Vehicle air conditioning duct system
The vehicle air conditioning duct system efficiently warms the occupant's calves and door by positioning the air outlet obliquely forward, addressing the inadequacies of conventional systems in warming the feet and door, thus improving comfort in cold weather.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- TOYODA GOSEI CO LTD
- Filing Date
- 2022-09-29
- Publication Date
- 2026-05-26
AI Technical Summary
Conventional vehicle air conditioning duct systems fail to effectively warm the feet of occupants, particularly in cold weather, and the comfort level is inadequate due to the delay in warming the toes and the influence of cold vehicle doors.
A vehicle air conditioning duct system with a housing positioned on the side of the seat opposite the vehicle door, featuring an air outlet between the floor and seat surface, blowing conditioned air obliquely forward to warm the calves and utilizing the vehicle door as a heat storage/conductor.
The system quickly warms the occupant's calves and door, creating a more comfortable environment by maintaining higher perceived temperature through air accumulation and heat conduction, enhancing air conditioning functionality.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a vehicle air conditioning duct device for performing air conditioning in a vehicle.
Background Art
[0002] A general vehicle is equipped with a vehicle air conditioning system for performing air conditioning. The vehicle air conditioning system can also be said to be a device for supplying conditioned air obtained by a vehicle air conditioner into a vehicle interior via a vehicle air conditioning duct device.
[0003] In recent years, in order to make the temperature environment in a vehicle interior more comfortable for passengers, it has been proposed to supply conditioned air to various locations in the vehicle interior by a vehicle air conditioning system. For example, in winter, passengers often feel cold in their lower body, especially near their feet. For this reason, many vehicles are provided with a foot vehicle air conditioning duct device for heating the feet of a passenger sitting on a seat.
[0004] The above-mentioned foot vehicle air conditioning duct device has its foot air outlet arranged below the instrument panel. The air outlet supplies conditioned air, especially warm air, toward the lower side of the seat, that is, toward the toes of a passenger sitting on the seat.
[0005] Here, it is common for passengers to wear shoes even inside the vehicle. Therefore, it is difficult for the toes of the passenger to get warm even when receiving warm air. For example, in cold weather, after the vehicle is started, it takes about 10 minutes for the warm-up of the vehicle air conditioner to complete and warm air to be generated, and further for the passenger to feel warmth at their feet.
[0006] In recent years, technologies for air conditioning not only the toes of passengers but also a relatively wide area near the feet of the passengers have been proposed.
[0007] For example, Patent Document 1 describes a vehicle air conditioning duct system having a rear front air outlet 2 and a rear rear air outlet 3. The rear front air outlet 2 is located under the front seats of the vehicle and blows warm air towards the feet of occupants seated in the rear seats. The rear rear air outlet 3 is located under the rear seats and blows warm air from the feet of occupants seated in the rear seats towards their knees. [Prior art documents] [Patent Documents]
[0008] [Patent Document 1] Japanese Patent Publication No. 2000-79820 [Overview of the Initiative] [Problems that the invention aims to solve]
[0009] To improve the sensation of warmth in the toes, it is effective to warm the parts of the crew's body where there are large blood vessels and / or veins and lymph nodes. From this perspective, it is thought that warming the area around the crew's calves in cold weather can quickly make the crew perceive warmth.
[0010] According to the type of vehicle air conditioning duct device described in Patent Document 1 mentioned above, it is possible to warm the area around the occupant's knees. As a result, it is thought that this vehicle air conditioning duct device can make the occupant perceive warmth relatively quickly.
[0011] However, even with this type of vehicle air conditioning duct system, occupants may still perceive coldness around their feet in cold weather, and their comfort level may be far from ideal.
[0012] This invention has been made in view of the above circumstances, and aims to solve the problem of providing a technology to further improve the air conditioning function of vehicle air conditioning duct systems. [Means for solving the problem]
[0013] The vehicle air-conditioning duct device of the present invention for solving the above problems is as follows: a housing arranged on the side of the seat and on the opposite side of the vehicle door with respect to the seat; an air outlet provided at a position between the upper surface of the vehicle interior floor and the seat surface of the seat in the housing; a duct having an air-conditioning air flow path inside and arranged inside the housing and connected to the vehicle air-conditioning device and the air outlet; a vehicle air-conditioning duct device that blows the air-conditioning air obliquely forward from the air outlet to the seat.
Advantages of the Invention
[0014] The vehicle air-conditioning duct device of the present invention further improves the air-conditioning function.
Brief Description of the Drawings
[0015] [Figure 1] It is an explanatory diagram schematically showing a side view of the vehicle air-conditioning duct device of Example 1 in the vehicle interior. [Figure 2] It is an explanatory diagram schematically showing a front view of the vehicle air-conditioning duct device of Example 1 in the vehicle interior. [Figure 3] It is an explanatory diagram schematically showing the positional relationship between the air outlet and the passenger's shins in the vehicle air-conditioning duct device of Example 1. [Figure 4] It is an explanatory diagram schematically showing the air direction adjustment element in the vehicle air-conditioning duct device of Example 1. [Figure 5] It is an explanatory diagram schematically showing the air direction adjustment element in the vehicle air-conditioning duct device of Example 1. [Figure 6] It is an explanatory diagram showing the results of Test Example 1. [Figure 7] It is an explanatory diagram showing the results of Test Example 2. [Figure 8] It is an explanatory diagram schematically showing a housing of a reference example in which an air outlet can be arranged in the vehicle air-conditioning duct device of the present invention. [Figure 9] It is an explanatory diagram schematically showing the air direction adjustment element in the vehicle air-conditioning duct device of Example 2. [Figure 10] It is an explanatory drawing schematically showing a wind direction adjustment element in the vehicle air conditioning duct device of Example 2.
Embodiments for Carrying Out the Invention
[0016] The vehicle air conditioning duct device of the present invention, in short, arranges the housing provided with its air outlet on the side of the seat and on the opposite side of the vehicle door with respect to the seat, and provides the air outlet at a position between the upper surface of the vehicle cabin floor and the seat surface in the above-mentioned housing. And the conditioned air flowing through the duct is blown obliquely forward from the air outlet toward the seat.
[0017] According to the vehicle air conditioning duct device of the present invention, conditioned air is blown obliquely forward from an air outlet provided at a position between the upper surface of the vehicle cabin floor and the seat surface toward the seat. The conditioned air abuts against the vicinity of the calf of the occupant sitting on the seat located on the side of the air outlet. Thus, according to the vehicle air conditioning duct device of the present invention, by blowing conditioned air near the calf of the occupant, the occupant can quickly perceive warmth in the cold season.
