Lens barrel, imaging device, and driving device

The lens barrel design with a rotatably supported annular member and perpendicular biasing mechanism addresses inefficiencies in focus lens drive mechanisms, achieving reduced motor load and improved accuracy through rolling friction and stable engagement.

JP7679885B2Active Publication Date: 2025-05-20NIKON CORP
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Patent Information

Application Number
JP2023549527
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-09-27
Filing Date
2022-09-16
Publication Date
2025-05-20
Estimated Expiration
2042-09-16

AI Technical Summary

Technical Problem

Existing drive mechanisms for focus lenses, such as those using a lead screw and nut, lack efficiency and precision in movement, leading to increased load on motors and potential delays.

Method used

A lens barrel design that incorporates an annular member with a groove engaging a lead screw, supported rotatably by a bearing and biased perpendicularly, allowing rolling friction to reduce motor load and enhance movement accuracy by ensuring stable contact at multiple points.

Benefits of technology

Improves the performance of the drive mechanism by reducing motor load, increasing movement speed, and enhancing position control accuracy of the lens group through rolling friction and stable engagement with the lead screw.

✦ Generated by Eureka AI based on patent content.

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Abstract

This lens barrel comprises: a lens retaining frame for retaining a lens; a drive source; a lead screw in which a first threaded groove is formed and which is rotationally driven by the drive source; an annular member having in the inner circumference thereof a groove that comes in contact with the first threaded groove; a movement member which is connected to the lens retaining frame, rotatably retains the annular member, and moves in the axial direction of the lead screw in accordance with rotation of the lead screw; and a biasing part for biasing the annular member toward the lead screw in the direction orthogonal to the axial direction of the lead screw. 
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Description

[Technical field]

[0001] The present invention relates to a lens barrel, an imaging device, and a driving device. [Background technology]

[0002] A mechanism for driving a focus lens by using a lead screw and a nut that engages with the lead screw has been proposed (for example, Patent Document 1). There is a demand for improved performance of the drive mechanism for driving the focus lens. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2011-007938 A Summary of the Invention

[0004] According to a first aspect, a lens barrel includes a lens holding frame that holds a lens, a driving source, a lead screw having a first thread groove formed therein and driven to rotate by the driving source, an annular member having a groove on its inner circumference that abuts with the first thread groove, a moving member that is connected to the lens holding frame, rotatably holds the annular member, and moves in the axial direction of the lead screw as the lead screw rotates, and a biasing portion that biases the annular member toward the lead screw in a direction perpendicular to the axial direction of the lead screw.

[0005] According to a second aspect, a lens barrel includes a lens holding frame that holds a lens, a drive source, a lead screw having a thread groove formed therein and that is rotationally driven by the drive source, a rotating member having a groove that abuts against the thread groove, a moving section that is connected to the lens holding frame, rotatably holds the rotating member, and moves in an axial direction of the lead screw as the lead screw rotates, and a biasing section that biases the rotating member toward the lead screw in a direction perpendicular to the axis of the lead screw. The inner peripheral surface of the moving portion is engaged with an outer ring of a bearing that rotatably holds the rotating member, and the inner ring of the bearing is engaged with the rotating member. do.

[0006] According to a third aspect, an imaging device includes the above-described lens barrel.

[0007] According to a fourth aspect, a driving device includes a driving source, a lead screw having a thread groove formed thereon and rotated by the driving source, an annular member having a groove on its inner circumference that abuts with the thread groove, a holding member that rotatably holds the annular member, and a biasing portion that biases the annular member toward the lead screw in a direction perpendicular to the axis of the lead screw, and as the lead screw rotates, the annular member moves in the axial direction of the lead screw together with the holding member while rotating.

[0008] The configurations of the embodiments described below may be appropriately improved, and at least a part of them may be replaced with other components. Furthermore, components that are not particularly limited in terms of their location may be located in any location that can achieve their function, not limited to the location disclosed in the embodiments. [Brief description of the drawings]

