SECURITY SENSOR DEVICE
20190259257 ยท 2019-08-22
Assignee
Inventors
Cpc classification
International classification
Abstract
A cover unit covering a front face of a base unit having detection elements for detecting detection rays has a plurality of optical members present so as to be aligned about a predetermined axis, and the base unit has detection elements disposed at light-concentrated positions onto which the detection rays from the plurality of optical members are concentrated. The base unit further has shielding curved plates housed in the cover unit, and the shielding curved plates are set so as to be rotatable about the predetermined axis, and are locked at predetermined positions in a rotation direction to block the detection rays coming to the detection elements.
Claims
1. A security sensor device comprising: a base unit having a detection element for detecting detection rays; and a cover unit covering a front face of the base unit, wherein the cover unit has a plurality of optical members present so as to be aligned about a predetermined axis, the base unit has the detection element disposed at a light-concentrated position onto which the detection rays from the plurality of optical members are concentrated, the base unit further has a shielding curved plate housed in the cover unit, and the shielding curved plate is set so as to be rotatable about the predetermined axis, and is locked at a predetermined position in a rotation direction to block the detection rays coming to the detection element.
2. The security sensor device as claimed in claim 1, wherein two plates rotatable independently of each other are present as the shielding curved plate.
3. The security sensor device as claimed in claim 1, further comprising a long-length light-shielding member provided so as to be aligned about the predetermined axis and parallel to the predetermined axis and blocking the detection rays coming to the detection element.
4. The security sensor device as claimed in claim 1, further comprising two or more far-infrared ray detection elements each having a field of view of about 90 degrees, wherein the two or more far-infrared ray detection elements are arranged such that a total field of view thereof is about 180 degrees.
5. The security sensor device as claimed in claim 1, wherein the shielding curved plate is transparent in a view in an incoming direction of the detection rays.
6. The security sensor device as claimed in claim 3, wherein the light-shielding member is transparent in a view in an incoming direction of the detection rays.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In any event, the present invention will become more clearly understood from the following description of preferred embodiments thereof, when taken in conjunction with the accompanying drawings. However, the embodiments and the drawings are given only for the purpose of illustration and explanation, and are not to be taken as limiting the scope of the present invention in any way whatsoever, which scope is to be determined by the appended claims. In the accompanying drawings, like reference numerals are used to denote like parts throughout the several views, and:
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[0037]
DESCRIPTION OF EMBODIMENTS
[0038] Hereinafter, embodiments of the present invention will be described with reference to the drawings. In each drawing, like reference numeral denotes like parts, and the description thereof is omitted as appropriate unless change or the like is described otherwise.
[0039]
[0040] As shown in
[0041] Specifically, in the present embodiment, the multiple lens pieces 122-1 to 122-4 present in the left half of
[0042] As shown in
[0043] In the security sensor device 1 of the present embodiment, the infrared ray detection elements 232A, 232B, 242A, and 242B are fixed such that the infrared ray detection elements 232A, 232B, 242A, and 242B do not rotate about the axes L1 and L2 or the rotation axis L3 (described later) in
[0044] The base unit 200 shown in
[0045] As for the first detection element portion 230, the infrared ray detection elements 232A and 232B each having a FOV (field of view) of 90 degrees are housed in a single case having a substantially triangular column shape. The infrared ray detection elements 232A and 232B are arranged such that detection center directions thereof form 90 degrees. Specifically, the infrared ray detection elements 232A and 232B are arranged on two sides excluding the hypotenuse of a right-angled isosceles triangle on a cross-section orthogonal to the later-described rotation axis L3, which is parallel to the axes L1 and L2, such that the infrared ray detection elements 232A and 232B face toward the external side. Here, this detection center directions are each a direction straight facing the infrared ray detection element, a direction of substantially the center of the FOV of the infrared ray detection element, or a direction in which the detection sensitivity is at its maximum. Accordingly, the total FOV of the two infrared ray detection elements 232A and 232B is 180 degrees. The first detection element portion 230 and the infrared ray detection elements 232A and 232B are fixed such that the detection element portion 230 and the infrared ray detection elements 232A and 232B do not rotate relative to the base unit 200. In addition, in the present embodiment, the infrared ray detection elements 232A and 232B are also fixed such that the positions thereof do not change relative to the base unit 200, but these positions may change, for example, in the up-down direction.
