PAN OR TILT HEAD AND IMAGING DEVICE
20220146913 · 2022-05-12
Inventors
Cpc classification
G08B13/1963
PHYSICS
F16H55/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
In order to provide a pan or tilt head and the like capable of reducing rattling or vibration when a rotation is suddenly changed while reducing the unevenness in rotational speed for smooth rotational drive, there is provided a pan or tilt head including a drive unit which rotates a camera unit in a predetermined direction, first and second gears which rotate around a predetermined rotation axis in the predetermined direction and are coaxial with the predetermined rotation axis, a third gear which meshes with the first and second gears and transmits a driving force from the drive unit, and a biasing unit which biases the second gear in the rotation axis direction, the first gear, the second gear, and the third gear includes helical gears, and the second gear is disposed to be movable in the rotation axis direction with respect to the first gear
Claims
1. A pan or tilt head comprising: a drive unit which rotates a camera unit in a predetermined direction first and second gears which rotate around a predetermined rotation axis in the predetermined direction and are coaxial with the predetermined rotation axis; a third gear which meshes with the first and second gears and transmits a driving force from the drive unit; and a biasing unit which biases the second gear in the rotation axis direction, wherein the first gear, the second gear, and the third gear include helical gears, and wherein the second gear is disposed to he movable in the rotation axis direction with respect to the first gear.
2. The pan or tilt head according to claim 1, wherein helix aneles of the first gear, the second gear, and the third gear are 45° or less,
3. The pan or tilt head according to claim 1, wherein the third gear includes a pulley portion which meshes with a timing belt.
4. The pan or tilt head according to claim 3, wherein the pulley portion is configured to transmit a driving force from the drive unit by the timing belt.
5. The pan or tilt head according to claim 1, wherein the first gear includes a plurality of arc-shaped ribs having the same radius of the arc-shaped portion, wherein the arc-shaped ribs are arranged so that the center of the arc substantially coincides with the rotation axis, and wherein a part of the second gear is fitted to an outer peripheral portion of the arc-shaped rib.
6. The pan or tilt head according to claim 5, wherein the biasing units are provided at a plurality of positions, wherein the plurality of biasing units is arranged along a circumference centered on the rotation axis, and wherein the biasing units are arranged alternately with the arc-shaped ribs.
7. The pan or tilt head according to claim 1, wherein the predetermined direction includes at least one of a panning direction and a tilting direction.
8. The pan or tilt head according to claim 1, further comprising: a panning drive unit which rotates the camera unit in a panning direction and a tilting drive unit which rotates the camera unit in a tilting direction, wherein each of the panning drive unit and the tilting drive unit includes the drive unit, the first gear, the second gear, and the third gear, wherein the first gear, the second gear, and the third gear includes helical gears, wherein the second gear is disposed to be movable in the rotation axis direction with respect to the first gear, and wherein the biasing unit is provided to bias the second gear in the rotation axis direction.
9. An imaging device comprising: a pan or tilt head which includes a drive unit for rotating a camera unit in a predetermined direction, first and second gears for rotating around a predetermined rotation axis in the predetermined direction and coaxial with the predetermined rotation axis, a third gear for meshing with the first and second gears and for transmitting a. driving force from the drive unit, and a biasing unit for biasing the second gear in the rotation axis direction; and the camera unit which is attachable to the pan or tilt head, wherein the first gear, the second gear, and the third gear include helical gears, and wherein the second gear is disposed to be movable in the rotation axis direction with respect to the first gear.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF THE EMBODIMENTS
[0026] Hereinafter, with reference to the accompanying drawings, favorable mode of the present invention will be described using Embodiments. In each diagram, the same reference signs are applied to the same members or elements, and duplicate description will he omitted or simplified.
[0027] Further, in the embodiment, an example in which a network camera used for live streaming or the like as an imaging device is combined with a pan or tilt head for panning and tilting will be described. However, the imaging device includes an electronic device such as a digital still camera, a digital movie camera, a smartphone with a camera, a tablet computer with a camera, and an in-vehicle camera having an imaging function.
