Imaging device
The imaging device aligns sample containers using a rotating plate and spring mechanism to address positioning challenges, enabling precise imaging and easy replacement, enhancing analysis accuracy.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-24
- Publication Date
- 2026-03-27
AI Technical Summary
Existing imaging devices struggle to accurately align and position sample containers within the holder, such as well plates, for precise imaging and analysis, especially when placed by robots or operators, leading to difficulties in recognizing the position of each well and the sample within the image.
An imaging device with a mounting table, position reference member, and a holding mechanism featuring a rotating plate biased by a spring, which aligns the sample container by pivoting and contacting it along intersecting extension portions to ensure accurate positioning, utilizing a rotating plate with a front wing and protruding portion to bias the container laterally or longitudinally, and a stopper to release the bias when repositioning.
The device effectively aligns misaligned sample containers by rotating the plate to contact and bias them along reference extensions, ensuring precise positioning and easy replacement, facilitating accurate imaging and analysis without damaging the samples.
Smart Images

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Figure 0007836690000002 
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Abstract
Description
Technical Field
[0001] The present invention relates to an imaging device that acquires an image of a sample container.
Background Art
[0002] Conventionally, in fields such as medicine and drug discovery, cells or the like cultured in a sample container called a "well plate" or "microplate" have been observed as samples. Such a sample container has a plurality of recessed sample storage parts called wells, and generally, a sample is injected into the wells together with a liquid medium. In recent years, such a sample has been imaged by an imaging device equipped with a CCD camera or the like, and the sample has been observed using the image data obtained by the imaging. For example, in cancer drug discovery research, cancer cells injected into wells together with a liquid (culture solution) as a medium are imaged by an imaging device, and the cancer cells are observed and analyzed. Such an imaging device is described in, for example, Patent Document 1.
[0003] The imaging device (1) of Patent Document 1 images while holding a well plate (WP) composed of a plurality of wells (W) that hold a sample and a medium (M) in a holder (12). At this time, the holder (12) abuts against the lower surface peripheral part of the well plate (WP) and holds the well plate (WP) in a substantially horizontal posture. Then, while moving the illumination unit (10) and the imaging unit (13) with respect to the well plate (WP), each well (W) provided in the well plate (WP) is photographed by dividing it into a plurality of regions.
Prior Art Documents
Patent Documents
[0004]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0005] Generally, well plates (WPs) are placed one by one into the holder (12) by an operator. In recent years, well plates (WPs) are also sometimes placed into the holder (12) by a robot. After the well plates (WPs) are placed, images are acquired by photography, and these images are used to observe and analyze the sample. At that time, it is essential to observe and analyze while recognizing the position of each well (W) in the well plate (WP) and the sample itself in the image. For this reason, in order to recognize the position of each well (W) and the sample itself in the image more accurately and easily, it is desirable to align the well plates (WPs) to predetermined positions in the holder (12) as a preliminary step before taking the image.
[0006] This invention has been made in view of these circumstances, and aims to provide a technology that enables an imaging device for photographing sample containers to align and position the sample containers in a predetermined location. [Means for solving the problem]
[0007] To solve the above problems, the first invention of the present application is an imaging device for acquiring an image of a plate-shaped sample container having a rectangular shape in a top view, comprising: a mounting table on which the sample container is placed; a position reference member provided on the upper surface of the mounting table and including a vertical extension portion and a horizontal extension portion extending in directions that intersect each other at right angles in a top view; a holding mechanism provided on the upper surface of the mounting table and aligning the sample container along the position reference member; a moving mechanism for moving the mounting table, the position reference member, and the holding mechanism in a horizontal direction; an illumination unit for irradiating the sample container with light; and an imaging unit for photographing the sample container illuminated by the illumination unit, wherein the holding mechanism The structure comprises a rotating plate that extends horizontally in a plate shape, and a main body that rotates the rotating plate circumferentially forward around a central axis extending vertically by the elastic force of a spring, wherein the rotating plate has a front wing portion extending radially from the central axis and a protruding portion that protrudes circumferentially forward from the front wing portion, wherein when the rotating plate rotates circumferentially forward and the front wing portion contacts the sample container, the sample container is biased laterally in a top view and follows the longitudinal extension portion, and when the rotating plate rotates circumferentially forward and the protruding portion contacts the sample container, the sample container is biased longitudinally in a top view and follows the lateral extension portion.
