Passive infra-red intrusion detector
11562634 · 2023-01-24
Assignee
Inventors
- Boris Zhevelev (Rishon le Zion, IL)
- Yehuda Shviki (Rishon le Zion, IL)
- Zach Avidar (Emek Yizrael, IL)
- Vitaly Roytenburd (Rishon le Zion, IL)
Cpc classification
International classification
Abstract
A passive infrared motion detector discriminates between the motion of humans and pets in a premises. The motion detector includes an infrared sensor and a mirror for focusing infrared radiation from distinct fields of view. In one embodiment, a mask prevents infrared radiation from reaching the infrared sensor, and cut away regions on the surface of the mask allow selective passage of infrared radiation to the infrared sensor. In an alternative embodiment, the cylindrical mirror elements includes reflective and unreflective regions, which allow selective passage of infrared radiation to the infrared sensor. The cut away regions and the reflective regions are elongated to correspond to the shape of standing humans. As a result, the infrared radiation from animals only partially reaches the infrared sensor.
Claims
1. An infrared motion detector, comprising: an infrared sensor for detecting infrared radiation; a mirror for reflecting infrared radiation to the infrared sensor from at least a first elevation field of view and a second elevation field of view; and a pattern mask comprising vertically-elongated regions and covering only a portion of the mirror that corresponds to the first elevation field of view.
2. The infrared motion detector of claim 1, wherein the pattern mask attenuates infrared radiation only from the first elevation field of view.
3. The infrared motion detector of claim 1, wherein the mirror has a cylindrical curvature, wherein the mirror comprises at least an upper row of mirror optical elements creating the first elevation field of view and a lower row of mirror optical elements creating the second elevation field of view, wherein each one of the upper row of mirror optical elements and the lower row of mirror optical elements extends laterally across the mirror, wherein, in each one of the upper row of mirror optical elements and the lower row of mirror optical elements, each optical mirror element corresponds to a different azimuthal field of view.
4. The infrared motion detector of claim 1, wherein a portion of the mirror that reflects the infrared radiation that passes through the pattern mask is cylindrical.
5. The infrared motion detector of claim 1, wherein the pattern mask comprises a mask body in front of the mirror.
6. The infrared motion detector of claim 1, wherein the pattern mask comprises patterned reflective regions of the mirror.
7. The infrared motion detector of claim 1, wherein the vertically-elongated regions comprise slits.
8. The infrared motion detector of claim 1, wherein the pattern mask allows radiation from the vertically-elongated regions to reach the infrared sensor.
9. The infrared motion detector of claim 1, wherein widths of the vertically-elongated regions increase over their length.
10. The infrared motion detector of claim 1, wherein the vertically-elongated regions extend completely through a body of the pattern mask.
11. The infrared motion detector of claim 1, wherein the vertically-elongated regions extend only partially through a body of the pattern mask.
12. The infrared motion detector of claim 1, wherein a profile of the vertically-elongated regions changes with depth.
13. A method of operation of an infrared motion detector, comprising: receiving, by a mirror, infrared radiation from at least a first elevation field of view and a second elevation field of view, wherein a pattern mask comprising vertically-elongated regions covers only a portion of the mirror that corresponds to the first elevation field of view; reflecting, by the mirror, the infrared radiation to an infrared sensor; and detecting the infrared radiation with the infrared sensor.
14. The method of claim 13, wherein the pattern mask attenuates infrared radiation only from the first elevation field of view.
15. The method of claim 13, wherein the mirror has a cylindrical curvature.
16. The method of claim 13, wherein the pattern mask comprises a mask body in front of the mirror.
17. The method of claim 13, wherein the pattern mask comprises patterned reflective regions of the mirror.
18. The method of claim 13, wherein the vertically-elongated regions comprise slits.
19. The method of claim 18, wherein the pattern mask allows radiation from the vertically-elongated regions to reach the infrared sensor.
20. An infrared intrusion detector, comprising: an infrared sensor for detecting infrared radiation; and a mirror for reflecting infrared radiation to the infrared sensor from at least a first elevation field of view and a second elevation field of view, wherein the mirror comprises at least an upper row of mirror optical elements creating the first elevation field of view and a lower row of mirror optical elements creating the second elevation field of view, wherein the upper row of mirror optical elements comprises unreflective matte regions and vertically-elongated reflective regions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the accompanying drawings, reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale; emphasis has instead been placed upon illustrating the principles of the invention. Of the drawings:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(11) The invention now will be described more fully hereinafter with reference to the accompanying drawings, in which illustrative embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.
(12) As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. Further, the singular forms and the articles “a”, “an” and “the” are intended to include the plural forms as well, unless expressly stated otherwise. It will be further understood that the terms: includes, comprises, including and/or comprising, when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. Further, it will be understood that when an element, including component or subsystem, is referred to and/or shown as being connected or coupled to another element, it can be directly connected or coupled to the other element or intervening elements may be present.
(13) Reference is made to
(14)
(15) Each of the azimuthal fields of view 11A-11E depicted in
(16)
(17)
(18) It should be noted that in this example the upper row of mirror optical elements 36 of the mirror 20 looks downward or collects light from below the detector and typically covers a range of up to about 8 meters (corresponding to field of view 16 of
(19) The lower row 34 of the mirror 20 looks further in range (corresponding to field of view 14 of
(20) Finally, the middle row 35 of the mirror 20 collects light from oblique angles between those of the upper row 36 and the lower row 34.