[0018] Here, according to a conventional vehicle air conditioning duct device, for example, the vehicle air conditioning duct device of Patent Document 1 described above, it is possible to warm the vicinity of the knees of the occupant sitting on the rear seat, but it is not possible to warm the vicinity of the feet of the occupant sitting on the front seat.
[0019] For example, by providing the rear rear air outlet in the vehicle air conditioning duct device of Patent Document 1 below the front seat instead of below the rear seat, it is also conceivable to warm the vicinity of the knees of the occupant sitting on the front seat. However, in reality, a general front seat slides in the front-rear direction, and it is difficult to make the vehicle air conditioning duct device deform and change its position following the slide of the front seat, so this plan lacks practicality.
[0020] As described above, the vehicle air conditioning duct device of the present invention has an air outlet for conditioned air in a housing positioned to the side of the seats. Therefore, if the housing is positioned to the side of the front seats, the occupants sitting in the front seats can be warmed, and if the housing is positioned to the side of the rear seats, the occupants sitting in the rear seats can be warmed. Of course, if the housing is positioned to the side of both the front and rear seats, both the occupants sitting in the front seats and the occupants sitting in the rear seats can be warmed.
[0021] Furthermore, in order to efficiently warm the crew, it is appropriate to expose the calves of both of the crew members' legs to the conditioned air. In the vehicle air conditioning duct system of the present invention, conditioned air is blown from the outlet diagonally forward relative to the seat. As a result, a portion of the conditioned air comes into contact with the calf of the occupant that is closer to the outlet (referred to as the outlet-side calf, if necessary). The remaining portion of the conditioned air then travels further diagonally forward and comes into contact with the calf of the occupant that is further away from the outlet (referred to as the opposite-side calf, if necessary). As a result, with the vehicle air conditioning duct system of the present invention, both of the occupant's calves are exposed to the conditioned air, allowing the occupant to quickly perceive warmth even in cold weather.
[0022] Furthermore, since the above-mentioned air outlet is provided in the housing, the vehicle air conditioning duct device of the present invention does not need to deform or otherwise follow the sliding of the seat.
[0023] Furthermore, in the vehicle air conditioning duct device of the present invention, the housing on which the air outlet is provided is positioned on the side opposite the vehicle door relative to the seat.
[0024] In investigating why occupants still perceive coldness at their feet even with the conventional vehicle air conditioning duct system described above, the inventors of this invention considered factors other than the vehicle air conditioning duct system. Building on this idea, they focused on the vehicle door as a vehicle component located near the seat that could potentially function as a heat storage or heat conductor.
[0025] In other words, vehicle doors are large vehicle components, and if a material with a high specific heat is used for the vehicle door, the vehicle door may function as a thermal storage material that stores cold energy, i.e., thermal energy lower than room temperature, in cold weather. Furthermore, if a material with high thermal conductivity is used for the vehicle door, the vehicle door may function as a thermal conductor that conducts cold energy from outside the vehicle into the vehicle interior.
[0026] Vehicle doors generally consist of a metal or resin door base covered with a resin door trim. However, the door trim itself may function as a heat storage or heat conductor, and unless the vehicle door itself warms up, the coolness or heat from the door is supplied to the vehicle interior through the door trim. Additionally, there is a risk that the occupants' legs may come into contact with the door trim, causing them to perceive the coldness and feel uncomfortable.
[0027] The inventors conceived the idea of warming the door trim and vehicle door with air conditioning that had already warmed the occupants, and thus completed the present invention.
[0028] In other words, according to the vehicle air conditioning duct device of the present invention, since the housing equipped with the air outlet is positioned to the side of the seat and on the opposite side of the vehicle door from the seat, the conditioned air that has passed through both calves of the occupant is supplied to the vicinity of the vehicle door. As a result, according to the vehicle air conditioning duct device of the present invention, it is possible to warm the door trim and the vehicle door with the conditioned air that has warmed the occupant. In addition, the conditioned air that reaches the vehicle door is blocked by the vehicle door and accumulates between the vehicle door and the seat. Due to this accumulation of warm air between the vehicle door and the seat, the temperature perceived by the occupant is higher than the actual temperature inside the vehicle. Through these collaborations, the vehicle air conditioning duct system of the present invention makes it possible to quickly warm the occupants and create a comfortable environment. In other words, the vehicle air conditioning duct system of the present invention offers further improvements in air conditioning function compared to conventional vehicle air conditioning duct systems.
[0029] The vehicle air conditioning duct device of the present invention will be described below for each of its components. Unless otherwise specified, the numerical range "x~y" described herein includes a lower limit x and an upper limit y. Furthermore, a numerical range can be constructed by arbitrarily combining these upper and lower limits, as well as the numerical values listed in the embodiments. Additionally, any numerical values arbitrarily selected from within the numerical range can be used as the upper and lower limits. Hereafter, as needed, the upstream side of the air conditioning flow path may be simply referred to as the upstream side, and the downstream side of the air conditioning flow path may be simply referred to as the downstream side.
[0030] The vehicle air conditioning duct device of the present invention comprises a housing, an air outlet, and a duct.
[0031] The housing is located to the side of the seat in the vehicle, and is positioned on the opposite side of the vehicle door from the seat. The enclosure only needs to have a duct inside and an air outlet, and its shape and other characteristics are not particularly limited. For example, the housing may be dedicated to the vehicle air conditioning duct device of the present invention, or it may be used in conjunction with various vehicle interior components such as console boxes, drink holders, and tables.
[0032] The enclosure may be positioned between the driver's seat and the passenger seat, or between the two rear seats. Furthermore, the enclosure may extend from between the driver's seat and the passenger seat to between the two rear seats.
[0033] The enclosure allows for the placement of ducts internally. In other words, the enclosure has an internal space in which ducts can be installed.
[0034] The duct may be entirely housed within the internal space, or a portion of it may be exposed outside the internal space, i.e., outside the housing. In particular, the upstream end of the duct is the part that connects to the vehicle's air conditioning system. Therefore, considering the efficiency of the work involved in connecting the upstream end of the duct to the vehicle's air conditioning system, it is preferable that the upstream end of the duct, i.e., the end on the vehicle's air conditioning system side, be exposed outside the housing. The other parts of the duct are preferably housed within the internal space and not exposed outside the housing.