[0009] [Figure 1] 1(A) and 1(B) are cross-sectional views showing the configuration of a camera equipped with a lens barrel according to the first embodiment. [Diagram 2] FIG. 2A is a perspective view of the lens holding frame and the drive source unit as viewed from the subject side (−Z direction), and FIG. 2B is an enlarged view of the vicinity of the first guide part as viewed from the +Y direction. [Diagram 3] FIG. 3A is a perspective view for explaining the configuration of the drive source unit, and FIG. 3B is a cross-sectional view of the drive source unit. [Figure 4] Figure 4(A) is an exploded oblique view of the moving part, Figure 4(B) is a partial cross-sectional view of the moving part, Figure 4(C) is a perspective view of the moving part, Figure 4(D) is a perspective view of the spring, and Figure 4(E) is a cross-sectional view of the moving part. [Diagram 5]Figure 5(A) is a plan view of the lead screw and annular member seen from the -Z direction, Figure 5(B) is a view of the lead screw and annular member seen from the biasing direction, and Figure 5(C) is a cross-sectional view along line BB in Figure 5(A). [Figure 6] FIG. 6(A) is a perspective view showing a drive source unit according to the second embodiment, and FIG. 6(B) is a plan view showing the drive source unit and lens holding frame according to the second embodiment as viewed from the subject side. [Figure 7] 7A is a diagram showing a part of the drive source unit as seen from the subject side, and FIG. 7B is a cross-sectional view taken along line EE in FIG. 6B. [Figure 8] FIG. 8 is a cross-sectional view taken along the line FF in FIG. 6(B). [Figure 9] FIG. 9(A) is a perspective view of a drive source unit according to the third embodiment, and FIG. 9(B) is a plan view of the drive source unit and the lens holding frame according to the third embodiment as viewed from the subject side. [Figure 10] FIG. 10A is a cross-sectional view of a drive source unit according to the third embodiment, and FIG. 10B is a cross-sectional view of a moving portion according to the third embodiment. [Figure 11] FIG. 11A is a plan view of a moving section according to the third embodiment as viewed from the subject side (−Z direction), and FIG. 11B is a cross-sectional view taken along line DD in FIG. 11A. [Figure 12] Figure 12(A) is an oblique view of a drive source unit in the fourth embodiment, Figure 12(B) is an oblique view showing the state in which the moving part is fixed to the lens holding frame, and Figure 12(C) is a view of the moving part and lead screw from the +Z direction. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] The lens barrel according to the embodiment will be described in detail below with reference to the drawings. In the drawings shown below, an XYZ Cartesian coordinate system is appropriately provided to facilitate explanation and understanding. In this coordinate system, the direction from the subject toward the camera body 3 at the camera position (hereinafter referred to as the normal position) when the photographer takes a landscape image with the optical axis OA horizontal is defined as the +Z direction. In addition, the direction toward the right side as viewed from the camera body 3 at the normal position is defined as the +X direction. In addition, the direction toward the upper side at the normal position is defined as the +Y direction. Note that the scale of the shape, length, thickness, etc. of each part shown in the embodiment does not necessarily match the actual one, and in each drawing, some elements may be omitted for ease of understanding. In addition, hatching of some elements may be omitted in the cross-sectional view.

[0011] First Embodiment 1(A) and 1(B) are cross-sectional views showing the configuration of a camera 1 equipped with a lens barrel 2 according to a first embodiment. The cut positions of Fig. 1(A) and Fig. 1(B) are different.

[0012] 1(A) and 1(B), the camera 1 includes a camera body 3 and a lens barrel 2. The lens barrel 2 is provided with a lens mount LM at the rear (base end) thereof, and is detachably attached to the camera body 3 by engaging with a body mount (not shown) of the camera body 3. Note that in this embodiment, the lens barrel 2 is detachable from the camera body 3, but is not limited to this, and the lens barrel 2 and the camera body 3 may be integrated.

[0013] The camera body 3 includes an image sensor IS and a control unit (not shown) inside. The image sensor IS is composed of a photoelectric conversion element such as a CCD (Charge Coupled Device), and converts the subject image formed by the imaging optical system (the lens barrel 2 attached to the camera body 3) into an electrical signal.

[0014] The control unit includes a CPU (Central Processing Unit) and the like, and controls the overall operation of the camera 1 relating to photography, including focusing drive of the camera body 3 and the attached lens barrel 2.

[0015] 1(A) and 1(B), a lens barrel 2 according to this embodiment has lens groups L1 and L2 arranged in sequence along a common optical axis OA. The lens group L1 is held by a fixed cylinder 10 provided in the lens barrel 2, and the lens group L2 is held by a lens holding frame F2. The lens group L2 is a focus lens group that moves in the direction of the optical axis OA during focusing.

[0016] The lens barrel 2 is not limited to a single-focus lens, and may be a so-called zoom lens whose focal length is changeable. Each of the lens groups L1 and L2 may be composed of one lens or multiple lenses. Although the lens barrel composed of two lens groups is described as an example, the lens barrel may have three or more lens groups.

[0017] The lens holding frame F2 is driven by a drive source unit 200. The lens holding frame F2 and the drive source unit 200 will be described in detail below.

[0018] FIG. 2(A) is an oblique view of the lens holding frame F2 and the drive source unit 200 viewed from the subject side (-Z direction), and FIG. 2(B) is an enlarged view of the vicinity of the first guide section 210 described below viewed from the +Y direction.

[0019] As shown in FIG. 2(A), the lens holding frame F2 has a cylinder portion 230 that holds the lens group L2, and a first guide portion 210 and a second guide portion 215 are provided on the outer periphery of the cylinder portion 230.

[0020] 1(B) and 2(A), a guide bar 301 that is fixed to the fixed barrel 10, extends in the optical axis OA direction, and guides the lens holding frame F2 in the optical axis OA direction is inserted into the first guiding portion 210. Meanwhile, a rotation restricting bar 302 that is fixed to the fixed barrel 10, extends in the optical axis OA direction, and restricts the movement of the lens holding frame F2 in the rotational direction is inserted into the second guiding portion 215.

[0021] 2(B), a first support portion 211a and a second support portion 211b extend in the -X direction from the first guiding portion 210. The first support portion 211a and the second support portion 211b support a moving portion 203 (details of which will be described later) of the driving source unit 200.

[0022] Next, a description will be given of the driving source unit 200. As shown in Fig. 2(A), the driving source unit 200 includes a stepping motor 201, a lead screw 202, a moving part 203 that moves along the axis of the lead screw 202 as the lead screw 202 rotates, and an attachment member 205.