[0046] The second detection element portion 240 includes two infrared ray detection units 240A and 240B each having a substantially triangular column shape. The first infrared ray detection unit 240A has the infrared ray detection element 242A having a FOV of 90 degrees, and the second infrared ray detection unit 240B has the infrared ray detection element 242B having a FOV of 90 degrees. The infrared ray detection elements 242A and 242B are arranged such that the detection center directions thereof form 90 degrees. Specifically, the infrared ray detection elements 242A and 242B are arranged on two sides excluding the hypotenuse of a right-angled isosceles triangle on a cross-section orthogonal to the rotation axis L3, facing toward the external side, when the entire second detection element portion 240 is viewed. Accordingly, the total FOV of the two infrared ray detection elements 242A and 242B is 180 degrees. Due to the above configuration, the detection center directions of the infrared ray detection element 232A and the infrared ray detection element 242A are substantially the same, and the detection center directions of the infrared ray detection element 232B and the infrared ray detection element 242B are substantially the same. In the present embodiment, the infrared ray detection elements 232A, 232B, 242A, and 242B are PIR sensors.
[0047] Both infrared ray detection units 240A and 240B may be movable independently to each other such that the positions thereof change relative to the base unit 200 in the rotation axis L3 direction. For example, when the lengths in the axis direction of the infrared ray detection units 240A and 240B are denoted by W, the movement distance of each of the infrared ray detection units 240A and 240B may be substantially the length W.
[0048] The base unit 200 is attached to the mount 300 so as to be housed in the cover unit 100, and has a first shielding curved plate 260A and a second shielding curved plate 260B that block infrared rays coming to the infrared ray detection elements 232A, 232B, 242A, and 242B. In the present embodiment, the two shielding curved plates 260A and 260B are provided as shown in
[0049] The shielding curved plates 260A and 260B are each formed from a material having a low transmittance for the wavelength range of electromagnetic waves used as detection rays (far-infrared rays in the present embodiment), and, for example, is formed from a polycarbonate (PC) resin or the like. In addition, the shielding curved plates 260A and 260B are transparent in a view in the incoming direction of infrared rays. If the shielding curved plates 260A and 260B are not transparent, there is a possibility that the shielding curved plates 260A and 260B are viewed from the outside of the security sensor device 1 through the detection lens 120 and thus the shielding region is recognized. However, in the present embodiment, since the shielding curved plates 260A and 260B are transparent, such a possibility can be reduced.
[0050]
[0051] As shown in
[0052] In addition, as shown in
[0053]
[0054] Specifically, in the first shielding curved plate 260A of the present embodiment, a first arm 260Ab and a second arm 260Ac are provided at the upper end and the lower end of a partial-cylindrical curved plate body 260Aa, respectively, so as to extend radially inward. A knurled portion 260Af for preventing slip is formed only on the radially outer circumferential surface of the second arm 260Ac. Support holes 260Ad and 260Ae are formed in rotation center portions of the arms 260Ab and 260Ac, respectively. Support shafts 210b and 210c each having a circular column shape are provided at center portions of the flange portions 214 and 216, respectively, so as to project therefrom. The arms 260Ab and 260Ac are mounted to the support shafts 210b and 210c by fitting the support hole 260Ad to the support shaft 210b and fitting the support hole 260Ae to the support shaft 210c, and the first shielding curved plate 260A is rotatable about the rotation axis L3 relative to the flange portions 214 and 216. The second shielding curved plate 260B also has arm portions corresponding to the arms 260Ab and 260Ac. By mounting the arm portions to the support shafts 210b and 210c, the second shielding curved plate 260B is attached so as to be rotatable about the rotation axis L3 relative to the flange portions 214 and 216 independently of the first shielding curved plate 260A.
