This application is based upon and claims the benefit of priority from prior Japanese patent application No. 2020-145204 filed on Aug. 31, 2020, the entire contents of which are incorporated herein by reference.
The present invention relates to an air-conditioning register.
Vehicles such as automobiles are provided with an air-conditioning register which blows air-conditioning air from an air-conditioning device into a passenger compartment. The air-conditioning register is for adjusting a blowing direction of the air-conditioning air and is provided with a downstream fin and an upstream fin provided in a ventilation passage through which the air-conditioning air flows. The downstream fin is rotatable around a center line of a first rotation shaft. In addition, the upstream fin can rotate around a center line of a second rotation shaft further on an upstream side than the downstream fin in the ventilation passage. The second rotation shaft extends in a direction different from that of the first rotation shaft.
A direction of air-conditioning air blown out from the ventilation passage of the air-conditioning register into the passenger compartment is adjusted by changing rotation positions of the downstream fin and upstream fin. An air-conditioning register of JP-A-2006-123616 is provided with a knob for performing both a rotation operation of the downstream fin and a rotation operation of the upstream fin. This knob is attached to the downstream fin so that the knob can move integrally in the direction of rotation. Therefore, a user can rotate the downstream fin by holding the knob and rotating (hereinafter referred to as a first operation) the knob in the rotation direction of the downstream tin.
In addition, the knob can rotate with respect to the downstream fin around a center line orthogonal to the rotation direction of the downstream fin. The downstream fin is equipped with a slider which slides in an extending direction of the first rotation shaft as the knob rotates. This slider presses the upstream fin in the same slide movement direction as the slide moves. Therefore, a user can rotate the upstream fin via the slider by holding the knob and rotating (hereinafter referred to as a second operation) the knob around the center line.
In the air-conditioning register of JP-A-2006-123616, both the rotation operation of the downstream fin and the rotation operation of the upstream fin can be performed by the first operation and the second operation of the knob provided on the downstream fin. However, the provision of the knob on the downstream fin reduces a flow cross-sectional area of the air-conditioning air blown into the passenger compartment from the ventilation passage in the air-conditioning register, and along with this, a pressure loss when the air-conditioning air passes through the air-conditioning register increases.
An object of the invention is to provide an air-conditioning register capable of suppressing a decrease in a flow cross-sectional area of air-conditioning air.
Hereinafter, means for solving the above problems and their actions and effects will be described.
According to an aspect of the invention, there is provided an air-conditioning register including: a downstream fin; and an upstream fin, where: the downstream fin and the upstream fin are provided in a ventilation passage which allows air-conditioning air to flow; the downstream fin is rotatable around a center line of a first rotation shaft; the upstream fin is rotatable around a center line of a second rotation shaft further on an upstream side than the downstream fin in the ventilation passage; the second rotation shaft extends in a direction different from that of the first rotation shaft; and the downstream fin is slidable in a center line direction of the first rotation shaft and has a driving unit which presses the upstream fin in a slide movement direction as the downstream fin slides.
According to the configuration described above, a user holds the downstream fin by hand and rotates the downstream fin around the center line of the first rotation shaft to perform the rotation operation of the downstream fin to adjust the blowing direction of the air-conditioning air. Also, when performing the rotation operation of the upstream fin, the user holds the downstream fin by hand and slides the downstream fin in the center line direction of the first rotation shaft. Along with the slide movement of the downstream fin, the upstream fin is pressed in the slide movement direction by the driving unit of the downstream fin. As a result, the upstream fin is rotated to adjust the blowing direction of the air-conditioning air. In this way, since the rotation operation of the downstream fin and the upstream fin is performed by the rotation and the slide movement of the downstream fin, it is not necessary to attach a knob or the like for performing the rotation operation to the downstream fin. Therefore, it is possible to suppress a decrease in a flow cross-sectional area of the air-conditioning air blown out from the ventilation passage in the air-conditioning register into a passenger compartment, which is caused by attaching the knob or the like to the downstream fin.
In the air-conditioning register according to the aspect of the invention, at a downstream end of the downstream fin, a grip portion having a thickness equal to or less than a thickness of the downstream fin may be formed so as to protrude.
This configuration makes it easier for a user to hold the grip portion of the downstream fin by hand. Therefore, this makes it easier for the user to hold the grip portion by hand to rotate or slide the downstream fin. In addition, since the thickness of the grip portion is equal to or less than the thickness of the downstream fin, the grip portion does not reduce the flow cross-sectional area of the air-conditioning air in the air-conditioning register.