[0023] FIG. 3A is a perspective view for explaining the configuration of the driving source unit 200, and FIG.

[0024] 3(A) and 3(B), the mounting member 205 has a first portion 205a fixed to the stepping motor 201, a second portion 205b facing the first portion 205a, and a third portion 205c extending parallel to the lead screw 202 between the first portion 205a and the second portion 205b. A plurality of holes 205d are formed in the third portion 205c, and the mounting member 205 is attached to the fixed barrel 10 through the holes 205d with screws or the like, thereby fixing the drive source unit 200 to the fixed barrel 10.

[0025] One end of the lead screw 202 is directly connected to the output shaft of the stepping motor 201, and the other end of the lead screw 202 is rotatably supported by a second part 205b of the mounting member 205. The mounting member 205 is attached to the fixed barrel 10 so that the axis AX1 of the lead screw 202 is parallel to the optical axis OA.

[0026] The moving part 203 moves in the direction of the axis AX1 of the lead screw 202 as the lead screw 202 rotates. Fig. 4(A) is an exploded perspective view of the moving part 203, Fig. 4(B) is a partial cross-sectional view of the moving part 203, Fig. 4(C) is a perspective view of the moving part 203, Fig. 4(D) is a perspective view of the spring 250, and Fig. 4(E) is a cross-sectional view of the moving part 203.

[0027] As shown in FIGS. 4(A) and 4(B), the moving portion 203 includes a housing portion 203a, a connecting portion 203b, and a spring support portion 203c.

[0028] 4(A), the housing portion 203a houses an annular member 220, a bearing 221, a spacer 222, and a magnet 223. Note that the bearing 221 is not limited to a bearing, and may be any rotating rolling element that can rotate like a bearing.

[0029] The annular member 220 has a groove 240 on its inner peripheral surface that comes into contact with the thread groove 202a of the lead screw 202. The groove 240 is a circumferential groove formed around the entire inner circumference of the annular member 220. The annular member 220 also has a base portion 220a and a fitting portion 220b, and as shown in FIG. 4(E), the fitting portion 220b fits into the inner ring of the bearing 221. The bearing 221 and the annular member 220 may be integral with each other.

[0030] 4(E), the outer ring of the bearing 221 fits into the inner wall of the accommodation portion 203a. This allows the annular member 220 to be rotatably held by the moving portion 203. That is, the moving portion 203 holds the annular member 220 rotatably.

[0031] As shown in FIG. 4(E), the spacer 222 is provided so as to cover the outer ring of the bearing 221. The magnet 223 is provided so as to face the bearing 221 through the spacer 222. Since the outer ring of the bearing 221 is covered by the spacer 222, the inner ring of the bearing 221 is biased in the axial direction (optical axis OA direction) by the magnet 223. This makes it possible to suppress axial rattle due to the axial internal clearance of the bearing 221. Note that the spacer 222 may be provided so as to cover the inner ring of the bearing 221, and the outer ring of the bearing 221 may be biased in the axial direction by the magnet. Also, if the axial rattle of the bearing 221 is within the required accuracy, the magnet 223 may be omitted. Also, instead of the magnet 223, a biasing member such as a spring may be used to suppress the axial rattle.

[0032] 4(B), the moving part 203 has supported parts 203f and 203g that are supported by the first supporting part 211a and the second supporting part 211b, respectively, of the lens holding frame F2. The supported parts 203f and 203g of the moving part 203 are supported by the first supporting part 211a and the second supporting part 211b, respectively, so that the axis AX2 of the spring supporting part 203c is parallel to the optical axis OA.

[0033] When the supported portions 203f and 203g are supported by the first support portion 211a and the second support portion 211b, respectively, the end face 203b1 of the connection portion 203b of the moving portion 203 abuts against the first support portion 211a of the lens holding frame F2 (see FIG. 2(B)).

[0034] The spring support portion 203c has the spring 250 inserted therethrough and supports the spring 250. As a result, the spring 250 is positioned between the connection portion 203b of the moving portion 203 and the second support portion 211b of the lens holding frame F2 (see FIG. 2(B)).

[0035] As shown in Fig. 4(D), the spring 250 has a coil spring portion 250a and a torsion spring portion 250b. As shown in Fig. 2(B), one end of the coil spring portion 250a abuts against the connection portion 203b of the moving portion 203, and the other end abuts against the second support portion 211b of the lens holding frame F2. As a result, the coil spring portion 250a biases the connection portion 203b of the moving portion 203 and the second support portion 211b of the lens holding frame F2 in a direction away from each other. Since the connection portion 203b of the moving portion 203 is pressed against the first support portion 211a of the lens holding frame F2 by the coil spring portion 250a, when the moving portion 203 moves in the optical axis OA direction, the lens holding frame F2 also moves in the optical axis OA direction.

[0036] The torsion spring portion 250b is engaged with a locking portion 203d (see FIG. 4(C)) formed on the outer periphery of the moving portion 203. As a result, as shown by an arrow AR3 in FIG. 4(E), the annular member 220 is urged toward the lead screw 202 in a direction perpendicular to the axis AX1 of the lead screw 202. Since the groove 240 of the annular member 220 is pressed against the screw groove 202a of the lead screw 202, rattling between the annular member 220 and the lead screw 202 is suppressed.