[0008] The second invention of the present application is an imaging apparatus of the first invention, wherein the rotating plate has a through hole that penetrates the rotating plate along the central axis, the main body has a spring which is a torsion spring, a fixing shaft that penetrates the through hole of the rotating plate and extends the radially inner side of the coil portion of the spring along the central axis and is fixed to the aforementioned mounting base, and a restricting portion that restricts the rearward movement of one arm portion of the spring in the circumferential direction, and the rotating plate has a contact portion that contacts the front in the circumferential direction of the other arm portion of the spring.
[0010] This application 3 The invention is the first invention. or the second invention The imaging device wherein, in a top view, the protruding portion protrudes semicircularly forward in the circumferential direction.
[0011] This application4 The inventions are as follows: 3 An imaging apparatus according to any one of the inventions up to the present invention, wherein the rotating plate has a rear wing portion that extends radially from the central axis and is located behind the front wing portion in the circumferential direction, and the moving mechanism moves the aforementioned base, the position reference member, and the holding mechanism back and forth horizontally between an imaging position and a retracted position spaced apart from the imaging position, and further comprises a stopper member that, when the aforementioned base, the position reference member, and the holding mechanism move to the retracted position, contacts the rear wing portion, thereby causing the rotating plate to pivot backward in the circumferential direction about the central axis, thereby releasing the biasing force on the sample container.
[0012] This application 5 The inventions are as follows: 4 An imaging apparatus according to any one of the inventions up to the present invention, wherein the sample container is a well plate having a plurality of sample storage sections which are circular recesses when viewed from above, and a liquid is held in the sample storage sections.
[0013] This application 6 The inventions are as follows: 5 An imaging apparatus according to any one of the inventions up to the present invention, wherein, in a top view, the sample container is placed below the lateral extension and to the right of the longitudinal extension, and when the rotating plate rotates forward in the circumferential direction and the front wing contacts the sample container, the sample container is biased to the left in a top view and follows the longitudinal extension, and when the rotating plate rotates forward in the circumferential direction and the protrusion contacts the sample container, the sample container is biased upward in a top view and follows the lateral extension. [Effects of the Invention]
[0014] The first invention of this application 6 According to the invention, even if the sample container is placed on the upper surface of the mounting platform while misaligned from the longitudinally extended portion or the transversely extended portion, the sample container can be aligned along the longitudinally extended portion and the transversely extended portion by rotating the rotating plate of the holding mechanism and bringing it into contact with the sample container to bias it.
[0016] In particular, according to the 3 invention of the present application, while rotating the rotating plate, the protruding portion can be brought into contact with the sample container while smoothly changing its position.
[0017] In particular, according to the 4 invention of the present application, by moving the mounting table, the position reference member, and the holding mechanism to the retracted position, the rotating plate contacts the stopper member and rotates backward in the circumferential direction, thereby releasing the biasing force of the rotating plate on the sample container. As a result, an operator, a robot, or the like can easily perform operations such as replacing the sample container.
Brief Description of the Drawings
[0018] [Figure 1] It is a diagram showing a schematic configuration of the imaging device. [Figure 2] It is a top view of the mounting table, the position reference member, the holding mechanism, and the well plate in the imaging device. [Figure 3] It is a top view of the vicinity of the mounting table in the imaging device. [Figure 4] It is a side view of the vicinity of the mounting table in the imaging device as viewed from the direction of the white solid line arrow in FIG. 3. [Figure 5] It is a top view of the holding mechanism. [Figure 6] It is a side view of the holding mechanism as viewed from the direction of the white solid line arrow in FIG. 5. [Figure 7] It is a top view of the rotating plate. [Figure 8] It is a diagram for explaining the position of the well plate arranged on the mounting table and the operation of the holding mechanism. [Figure 9] It is a diagram for explaining the position of the well plate arranged on the mounting table and the operation of the holding mechanism. [Figure 10] It is a diagram for explaining the position of the well plate arranged on the mounting table and the operation of the holding mechanism.
Embodiments for Carrying Out the Invention
[0019] Embodiments of the present invention will be described below with reference to the drawings.