In the air-conditioning register according to the aspect of the invention, the downstream fin may be supported by a rotation support portion so as to be rotatable around the center line of the first rotation shaft and may be supported by a slide support portion so as to be slidable in the center line direction of the first rotation shaft, and the rotation support portion and the slide support portion may be provided at different positions.
Regarding the rotation and slide movement of the downstream fin by the user operation, it is advantageous to perform each of them against a certain amount of reaction force in order to precisely adjust the position of the downstream fin during the rotation and slide movement. However, when the reaction force acting on the downstream tin during the rotation and the reaction force acting on the downstream fin during the slide movement are significantly different, the difference in the magnitude of the reaction force appears as a difference in the operation feeling of the downstream fin by a user, which causes the user to feel a sense of discomfort. In order to suppress such a situation, it is necessary to adjust the rotation support portion and the slide support portion so that the difference in the magnitude of the reaction force can be suppressed to a small extent. However, when the rotation support portion and the slide support portion are provided at the same position, it becomes difficult to perform such adjustment. According to the configuration described above, since the rotation support portion and the slide support portion are provided at different positions, it becomes easy to adjust the rotation support portion and the slide support portion so that the difference in the magnitude of the reaction force can be suppressed to a small extent.
In the air-conditioning register described above, the first rotation shaft, the ventilation passage, the downstream fin, the rotation support portion, and the slide support portion may be as follows. The first rotation shaft may be fixed to the downstream fin, the ventilation passage may be formed in a retainer, the retainer may be formed with a slide hole which supports a slider so that the slider can be slidably moved in the center line direction of the first rotation shaft, the slider may be formed with a rotation hole which rotatably supports the first rotation shaft, the downstream fin may be supported by the retainer via the first rotation shaft and the slider, the rotation support portion may be formed by the first rotation shaft and the rotation hole of the slider, and the slide support portion may be formed by the slider and the slide hole of the retainer.
According to the configuration described above, magnitude of a reaction force during the rotation operation of the downstream tin can be adjusted by, for example, adjusting the frictional resistance between the first rotation shaft and the rotation hole of the slider. In addition, magnitude of a reaction force during the slide movement operation of the downstream fin can be adjusted by, for example, adjusting the frictional resistance between the slider and the slide hole of the retainer.
In the air-conditioning register described above, the ventilation passage, the first rotation shaft, the downstream fin, the rotation support portion, and the slide support portion may be as follows. The ventilation passage may be formed in a retainer, the first rotation shaft may be fixed to a tubular body supported by the retainer, the retainer may be formed with a rotation hole which rotatably supports the first rotation shaft, the tubular body may be formed with a slide cavity in which the downstream fin is inserted so that the downstream fin is supported so as to be slidable in the center line direction of the first rotation shaft, the downstream fin may be supported by the retainer via the tubular body and the first rotation shaft, the rotation support portion may be formed by the first rotation shaft and the rotation hole of the retainer, and the slide support portion may be formed by the slide cavity of the tubular body.
According to the configuration described above, magnitude of a reaction force during the rotation operation of the downstream fin can be adjusted by, for example, adjusting the frictional resistance between the first rotation shaft and the rotation hole of the retainer. In addition, magnitude of a reaction force during the slide movement operation of the downstream fin can be adjusted by, for example, adjusting the frictional resistance between the downstream fin and the slide cavity of the tubular body.
In the air-conditioning register described above, the downstream fin, the first rotation shaft, the ventilation passage, the rotation support portion, and the slide support portion may be as follows. The downstream fin may be formed with a slide groove in which the first rotation shaft is fitted so as to be slidable in the center line direction, the ventilation passage may be formed in a retainer, the retainer may be formed with a rotation cavity which rotatably supports the first rotation shaft, the downstream fin may be supported by the retainer via, the first rotation shaft, the rotation support portion may be formed by the first rotation shaft and the rotation cavity of the retainer, and the slide support portion may be formed by the first rotation shaft and the slide groove of the downstream fin.
According to the configuration described above, magnitude of a reaction force during the rotation operation of the downstream fin can be adjusted by, for example, adjusting the frictional resistance between the first rotation shaft and the rotation cavity of the retainer. In addition, magnitude of a reaction force during the slide movement operation of the downstream fin can be adjusted by, for example, the frictional resistance between the first rotation shaft and the slide groove of the downstream fin.