[0037] 4(B), the bottom 203e of the housing 203a of the moving part 203 is inclined with respect to a plane perpendicular to the axis AX2 of the spring support part 203c. As a result, the axis AX3 direction of the annular member 220, the bearing 221, the spacer 222, and the magnet 223 is not parallel to the axis AX2 direction of the spring support part 203c (axis AX1 direction of the lead screw 202). This point will be described in more detail.

[0038] Figure 5(A) is a view of the lead screw 202 and the annular member 220 from the -Z direction, Figure 5(B) is a view of the lead screw 202 and the annular member 220 from the biasing direction of the annular member 220 (the direction indicated by the arrow AR3 in Figure 5(A)), and Figure 5(C) is a cross-sectional view of line BB in Figure 5(A).

[0039] 5(B), in this embodiment, the annular member 220 is inclined in accordance with the lead angle α of the lead screw 202. In other words, the angle β between the axis AX1 of the lead screw 202 and the axis AX3 of the annular member 220 is approximately equal to the lead angle α.

[0040] As shown in FIG. 5(C), the annular member 220 and the lead screw 202 are in contact with each other on one side of the lead screw 202 in the biasing direction of the spring 250, and are spaced apart from each other on the other side. The lead screw 202 has a first flank surface 202b and a second flank surface 202c that face each other in the direction of the axis AX1. The groove 240 formed on the inner circumference of the annular member 220 includes a first groove 240a and a second groove 240b. The first groove 240a and the second groove 240b are circumferential grooves formed around the entire inner circumference of the annular member 220. The first groove 240a abuts against the first flank surface 202b at an abutment point indicated by an arrow AR6 in FIG. 5(A) and FIG. 5(B). On the other hand, the second groove 240b abuts against the second flank surface 202c at an abutment point indicated by an arrow AR5 in FIG. 5(A) and FIG. 5(B). That is, the groove 240 includes a first groove 240a and a second groove 240b that are out of phase with each other. The enlarged views indicated by the symbols C1 and C2 in Fig. 5(C) are cross-sectional views at the abutment points indicated by the arrows AR6 and AR5 in Fig. 5(A) and Fig. 5(B), respectively.

[0041] In this way, the annular member 220 is inclined according to the lead angle α of the lead screw 202, and the structure of the first groove 240a and the structure of the second groove 240b allow the annular member 220 and the lead screw 202 to abut against each other at at least two points indicated by arrows AR5 and AR6 in Fig. 5(A) and Fig. 5(B). The positions of the two points at which the annular member 220 and the lead screw 202 abut against each other are different in the axis AX1 direction of the lead screw 202 and in a direction perpendicular to the axis AX1 direction when viewed from the biasing direction in which the spring 250 biases the annular member 220. This allows the position of the annular member 220 relative to the lead screw 202 to be stably maintained. Note that in Fig. 5(A), the abutment point indicated by the arrow AR5 and the abutment point indicated by the arrow AR6 are not actually on the same plane, but are shown on the same plane for ease of understanding.

[0042] As described above, the groove 240 of the annular member 220 includes the first groove 240a and the second groove 240b, which are out of phase with each other. As a result, when the annular member 220 moves in either the subject side or the camera body 3 side in the optical axis OA direction, either the first groove 240a or the second groove 240b is in contact with the thread groove 202a of the lead screw 202 (as no gap is generated between the first groove 240a and the thread groove 202a of the lead screw 202), no delay occurs before the annular member 220 follows the lead screw 202. As a result, it is possible to improve the movement accuracy of the lens holding frame F2 in the optical axis OA direction, and the position control accuracy of the lens group L2 is improved.

[0043] Since the annular member 220 is rotatably supported via the bearing 221, when the lead screw 202 rotates, the annular member 220 is pushed by the first flank surface 202b or the second flank surface 202c of the thread groove 202a of the lead screw 202 and moves in the axis AX1 direction of the lead screw 202 while rotating. As a result, the moving part 203 that holds the annular member 220 also moves in the axis AX1 direction of the lead screw, so that the lens holding frame F2 connected to the moving part 203 can be moved in the optical axis OA direction.

[0044] In the case where the annular member 220 is supported so as not to rotate, when the lead screw 202 rotates, the annular member 220 does not rotate but is pushed by the first flank surface 202b or the second flank surface 202c of the thread groove 202a of the lead screw 202 and moves in the axis AX1 direction of the lead screw. At this time, sliding friction occurs between the annular member 220 and the lead screw 202, so that a load due to the sliding friction is applied to the stepping motor 201.