[0035] The duct may be straight or branched, with one end and / or the other end splitting into multiple branches. The duct shape should be appropriately designed according to the location of the air conditioning outlet, the location of the vehicle's air conditioning system, etc.
[0036] The internal space of the enclosure may contain only ducts, or it may contain ducts in addition to other vehicle-mounted equipment. Examples of such vehicle-mounted equipment include tables, audio equipment, car navigation systems or their monitors, and touch panels for operating various devices. These vehicle-mounted devices may be considered as part of the vehicle air conditioning duct system of the present invention, or as separate devices from the vehicle air conditioning duct system of the present invention.
[0037] The housing has an air outlet as described above. The vehicle air conditioning duct device of the present invention may have only one air outlet or may have multiple air outlets. For example, if the vehicle air conditioning duct device of the present invention blows conditioned air only to the driver's side, only one air outlet is needed, and if the vehicle air conditioning duct device of the present invention blows conditioned air in two directions, to the driver's side and the passenger side, two air outlets are needed. The number and position of the air outlets may be appropriately designed depending on the target to which the conditioned air is blown.
[0038] The air outlet is located within the housing, between the top surface of the passenger compartment floor and the seat surface. By placing the air outlet in this position, it is possible to blow conditioned air onto the calf area of the occupant seated in the seat.
[0039] The position of the air vent is particularly preferable when it is located between the ankle and the middle of the calf of the crew member. Specifically, the air outlet is preferably located within a range of 50mm to 300mm above the top surface of the vehicle interior floor, more preferably within a range of 50mm to 200mm above the top surface of the vehicle interior floor, and particularly preferably within a range of 50mm to 150mm above the top surface of the vehicle interior floor.
[0040] The conditioned air blown out from the vents travels diagonally forward relative to the seats. Various methods can be used to adjust the direction of this conditioned air, and are not particularly limited.
[0041] For example, by positioning the air outlet itself so that it faces diagonally forward relative to the seat, it is possible to blow the conditioned air diagonally forward relative to the seat. Furthermore, by placing fins inside the air outlet to adjust the direction of the conditioned air, it is possible to blow the conditioned air diagonally forward relative to the seat. The fins will be explained in more detail later.
[0042] While there are no particular limitations on the shape of the air outlet, it is preferable for the outlet to be slit-shaped in order to reliably blow conditioned air onto the calf area of the seated occupant.
[0043] For example, in order to reliably blow conditioned air onto the calf area of a seated occupant in the front-to-back direction, it is preferable to position the air outlet on the seat-side side of the housing and to make the air outlet a slit shape extending in the front-to-back direction. This slit-shaped air outlet is particularly effective when the seat from which the conditioned air is blown is slidable in the front-to-back direction.
[0044] In this case, the slit-shaped air outlet can also be described as one end of its longitudinal direction positioned further forward than the other end in the front-to-back direction of the seat. Here, for example, "one end of the air outlet in the longitudinal direction is located in front of the other end in the front-to-back direction of the seat" means "the longitudinal direction of the air outlet is oriented in approximately the same direction as the front-to-back direction of the seat." The longitudinal direction of the air outlet does not have to coincide with the front-to-back direction of the seat, but the angle between the two is preferably 90° or less, more preferably 45° or less, even more preferably 30° or less, and particularly preferably 15° or less.
[0045] Furthermore, the "front-to-back direction of the seat" can also be understood as the "orientation of the seat," and it coincides with the direction connecting the occupant's buttocks and knees when seated. The occupant's knees are on the front side of the seat, and their buttocks are on the rear side of the seat. In the vehicle air conditioning duct device of the present invention, the front-to-back direction of the seat may be the same as or different from the direction of travel of the vehicle.
[0046] Alternatively, a slit-shaped air outlet may be placed on the front of the housing. In this case, the air outlet is preferably slit-shaped, extending in the direction connecting the two seats. In this case, it is possible to supply conditioned air to two seats with a single air outlet.
[0047] In this case, "the air outlet is shaped like a slit extending in the direction connecting the two seats" means "the longitudinal direction of the air outlet is oriented in roughly the same direction as the direction connecting the two seats." If the two seats face forward, the direction connecting the two seats can also be said to be the vehicle width direction.
[0048] The longitudinal direction of the air outlet does not have to coincide with the direction connecting the two seats, but the angle between them is preferably 90° or less, more preferably 45° or less, even more preferably 30° or less, and particularly preferably 15° or less.
[0049] Furthermore, if the air outlet is located at the front of the housing, the vehicle air conditioning duct device of the present invention may have two air outlets: one located on one side of the two seats and another located on the other side of the two seats. Alternatively, it may have a single air outlet in which the two air outlets are integrated.
[0050] When a slit-shaped air outlet is positioned on the side of the housing, it is preferable to provide an inclined surface on the side of the housing and position the air outlet on this inclined surface.
[0051] Furthermore, when a slit-shaped air outlet is positioned at the front of the housing, it is preferable to provide an inclined surface at the front of the housing and position the air outlet on this inclined surface.
[0052] In either case, when the air outlet is positioned slightly closer to the vehicle floor at a location between the upper surface of the vehicle floor and the seat surface, it is preferable that the inclined surface provided on the front or side of the housing be inclined between the rear and upper side and the front and lower side. By providing a slit-shaped air outlet on such an inclined surface, conditioned air can be blown from below to above. Therefore, even if the air outlet is positioned slightly downwards, conditioned air can be reliably blown onto the occupant's calves. In this case, it is even more preferable to place fins, as described later, inside the air outlet and use these fins to guide the conditioned air further diagonally forward.
[0053] Furthermore, when the air outlet is positioned slightly closer to the seat surface between the upper surface of the vehicle floor and the seat surface, it is preferable that the inclined surface provided on the front or side of the housing be inclined between the rear and lower side and the front and upper side. By providing a slit-shaped outlet on such an inclined surface, conditioned air can be blown out from the top to the bottom. In this case as well, it is preferable to place fins, described later, inside the outlet and use these fins to guide the conditioned air further diagonally forward.
[0054] The vehicle air conditioning duct device of the present invention preferably has an airflow direction adjustment element disposed inside the air outlet. The airflow direction adjustment element has at least one fin, which adjusts the direction of the conditioned air.
[0055] The wind direction adjustment element may have only one fin or multiple fins. The fins may be fixed or rotatable relative to the outlet.
