The present disclosure relates to an imaging apparatus used in a state of being installed on a ceiling or a wall surface and for which maintenance work is easy.
Conventionally, for example, an imaging apparatus discussed in Japanese Patent Application Laid-Open No. 2003-189138 has been known. As to the imaging apparatus, a camera holder, which has an imaging unit and to which a camera cover is attached, is fixed to a base portion fixed to a ceiling or a wall surface.
In a conventional technology discussed in Japanese Patent Application Laid-Open No. 2003-189138, in a case of maintenance of the camera in the camera holder, the camera holder with the camera cover attached thereto needs to be removed from the base portion, and the camera holder and the camera cover need to be separated from each other. Therefore, this conventional technique needs time and effort, and thus various countermeasures are desired.
The present disclosure is directed to an imaging apparatus for which maintenance work on an imaging unit is made easier.
According to an aspect of the present disclosure, an imaging apparatus includes an installation member configured to be fixed to a fixing surface, a first case in which an imaging unit is disposed and configured to be movable between a first lock position where the first case is fixed to the installation member and a first release position where the first case can be removed from the installation member, and a second case covering the imaging unit disposed in the first case and configured to be movable between a second lock position where the second case is fixed to the first case and a second release position where the second case can be removed from the first case, wherein the second case is movable from the second lock position to the second release position in a state where the first case is located at the first lock position.
Further features of the present disclosure will become apparent from the following description of exemplary embodiments with reference to the attached drawings.
An exemplary embodiment of the present disclosure will be described below with reference to the drawings.
The monitoring camera 100 according to the present exemplary embodiment includes, as illustrated in
The installation member 101 is a member that is fixed to fixing surface such as a ceiling or a wall surface and is sheet metal. The installation member 101 includes, as illustrated in
The hook 101a is a portion that is engaged with the lower case unit 300. The hook 101a has an L shape, and three hooks 101a are provided in a peripheral direction at predetermined intervals.
The depressed portion 101b protrudes from the installation portion 101d toward the lower case unit 300 and is provided at an end of the installation portion 101d.
The through hole 101c is a portion through which a rotation limiting unit 500, described below, is inserted, and is formed in the depressed portion 101b.
The installation portion 101d is a portion that is fixed to a ceiling or a wall surface, and has a shape in which a circular portion is partially notched.
The upper case unit 200 includes, as illustrated in
The upper case 201 includes, as illustrated in
The opening 201a is provided at a center of the upper case 201, and a lens barrel unit 400 is disposed in the opening 201a. The screw 202 for fixing the upper case 201 to the lower case 301 is inserted into the screw hole 201b. Three first ribs 201c are disposed in the circumferential direction at intervals, and a groove 201f that extends in the circumferential direction is formed on each of first ribs 201c. As illustrated in
The screw 202 is inserted into the screw hole 201b of the upper case 201 and is assembled with the lower case 301 as a unit.
The compression coil spring 203 is assembled to be held between the screw 202 and the upper case 201. The compression coil spring 203 biases the screw 202 toward the upper case 201.
The lower case unit 300 includes, as illustrated in
The lower case 301 includes a receiving portion 301a, a slide groove 301b, a trapezoidal portion 301c having an approximately trapezoidal shape, a lock portion 301d as one example of the first lock mechanism, a first protrusion 301e as one example of the second lock mechanism, and a screw hole 301f.
The receiving portion 301a has an approximately cylindrical shape, and the rotation limiting unit 500, described below, is disposed at the receiving portion 301a.
A rib 501b of the rotation limiting unit 500, described below, is disposed in the slide groove 301b. The slide groove 301b guides the rib 501b of the rotation limiting unit 500.
The trapezoidal portion 301c is arranged in three places in the peripheral direction at regular intervals. The trapezoidal portion 301c passes completely through in a height direction.
The lock portion 301d engages with the hook 101a of the installation member 101. The lock portion 301d, which has a rectangular shape, is provided inside the trapezoidal portion 301c.
The first protrusion 301e protrudes from an end of the lower case 301 toward the inside thereof, and is disposed in the groove 201f of the upper case 201.
The screw hole 301f matches with the screw hole 201b at a position where the first protrusion 301e of the lower case 301 contacts the protruding portion 201d of the upper case 201.
The first cover member 303 is, as illustrated in
The second cover member 304 is, as illustrated in
The rotation limiting unit 500 includes, as illustrated in
The slide member 501 is movable along the height direction of the monitoring camera 100, and includes an inclined surface 501a, the rib 501b disposed in the slide groove 301b, and a second protrusion 501c.
The biasing release member 502 includes an inclined surface 502a that contacts the inclined surface 501a of the slide member 501, and a contact portion 502b that contacts the second rib 201e.
The biasing member 503 biases the second protrusion 501c toward the through hole 101c of the installation member 101.
The rotation limiting unit 500 is assembled to the lower case 301. The biasing member 503, the slide member 501, the biasing release member 502, and the lid 504 are assembled to the receiving portion 301a of the lower case 301 in this order. The lid 504 is fixed to the lower case 301. At this time, the rib 501b of the slide member 501 is fitted into the slide groove 301b of the lower case 301, and thus the slide member 501 is assembled slidably along the height direction of the lower case 301.
Further, the inclined surface 501a of the slide member 501 and the inclined surface 502a the biasing release member 502 are assembled to contact each other. As a result, a rotational movement of the biasing release member 502 about a center axis enables the biasing of the biasing member 503 to be released and the second protrusion 501c to be operated in the height direction of the lower case 301.