(21) The curvature of the middle row 35 and the lower row 34 are generally parabolic.
(22) Two snap-fit tabs 44, 45 are located on either lateral side of the mirror 25.
(23) It also should be noted that other designs include elevational fields of view in addition to 14, 15, 16 in
(24)
(25) The prior art pet mask 48 is compatible with and attaches to a mirror 20 such as the one shown in
(26) When assembled, the mask 48 covers a portion of the mirror 20. In general, the mask 20 may have a graded thickness to control the level of attenuation of the infra-red radiation. The mask 48 is placed on the mirror 20 and secured by the snaps 44, 45, and specifically covers the upper portion row 36 of the mirror 20. The mask 48 will thus cover the optical elements of the row 36 that are pointing more downward toward the floor, which in turn corresponds to lower elevational field of view 16. In this way, the pet mask uniformly attenuates radiation coming from pets on the floor in the lower elevational field of view 16.
(27) Instead of uniformly attenuating the signal received by the pyro-electric sensor 22, the present system adjusts the energy passing to the pyro-electric sensor 22 by placing a pattern mask in the optical path. The pattern mask is characterized by vertically-elongated slit-shaped regions in the mask. The shape and orientation of the slits are intended to mimic the general shape of a standing human.
(28) Humans tend to have long, erect, standing shapes. In contrast, most pets are more short and square and laterally elongate, dimensionally. By designing the pattern mask to have vertically-elongated slits, the radiation from an upright human will pass through. Body radiation from a pet having a mostly wide low height rectangular shape will only partially pass through the slit. More specifically, only the body radiation from the portion of the pet within the field of view corresponding to the slit will pass through. Thus, humans will tend to yield a higher response at the pyro-electric sensor 22.
(29) Reference is made to
(30) As before, the mask 60 attaches to the mirror 20. Specifically, the snaps 44, 45 of the mirror 20 are received into through-holes 62, 63 of the pattern mask 60.
(31) The pattern of the mask is characterized by multiple slits 64A-64E in a body 65 of the mask 60, which has a generally hemispherical section-shape. In general the number of slit-shaped features is between 2 and 10, typically between 3 and 7. The illustrated embodiment has 5.
(32) Further, each slit usually has a length of between 8 and 20 millimeters, preferably about 12 millimeters. The width is usually less than 4 millimeters, preferably about 2 millimeters.
(33) Further edges of the slits on the side away from the mirror are beveled as shown in
(34) In the preferred embodiment the mask 60 only covers upper row 36 of the mirror 20. The upper row 36 of the mirror 20 looks downward or collects light from below the detector and typically covers a range of up to about 8 meters (corresponding to lower elevational field of view 16 of
(35) In another embodiment, the pattern mask 60 also covers the middle row 35 of the mirror 20. The size of the mask 60 and slits 64 varies according to the specific optical design of the mirror 20 and the mirror elements.
(36) As a whole, even if the accumulated radiation from a pet may be the same as the accumulated radiation from an upright human, the slit pattern of the pattern mask 60 allows all of the radiation from humans to pass through to the mirror 20 and be reflected to the sensor 20, while passing only a small portion of the radiation from pets. This difference in radiation then translates to signal amplitude received from a pyro-electric sensor 20 (or any type of thermal sensor, e.g. thermopile).
(37) The design of the slits 64, including characteristics such as size, shape and profile, should be closely related to the optical design of the mirror 20 and its elements. Parabolic mirror elements may call for a different size of the slit compared to cylindrical mirror elements or mirror elements of other shapes.
(38) The slit design may have multiple shapes and size, corresponding to the optical design and the particular pets that are not to be detected. In particular the design of the slits 64 is based on pet size and temperature, installation height of the detector from floor, field of view and range of detection, mirror optical design, and electronic circuit and algorithm.
(39)
(40)
(41)
(42)
(43) In the preferred embodiment, the upper row of cylindrical mirror elements 36 of the mirror 20 looks downward and should have the most masking effect when pets are close to the detector. As a result, a slit design which is narrow at the top (which corresponds to the most downward-pointing field of view 16) and slightly wider at the bottom is best to condition the radiation to an optimal level (resulting in, for example, higher reduction of radiation from a very close range). In general, such a design looks like a triangle. For example, the triangle 72 of
(44) It should also be noted that the edge profile of the slit can vary.
(45)
(46) In
(47) In
(48) In
(49) The material of the pet mask may also vary. It can be an infra-red semi-transparent material such as polyethylene, or a more non-transparent plastic such as ABS.
(50) Further embodiments may allow the pet mask to be selectively removed or replaced by a different design of mask and slits. Such a replacement may be done by the installer on site.
(51)
(52) In another embodiment, the mask is placed separately from the mirror. In designs described above, the pet mask is close to the mirror and installed on it. The pet mask can be placed anywhere in the optical path of the detector, with some distance from the mirror.
(53)
(54) While this invention has been particularly shown and described with references to preferred embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention encompassed by the appended claims.