The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawing which is given by way of illustration only, and thus is not limitative of the present invention and wherein:
Hereinafter, a first embodiment of an air-conditioning register will be described with reference to
The air-conditioning register illustrated in
The downstream fins 3 and 4 are formed in a plate shape extending in a left-right axial direction in
The rotation shafts 7 are respectively fixed to both left and right ends of the downstream fin 3. This rotation shaft 7 plays a role as a first rotation shaft. The rotation shafts 7 at both the left and right ends of the downstream fin 3 are arranged so as to extend on the same axis. Further, a slide hole 9 is formed in a portion of the retainer 1 facing the rotation shaft 7. A slider 10 having a tubular shape is inserted into the slide hole 9. By being supported by the slide hole 9, the slider 10 can slide and move in a center line L1 direction of the rotation shaft 7 with respect to the retainer 1. A flange 10b is formed at an end portion of the slider 10 located outside the retainer 1. The flange 10b is for regulating excessive slide movement of the retainer 1. Further, the slider 10 is also set so as not to rotate around the center line L1 of the rotation shaft 7 with respect to the retainer 1.
The slider 10 is formed with a rotation hole 11 which rotatably supports the rotation shaft 7. The rotation shaft 7 penetrates the rotation hole 11. Further, a large diameter portion 7a is formed at a tip of the rotation shaft 7 so as to interpose a periphery of the rotation hole 11 in the slider 10 with an end portion of the downstream fin 3. In this way, the periphery of the rotation hole 11 in the slider 10 is interposed between the end portion of the downstream fin 3 and the large diameter portion 7a of the rotation shaft 7, whereby the rotation shaft 7 is prevented from sliding in the center line L1 direction with respect to the slider 10.
In the air-conditioning register, the downstream fin 3 is supported by the retainer 1 via the rotation shaft 7 and the slider 10. In the air-conditioning register, a rotation support portion which supports the downstream tin 3 such that the downstream fin 3 is rotatable around the center line L1 of the rotation shaft 7 is formed by the rotation shaft 7 and the rotation hole 11 of the slider 10. Further, in the air-conditioning register, a slide support portion which supports the downstream fin 3 such that the downstream fin 3 is slidable in the center line L1 direction of the rotation shaft 7 is formed by the slider 10 and the slide hole 9 of the retainer 1. Therefore, the rotation support portion and the slide support portion are provided at different positions of the air-conditioning register.
The rotation shafts 8 are respectively fixed to both left and right ends of the downstream fin 4. The rotation shafts 8 at both the left and right ends of the downstream fin 4 are arranged so as to extend on the same axis. Further, the rotation shaft 8 is attached so as to be rotatable around the center line L2 with respect to the retainer 1 and not to be slidable in a center line L2 direction of the rotation shaft 8. The plurality of downstream fins 3 and 4 are connected to each other via a link 12. Then, when the downstream fin 3 is rotated around the center line L1 of the rotation shaft 7, the rotation is transmitted to the downstream fin 4 via the link 12 and the downstream fin 4 rotates around the center line L2 of the rotation shaft 8 in the same manner as the rotation of the downstream fin 3.
The upstream fins 5 and 6 are formed in a plate shape extending in the up-down axial direction of
The rotation shafts 13 are respectively fixed to upper and lower ends of the upstream fin 5. The rotation shaft 13 is in a twisted position with respect to the rotation shaft 7 and serves as a second rotation shaft extending in a different direction at a position away from the first rotation shaft (rotation shaft 7). The rotation shafts 13 at the upper and lower ends of the upstream fin 5 are arranged so as to extend on the same axis. Further, the rotation shaft 13 is attached to the retainer 1 so as to rotatable around the center line L3. With slide movement of the rotation shaft 7 in the downstream fin 3 in the center line L1 direction, the upstream fin 5 is pushed by the downstream fin 3 and rotates around the center line L3 of the rotation shaft 13.
The rotation shafts 14 are respectively fixed to upper and lower ends of the upstream fin 6. The rotation shafts 14 at the upper and lower ends of the upstream fin 5 are arranged so as to extend on the same axis. Further, the rotation shaft 14 is attached to the retainer 1 so as to be rotatable around the center line L4. The plurality of upstream fins 5 and 6 are connected to each other via a link 15. Then, when the upstream fin 5 rotates around the center line L3 of the rotation shaft 8, the rotation is transmitted to the upstream fin 6 via the link 15, so that the upstream fin 6 rotates around the center line L4 of the rotation shaft 14 in the same manner as the rotation of the upstream fin 5.