Assembly of the upper case unit 200 and the lower case unit 300 will be described below with reference to
As to the assembly of the upper case unit 200 and the lower case unit 300, as illustrated in
Work for installing the monitoring camera 100 of the present exemplary embodiment to a ceiling or a wall surface will be described below with reference to
As to the installation of the monitoring camera 100, the installation member 101 is first fixed to a ceiling or a wall surface. As illustrated in
In other words, in a state where the upper case 201 is located at the second lock position, the lower case 301 is rotationally moved in the first direction (A direction) from the first release position to the first lock position with respect to the installation member 101 installed on a fixing surface. As a result, the monitoring camera 100 is installed to the fixing surface. Further, when the rotation of the lower case unit 300 in the A direction causes the second protrusion 501c of the rotation limiting unit 500 to reach the depressed portion 101b of the installation member 101, the second protrusion 501c is pressed by the depressed portion 101b. Further rotation moves the rotation limiting unit 500 of the lower case unit 300 along the depressed portion 101b of the installation member 101. When the second protrusion 501c of the rotation limiting unit 500 reaches the position to be fitted into the through hole 101c of the installation member 101, the second protrusion 501c is disposed inside the through hole 101c by a biasing force of the biasing member 503. Thus, the movements of the lower case unit 300 in the height direction and the rotational direction are limited to be brought into a state illustrated in
Since the monitoring camera 100 according to the present exemplary embodiment can be installed to a ceiling or a wall surface by a rotational operation, a load on an installation worker is small, and thus the installation of the monitoring camera 100 to a ceiling or the like is easy.
Work for removing the upper case unit 200 and the lower case unit 300 together a unit from the installation member 101 will be described below with reference to
First, rotational limitation of the upper case unit 200 is released by releasing the fastening of the screw 202 of the upper case unit 200. In this state, the upper case unit 200 is rotated in a second direction (B direction in
As a result, the second protrusion 501c moves in a direction in which the second protrusion 501c is separated from the installation member 101, and thus the rotational limitation of the installation member 101 and the lower case unit 300 is released. Further, the rotation in the same direction brings about a state illustrated in
In other words, the lower case 301, which is located at the first lock position, is rotationally moved from the first lock position to the first release position by rotationally moving the upper case 201, which is at the second lock position, to the second direction (B direction) which is opposite to the first direction. In such a manner, the lower case 301 and the upper case 201 can be removed together as a unit from the installation member 101.
As described above, in the monitoring camera 100 according to the present exemplary embodiment, the upper case 201 and the lower case 301 can be removed together as a unit from the installation member 101 by a simple operation.
Work for removing the upper case unit 200 from the lower case unit 300 will be described below with reference to
First, rotational limitation of the upper case unit 200 is released by releasing the fastening of the screw 202 of the upper case unit 200. In this state, the upper case unit 200 is rotated in the first direction (C direction in
In other words, in a state where the lower case 301 is located at the first lock position, the upper case 201 is rotationally moved in the first direction (C direction) from the second lock position to the second release position. This enables the upper case 201 to be removed from the lower case 301 in a state where the lower case 301 is fixed to the installation member 101.
In the monitoring camera 100 according to the present exemplary embodiment, since only the upper case unit 200 can be removed by a simple operation, maintenance of the lens barrel unit 400 can be performed in a state that the lower case unit 300 is installed.
Further, the rotational operation is performed in a direction in which the protruding portion 201d of the upper case unit 200 does not contact the first protrusion 301e of the lower case unit 300. For this reason, an operation torque required for this rotational operation is smaller than that in a case where the upper case unit 200 and the lower case unit 300 are removed together.
Therefore, in a case the maintenance is desired to be performed in a state where, for example, the lower case unit 300 is to stay installed, removal of the lower case unit 300 and the upper case unit 200 together as a unit can be prohibited by a worker recognizing which unit to be removed.
Further, a direction where the upper case unit 200 is rotated in the case where the lower case unit 300 and the upper case unit 200 are removed together as a unit (B direction) is opposite to a direction where the upper case unit 200 is rotated in the case where only the upper case unit 200 is removed (C direction).
As a result, an erroneous operation by the worker can be restrained.
The present disclosure has been described above based on the exemplary embodiment. The present disclosure is, however, not limited to this exemplary embodiment and thus the present disclosure includes various forms without departing from the scope of the present disclosure. Further, some parts of the above-described exemplary embodiment may be suitably combined and/or substituted with elements known in the art.
While the present disclosure has been described with reference to exemplary embodiments, it is to be understood that the disclosure is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
This application claims the benefit of Japanese Patent Application No. 2017-066282, filed Mar. 29, 2017, which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | Kind |
---|---|---|---|
2017-066282 | Mar 2017 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
5588625 | Beak | Dec 1996 | A |
6268882 | Elberbaum | Jul 2001 | B1 |
7217045 | Jones | May 2007 | B2 |
8197148 | Kajino | Jun 2012 | B2 |
20150249777 | Chen | Sep 2015 | A1 |
Number | Date | Country |
---|---|---|
1940704 | Apr 2007 | CN |
201345691 | Nov 2009 | CN |
203522874 | Apr 2014 | CN |
104106002 | Oct 2014 | CN |
2003-189138 | Jul 2003 | JP |
Number | Date | Country | |
---|---|---|---|
20180288290 A1 | Oct 2018 | US |