[0055] Meanwhile, a locking portion 218 for locking the shielding curved plates 260A and 260B at predetermined positions in the rotation direction with a click feeling is formed on one or each of the flange portions 214 and 216. In addition, a support base 210d for supporting the first detection element portion 230 and the second detection element portion 240 is provided to the main body 210 of the base unit 200. Parts of the first shielding curved plate 260A and the second shielding curved plate 260B enter a gap G between a side wall 210a of the main body 210 and the support base 210d. When the entire shielding curved plates 260A and 260B are inserted into the gap G, since the lengths of the arms 260Ab and 260Ac are equal to those of the above arm portions, if the curvatures of both shielding curved plates are equal to each other, the shielding curved plates 260A and 260B may collide with each other in the gap G. Thus, the shielding curved plates 260A and 260B have end portions that face the gap G and that respectively have a tapered shape or a reversely tapered shape corresponding to the tapered shape. Accordingly, when the entire shielding curved plates 260A and 260B are inserted into the gap G, the shielding curved plates 260A and 260B make motion of crossing each other along the respective tapered shape and reversely tapered shape.
[0056] In the present embodiment, a locking portion 218 composed of a substantially arc-shaped groove centered at the rotation axis L3 is formed only on the lower surface of the flange portion 216. Specifically, the locking portion 218 has, at a plurality of locations on the outer arc thereof, semicircular recesses facing in the radially outward direction of the arc. The first shielding curved plate 260A that rotates as described above is locked to the main body 210 with a click feeling by engaging a projection-like engagement piece 262 of the first shielding curved plate 260A shown in
[0057] The shielding curved plates 260A and 260B of the present embodiment are present on the first sensor-side virtual cylindrical surface C1, are set so as to be rotatable about the rotation axis L3 as described above, and are locked at predetermined positions in the rotation direction to block infrared rays coming to the infrared ray detection elements 232A, 232B, 242A, and 242B. Therefore, it is not necessary to perform masking using a light-shielding sheet as in the conventional art, and it is possible to flexibly handle setting of the detection direction by performing simple work of rotating the shielding curved plates 260A and 260B, which have a low infrared ray transmittance, and locking the shielding curved plates 260A and 260B at the predetermined positions. In the structure having the shielding curved plates 260A and 260B, the effect of being able to flexibly handle setting of the detection direction can be further exerted in the case where the infrared ray detection elements 232A, 232B, 242A, and 242B have a fixing structure for not making a rotation motion about the axis of the optical-system-side virtual cylindrical surface relative to the base unit 200 as in the present embodiment.
[0058] The security sensor device 1 of the present embodiment has the signal processing unit 280 as an electrical system circuit for infrared ray detection as shown in a block diagram in
[0059] In the present embodiment, in the case where the infrared ray detection elements 232A and 242A and the infrared ray detection elements 232B and 242B are configured such that two detection regions thereof overlap in the horizontal direction, the third arithmetic section 286 performs an AND operation of the detection result of the first arithmetic section 282 and the operation result of the second arithmetic section 284 so as to perform an operation for compensating for accuracy decrease due to disturbance noise, and outputs a detection signal. For example, output of a warning or the like from an alarm is performed using this detection signal, whereby a notification of appearance of an intruder is sent.
