Controllable Air Outlet Nozzle
20170217289 · 2017-08-03
Inventors
Cpc classification
B60H1/3414
PERFORMING OPERATIONS; TRANSPORTING
B60H1/345
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An air outlet nozzle, in particular for a motor vehicle, includes: a tube-shaped nozzle body; a first air guide element which is arranged in the tube-shaped nozzle body, and which is in contact with the tube-shaped nozzle body and forms a screw shape; a second air guide element which is arranged in the tube-shaped nozzle body, and which is in contact with the tube-shaped nozzle body and forms a screw shape. The first air guide element and the second air guide element are offset from one another in the tube-shape nozzle body, such that a first airway and a second airway are formed in the tube-shaped nozzle body. A moving adjustment element closes the first airway in a first position, and releases the first airway in a second position.
Claims
1. An air outlet nozzle for a motor vehicle, comprising: a tubular nozzle body; a first air guiding element arranged in the tubular nozzle body, said first air guiding element being in contact with the tubular nozzle body and forming a screw shape; a second air guiding element arranged in the tubular nozzle body, said second air guiding element being in contact with the tubular nozzle body and forming a screw shape, wherein the first air guiding element and the second air guiding element are arranged in the tubular nozzle body in a manner offset from one another, such that a first air path and a second air path are formed in the tubular nozzle body; and a movable setting element which closes the first air path in a first position and opens the first air path in a second position.
2. The air outlet nozzle as claimed in claim 1, further comprising: a connecting element which is arranged upstream of the movable setting element in a direction of air flow between the first air guiding element and the second air guiding element in the first air path, such that the connecting element closes the first air path, and wherein the movable setting element closes an opening in the first air guiding element in the first position and opens the opening in the second position, such that the first air path and the second air path are connectable to one another.
3. The air outlet nozzle as claimed in claim 2, wherein the connecting element is configured as a partition wall between the first air guiding element and the second air guiding element.
4. The air outlet nozzle as claimed in claim 2, wherein the connecting element is configured as a common origin surface with a branching point, from which the first and second air guiding elements branch in the direction of air flow.
5. The air outlet nozzle as claimed in claim 1, wherein the tubular nozzle body has, at an air outlet opening, a ring to which slats for deflecting the air stream at a previously determined deflection angle are attached.
6. The air outlet nozzle as claimed in claim 5, wherein the slats arranged in the first air path are at a deflection angle which is different than the deflection angle of the slats arranged in the second air path, and/or the slats arranged in the first air path have a slat length which is different than the slat length of the slats arranged in the second air path.
7. The air outlet nozzle as claimed in claim 5, wherein the ring is connected to the tubular nozzle body.
8. The air outlet nozzle as claimed in claim 6, wherein the ring is connected to the tubular nozzle body.
9. The air outlet nozzle as claimed in claim 5, wherein the ring is connected to the first air guiding element and to the second air guiding element, and the ring, the first air guiding element and the second air guiding element are mounted in a rotatable manner with regard to the tubular nozzle body.
10. The air outlet nozzle as claimed in claim 6, wherein the ring is connected to the first air guiding element and to the second air guiding element, and the ring, the first air guiding element and the second air guiding element are mounted in a rotatable manner with regard to the tubular nozzle body.
11. The air outlet nozzle as claimed in claim 1, further comprising: a closure element arranged at an air inlet opening of the tubular nozzle body, said closure element closing both air paths in a first position and opening both air paths in a second position.
12. The air outlet nozzle as claimed in claim 1, further comprising: a longitudinal shaft which is arranged in the tubular nozzle body and to which the first air guiding element and the second air guiding element are attached, wherein the longitudinal shaft has a movable control element, and in a first position of the control element, the setting element is in its first position for closing the first air path, and in a second position of the control element, the setting element is in its second position for opening the first air path.
13. The air outlet nozzle as claimed in claim 12, wherein in the first and second positions of the control element, the closure element is in its second position for opening both air paths, and in a third position of the control element, the closure element is in its first position for closing both air paths.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE DRAWINGS
[0025]
[0026] Arranged between the air guiding elements 16 and 18 is a connecting element 30, which, in
[0027]
[0028] Also discernible in
[0029] The second position of the movable setting element 28 is illustrated in
[0030] Furthermore,
[0031] The different positions of the movable setting element 28 and of the closure element 36 can be set by a control element 40. According to
[0032] In this case, the control element 40 can have different positions: in a first position, the opening 20 is closed by the movable setting element 28 (
[0033] In a further exemplary embodiment, a ring 32, which has slats 34, is arranged at the air outlet opening 12a. The slats 34 are attached to the ring 32 at a previously determined deflection angle.
[0034] As can be seen in
[0035] In a further exemplary embodiment, the ring 32 is firmly connected to the nozzle body 14. When air flows out only through the second air path 26 (
[0036] Likewise, the ring 32 can be connected to the first air guiding element 16 and the second air guiding element 18, and the latter are mounted in a rotatable manner in the tubular nozzle body 14. In this case, the ring 32 can rotate through 360° with the air guiding elements 16 and 18. As a result of the rotation of the ring, any deflection of the air stream spot through 360° about the previously determined deflection angle of the slats of the air outlet nozzle is then allowed.
[0037] Furthermore, it is also generally possible for the air guiding elements 16 and 18 to be formed by symmetrical and asymmetrical screw shapes. As a result, the volumes in the air paths 24 and 26 can be changed in order to achieve different air flows in the first and in the second position of the movable control element 28. For example, the volume in the second air path 26 can be a quarter of the total volume of the nozzle body 14 and the volume in the first air path 24 can be three quarters of the overall volume of the nozzle body 14. Furthermore, the screw-shaped air guiding elements 16 and 18 can have any desired numbers of turns and pitches.
[0038] Furthermore, it is also possible for more than two air guiding elements to be used, such that it is not only possible for a theoretically double-threaded screw arrangement, as shown in
[0039] In a further embodiment of the air outlet nozzle according to the invention, a partition wall can be formed between the first air guiding element 16 and the second air guiding element 18, and thus close the first air path 24 (not shown). In this case, the two air guiding elements 16 and 18 do not originate from a common origin surface 30, as in
[0040] In a further advantageous embodiment, this partition wall can be configured as a movable setting element 28 and close the first air path 24 in a first position and open the first air path 24 in a second position (not shown).
[0041] In summary, the present invention allows optimal orientation of the air stream out of a fresh air grill, with long guides and few interfering contours being used. Moreover, the present invention allows the number of movable parts of a fresh air grill to be reduced, rattling noises to be minimized, a stable geometry (no flexible slats) and easy operation (for example rotation of the outer ring). The simplified technology and use of few components results in lower costs.
[0042] The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.