[0020] <1. Configuration of the imaging device> Figure 1 is a diagram showing the schematic configuration of an imaging device 1 according to one embodiment of the present invention. This imaging device 1 is a device for photographing samples of cells, cell colonies, bacteria, etc. (hereinafter collectively referred to as "cells, etc.") that are cultured in a liquid injected into wells W formed on the upper surface of a well plate WP.
[0021] The well plate WP has a flat, three-dimensional shape with a rectangular shape when viewed from above (see Figure 2 below). Here, "viewed from above" means "viewed from the vertically upward side," and the same applies hereafter. Also, "top surface" means "the surface on the vertically upward side," and the same applies hereafter. The well plate WP is made of, for example, a transparent resin that transmits light. The well plate WP has multiple wells W (for example, 6, 24, 96, 384, etc.) arranged regularly, which serve as sample storage sections, each having an opening on the top side and a transparent bottom on the bottom side. Here, we will explain using an example where the well plate WP is used as a sample container, but the present invention is not limited to this, and a container called a dish or petri dish (a container having only one sample storage section) can also be used as a sample container.
[0022] Each well W is typically a circular recess with a flat bottom when viewed from above. However, the shape of the well W is not limited to this. The diameter and depth of the well W are generally several millimeters to several tens of millimeters. Each well W holds a predetermined amount of liquid (culture medium) as a culture medium M that provides a growth environment for cells, etc. The amount of liquid held in each well W is generally about 50 to 200 microliters. Cells, etc., cultured in this liquid under predetermined culture conditions become the objects to be imaged.
[0023] The imaging device 1 is used, for example, in the pharmaceutical research and development field, in a screening process to narrow down potential drug candidates. The person in charge of the screening process adds compounds of different concentrations and compositions to multiple wells W of a well plate WP. Then, the imaging device 1 acquires image data of cells, etc., in each well W of the well plate WP. Subsequently, the efficacy of the compounds added to the culture medium is verified by comparing and analyzing the culture state of the cells, etc., based on the obtained image data. However, the imaging device 1 may also be used to observe cell differentiation, etc., in the research and development of pluripotent stem cells such as iPS cells or ES cells.
[0024] Figure 2 is a top view of the imaging device 1, including the mounting table 12 (described later), the position reference member 15 (described later), the holding mechanism 16 (described later), and the well plate WP placed on the mounting table 12. As shown in Figures 1 and 2, the imaging device 1 includes an illumination unit 10, a mounting table 12, an imaging unit 13, a drive mechanism 14, a position reference member 15, a holding mechanism 16, a movement mechanism 17, and a control unit 18. The illumination unit 10 is located at the top of the imaging device 1 in the vertical direction. The mounting table 12 is located below the illumination unit 10 in the vertical direction, and the imaging unit 13 is located below the mounting table 12 in the vertical direction.
[0025] The illumination unit 10 emits light for imaging onto the well plate WP. The illumination unit 10 has a single illumination optical system 100 that includes a light source 101 such as a white LED (Light Emitting Diode), a collector lens 102, a diffuser plate 103, a reflective mirror 104, and a condenser lens 105. During imaging, the light source 101 is controlled by the control unit 18 to emit light. The light emitted from the light source 101 enters the diffuser plate 103 via the collector lens 102. The direction of the light rays emitted from the diffuser plate 103 is changed to a vertically downward direction by the reflective mirror 104. The light rays, now in a vertically downward direction, are then emitted downward from the illumination unit 10 via the condenser lens 105. The light emitted from the illumination unit 10 enters the well W from above the well plate WP placed on the mounting table 12, illuminating the object to be imaged in the well W. However, the illumination unit 10 is not limited to this configuration. The illumination unit 10 only needs to emit light from the opposite side of the imaging unit 13 toward the well plate WP.
[0026] When imaging is performed by the imaging device 1, the well plate WP, which consists of multiple wells W that hold the sample and culture medium M, is placed on the upper surface of the mounting stage 12. The mounting stage 12 is plate-shaped and extends horizontally. A circular imaging hole 120 is provided in the center of the mounting stage 12 when viewed from above. The imaging hole 120 penetrates the mounting stage 12 vertically. With the well plate WP placed on the upper surface of the mounting stage 12, straddling the imaging hole 120, the lower surface of the central part in the vertical direction is exposed. The mounting stage 12 abuts against the peripheral edge of the lower surface of the well plate WP in the vertical direction, holding the well plate WP in a substantially horizontal position. The detailed structures of the mounting stage 12, the position reference member 15, and the holding mechanism 16 will be described later.