[0060] Next, a security sensor device according to a second embodiment of the present invention will be described. The contents other than the following description are the same as in the first embodiment, and the redundant description is omitted. As shown in
[0061] The light-shielding member 262 can be provided so as to extend on and between the flange portions 214 and 216 by diverting or using for the light-shielding member 262, one of 14 engagement holes 219 corresponding to position-indicating marks a to n provided on the flange portion 214 shown in
[0062] Specifically, as shown in
[0063] The light-shielding member 262 is formed from a material having a low transmittance for the wavelength range of electromagnetic waves used as detection rays (far-infrared rays in the present embodiment), and, for example, is formed from a PC resin or the like. In addition, the light-shielding member 262 is transparent in a view in the incoming direction of infrared rays. If the light-shielding member 262 is not transparent, there is a possibility that the light-shielding member 262 is viewed from the outside of the security sensor device 1 through the detection lens 120 and thus the shielding region is recognized. However, in the present embodiment, since the light-shielding member 262 is transparent, such a possibility can be reduced.
[0064]
[0065] By using the light-shielding member 262 of the present embodiment, the direction in which infrared ray detection is blocked can be locally and additionally set in addition to the shielding curved plates 260A and 260B. Moreover, the light-shielding member 262 is attached at the base unit 200 side at which the infrared ray detection elements 232A, 232B, 242A, and 242B are present, not at the cover unit 100 side at which the detection lens 120 is present. Thus, attaching work of attaching a light-shielding sheet for masking while viewing the detection lens 120 from the inner side as in the conventional art is not required. Accordingly, a wrong operation during attachment of the light-shielding sheet is prevented, and time and effort for the attaching work are omitted.
[0066] Although the present invention has been fully described in connection with the preferred embodiments thereof with reference to the accompanying drawings which are used only for the purpose of illustration, those skilled in the art will readily conceive numerous changes and modifications within the framework of obviousness upon the reading of the specification herein presented of the present invention. Accordingly, such changes and modifications are, unless they depart from the scope of the present invention as delivered from the claims annexed hereto, to be construed as included therein. For example, the following configurations can be included therein.
[0067] The security sensor device 1 can be similarly used for an AIR device that uses near-infrared rays as detection rays, has a light-projecting element and a light-receiving element in a base unit, emits near-infrared rays from the light-projecting element through a light-projection-side optical system disposed in a cover unit to the outside of the sensor device, and concentrates near-infrared rays, which has collided against and reflected from a detection object, onto the light-receiving element by a light-reception-side optical system disposed in the cover unit, thereby detecting the detection object. Moreover, in addition to the Fresnel lens, another optical member such as a prism may be used as an optical member. The optical-system-side virtual cylindrical surfaces Cs1 and Cs2, that is, the Fresnel lenses 120A and 120B, or the detection lens 120 including the Fresnel lenses 120A and 120B, may have an elliptic cylindrical shape or a polygonal cylindrical shape other than the circular cylindrical shape. Furthermore, the infrared ray detection elements 232A, 232B, 242A, and 242B of each embodiment described above have a fixing structure for not making a rotation motion about the axis of the optical-system-side virtual cylindrical surface relative to the base unit 200, but may make a rotation motion about the axis of the optical-system-side virtual cylindrical surface relative to the base unit 200 without having such a fixing structure. In such cases as well, the same advantageous effects as in each embodiment described above are achieved.
REFERENCE NUMERALS
[0068] 1, 1A . . . security sensor device [0069] 100 . . . cover unit [0070] 120 . . . detection lens (detection optical system) [0071] 120A, 120B . . . Fresnel lens (optical member group) [0072] 120C . . . connection portion [0073] 122-1 to 122-8 lens piece (optical member, Fresnel lens piece) [0074] 200 . . . base unit [0075] 232A, 232B . . . infrared ray detection element (far-infrared ray detection element) [0076] 242A, 242B . . . infrared ray detection element (far-infrared ray detection element) [0077] 260A, 260B . . . shielding curved plate [0078] 262, 262-1, 262-2 . . . light-shielding member [0079] 280 . . . signal processing unit [0080] C1 . . . first sensor-side virtual cylindrical surface [0081] C2 . . . second sensor-side virtual cylindrical surface [0082] L1, L2 . . . axis of optical-system-side virtual cylindrical surface [0083] L3 . . . rotation axis