RECTILINEAR DRIVE DEVICE
20190226563 ยท 2019-07-25
Assignee
Inventors
Cpc classification
F16H25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/06
ELECTRICITY
International classification
Abstract
To provide a rectilinear drive device capable of preventing or significantly suppressing a guide plate from swinging caused by a shake of a lead screw when the lead screw is shaken. Specifically, a lead screw driven and rotated by a motor, a nut threadedly engaged with the lead screw, a guide shaft arranged parallel to the lead screw, a regulating portion movably provided on the guide shaft and engaged with the outer periphery of the nut to regulate the rotation of the nut, and a slide plate formed with the wall portion configured to receive a thrust force of the nut from the end surface of the nut are included, and the end surface of the nut is provided with projections in line contact or point contact with the wall portion.
Claims
1. A rectilinear drive device, comprising: a lead screw, driven and rotated by a motor; a nut, threadedly engaged with the lead screw; a guide shaft, arranged parallel to the lead screw; a regulating portion, movably provided on the guide shaft and engaged with an outer periphery of the nut to regulate rotation of the nut; and a slide plate, formed with a wall portion receiving a thrust force of the nut from an end surface of the nut, wherein projections in line contact or point contact with the wall portion are provided on the end surface of the nut.
2. The rectilinear drive device according to claim 1, wherein the end surface of the nut provided with the projections is an end surface on which a thrust load is applied from a side of the slide plate while in an operation stopped state.
3. The rectilinear drive device according to claim 1, wherein on the end surface of the nut, two of the projections projecting from the end surface in a columnar shape are formed.
4. The rectilinear drive device according to claim 3, wherein the projections are arranged such that a ridge line is positioned diametrically of the nut perpendicular to the regulating portion.
5. The rectilinear drive device according to claim 4, wherein the nut has flat cutout portions formed on an outer peripheral surface at diametrically opposed positions, the cutout portions are inserted to be positioned between the regulating portions, and when the cutout portions are inserted in opposition to the regulating portions, the projections are arranged such that the ridge line is positioned diametrically of the nut orthogonal to the regulating portion.
6. The rectilinear drive device according to claim 1, wherein on the end surface of the nut, three of the projections projecting spherically from the end surface are formed.
7. The rectilinear drive device according to claim 6, wherein the nut has flat cutout portions formed on an outer peripheral surface at diametrically opposed positions, the cutout portions are inserted to be positioned between the regulating portions, and the projections are formed at midpoints of portions of a circumference where the cutout portions are formed and at a position of the circumference intermediate in a circumferential direction between these midpoints.
8. The rectilinear drive device according to claim 1, wherein the slide plate is formed with a groove portion through which the lead screw and the nut are inserted, and the regulating portion is a regulating wall forming an opposing wall of the groove portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
MODE FOR CARRYING OUT THE INVENTION
[0027]
[0028] As illustrated in
[0029] The nut 1 is formed with flat cutout portions 1a on the outer peripheral surface at diametrically opposed positions, and these cutout portions 1a are positioned to be inserted between regulating walls (regulating portions) 16. As a result, the nut 1 is arranged in the groove portion 15 while rotation of the nut 1 is prevented. Further, inside the slide plate 14, the wall portion 17 is provided in a U shape at a position opposed to an outer peripheral portion of both end surfaces of the nut 1.
[0030] According to such a rectilinear drive device, when the lead screw 11 is rotated by the motor 10, the nut 1 prevented from being rotated by the regulating wall 16 moves in the rectilinear direction along the lead screw 11, the thrust force is transmitted from the wall portion 17 to the slide plate 14, and thus the slide plate 14 can be rectilinearly moved along the guide shaft 13.
[0031] As illustrated in
[0032] When the cutout portions 1a of the nut 1 are inserted in opposition to the regulating wall (regulating portion) 16 of the groove portion 15 of the slide plate 14, the projections 2 are arranged so that a ridge line is positioned diametrically of the nut 1 orthogonal to the regulating wall 16. Further, the projections 2 are formed on the end surface 1b of the nut 1 in a portion where the cutout portions 1a are formed. The projections 2 are formed to make line contact with the wall portion 17.
[0033] Further,
[0034] Here, the projections 4 are formed at three positions equally spaced in the circumferential direction except the opening side of the groove portion 15, specifically, at a total of three positions, that is, at midpoints of portions of the circumference where the cutout portions 3a are formed and at a position of the circumference intermediate in the circumferential direction between these midpoints.
[0035] According to the rectilinear drive device having the aforementioned configuration, on the end surfaces 1b, 3b of the nuts 1, 3 through which the thrust force from the nuts 1, 3 is transmitted via the wall portion 17 of the slide plate 14, the protrusions 2 in linear contact with the wall portion 17 or the protrusions 4 in point contact with therewith are provided. Therefore, the frictional force between the protrusions 2, 4 and the wall portion 17 is reduced, and as a result, even if the lead screw 11 is shaken, when slippage occurs between the protrusions 2, 4 and the wall portion 17 of the slide plate 14 occurs, it is possible to prevent or significantly suppress the slide plate 14 from swinging caused due to the shake of the lead screw 11.
[0036] In particular, in the present embodiment, if the thrust load F is applied from the slide plate 14 side while in the operation stopped state, the projections 2, 4 are provided on the end surfaces 1b, 3b of the nuts 1, 3 closely contacting the wall portion 17 of the slide plate 14, and thus, it is possible to surely obtain an effect of preventing or suppressing the slide plate 14 from swinging.
[0037] It is noted that in the above embodiments, only a case that a structure where the cutout portions 1a, 3b are formed on the outer peripheral surface of the nuts 1, 3, and the regulating wall (regulating portion) 16 facing the cutout portion 1a, 3a is provided in the groove portion 15 of the slide plate 14 to prevent the rotation of the nuts 1, 3 is employed is described; however, the present invention is not limited thereto, and it is possible to adopt the regulating portion of various modes configured to prevent the rotation of the nuts 1, 3.
DESCRIPTION OF REFERENCE NUMERALS
[0038] 1, 3: nuts
[0039] 1b, 3b: end surfaces
[0040] 2, 4: projections
[0041] 10: stepping motor (motor)
[0042] 11: lead screw
[0043] 13: guide shaft
[0044] 14: slide plate
[0045] 16: regulating wall (regulating portion)
[0046] 17: wall portion