[0027] The imaging unit 13 photographs the well plate WP illuminated by the illumination unit 10 and images the sample (cells, etc.) in the well W. The imaging unit 13 includes an objective lens 131, a low-magnification afocal system 132, a high-magnification afocal system 133, a reflective mirror 134, an imaging lens 135, and an image sensor 136. The objective lens 131 is positioned directly below the well plate WP in the vertical direction. The optical axis of the objective lens 131 is oriented vertically and is coaxial with the optical axis of the illumination optical system 100. Light emitted from the illumination unit 10 and incident on the liquid (culture medium M) from above in the vertical direction of the well W illuminates the object to be imaged, and light transmitted downward in the vertical direction from the bottom surface of the well W is incident on the objective lens 131.
[0028] Below the objective lens 131 in the vertical direction, a switchable afocal system 132 for low magnification and an afocal system 133 for high magnification are provided. During imaging, one of the two is selectively positioned directly below the objective lens 131 in the vertical direction. Light emitted from the afocal system (either the low-magnification afocal system 132 or the high-magnification afocal system 133) is reflected by the reflection mirror 134 and then incident on the image sensor 136 via the imaging lens 135.
[0029] The image sensor 136 is an area image sensor having a two-dimensional light-receiving surface. A CCD sensor or CMOS sensor can be used as the image sensor 136. The image of the object to be imaged, formed on the light-receiving surface of the image sensor 136 by the imaging lens 135, is captured by the image sensor 136. The image sensor 136 converts the received optical image into an electrical signal and outputs it as an image signal. This imaging method allows for non-contact, non-destructive, and non-invasive imaging of the object to be imaged, such as cells, thereby minimizing damage to cells during imaging. The operation of each part of the imaging unit 13 is controlled by the control unit 18. The image signal is input from the imaging unit 13 to the control unit 18.
[0030] The drive mechanism 14 is controlled by the control unit 18 during imaging to move the illumination unit 10 and the imaging unit 13. The drive mechanism 14 moves the illumination unit 10 horizontally. The drive mechanism 14 also moves the imaging unit 13 horizontally or vertically. In this imaging device 1, the positional relationship between the illumination unit 10 and the imaging unit 13 is determined so that the center of the light emitted from the illumination unit 10 substantially coincides with the optical axis of the objective lens 131. Therefore, when the drive mechanism 14 moves the imaging unit 13 horizontally, it moves the illumination unit 10 integrally with the imaging unit 13. This ensures that a good illumination state can be maintained regardless of the position in any well W at which imaging is performed.
[0031] The moving mechanism 17 is a device that moves the mounting table 12, the position reference member 15, and the holding mechanism 16 in the horizontal direction. Figure 3 is a top view of the vicinity of the mounting table 12 in the imaging device 1. As shown in Figure 3, the moving mechanism 17 moves the mounting table 12, the position reference member 15 and the holding mechanism 16 fixed to the upper surface of the mounting table 12, and the well plate WP placed on the upper surface of the mounting table 12 back and forth horizontally between the imaging position Pa and the retracted position Pb located away from the imaging position Pa. In Figure 3, the mounting table 12, the position reference member 15, the holding mechanism 16, and the well plate WP located at the imaging position Pa are shown with dashed lines. However, in Figure 3, for the sake of easier explanation, the imaging position Pa is shown as being significantly further away from the retracted position Pb than it actually is.
[0032] Figure 4 is a side view of the area around the mounting table 12 of the imaging device 1, viewed from the direction of the solid white arrow D1 in Figure 3. In Figure 4, the mounting table 12 is shown as a dashed line. As shown in Figures 3 and 4, the imaging device 1 further has a support frame 19. The support frame 19 supports the mounting table 12 and the moving mechanism 17 from below in a substantially horizontal position in the vertical direction. The moving mechanism 17 has a pair of linear guides 171 and 172, a ball screw 173, and a motor 174. The pair of linear guides 171 and 172, the ball screw 173, and the motor 174 are located on the upper surface of the support frame 19.