[0056] For example, if the outlet has a long length in the longitudinal direction, it is preferable to provide multiple fins. Furthermore, it is preferable that these multiple fins extend in a direction intersecting the longitudinal direction of the outlet and are arranged in a direction intersecting the short direction of the outlet. This is to ensure that the direction of the conditioned air is uniform or nearly uniform along the longitudinal direction of the outlet.
[0057] If the fins rotate, they are pivotally supported directly or indirectly by the housing. Within their range of rotation, the fins include oblique guide positions that can guide conditioned air to be blown diagonally forward towards the target seat.
[0058] If the air outlet is located on the side of the housing, the fins should be angled from the rear and inner side towards the front and towards the seat at the angled guide position. In some cases, they may also be angled from the bottom to the top.
[0059] Even when the air outlet is located at the front of the housing, the fins should be inclined from the rear and inner side towards the front and towards the seat at the diagonal guide position. In some cases, the fins may also be inclined from the bottom to the top. In this case, as described above, if the vehicle air conditioning duct device of the present invention has two air outlets, one located on one side of the two seats and the other located on the other side of the two seats, then the fins to be placed at each air outlet should be selected to face in different directions.
[0060] If one of the two seats is the driver's seat and the other is the passenger seat, the fins positioned at the air vent on the driver's side should be inclined from the rear and inner side towards the front and towards the driver's side relative to the driver's seat. Similarly, the fins positioned at the air vent on the passenger side should be inclined from the rear and inner side towards the front and towards the passenger side relative to the passenger seat.
[0061] Similarly, when the two air outlets described above are combined into a single air outlet, the fins positioned in the driver's side area of the air outlet should be inclined from the rear and inner side towards the front and towards the driver's side relative to the driver's seat. Furthermore, the fins positioned in the passenger side area of the air outlet should be inclined from the rear and inner side towards the front and towards the passenger side relative to the passenger seat.
[0062] The wind direction adjustment element preferably has an input section for adjusting the position of the fins. The input section is preferably shaped so that the crew can operate it by hand, for example, in the form of a dial or knob, but in some cases, the operating fin itself, which is one of the fins, may function as the input section. Furthermore, if the airflow adjustment element has an opening / closing damper for opening and closing the airflow path of conditioned air within the duct, the airflow adjustment element may also have an input section for opening and closing the opening / closing damper.
[0063] In particular, wind direction adjustment elements having multiple fins preferably have, in addition to each fin, an operating part for rotating each fin synchronously. The operating unit preferably comprises, specifically, a link connecting each fin and the input unit connected to the link.
[0064] The input unit is preferably located near the air vent for easy operation by the occupant. More specifically, it is particularly preferable that the input section is located above the air outlet and exposed to the outside of the housing, or integrated with an operating fin which is one of the multiple fins.
[0065] In order to direct the conditioned air blown from the vent to the calves of the occupant seated in the seat, it is preferable that the vent be positioned slightly forward of the seat. Specifically, it is preferable that the front end of the vent relative to the seat be located forward of the center of the seat in the front-to-back direction, and more preferably even further forward than the front end of the seat.
[0066] As mentioned earlier, the conditioned air blown out from the vent travels diagonally forward relative to the seat. Therefore, it is undesirable for the vent to extend excessively forward relative to the seat. Specifically, it is preferable for the front end of the vent to be located more than 15 cm in front of the front end of the seat, more preferably more than 12 cm in front of the front end of the seat, and particularly preferably more than 10 cm in front of the front end of the seat.
[0067] When the outlet is slit-shaped, the ratio of the length in the longitudinal direction to the length in the transverse direction of the outlet is not particularly important, however, from an energy-saving standpoint, it is preferable that the cross-sectional area of the flow path of the outlet is not excessive. In other words, it is preferable that the length in the transverse direction of the outlet is short. On the other hand, considering the pressure loss in vehicle air conditioning duct systems, it is preferable for the length of the outlet in the shorter direction to be somewhat longer. For this reason, there is a preferred range for the length in the longitudinal and short directions of a slit-shaped outlet.
[0068] Specifically, the length of the slit-shaped outlet in the longitudinal direction is preferably twice or more the length in the short direction, more preferably three times or more, even more preferably five times or more, and particularly preferably ten times or more.
[0069] Furthermore, the length of the slit-shaped outlet in the shorter direction, i.e., the thickness of the outlet, is preferably 15 mm or more, more preferably 18 mm or more, and particularly preferably 20 mm or more. For reference, the inventors of the present invention have actually measured the following: when the length of the short side of the air outlet is 15 mm or more, the pressure loss of the vehicle air conditioning duct system is 80 Pa or less; when the length is 18 mm or more, the pressure loss of the vehicle air conditioning duct system is 65 Pa or less; and when the length is 20 mm or more, the pressure loss of the vehicle air conditioning duct system is 50 Pa or less.
[0070] The vehicle air conditioning duct device of the present invention may further include a heat exchanger that exchanges heat with the engine coolant, and a vehicle air conditioning system such as HVAC (heating, ventilation, and air-conditioning). Furthermore, it may include other outlets such as the foot outlet in the foot vehicle air conditioning duct device described above, and a rear outlet provided at the rear of the center console box that blows conditioned air to the rear, and a duct that connects the vehicle air conditioning system to the other outlets.
[0071] Other embodiments of the vehicle air conditioning duct device of the present invention, as understood from the above description, include the following [1] to [3].
[0072] [1] The vehicle's air conditioning system is the heat source, A housing positioned to the side of the seat and on the opposite side of the vehicle door from the seat, Among the aforementioned housings, an air outlet is provided at a position between the upper surface of the passenger compartment floor and the seat surface of the aforementioned seat, It has a duct that has a flow path for conditioned air inside, is arranged inside the housing and is connected to the vehicle air conditioning system and the outlet, A vehicle air conditioning duct device that blows the aforementioned conditioned air from the outlet diagonally forward toward the seat.
[0073] [2] A housing positioned to the side of the seat and on the opposite side of the vehicle door from the seat, Among the aforementioned housings, an air outlet is provided at a position between the upper surface of the passenger compartment floor and the seat surface of the aforementioned seat, A second air outlet is located at a different position from the aforementioned air outlet and opens into the vehicle interior, It has a duct having an internal airflow path for conditioned air, which is located inside the housing and connected to the vehicle air conditioning system and the outlet, and a second duct connected to the vehicle air conditioning system and the second outlet, A vehicle air conditioning duct device that blows the aforementioned conditioned air from the outlet diagonally forward toward the seat.