[0045] On the other hand, when the annular member 220 is supported rotatably as shown in the first embodiment, when the lead screw 202 rotates, the annular member 220 rotates around the axis AX1 of the lead screw 202, so that the friction generated between the annular member 220 and the lead screw 202 is rolling friction. Since rolling friction is much smaller than sliding friction, it is possible to reduce the load on the stepping motor 201 when moving the moving part 203 in the axis AX1 direction. As a result, for example, when the stepping motor 201 with the same output is used to move the lens holding frame F2 of the same weight, the lens holding frame F2 can be moved faster than when the annular member 220 is supported so as not to rotate (when sliding friction occurs). Also, for example, when the stepping motor 201 with the same output is used, it is possible to move the lens holding frame F2 which is heavier than when the annular member 220 is supported so as not to rotate (when sliding friction occurs). Furthermore, when moving the lens holding frame F2 of the same weight, a stepping motor 201 with a smaller output can be used than when the annular member 220 is supported so as not to rotate (when sliding friction occurs), thereby making it possible to reduce the size of the drive source unit 200. In this way, the performance of the drive source unit 200 can be improved. Furthermore, since the shape of the thread groove 202a of the lead screw 202 and the shape of the groove 240 of the annular member 220 are different, when the lead screw 202 rotates, the annular member 220 can move in the direction of the axis AX1 of the lead screw 202 while rotating.

[0046] As described above in detail, according to the first embodiment, the lens barrel 2 includes the lens holding frame F2 that holds the lens group L2, the stepping motor 201, the annular member 220, the moving unit 203, and the spring 250. The lead screw 202 has a screw groove 202a formed on its outer periphery, and is rotated by the stepping motor 201. The annular member 220 has a groove 240 on its inner periphery that abuts against the screw groove 202a. The moving unit 203 is connected to the lens holding frame F2, rotatably holds the annular member 220, and moves in the axis AX1 direction of the lead screw 202 as the lead screw 202 rotates. The spring 250 biases the annular member 220 toward the lead screw in a direction perpendicular to the axis AX1 direction of the lead screw 202. The annular member 220 is rotatable around the axis AX1 of the lead screw 202, and rotates as the lead screw 202 rotates. As a result, as described above, when the annular member 220 moves in the direction of the axis AX1 with the rotation of the lead screw 202, rolling friction occurs between the annular member 220 and the lead screw 202. Therefore, it is possible to increase the weight of the lens holding frame F2, reduce the size of the drive source unit 200, and increase the movement speed of the lens holding frame F2, compared to when the annular member 220 is supported so as not to rotate (when sliding friction occurs). In this way, the performance of the drive source unit 200 can be improved.

[0047] In the first embodiment, the groove 240 of the annular member 220 is a circumferential groove formed around the entire inner circumference, so that when the lead screw 202 rotates, the annular member 220 can be moved in the direction of the axis AX1 of the lead screw 202.

[0048] In the first embodiment, the lead screw 202 has a first flank surface 202b and a second flank surface 202c facing each other in the axis AX1 direction, and the groove 240 of the annular member 220 has a first groove 240a that abuts on the first flank surface 202b and a second groove 240b that abuts on the second flank surface 202c. As a result, when the annular member 220 moves in either the subject side or the camera body 3 side in the optical axis OA direction, either the first groove 240a or the second groove 240b is in contact with the screw groove 202a of the lead screw 202 (because no gap is generated between the first groove 240a and the screw groove 202a of the lead screw 202), no delay occurs before the annular member 220 follows the lead screw 202. Therefore, the movement accuracy of the lens holding frame F2 in the optical axis OA direction can be improved, and the position control accuracy of the lens group L2 is improved. In this way, the driving source unit 200 can be made high performance.

[0049] In the first embodiment, the annular member 220 is inclined according to the lead angle α of the lead screw 202. The annular member 220 is inclined according to the lead angle α of the lead screw 202, and the structure of the first groove 240a and the structure of the second groove 240b allow the screw groove 202a of the lead screw 202 and the groove 240 of the annular member 220 to abut at least two points. When viewed from the biasing direction in which the spring 250 biases the annular member 220, the positions of at least two points where the screw groove 202a of the lead screw 202 and the groove 240 of the annular member 220 abut are different in the axis AX1 direction of the lead screw 202 and in the direction perpendicular to the axis AX1 direction. This allows the position of the annular member 220 relative to the lead screw 202 to be stably maintained, and therefore the annular member 220 can be stably moved.

[0050] In addition, in the first embodiment, a magnet 223 is provided to bias the inner ring of the bearing 221 in the optical axis OA direction. This makes it possible to reduce backlash in the axial direction of the bearing 221.

[0051] In the above first embodiment, the first groove 240a of the groove 240 of the annular member 220 contacts the first flank surface 202b of the screw groove 202a of the lead screw 202, and the second groove 240b contacts the second flank surface 202c of the screw groove 202a, but the first groove 240a may contact the second flank surface 202c, and the second groove 240b may contact the first flank surface 202b.

[0052] In the first embodiment, the groove 240 is formed on the inner circumference of the annular member 220, but a thread groove may be formed instead. In this case, by making the pitch of the thread groove 202a of the lead screw 202 and the pitch of the thread groove of the annular member 220 different, the annular member 220 can move in the axis AX1 direction of the lead screw 202 while rotating as the lead screw 202 rotates, thereby achieving the same effect as the first embodiment.

[0053] Second Embodiment In the second embodiment, a configuration in which an annular member 220A has a groove 241 on the outer periphery will be described.

