LIGHT AVOIDANCE STRUCTURE FOR DETECTING OPTICAL SIGNAL
20220057318 · 2022-02-24
Inventors
Cpc classification
G01N21/01
PHYSICS
International classification
Abstract
A light avoidance structure (100) for detecting an optical signal, comprising: a base (10), a rotating body (20) pivotally connected to the base (10), and a cover plate (30) arranged facing toward the rotating body (20). The rotating body (20) is provided with a first light shielding member (21); the rotating body (20) is provided with at least one cup hole (22); the cup hole (22) is provided with a detection port (221); the cover plate (30) is provided with a second light shielding member (31); the second light shielding member (31) and the first light shielding member (21) match each other so as to form an annular structure used for shielding light, and a gap (311) is provided at the connection of the second light shielding member (31) and the first light shielding member (21); the detection port (221) is located at the outer side of the first light shielding member (21) and the second light shielding member (31); and the cover plate (30) is provided with at least one hole (32). The light avoidance structure (100) for chemiluminescence measurement may effectively solve the problem of light leakage in a dark room by means of the annular structure used for shielding light provided between the cover plate (30) and the rotating body (20), and is a simple structure and reduces the influence on a device.
Claims
1. A light-avoiding structure for optical signal detection, comprising: a base provided with an accommodating slot; a rotating body pivotally connected to the base, the rotating body being received in the accommodating slot, the rotating body being provided with a first light shielding member, the rotating body being provided with at least one cup hole, the cup hole being provided with a detection port serving as a signal input port of a photosensitive device; and a cover plate arranged toward the rotating body, the cover plate covering an opening of the accommodating slot, the cover plate being provided with a second light shielding member, the second light shielding member and the first light shielding member matching each other so as to form an annular structure for shielding light, and a gap being provided at a joint between the second light shielding member and the first light shielding member, the detection port being located outside the first light shielding member and the second light shielding member, and the cover plate being provided with at least one hole.
2. The light-avoiding structure for optical signal detection according to claim 1, wherein the first light shielding member is a convex ring, and the second light shielding member is a groove; or the first light shielding member is a groove, and the second light shielding member is a convex ring.
3. The light-avoiding structure for optical signal detection according to claim 1, wherein the first light shielding member and the second light shielding member are both convex rings and are mutually sleeved.
4. The light-avoiding structure for optical signal detection according to claim 1, wherein a width of the gap is no greater than 1 mm.
5. The light-avoiding structure for optical signal detection according to claim 1, wherein the cover plate is detachably connected to the base or hinged to the base.
6. The light-avoiding structure for optical signal detection according to claim 1, wherein a plurality of first light shielding members are concentric structures arranged with a rotating shaft of the rotating body as a center, and the number of the first light shielding members is inversely proportional to a diameter of the cover plate.
7. The light-avoiding structure for optical signal detection according to claim 1, wherein a plurality of second light shielding members are concentric structures arranged with a rotating shaft of the rotating body as a center, and the number of the second light shielding members is inversely proportional to a diameter of the cover plate.
8. The light-avoiding structure for optical signal detection according to claim 1, wherein the cover plate is provided with a low-light treatment layer on a side thereof provided with the first light shielding member, and the rotating body is provided with a low-light treatment layer on a side thereof provided with the second light shielding member.
9. The light-avoiding structure for optical signal detection according to claim 8, wherein the low-light treatment layer is a blackening layer or a matte oxide layer.
10. The light-avoiding structure for optical signal detection according to claim 1, further comprising: an actuator connected to the rotating body and configured to drive the rotating body to rotate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028] Reference numerals in the drawings are as follows: [0029] 100: light-avoiding structure for optical signal detection; [0030] 10: base, 11: accommodating slot; [0031] 20: rotating body, 21: first light shielding member, 22: cup hole, 221: detection port; [0032] 30: cover plate, 31: second light shielding member, 311: gap; 32: hole; [0033] 40: actuator, 41: motor, 42: synchronous belt; [0034] 50: photosensitive device.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0035] In order to facilitate the understanding of the disclosure, a more comprehensive description of the disclosure will be given with reference to the relevant accompanying drawings. Embodiments of the disclosure are given in the accompanying drawings. However, the disclosure may be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and comprehensive understanding of the disclosure.
[0036] It should be noted that, when one element is referred to as “fixed to” another element, it may be directly on another element or there may be an intermediate element. When one element is referred to as “connected to” another element, it may be directly connected to another element or there may be an intermediate element.
[0037] As shown in
[0038] As shown in
[0039] As shown in
[0040] Further, for ease of operation, the cover plate 30 is detachably connected to the base 10 or is hinged to the base 10.