[0074] [3] The vehicle's air conditioning system is the heat source, A housing positioned to the side of the seat and on the opposite side of the vehicle door from the seat, Among the aforementioned housings, an air outlet is provided at a position between the upper surface of the passenger compartment floor and the seat surface of the aforementioned seat, A second air outlet is located at a different position from the aforementioned air outlet and opens into the vehicle interior, It has a duct having a passage for conditioned air inside, which is located inside the housing and connected to the vehicle air conditioning system and the outlet, and a second duct connected to the vehicle air conditioning system and the second outlet, A vehicle air conditioning duct device that blows the aforementioned conditioned air from the outlet diagonally forward toward the seat.
[0075] The vehicle air conditioning duct device of the present invention will be described below with specific examples.
[0076] (Example 1) Figure 1 shows a schematic diagram illustrating a side view of the vehicle air conditioning duct system of Example 1 inside the vehicle cabin. Figure 2 shows a schematic diagram illustrating a front view of the vehicle air conditioning duct system of Example 1 inside the vehicle cabin. Figure 3 shows a schematic diagram illustrating the positional relationship between the air outlet and the occupant's calf in the vehicle air conditioning duct system of Example 1. Figures 4 and 5 show schematic diagrams illustrating the airflow direction adjustment elements in the vehicle air conditioning duct system of Example 1. Figure 6 shows an explanatory diagram illustrating the results of Test Example 1. Figure 7 shows an explanatory diagram illustrating the results of Test Example 2. Hereafter, "up" and "down" refer to the vertical direction, while "front," "rear," "left," and "right" refer to the front, rear, left, and right directions in the direction of vehicle travel. The left-right direction is the vehicle width direction, and the front-rear direction is the direction of vehicle travel.
[0077] As shown in Figures 1 and 2, the vehicle air conditioning duct device 1 of Embodiment 1 has a housing 2, an outlet 3, a duct 4, and an airflow direction adjustment element 5. In the vehicle air conditioning duct device 1 of Example 1, the housing 2 is also used as a center console box, which is a type of vehicle interior component.
[0078] As shown in Figure 2, the housing 2 is positioned between the driver's seat 9D and the passenger seat 9N. Housing 2 is positioned to the side of the driver's seat 9D and on the opposite side of the driver's side vehicle door (not shown) relative to the driver's seat 9D. Housing 2 is also positioned to the side of the passenger seat 9N and on the opposite side of the passenger side vehicle door 90D relative to the passenger seat 9N.
[0079] The housing 2 is box-shaped with an internal space 20, and one air outlet 3 is located on each of its left and right sides. One air outlet 3 is referred to as the driver's side air outlet 3D, and the other air outlet 3 is referred to as the passenger side air outlet 3N. Furthermore, two rear air outlets 3B are located at the rear of the enclosure 2, which blow conditioned air backward. Details of the air outlets 3 will be described later.
[0080] Duct 4 is roughly cylindrical in shape and has an internal airflow channel 40 for conditioned air. One end of duct 4, the upstream end 4U, is connected to HVAC 92. The other end of duct 4, i.e., the downstream end, is branched into two.
[0081] One end of the downstream portion of duct 4 is located on the driver's seat 9D side, and an opening is provided in its peripheral wall. The driver's seat side air outlet 3D is connected to this opening. The downstream end 4DD of duct 4 is connected to one of the rear air outlets 3BD.
[0082] The other downstream portion of duct 4 is located on the passenger side 9N, and an opening is provided in its peripheral wall. The passenger side air outlet 3N is connected to this opening. The downstream end 4DN of duct 4 is connected to the other rear air outlet 3BN.
[0083] The driver's side air vent 3D and the passenger's side air vent 3N are essentially the same except that they are symmetrical. The following explanation will focus on the passenger's side air vent 3N, but you may substitute it with the driver's side air vent 3D as needed.
[0084] The passenger-side air outlet 3N is located between the upper surface 93 of the passenger compartment floor and the seat surface 94 of the passenger seat 9N. As shown in Figure 1, the passenger-side air outlet 3N is oriented with its longitudinal direction facing forward and backward, and its short direction facing up and down.
[0085] In the vehicle air conditioning duct device 1 of Example 1, the position of the passenger-side air outlet 3N is further forward than the front end of the passenger seat 9N, and the front end of the passenger-side air outlet 3N is located behind a position 15 cm ahead of the front end of the passenger seat 9N. Furthermore, the length of the passenger-side air outlet 3N in the longitudinal direction is more than 10 times its length in the transverse direction. In addition, the transverse direction of the passenger-side air outlet 3N, i.e., the thickness of the passenger-side air outlet 3N, is approximately 18 mm.
[0086] An airflow adjustment element 5 is located inside the passenger-side air outlet 3N. It can also be said that the airflow adjustment element 5 is located inside the duct 4, specifically at the rear of the passenger-side air outlet 3N.
[0087] As shown in Figure 4, the wind direction adjustment element 5 has a plurality of fins 50 and an opening / closing damper 55. The multiple fins 50 are arranged in the front-to-back direction, that is, along the longitudinal direction of the passenger-side air outlet 3N, and are fixed to the passenger-side air outlet 3N.
[0088] Each fin 50 extends in the vertical and horizontal directions. It can also be said that each fin 50 extends in the shorter direction of the passenger-side air outlet 3N.
[0089] Each fin 50 is inclined from the rear and right side (i.e., the far side of the air outlet 3) towards the front and left side (i.e., the passenger seat 9N side). Each fin 50 guides the conditioned air flowing through the duct 4 diagonally forward relative to the passenger seat 9N. Therefore, it can be said that each fin 50 is positioned in a diagonal guidance position.
[0090] As shown in Figure 4, the opening / closing damper 55 is located inside the duct 4 and opens and closes the portion of the duct 4 that leads to the rear air outlet 3BN. The opening / closing damper 55 is pivotally supported by the duct 4 and is rotatable relative to the duct 4. As shown in Figure 5, the pivot shaft 55S of the opening / closing damper 55 is connected to a dial-shaped damper input section 55I via a connecting member 55C. In the vehicle air conditioning duct device 1 of Embodiment 1, the connecting member 55C is a plurality of gears.
[0091] The damper input section 55I is exposed on the outside of the left side of the housing 2, above the passenger-side air outlet 3N.