[0054] Fig. 6(A) is a perspective view showing a drive source unit 200A according to the second embodiment, and Fig. 6(B) is a plan view of the drive source unit 200A and the lens holding frame F2A according to the second embodiment as viewed from the subject side. Fig. 7(A) is a view of a part of the drive source unit 200A as viewed from the subject side (-Z direction), and Fig. 7(B) is a cross-sectional view taken along the line EE in Fig. 6(B). Fig. 8 is a cross-sectional view taken along the line FF in Fig. 6(B). In the following embodiments, the same components as those in the first embodiment are designated by the same reference numerals, and detailed description thereof will be omitted.

[0055] As shown in Fig. 6(B), the lens holding frame F2A according to the second embodiment differs from the lens holding frame F2 according to the first embodiment in that it does not have the first support portion 211a and the second support portion 211b extending in the -X direction from the first guide portion 210. Note that in Fig. 6(B), the stepping motor 201 and the attachment member 205 of the drive source unit 200A are not shown.

[0056] As shown in FIG. 6A, the drive source unit 200A includes a stepping motor 201, a lead screw 202, a pair of moving parts 203A, a mounting member 205, and a tension spring 250A.

[0057] The pair of moving parts 203A face each other across the lead screw 202. Each of the pair of moving parts 203A has a connection part 203i connected to the lens holding frame F2A, and a holding part 203h that rotatably holds the annular member 220A.

[0058] As shown in Fig. 7(A), the connection portion 203i has a through hole 203k penetrating the connection portion 203i in the optical axis OA direction (Z-axis direction). As shown in Fig. 8, the connection shaft 216c of the lens holding frame F2A is inserted into the through hole 203k, and a cap portion 216b is fixed to the end of the connection shaft 216c. This connects the lens holding frame F2A and the moving portion 203A.

[0059] 7(A), the holding portion 203h holds the bearing 221 by fitting with the inner ring of the bearing 221, and the outer ring of the bearing 221 fits with the inner circumference of the annular member 220A. In this way, the moving portion 203A rotatably holds the annular member 220A. Since the pair of moving portions 203A face each other with the lead screw 202 in between, the pair of annular members 220A sandwich the lead screw 202 between them.

[0060] As shown in Fig. 7(B), a groove 241 that comes into contact with the screw groove 202a of the lead screw 202 is formed on the outer periphery of the annular member 220A. The groove 241 includes a first groove 241a that comes into contact with the first flank surface 202b of the screw groove 202a, and a second groove 241b that comes into contact with the second flank surface 202c. That is, the groove 241 includes the first groove 241a and the second groove 241b that are out of phase with each other. This makes it possible to prevent a delay in the annular member 220A following the lead screw 202, as in the first embodiment.

[0061] As shown in Fig. 7(A), a locking portion 203j that locks the tension spring 250A is formed at one end (end portion on the +Y side) of each of the pair of moving portions 203A. Since the pair of annular members 220A sandwich the lead screw 202, when the tension spring 250A is locked to the pair of locking portions 203j with the pair of connecting portions 203i connected to the lens holding frame F2A, the pair of annular members 220A are each biased toward the lead screw 202 as shown by arrows AR11 and AR12 in Fig. 7(A). This suppresses rattle between the annular member 220A and the lead screw 202.

[0062] When the lead screw 202 rotates, the two annular members 220A are pushed by the first flank surface 202b or the second flank surface 202c of the thread groove 202a of the lead screw while rotating, and move in the axial AX1 direction (i.e., the optical axis OA direction) of the lead screw 202. In the second embodiment, too, the friction generated between the lead screw 202 and the annular member 220A is rolling friction, so the load on the stepping motor 201 can be reduced compared to when the annular member 220A does not rotate.

[0063] Third Embodiment In the third embodiment, a case in which two annular members 220C and 220D are arranged in the direction of the axis AX1 of the lead screw 202 will be described.

[0064] FIG. 9(A) is a perspective view of the driving source unit 200C according to the third embodiment, and FIG. 9(B) is a plan view of the driving source unit 200C and the lens holding frame F2C according to the third embodiment, viewed from the subject side. FIG. 10(A) is a cross-sectional view of the driving source unit 200C, and FIG. 10(B) is a cross-sectional view of the moving parts 203C and 203D. FIG. 11(A) is a plan view of the moving parts 203C and 203D according to the third embodiment, viewed from the -Z direction, and FIG. 11(B) is a cross-sectional view of the line DD in FIG. 11(A). Note that in FIG. 9(A), the stepping motor 201 and the mounting member 205 are omitted.

[0065] As shown in Figures 9(A) and 10(A), a driving source unit 200C according to the third embodiment includes a stepping motor 201, a lead screw 202, annular members 220C and 220D, moving parts 203C and 203D, and torsion springs 250C and 250D.

[0066] As shown in FIG. 10B, the moving part 203C includes a housing part 213a that houses the annular member 220C and the bearing 221, and a connecting part 213b that connects to the lens holding frame F2C. The outer ring of the bearing 221 fits into the inner wall of the housing part 213a, and the outer periphery of the annular member 220C fits into the inner ring of the bearing 221. This allows the annular member 220C to be rotatably held by the moving part 203C. A groove 240C that comes into contact with the screw groove 202a of the lead screw 202 is formed on the inner periphery of the annular member 220C. The groove 240C comes into contact with, for example, the first flank surface 202b of the screw groove 202a of the lead screw 202.