[0028]
[0029] As shown in
[0030] The video camera 100 shown in
[0031] When the camera unit 10 is panned and tilted, it is possible to capture an image without blurring by smoothly driving the camera unit 10 without any unevenness in rotational speed. Further, the camera unit 10 can perform panning and tilting operations in a wide speed range from a high speed range to a low speed range. Therefore, even a subject moving at an uneven speed can be photographed by allowing the camera unit 10 to follow the subject.
[0032] In this way, the video camera 100 can rotate the camera unit 10 in the panning and tilting directions. Here, the panning unit 11 and the base portion 12 constitute a pan or tilt head for rotating the camera unit 10 in the panning and tilting directions. Additionally, in the embodiment, the camera unit 10 is attached to the pan or tilt head and cannot be attached or detached by the user. However, the camera unit 10 may be simply attached to or detached from the pan or tilt head.
[0033] Next, a tilting drive mechanism 200 of the video camera 100 will be described. The tilting drive mechanism 200 is disposed in the panning unit 11.
[0034]
[0035] As shown in
[0036] Here, the rotation of the camera unit 10 in the tilting direction is performed by the tilting drive mechanism 200. The tilting drive mechanism 200 includes a tilting motor 20 which is a drive source, a rubber 21, a timing belt 22, a geared pulley 23, a first helical gear 24, a second helical gear 25, and the like. Further, the geared pulley 23 includes a pulley portion 23B and a gear portion 23A and the gear portion 23A is a helical gear. Here, the first helical gear 24 and the second helical gear 25 respectively function as a first gear and a second gear which rotate around a predetermined rotation axis in the predetermined direction and are coaxial with the predetermined rotation axis. Further, the gear portion 23A functions as a third gear which transmits a driving force from the drive source.
[0037] The tilting motor 20 is attached to the panning unit 11 through the rubber 21 and the geared pulley 23 is rotatably supported by the panning unit 11. The tilting motor 20 and the pulley portion 23B of the geared pulley 23 are connected by the timing belt 22. The first helical gear 24 is fixed so that the center substantially coincides with the tilting shaft 15 and is disposed to mesh with the gear portion 23A of the geared pulley 23.
[0038] Thus, when the tilting motor 20 is driven, the geared pulley 23 rotates through the timing belt 22 and further the rotation is transmitted to the first helical gear 24 meshing with the gear portion 23A of the geared pulley 23, so that the camera unit 10 can be tilted.
[0039] Next, a configuration for removing the backlash of the first helical gear 24 of the tilting drive mechanism 200 will be described with reference to
[0040]
[0041] As shown in
[0042] When the first helical gear 24 meshes with the gear portion 23A of the geared pulley 23, backlash is generated. However, it is possible to remove the backlash as shown in
[0043] The configuration for removing this backlash is such that the teeth of the gear portion 23A of the geared pulley 23 are sandwiched between the teeth of the first helical gear 24 and the second helical gear 25 and has a so-called scissors gear configuration. With this configuration, when the camera unit 10 is rotated in the tilting direction, rattling due to backlash is removed and smooth operation is enabled.
[0044] When the camera unit 10 is rapidly tilted and suddenly stopped, a torque is applied to the second helical gear 25 due to the inertia of the camera unit 10. The force generated in one tooth of the second helical gear 25 by this torque is indicated by F1 of
[0045]
[0046] Assuming that the helix angle of the second helical gear 25 is θ, F1 can be divided into F1 cos θ which is a force in the direction perpendicular to the tooth surface and F1 sin θwhich is a force in the direction in contact with the tooth surface.
[0047] When the second helical gear 25 slips and moves in the axial direction due to F1 sin θ, the configuration for removing backlash cannot be established. Therefore, a configuration that can always remove backlash is maintained by setting the biasing force F2 by the coil spring 28 to a large value and suppressing slippage due to F1 sin θ.
[0048] Since F1 sin θ becomes a small value when the helix angle θ is set to a small value the embodiment, θ=15°) of 45° or less, the backlash can be always removed even when the biasing force F2 due to the coil spring 28 is set to be small. Further, it is possible to prevent the second helical gear 25 and the gear portion 23A of the geared pulley 23 from hitting strongly by reducing the biasing force F2. Accordingly, the unevenness of the transmission torque due to the rotation phase of the gear can be reduced and the camera unit 10 can be smoothly tilted.