[0092] Furthermore, when the damper input section 55I is operated in the damper closing direction, as indicated by the left arrow in Figure 5, the portion of the duct 4 leading to the rear air outlet 3BN is closed, as shown in Figure 4. As a result, the conditioned air flowing through the duct 4 is blown out diagonally forward from the passenger-side air outlet 3N toward the passenger seat 9N, but is not supplied to the rear air outlet 3BN (not shown).
[0093] Furthermore, when the damper input section 55I is operated in the damper opening direction indicated by the right arrow in Figure 5, the portion of the duct 4 that leads to the rear air outlet 3BN is opened. As a result, the conditioned air flowing through the duct 4 is blown out diagonally forward from the passenger-side air outlet 3N toward the passenger seat 9N, and in addition, the same conditioned air is blown backward from the rear air outlet 3B toward the rear seats (not shown).
[0094] The operation of the vehicle air conditioning duct device 1 in Example 1 is described below.
[0095] In the vehicle air conditioning duct system 1 of Example 1, warm conditioned air obtained from HVAC92 is supplied to the duct 4. This conditioned air flows through the flow path 40 of the duct 4 and moves downstream. This conditioned air is supplied to the passenger-side outlet 3N, which is connected to the portion of the duct 4 downstream of the upstream end 4U.
[0096] As described above, an airflow adjustment element 5 is located inside the passenger-side air outlet 3N (Figure 4). The airflow adjustment element 5 has multiple fins 50 that are inclined from the rear and right side toward the front and left side. Therefore, the conditioned air flowing through the duct 4 is guided by each fin 50 and blown out from the passenger-side air outlet 3N diagonally forward toward the passenger seat 9N.
[0097] As shown in Figures 2 and 3, the conditioned air is blown towards the calf 99C of the occupant 99 seated in the passenger seat 9N.
[0098] More specifically, the conditioned air first comes into contact with the right calf 99RC (i.e., the calf on the side of the air outlet as described above) of the occupant 99 seated in the passenger seat 9N, and then with the left calf 99LC (i.e., the opposite calf as described above). As a result, the calf 99C of the occupant 99 seated in the passenger seat 9N is quickly and sufficiently warmed, and consequently, the entire body of the occupant 99 is quickly and sufficiently warmed.
[0099] Subsequently, the conditioned air comes into contact with the passenger-side vehicle door 90D. This warms the passenger-side vehicle door 90D, including the door trim. In other words, according to the vehicle air conditioning duct device 1 of Embodiment 1, the waste heat that warms the occupant 99 seated on the passenger seat 9N can warm the passenger-side vehicle door 90D. This prevents the occupant 99 from perceiving coldness even if they accidentally touch the passenger-side vehicle door 90D while seated on the passenger seat 9N.
[0100] Furthermore, as the vehicle door is heated, the occupant 99 seated in the passenger seat 9N is warmed by heat conduction from the passenger-side vehicle door 90D. In addition, the conditioned air that comes into contact with the passenger-side vehicle door 90D accumulates between the passenger-side vehicle door 90D and the passenger seat 9N, and as a result, as shown in Figure 2, a warm air reservoir 98A is formed between the passenger-side vehicle door 90D and the passenger seat 9N. As a result, the temperature perceived by the occupant 99 becomes higher than the actual temperature inside the vehicle.
[0101] Through these collaborations, the vehicle air conditioning duct system 1 of Example 1 makes it difficult for occupants 99 to perceive coldness or chill at their feet, even in cold weather. In other words, the vehicle air conditioning duct system 1 of Example 1 offers further improvements in air conditioning functionality compared to conventional vehicle air conditioning duct systems 1.
[0102] [Test Example 1] In addition to the vehicle air conditioning duct system 1 of Example 1, a foot-type vehicle air conditioning duct system (not shown) for heating the feet of an occupant 99 seated in the passenger seat 9N was connected to the same HVAC 92. If necessary, this foot-type vehicle air conditioning duct system will be referred to as foot air conditioning.
[0103] Ambient temperature 0°C, HVAC92 set temperature 35°C, flow velocity of vehicle air conditioning duct device 1 in Example 1: 30 m / s 3 / h, Foot air conditioning airflow velocity 50m 3 The skin temperature of occupant 99 seated in the passenger seat 9N was calculated by simulation, assuming a temperature of / h.
[0104] Furthermore, as a control test, the ambient temperature was 0°C, the HVAC92 set temperature was 35°C, and the vehicle air conditioning duct device 1 of Example 1 was not used, with a foot air conditioning flow rate of 100 m / s. 3 The skin temperature of occupant 99 seated in the passenger seat 9N was calculated by simulation, assuming a temperature of / h. The results of Test Example 1 are shown in Figure 6.
[0105] As shown in Figure 6, when the vehicle air conditioning duct system 1 of Example 1 was used in combination with the foot air conditioning system, the skin temperature of the occupants 99 was approximately 0.6°C higher compared to when only the foot air conditioning system was used and the vehicle air conditioning duct system 1 of Example 1 was not used.
[0106] These results support the fact that the vehicle air conditioning duct device 1 of Example 1 exhibits excellent air conditioning functionality.
[0107] [Test Example 2] The vehicle air conditioning duct system 1 of Example 1 and the foot air conditioning system similar to that of Test Example 1 were installed in an actual vehicle.
[0108] [A] Ambient temperature 0°C, HVAC92 set temperature 35°C, flow velocity of vehicle air conditioning duct device 1 of Example 1 30 m 3 / h, Foot air conditioning airflow velocity 50m 3 The perceived temperature of occupant 99, seated in the passenger seat 9N, was evaluated when the temperature was set to / h.
[0109] [B] As a control test, the ambient temperature was 0°C, the HVAC92 set temperature was 35°C, and the vehicle air conditioning duct device 1 of Example 1 was not used, with a foot air conditioning flow rate of 100 m / s. 3 The perceived temperature of occupant 99, seated in the passenger seat 9N, was evaluated when the temperature was set to / h. The perceived temperature was evaluated using two categories: warm and slightly warm. The results of test example 2 are shown in Figure 7.
[0110] As shown in Figure 7, in the case where the foot air conditioning system was used in combination with the vehicle air conditioning duct device 1 of Example 1 [A], the time it took for the occupant 99 to perceive that their toes were warm was shorter compared to the case where only the foot air conditioning system was used and the vehicle air conditioning duct device 1 of Example 1 was not used [B]. Specifically, in the case of [A], the occupant 99 perceived the warmth of their toes 3 minutes earlier than in the case of [B].