[0067] The bottom 213d of the housing portion 213a is inclined in accordance with the lead angle of the lead screw 202. This causes the annular member 220C to be inclined in accordance with the lead angle. Therefore, as described in the first embodiment, the annular member 220C is inclined in accordance with the lead angle, and due to the structure of the groove 240C of the annular member 220C, the lead screw 202 and the annular member 220C come into contact with each other at at least two points, and the position of the annular member 220C relative to the lead screw 202 can be stably maintained.

[0068] The connection portion 213b is provided with a through hole 213c through which the connection shaft 212a of the lens holding frame F2C is inserted. Also, a locking portion 213e for locking one end of a torsion spring 250C is formed on a side surface of the moving portion 203C.

[0069] As shown in Fig. 9(B), the torsion spring 250C is supported by the spring support shaft 212c of the lens holding frame F2C, one end of which is engaged with the engaging portion 213e of the moving portion 203C, and the other end of which is in contact with the first restricting portion 214a of the lens holding frame F2C. As a result, as shown by the arrow AR21 in Fig. 11(A), the torsion spring 250C biases the annular member 220C toward the lead screw 202 in a direction perpendicular to the axis AX1 direction of the lead screw 202. As a result, as shown by the arrow AR21 in Fig. 11(B), the annular member 220C is pressed against the lead screw 202, and the backlash between the lead screw 202 and the annular member 220C is reduced.

[0070] As shown in FIG. 10B, the moving part 203D includes a housing part 206a that houses the annular member 220D and the bearing 221, and a connecting part 206b that connects to the lens holding frame F2C. The outer ring of the bearing 221 fits into the inner wall of the housing part 206a, and the outer periphery of the annular member 220D fits into the inner ring of the bearing 221. This allows the annular member 220D to be rotatably held by the moving part 203D. A groove 240D that comes into contact with the screw groove 202a of the lead screw 202 is formed on the inner periphery of the annular member 220D. The groove 240D comes into contact with, for example, the second flank surface 202c of the screw groove 202a of the lead screw 202. As a result, when the lead screw 202 rotates, either the groove 240C of the annular member 220C or the groove 240D of the annular member 220D comes into contact with the thread groove 202a of the lead screw 202, thereby obtaining an effect similar to that of the first groove 240a and the second groove 240b formed on the inner circumference of the annular member 220 in the first embodiment, for example.

[0071] The bottom 206d of the housing portion 206a is inclined in accordance with the lead angle of the lead screw 202. This causes the annular member 220D to be inclined in accordance with the lead angle. Therefore, as described in the first embodiment, the annular member 220D is inclined in accordance with the lead angle, and due to the structure of the groove 240D of the annular member 220, the lead screw 202 and the annular member 220D come into contact with each other at at least two points, and the position of the annular member 220D relative to the lead screw 202 can be stably maintained.

[0072] Since the lead screw 202 and the annular member 220C come into contact with each other at at least two points, and the lead screw 202 and the annular member 220D come into contact with each other at at least two points, the contact points with the lead screw 202 are four points at different positions in the axis AX1 direction of the lead screw 202 and in the direction perpendicular to the axis AX1 direction. This determines the posture of the lens holding frame F2C, so that the guide bar 301 may be omitted in the third embodiment. Furthermore, by disposing the annular member 220C and the annular member 220D with a phase shift in the axial direction, it is possible to suppress backlash in the axial direction of the bearing 221, and it is possible to omit a backlash removing member such as the magnet 223 described in the first embodiment.

[0073] The connection portion 206b is provided with a through hole 206c through which the connection shaft 212a of the lens holding frame F2C is inserted. Also, a locking portion 206e for locking the torsion spring 250D is formed on the side surface of the moving portion 203D.

[0074] As shown in Fig. 9(B), the torsion spring 250D is supported by the spring support shaft 212d of the lens holding frame F2C, one end of which is engaged with the engaging portion 206e of the moving portion 203C, and the other end of which is in contact with the second restricting portion 214b of the lens holding frame F2C. As a result, as shown by the arrow AR22 in Fig. 11(A), the torsion spring 250D biases the annular member 220D toward the lead screw 202 in a direction perpendicular to the axis AX1 direction of the lead screw 202. As a result, as shown by the arrow AR22 in Fig. 11(B), the annular member 220D is pressed against the lead screw 202, and the backlash between the lead screw 202 and the annular member 220D is reduced.

[0075] A cap portion 212b is fixed to an end of a connection shaft 212a of the lens holding frame F2C that passes through a through hole 213c of the moving portion 203C and a through hole 206c of the moving portion 203D. A compression coil spring 260 is provided between the moving portion 203C and the cap portion 212b, and biases the moving portion 203C and the cap portion 212b in a direction away from each other. This allows the lens holding frame F2C to move in the optical axis OA direction when the moving portions 203C and 203D move in the optical axis OA direction.

[0076] In the third embodiment as well, when the lead screw 202 rotates, the annular member 220C rotatably held by the moving section 203C and the annular member 220D rotatably held by the moving section 203D move in the axis AX1 direction of the lead screw 202 while rotating. Since the friction generated between the lead screw 202 and the annular member 220C and between the lead screw 202 and the annular member 220D is rolling friction, the load on the stepping motor 201 can be reduced compared to when the annular members 220C and 220D do not rotate.