Next, details of a connection structure of the plurality of downstream fins 3 and 4 by the links 12 and details of a structure of the upstream fin 5 will be described.
As illustrated in
A connection shaft 16 is formed further on the upstream side (right side in
As illustrated in
A space portion 18 is formed in a portion on the downstream side (left side of
Next, details of a connection structure of the plurality of upstream fins 5 and 6 by the links 15 and details of a connection structure of the upstream fin 5 and the downstream fin 3 will be described.
As illustrated in
A connection shall 21 is formed further on the upstream side than the rotation shaft 13 in the upstream fin 5 so as to be parallel to the rotation shaft 13. Further, a connection shaft 22 is formed further on the upstream side than the rotation shaft 14 in the upstream fin 5 so as to be parallel to the rotation shaft 14. These connection shafts 21 and 22 penetrate the link 15 extending in the left-right axial direction of
As illustrated in
When the upstream fin 5 rotates around the center line L3 of the rotation shaft 14, the rotation is transmitted to the upstream fin 6 via the connection shaft 21, the link 15, and the connection shaft 22. As a result, the upstream fin 6 rotates around the center line L4 of the rotation shaft 14 in the same manner as the upstream fin 5 rotates around the center line L3 of the rotation shaft 13.
Next, an operation of the air-conditioning register of this embodiment will be described.
When adjusting a blowing direction of air-conditioning air from the air-conditioning register (ventilation passage 2) in the up-down axial direction of
When adjusting the blowing direction of the air-conditioning air from the air-conditioning register in the left-right axial direction in
Then, when the downstream fin 3 slides, the fork 20 of the downstream fin 3 presses the connection bar 19 of the upstream fin 5 in the slide movement direction. As a result, the upstream fin 5 rotates around the center line L3 of the rotation shaft 13 and the upstream fin 6 rotates around the center line L4 of the rotation shaft 14 in conjunction with the rotation. By sliding the downstream fin 3, the user performs a rotation operation of the upstream fins 5 and 6 for adjusting the blowing direction of the air-conditioning air in the left-right axial direction. Therefore, the user can adjust the blowing direction of the air-conditioning air from the ventilation passage 2 in the left-right axial direction by the slide movement operation of the downstream fin 3.
According to the embodiment described in detail above, the following effects can be obtained.
(1) The rotation of the downstream fin 3 causes the downstream fins 3 and 4 to be rotated and the slide movement of the downstream fin 3 causes the upstream fins 5 and 6 to be rotated. Therefore, it is not necessary to attach a knob or the like for rotating the downstream fins 3 and 4 and the upstream fins 5 and 6 to the downstream fin 3. Therefore, it is possible to suppress a decrease in a flow cross-sectional area of the air-conditioning air blown out from the ventilation passage 2 in the air-conditioning register into the passenger compartment, which is caused by attaching the knob or the like to the downstream fin 3.
(2) At the downstream end of the downstream fin 3, the grip portion 3a is formed so as to protrude toward the downstream side. This makes it easier for a user to hold the grip portion 3a by hand when rotating or sliding the downstream fin 3. Therefore, it becomes easy for the user to hold the grip portion 3a by hand and rotate or slide the downstream fin 3. Also, since the thickness of grip portion 3a is the same as the thickness of downstream fin 3, the grip portion 3a does not reduce the flow cross-sectional area of the air-conditioning air in the air-conditioning register (ventilation passage 2).
(3) Regarding the rotation and slide movement of the downstream fin 3 by the user operation, it is advantageous to perform each of them against a certain amount of reaction force in order to precisely adjust the position of the downstream fin 3 during the rotation and slide movement. However, when the reaction force acting on the downstream fin 3 during the rotation and the reaction force acting on the downstream fin 3 during the slide movement are significantly different, the difference in the magnitude of the reaction force appears as a difference in the operation feeling of the downstream fin 3 by a user, which causes the user to feel a sense of discomfort. In order to suppress such a situation, it is necessary to adjust the rotation support portion (rotation shaft 7 and rotation hole 11) and the slide support portion (slider 10 and slide hole 9) so that the difference in the magnitude of the reaction force can be suppressed to a small extent. However, when the rotation support portion and the slide support portion are provided at the same position of the air-conditioning register, it becomes difficult to perform such adjustment. In this respect, since the rotation support portion and the slide support portion are provided at different positions of the air-conditioning register, it becomes easy to adjust the rotation support portion and the slide support portion so that the difference in the magnitude of the reaction force can be suppressed to a small extent.