[0111] Regarding the temperature at the feet of crew member 99, the size of the relatively high-temperature area, which appears whitish in the thermographic image, is equivalent to or greater than that in case [A] above compared to case [B] above. Furthermore, in case [A] above, the temperature was particularly high around the calf 99C.
[0112] This result also supports the fact that the vehicle air conditioning duct device 1 of Example 1 exhibits excellent air conditioning functionality.
[0113] (Reference example) In the above-described embodiment 1, the driver's side air outlet 3D and the passenger's side air outlet 3N were provided on the side of the center console box which is the housing 2. However, the air outlet 3 in the vehicle air conditioning duct device 1 of the present invention can also be provided on the front of the housing 2. Figure 8 shows a schematic explanatory diagram of a reference example housing 2 in which the air outlet 3 of the vehicle air conditioning duct device 1 of the present invention can be arranged.
[0114] As shown in Figure 8, the housing 2 of the reference example has an inclined surface 21 at its front. The inclined surface 21 is located between the upper surface 93 of the passenger compartment floor and the seat surface 94, slightly closer to the seat surface 94, and is inclined between the rear and lower side and the front and upper side. By providing the air outlet 3 on the inclined surface 21, the air-conditioned air can be blown out from above towards below through the air outlet 3, which is located slightly closer to the seat surface 94, i.e., slightly higher up, and the air-conditioned air can be reliably blown onto the calves 99C of the occupant 99.
[0115] (Example 2) The vehicle air conditioning duct system 1 of Example 2 is substantially the same as the vehicle air conditioning duct system 1 of Example 1, except for the airflow direction adjustment element 5. Schematic diagrams illustrating the airflow direction adjustment element 5 in the vehicle air conditioning duct system 1 of Example 2 are shown in Figures 9 and 10. The following describes the vehicle air conditioning duct device 1 of Example 2, focusing on the differences from the vehicle air conditioning duct device 1 of Example 1, namely the airflow direction adjustment element 5.
[0116] As shown in Figure 9, the airflow adjustment element 5 in the vehicle air conditioning duct device 1 of Embodiment 2 has a plurality of fins 50 and does not have an opening / closing damper 55. The plurality of fins 50 are arranged along the longitudinal direction of the passenger-side air outlet 3N and rotate about a pivot axis 50A. More specifically, each fin 50 is strip-shaped, extending vertically and horizontally, and is connected by links (not shown), rotating synchronously with each other within a range of motion that includes the closed position shown in Figure 9 and the oblique guided position shown in Figure 10.
[0117] As shown in Figure 10, the length of each fin 50 increases from the front, i.e., upstream side, to the rear, i.e., downstream side, and each fin 50 is arranged with its left end aligned. Therefore, the protruding length of the fins 50 inside the duct 4 increases from the upstream fins 50 to the downstream fins 50. In other words, the projected area of each fin 50 projected in the axial direction of the duct 4 increases from the upstream fin 50 to the downstream fin 50. The projected area can also be said to be the area projected from front to rear across each fin 50. Alternatively, the projected area can also be said to be the area projected from rear to front across each fin 50.
[0118] In the closed position shown in Figure 9, the projected area of the fins 50 in the direction perpendicular to the axial direction is minimized. In the vehicle air conditioning duct device of Embodiment 2, the airflow adjustment element 5 is a so-called fin shut register, and in the closed position, each fin 50 overlaps, closing the passenger-side air outlet 3N.
[0119] Each fin 50 is operated by operating a fin input unit (not shown in the figure). The fin input unit is connected to the link (not shown in the figure) described above. The fin input unit is dial-shaped, similar to the damper input unit 55I in the vehicle air conditioning duct device of Embodiment 1, and is exposed on the outside of the left side of the housing 2, above the passenger-side air outlet 3N.
[0120] In the diagonal guide position shown in Figure 10, each fin 50 is positioned at the diagonal guide position, inclined from the rear and right side towards the front and left side. At this time, each fin 50 guides the conditioned air flowing through the duct 4 diagonally forward relative to the passenger seat 9N.
[0121] Therefore, at this time, the conditioned air is blown towards the calf 99C of the occupant 99 seated in the passenger seat 9N. The conditioned air quickly and sufficiently warms the calf 99C of the occupant 99 seated in the passenger seat 9N, and consequently, the entire body of the occupant 99 is quickly and sufficiently warmed.
[0122] Furthermore, the conditioned air blown out from the passenger-side vent 3N and passing through the calf 99C of the occupant 99 seated in the passenger seat 9N then comes into contact with the passenger-side vehicle door 90D, warming the passenger-side vehicle door 90D. In addition, the conditioned air that comes into contact with the passenger-side vehicle door 90D accumulates between the passenger-side vehicle door 90D and the passenger seat 9N, forming a warm air reservoir 98A between the passenger-side vehicle door 90D and the passenger seat 9N.
[0123] Through the above collaboration, the vehicle air conditioning duct device 1 of Example 2 makes it difficult for occupants 99 to perceive coldness or chill at their feet, even in cold weather.
[0124] Furthermore, as shown in Figures 9 and 10, the conditioned air that reaches the downstream side of the airflow adjustment element 5 in the flow path 40 of the duct 4 flows further downstream, i.e., toward the rear outlet 3B, and is blown out from the rear outlet 3B toward the rear seats (not shown).
[0125] In the vehicle air conditioning duct system of Example 2, as shown in Figure 9, when the fins 50 are in the closed position, the passenger-side outlet 3N is closed by each fin 50, and almost the entire amount of conditioned air flowing through the duct 4 is supplied to the rear outlet 3B.
[0126] When each fin 50 is in a position other than the closed position, for example, when each fin 50 is in the diagonal guide position as shown in Figure 10, the passenger-side air outlet 3N is opened. At this time, the protruding length of each fin 50 in the flow path 40 of the duct 4 increases. In other words, at this time each fin 50 interferes with the flow path 40 of the conditioned air.
[0127] Here, as shown in Figure 10, the protruding length of each fin 50 in the interior of the duct 4, i.e., the flow path 40, gradually increases from the upstream fin 50 to the downstream fin 50. In other words, the projected area of each fin 50 gradually increases from the upstream fin 50 to the downstream fin 50. As a result, the flow path cross-sectional area of the duct 4 in the direction perpendicular to the axial direction of the duct 4 gradually decreases from the upstream side to the downstream side at the far end of the passenger-side air outlet 3N.