[0041] In addition, the base 10 currently shown in the present embodiment is a U-shaped structure in coordination with the rotating body 20, which may also have a lot of variants, as long as it can match the rotating body 20. For example, the photosensitive device may be mounted inside the base 10, with the detection port facing inward, or it can be disassembled into a plurality of parts.
[0042] As shown in
[0043] The cup hole 22 is used to accommodate an object for photoelectric detection, such as a reaction vessel. In the present embodiment, the reaction vessel is not drawn. In the present embodiment, three cup holes 22 are provided. In other embodiments, there may be one, two, four, or more cup holes. The more cup holes 22, the more stations can be provided, which is conducive to increase the processing speed of the equipment. During operation, the cup hole 22 rotates with the rotation of the rotating body 20. When the cup hole 22 rotates to a detection end of the photosensitive device 50, the detection port 221 on a side wall of the cup hole 22 can allow the detection end of the photosensitive device 50 to detect an optical signal generated by reactants in the reaction vessel.
[0044] As shown in
[0045] As shown in
[0046] In addition, in the present embodiment, there are a plurality of first light shielding members 21, which are concentric structures arranged with a rotating shaft of the rotating body 20 as the center. The number of the first light shielding members 21 is inversely proportional to a diameter of the cover plate 30. Similarly, in the present embodiment, there may also be a plurality of second light shielding members 31, which are concentric structures arranged with a rotating shaft of the rotating body 20 as the center. The number of the second light shielding members 31 is inversely proportional to a diameter of the cover plate 30. That is, with the decrease of the diameter of the cover plate 30, the number of the first light shielding members 21 and the number of the second light shielding members 31 are increased to improve the blocking capability of the light propagating in the straight line. It should be understood that in other embodiments, as shown in
[0047] Considering that there may be diffuse reflection when the light is incident to the gap 311 at the junction between the first light shielding member 21 and the second light shielding member 31, a width of the gap 311 is less than 1 mm in the present embodiment. Since the gap 311 between the first light shielding member 21 and the second light shielding member 31 is set within the range of no greater than 1 mm, the probability of the light incident to the photosensitive device 50 through diffuse reflection and other means will be reduced.
[0048] In addition, in the present embodiment, a low-light treatment layer is provided on a side of the cover plate 30 that is provided with the first light shielding member 21, and a low-light treatment layer is provided on a side of the rotating body 20 that is provided with the second light shielding member 31. The low-light treatment layer is used to weaken diffuse reflection of the light between the first light shielding member 21 and the second light shielding member 31.
[0049] Further, the low-light treatment layer may be a blackening layer or a matte oxide layer.
[0050] The hole 32 is used to operate the cup hole 22 of the rotating body 20, through which for example, the reaction vessel can be placed in or taken out, or a reaction liquid can be added to or remove from the reaction vessel.
[0051] In the present embodiment, the number of the hole 32 on the cover plate 30 is two; in other embodiments, the number of the holes 32 may also be three, four or more, or one. The holes 32 are used to operate the cup hole 22 of the rotating body 20, through which for example, the reaction vessel can be placed in or taken out, or a reaction liquid can be added to or remove from the reaction vessel. Therefore, the more holes 32, the more stations corresponding to the cup holes 22, which is conducive to increase the working efficiency of the equipment.
[0052] As shown in
[0053] Further, as shown in
[0054] According to the aforementioned light-avoiding structure for chemiluminescence determination, the base 10, the rotating body 20, and the cover plate 30 constitute a darkroom for optical signal detection. An annular structure for shielding light composed of the first light shielding member 21 and the second light shielding member 31 is provided between the cover plate 30 and the rotating body 20, and the hole 32 on the cover plate 30 is misaligned with the mounting hole for mounting the photosensitive device 50. When external light is incident on the hole 32 of the cover plate 30 and on the cup hole 22 of the rotating body 20, based on the principle of straight line propagation of light, the light propagating in the straight line will be blocked by the annular structure constituted between the cover plate 30 and the rotating body 20, and the light is difficult to be incident on the photosensitive device 50 at the detection port 221, to establish a good darkroom environment for the detection of the photosensitive device 50. In addition, the gap 311 is provided at the joint between the first light shielding member 21 and the second light shielding member 31, which can ensure that the rotating body 20 is rotatable relative to the cover plate 30. Moreover, the cup hole 22 can be kept in a normally open state, and the accommodating slot 11 of the base 10 is in communication with an external environment, thus avoiding the problem of difficult heat dissipation caused by complete closure. The above design can effectively solve the problem of light leakage in the darkroom by means of the annular structure for shielding light arranged between the cover plate 30 and the rotating body 20, the structure is simple, and the influence on equipment is reduced.