(4) The rotation support portion is formed by the rotation shaft 7 and the rotation hole 11. Therefore, the magnitude of the reaction force during the rotation operation of the downstream fin 3 can be adjusted by, for example, adjusting the frictional resistance between the rotation shaft 7 and the rotation hole 11. Further, the slide support portion is formed by the slider 10 and the slide hole 9. Therefore, the magnitude of the reaction force during the slide movement operation of the downstream fin 3 can be adjusted by, for example, adjusting the frictional resistance between the slider 10 and the slide hole 9.
Next, a second embodiment of the air-conditioning register will be described with reference to
In the second embodiment, the rotation support portion and the slide support portion are different from those in the first embodiment. Further, in the second embodiment, only one downstream fin 3 is provided as the downstream fin.
As illustrated in
As illustrated in
In the air-conditioning register, a rotation support portion is formed by the rotation shaft 7 and the rotation hole 33 of the retainer 1 and a slide support portion is formed by the slide cavity 32 of the tubular body 31. These rotation support portion and slide support portion are also provided at different positions of the air-conditioning registers.
As illustrated in
According to this embodiment, in addition to the effects of (1) to (3) of the first embodiment, the following effect can he obtained.
(5) The rotation support portion is formed by the rotation shaft 7 and the rotation hole 33. Therefore, magnitude of a reaction force during a rotation operation of the downstream tin 3 can be adjusted by, for example, adjusting frictional resistance between the rotation shaft 7 and the rotation hole 33. Further, the slide support portion is formed by the slide cavity 32 of the tubular body 31. Therefore, magnitude of a reaction force during a slide movement operation of the downstream fin 3 can be adjusted by, for example, adjusting the frictional resistance between the end portion of the downstream fin 3 and the slide cavity 32. As the adjustment of the frictional resistance between the end portion of the downstream fin 3 and the slide cavity 32, for example, a material of the elastic member 35 may be changed or the pressing strength of the elastic member 35 against the slide cavity 32 may be changed.
Next, a third embodiment of the air-conditioning register will be described with reference to
The third embodiment is different from the first embodiment in the rotation support portion and the slide support portion.
As illustrated in
As illustrated in
In the air-conditioning register, a rotation support portion is formed by the rotation shaft 7 and the rotation cavity 42 of the retainer 1 and a slide support portion is formed by the rotation shaft 7 (flat surface 44) and the slide groove 41 (flat portion 43). These rotation support portion and slide support portion are also provided at different positions of the air-conditioning register.
According to this embodiment, in addition to the effects of (1) to (3) of the first embodiment, the following effect can be obtained.
(6) The rotation support portion is formed by the rotation shaft 7 and the rotation cavity 42. Therefore, magnitude of a reaction force during a rotation operation of the downstream fin 3 can be adjusted by, for example, adjusting frictional resistance between the rotation shaft 7 and the rotation cavity 42. Further, the slide support portion is formed by the flat surface 44 of the rotation shaft 7 and the flat portion 43 of the slide groove 41. Therefore, magnitude of a reaction force during a slide movement operation of the downstream fin 3 can be adjusted by, for example, adjusting frictional resistance between the flat surface 44 and the flat portion 43.
Each of the embodiments described above can be changed as follows, for example. Each of the embodiments described above and the following modification examples can be implemented in combination with each other within a technically consistent range.
In the first to third embodiments, the rotation support portion and the slide support portion do not necessarily have to be provided at different positions of the air-conditioning register.
In the first to third embodiments, the thickness of the grip portion 3a may be smaller than the thickness of the downstream fin 3.
In the first to third embodiments, the grip portion 3a does not necessarily have to be formed in the downstream fin 4.
In the first to third embodiments, the rotation direction and slide movement direction of the downstream fin 3, the rotation direction of the downstream fin 4, and the rotation direction of the upstream fins 5 and 6 may be appropriately changed. For example, it is conceivable that the downstream fin 3 is rotated in a horizontal direction (the left-right axial direction in
In the first to third embodiments, the upstream fin 6 and the link 15 may be omitted.
In the first and third embodiments, the downstream fin 4 and the link 12 may be omitted.
Number | Date | Country | Kind |
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2020-145204 | Aug 2020 | JP | national |