b is used as the first detecting unit that requires a greater pressure than the second detecting unit.
(72) The present invention is not limited to the above-described embodiments, but can be variously modified and practiced without departing from the spirit and scope of the invention. For example, although the contact member 19 is included in the modification of the in-vehicle input device 100 according to the first embodiment, the contact member 19 may be included in the in-vehicle input devices 200 and 300.