[0077] In the third embodiment, it has been described that the groove 240C of the annular member 220C contacts the first flank surface 202b of the screw groove 202a of the lead screw 202, and the groove 240D of the annular member 220D contacts the second flank surface 202c of the screw groove 202a, but the groove 240C may contact the second flank surface 202c, and the groove 240D may contact the first flank surface 202b.

[0078] Fourth Embodiment Fig. 12(A) is a perspective view of a drive source unit 200D according to the fourth embodiment, Fig. 12(B) is a perspective view showing a state in which a moving section 203E is fixed to a lens holding frame F2D, and Fig. 12(C) is a diagram showing the moving section 203E and the lead screw 202 as viewed from the +Z direction. In the fourth embodiment, the shape of the moving section 203E is different from that of the moving section 203 according to the first embodiment.

[0079] As shown in Fig. 12(A), in the fourth embodiment, the moving section 203E is connected to the lens holding frame F2D by a screw or the like. The annular member 220 is biased toward the lead screw 202 in a direction perpendicular to the axis AX1 of the lead screw 202 by two torsion springs 250E. The other configurations are the same as those in the first embodiment, and therefore detailed explanations are omitted. In the configuration according to the fourth embodiment, the annular member 220 moves in the optical axis OA direction while rotating in accordance with the rotation of the lead screw 202, so that the load on the stepping motor 201 can be reduced.

[0080] The above-described embodiment is a preferred example of implementation, but is not limited thereto, and various modifications are possible without departing from the scope of the invention, and any combination of components may be used. [Explanation of symbols]

[0081] 1 Camera 2 Lens barrel 3. Camera body 201 Stepping motor 202 Lead screw 202a Thread groove 202b 1st flank surface 202c 2nd flank surface 203, 203A, 203C~203E Moving part 220, 220A, 220C, 220D Annular members 221 Bearing 223 Magnet 250 Spring 250A Extension Spring 250C, 250D, 250E Torsion Spring L2 lens group F2, F2A, F2C, F2D lens holder

Claims

1. a lens holding frame for holding a lens; A driving source; a lead screw having a first screw groove formed therein and being rotated by the drive source; an annular member having an inner periphery with a groove that abuts against the first screw groove; a moving member connected to the lens holding frame, rotatably holding the annular member, and moving in an axial direction of the lead screw as the lead screw rotates; a biasing portion that biases the annular member toward the lead screw in a direction perpendicular to the axial direction of the lead screw; A lens barrel comprising:

2. The annular member is rotatable about the axis of the lead screw. The lens barrel according to claim 1 .

3. The annular member rotates in association with the rotation of the lead screw. The lens barrel according to claim 1 or 2.

4. a rotating member that rotatably supports the annular member relative to the moving member, The lens barrel according to claim 1 or 2.

5. A magnet is provided to bias a part of the rotating member in the optical axis direction. The lens barrel according to claim 4.

6. The groove is a circumferential groove formed around the entire inner circumference. The lens barrel according to claim 1 or 2.

7. The groove is a second thread groove formed around the entire inner circumference, The pitch of the first thread groove is different from the pitch of the second thread groove. The lens barrel according to claim 1 or 2.

8. The axial direction of the annular member is inclined with respect to the axial direction of the lead screw. The lens barrel according to claim 1 or 2.

9. the annular member and the lead screw are in contact with each other on one side of the lead screw in a biasing direction of the biasing portion, and are spaced apart from each other on the other side of the lead screw. The lens barrel according to claim 1 or 2.

10. The first thread groove and the groove abut against each other at at least two points. The lens barrel according to claim 1 or 2.

11. When viewed from a biasing direction in which the biasing portion biases the annular member, positions of the at least two points where the first screw groove and the groove abut are different in the axial direction of the lead screw and in a direction perpendicular to the axial direction of the lead screw. The lens barrel according to claim 10.

12. The first thread groove has a first flank surface and a second flank surface opposed to each other in the axial direction, The groove has a first groove abutting the first flank surface and a second groove abutting the second flank surface. The lens barrel according to claim 1 or 2.

13. a lens holding frame for holding a lens; A driving source; a lead screw having a screw groove formed therein and being rotated by the drive source; a rotating member having a groove that abuts against the screw groove; a moving section connected to the lens holding frame, which rotatably holds the rotating member, and which moves in an axial direction of the lead screw as the lead screw rotates; a biasing portion that biases the rotating member toward the lead screw in a direction perpendicular to the axial direction of the lead screw; Equipped with The inner peripheral surface of the moving portion is engaged with an outer ring of a bearing that rotatably holds the rotating member, and the inner ring of the bearing is engaged with the rotating member.

14. An imaging device comprising the lens barrel according to claim 1 or 2.

15. A driving source; a lead screw having a screw groove formed therein and being rotated by the drive source; an annular member having an inner periphery with a groove that abuts against the screw groove; A holding member that rotatably holds the annular member; a biasing portion that biases the annular member toward the lead screw in a direction perpendicular to an axis of the lead screw; Equipped with With the rotation of the lead screw, the annular member moves together with the holding member in the axial direction of the lead screw while rotating. Drive unit.

Citation Information

Patent Citations

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