[0128] With the fins 50 arranged as described above, the conditioned air flowing through the flow path 40 of the duct 4 that flows on the left side of the duct 4, i.e., the passenger-side outlet 3N side, comes into contact with the fin 50f1 located furthest upstream of the fins 50. This conditioned air is then guided by the fin 50f1 to change its flow path and is supplied to the passenger-side outlet 3N, from which it is blown diagonally forward toward the passenger seat 9N.
[0129] The remaining conditioned air, that is, the conditioned air that did not come into contact with fin 50f1, moves downstream. Of the conditioned air that did not come into contact with fin 50f1, the portion that flows through the passenger-side outlet 3N of the duct 4 comes into contact with fin 50f2, which is adjacent to the rear side, i.e., downstream side of fin 50f1, and has a longer protruding length than fin 50f1. Guided by fin 50f2, it is supplied to the passenger-side outlet 3N and blown out diagonally forward from the passenger-side outlet 3N towards the passenger seat 9N.
[0130] In this way, the conditioned air flowing through the flow path 40 of the duct 4 is sequentially guided to the passenger-side outlet 3N by the fins 50 arranged in the axial direction. On the other hand, the conditioned air flowing through the flow path of the duct 4 that flows on the right side of the duct 4, that is, the side opposite to the passenger-side outlet 3N, does not come into contact with the fins 50, but continues downstream and is blown out towards the rear of the vehicle, i.e., the rear seats, via the rear outlet 3B. As a result, the conditioned air flowing through the duct 4 is distributed to the passenger-side outlet 3N and the rear outlet 3B by the fins 50 provided inside it. Therefore, the vehicle air conditioning duct device 1 of Embodiment 2, despite having a straight tubular duct 4, can suitably distribute conditioned air to both the flow path via the passenger-side outlet 3N and the flow path via the rear outlet 3B.
[0131] As previously described, the protruding length of each fin 50 in the flow path 40 of the duct 4 gradually increases from the upstream fin 50 to the downstream fin 50, and the projected area of each fin 50 also gradually increases from the upstream fin 50 to the downstream fin 50. Therefore, the downstream fins 50 can come into contact with the conditioned air flowing in the flow path 40 of the duct 4 in an area away from the passenger-side outlet 3N.
[0132] The conditioned air that comes into contact with the fin 50 located downstream is supplied to the downstream region of the passenger-side outlet 3N where it is difficult to supply a sufficient amount of conditioned air. Therefore, according to the vehicle air conditioning duct device of Embodiment 2, it becomes possible to supply a sufficient amount of conditioned air to the passenger-side outlet 3N over its entire longitudinal length. As a result, even though the passenger-side outlet 3N is shaped to extend along the axial direction of the duct 4, that is, along the direction of air conditioning air flow, the uneven distribution of the amount of conditioned air supplied to the passenger-side outlet 3N can be reduced, and consequently, the uneven distribution of the amount of conditioned air blown out from the passenger-side outlet 3N can be reduced.
[0133] In the vehicle air conditioning duct device 1 of Example 2, the flow path cross-sectional area of the duct 4 in a direction perpendicular to the axial direction is 20% or more of the area when the fin 50 is in the closed position (see Figure 9) when the fin 50 is in the oblique guide position (see Figure 10) at the rear of the passenger-side outlet 3N. Therefore, the vehicle air conditioning duct device 1 of Example 2 has the advantage that even when the fin 50 is opening the passenger-side outlet 3N, a sufficient amount of conditioned air can be supplied to the rear outlet 3B.
[0134] Although the present invention has been described above, it is not limited to the embodiments described above, and it is possible to implement the invention by appropriately extracting and combining the elements described in the embodiments, and to make various modifications without departing from the spirit of the present invention. Furthermore, the specification of this invention discloses not only the technical concept shown in the reference relationships of each claim at the time of filing, but also a technical concept that appropriately combines the matters described in each claim. [Explanation of Symbols]
[0135] 1: Vehicle air conditioning duct system 2: Cabinet 21: Inclined surface 3: Air outlet 4: Duct 40: Flow channel 5: Wind direction adjustment element 50: Finn 9D: Driver's seat 9N: Passenger seat (seat) 90D: Passenger-side vehicle door (vehicle door) 92: HVAC (Vehicle Air Conditioning System) 93: Upper surface of the vehicle floor 94: Seat
Claims
1. A housing positioned to the side of the seat and on the opposite side of the vehicle door from the seat, Among the aforementioned housings, an air outlet is provided at a position between the upper surface of the passenger compartment floor and the seat surface of the aforementioned seat, A duct having an airflow path for conditioned air inside, at least a portion of which is located inside the housing and connected to the vehicle air conditioning system and the outlet, An airflow adjustment element having at least one fin and positioned inside the outlet, The air conditioning air is blown out from the outlet diagonally forward toward the seat, The fin is rotatable within a range of rotation that includes an oblique guide position inclined from the rear and inner side to the front and seat side relative to the air outlet. The aforementioned airflow adjustment element further satisfies (i) and / or (ii) below in a vehicle air conditioning duct system. (i) Having an operating section for rotating the fin, the input section of the operating section for operation by the occupant is located above the air outlet and is exposed to the outside of the housing, (ii) It has an opening / closing damper and an operating part for rotating the opening / closing damper, and the input part of the operating part for operation by the occupant is located above the air outlet and is exposed to the outside of the housing.
2. A housing positioned to the side of the seat and on the opposite side of the vehicle door from the seat, Among the aforementioned housings, an air outlet is provided at a position between the upper surface of the passenger compartment floor and the seat surface of the aforementioned seat, A duct having an airflow path for conditioned air inside, at least a portion of which is located inside the housing and connected to the vehicle air conditioning system and the outlet, An airflow adjustment element having multiple fins and positioned inside the outlet, The air conditioning air is blown out from the outlet diagonally forward toward the seat, The fin is rotatable within a range of rotation that includes an oblique guide position inclined from the rear and inner side to the front and seat side relative to the air outlet. The inner end of the fin is, Located inside the aforementioned duct, A vehicle air conditioning duct device, wherein, at the aforementioned oblique guide position, the ends included in the rearmost fin are positioned further away from the seat and closer to the inner wall surface on the rear side of the duct.
3. The housing has an inclined surface on the front or side, The air outlet is provided on the inclined surface, as described in claim 1 or claim 2 of the vehicle air conditioning duct device.