[0049] So far, the configuration for removing the backlash of the first helical gear 24 has been described. By biasing the second helical gear 25 in the thrust direction, the backlash can be removed by sandwiching the teeth of the gear portion 23A of the geared pulley 23. Next, the configuration for biasing the second helical gear 25 will be described in detail.
[0050] As shown in
[0051] Since there is a slight backlash in the fitting of the inner diameter of the second helical gear 25, the second helical gear 25 may be slightly diagonally tilted due to the backlash.
[0052] However, since the outer diameter of the arc-shaped rib 24A is larger than the outer diameter of the tilting shaft 15, the inclination of the second helical gear 25 can be suppressed to be small compared to the case in which the second helical gear 25 is directly fitted to the outer diameter of the tilting shaft 15. Further, the coil springs 28 are arranged alternately with the arc-shaped ribs 24A.
[0053] With this configuration, it is possible to apply a biasing force to the vicinity of the outer periphery while maintaining a large fitting diameter of the second helical gear 25. The inclination of the second helical gear 25 due to the variation in the biasing force can be suppressed to be small by applying the biasing force to the vicinity of the outer periphery.
[0054] Next, the attachment shape of the tilting motor 20 in the tilting drive mechanism 200 will be described with reference to
[0055] Since both the rubber 21 and the timing belt 22 are members having low rigidity, the vibration of the tilting motor 20 is less likely to be transmitted to the pan base 16 or the geared pulley 23. Accordingly, it is possible to prevent the image being captured from shaking due to the vibration of the tilting motor 20.
[0056] Next, the panning drive mechanism 300 of the video camera 100 will be described. The panning drive mechanism (panning drive unit) 300 functions as a rotational drive unit which rotates the camera unit 100 in a predetermined panning direcEion.
[0057]
[0058] The rotation of the camera unit 10 in the panning direction is performed by the panning drive mechanism 300. As shown in Fig, 5, the panning drive mechanism 300 includes a pan motor 30, a rubber 31, a timing belt 32, a geared pulley 33, a first helical gear 34, a second helical gear 35, and the like. Further, the geared pulley 33 includes a pulley portion 33B and a gear portion 33A and the gear portion 33A is a helical gear.
[0059] The pan motor 30 is attached to the base portion 12 through the rubber 31 and the geared pulley 33 is rotatably supported by the base portion. The pan motor 30 and the pulley portion 33B of the geared pulley 33 are connected by the timing belt 32. The first helical gear 34 is fixed so that the center substantially coincides with the panning shaft 17 and is disposed to mesh with the gear portion 33A of the geared pulley 33.
[0060] Thus, when the pan motor 30 is driven, the geared pulley 33 rotates through the timing belt 32 and further the rotation is transmitted to the first helical gear 34 meshing with the gear portion 33A of the geared pulley 33. Then, the pan base 16 can be panned and hence the camera unit 10 can be panned.
[0061] The second helical gear 3.5 is disposed not to be rotatable with respect to the first helical gear 34 and to be movable in parallel to the rotation axis direction. As shown in
[0062] The pan motor 30 is attached to the support metal plate 37 through the rubber 31 and the support metal plate 37 is attached to the base portion 12.
[0063] These configurations are the same as those of the tilting drive mechanism 200 and the panning can be smoothly performed by removing backlash.
[0064]
[0065] Vibration is not generated by reducing backlash even in the sudden acceleration or stop and a smooth rotation with little unevenness in speed is allowed even in the rotation at a constant speed.
[0066] In the embodiment, the camera unit 10 is rotatable in the tilting direction and the panning direction, but may be rotatable in any one of the tilting direction and the panning direction.
[0067] Further, in the embodiment, the tilting drive mechanism 200 and the panning drive mechanism 300 are decelerated in two stages, but may be deceleration mechanisms having three or more stages.
[0068] While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation to encompass all such modifications and equivalent structures and functions.
[0069] This application claims the benefit of Japanese Patent Application No. 2020-187342 filed on Nov. 10, 2020, which is hereby incorporated by reference herein in its entirety.