[0033] As shown in Figures 3 and 4, the linear guides 171 and 172 are each arranged along the vertical direction (up and down direction) in a top view. The mounting base 12 moves along the pair of linear guides 171 and 172, thereby moving in the vertical direction (up and down direction) in a top view. The ball screw 173 extends in the vertical direction (up and down direction) in a top view and is positioned between the pair of linear guides 171 and 172. The ball screw 173 is connected to the ball screw 173 via a connecting member 175, and moves along the pair of linear guides 171 and 172 as the ball screw 173 rotates.
[0034] The control unit 18 is a control means for controlling the operation of each part of the imaging device 1. The control unit 18 is electrically connected to the illumination unit 10, the imaging unit 13, the drive mechanism 14, and the moving mechanism 17. The control unit 18 is composed of a computer having an arithmetic processing unit 181 such as a CPU, a memory 182, and a storage device 183. The control unit 18 controls the operation of each of the above parts based on a preset operation sequence S and parameters P stored in the storage device 183, and external input signals.
[0035] Specifically, the control unit 18 moves the imaging unit 13 horizontally or vertically by operating the drive mechanism 14. Moving the imaging unit 13 horizontally causes it to move horizontally relative to the well W. Moving the imaging unit 13 vertically allows for focus adjustment. The control unit 18 also moves the illumination unit 10 horizontally by operating the drive mechanism 14. The control unit 18 turns on the light source 101 according to the imaging position. The control unit 18 also controls the operation of the imaging unit 13 to photograph the well plate WP, and receives an image signal (analog data) from the image sensor 136 and converts it into digital image data.
[0036] Furthermore, the control unit 18 operates the movement mechanism 17 to move the mounting table 12, the position reference member 15 and holding mechanism 16 fixed to the upper surface of the mounting table 12, and the well plate WP placed on the upper surface of the mounting table 12 back and forth horizontally between the imaging position Pa and the retracted position Pb. However, the illumination unit 10, imaging unit 13, drive mechanism 14, and movement mechanism 17 may each be disconnected from the control unit 18 and operated manually by an operator or robot.
[0037] <2. Detailed structure of the mounting base, position reference member, and holding mechanism> Next, the detailed structure of the mounting table 12, the position reference member 15, and the holding mechanism 16 will be described. As described above, in the processing using the imaging device 1, the well plate WP is placed on the mounting table 12 by an operator or robot. Then, the illumination unit 10 and the imaging unit 13 are moved relative to the stationary well plate WP, and the well plate WP is photographed. The images acquired are then used to observe and analyze the sample. At that time, it is essential to observe and analyze while recognizing the position of each well W and the sample itself in the well plate WP within the image. For this reason, in order to recognize the position of each well W and the sample itself within the image more accurately and easily, it is desirable to align the well plate WP with a predetermined position on the upper surface of the mounting table 12 as a preliminary step before taking the photograph.
[0038] As shown in Figure 2, a position reference member 15 is provided on the upper surface of the mounting base 12, which is convex upward in the vertical direction. However, the position reference member 15 may be formed integrally with the mounting base 12. In a top view, the position reference member 15 is provided so as to surround the outside of the well plate WP in an annular shape. The position reference member 15 forms a reference position for aligning the well plate WP to a predetermined position on the upper surface of the mounting base 12. The position reference member 15 includes a vertical extension portion 151 and a horizontal extension portion 152. The vertical extension portion 151 extends vertically (up and down) at the left side of the mounting base 12 in a top view. The horizontal extension portion 152 extends horizontally (left and right) at the upper left side of the mounting base 12 in a top view. The vertical extension portion 151 and the horizontal extension portion 152 extend in directions that intersect each other at right angles when viewed from above. In this embodiment, the well plate WP is placed on the upper surface of the mounting base 12, below the horizontal extension portion 152 and to the right of the vertical extension portion 151, when viewed from above.
[0039] Furthermore, as shown in Figure 2, a holding mechanism 16 is provided at the lower right position of the upper surface of the mounting base 12 in a top view. The holding mechanism 16 is a mechanism for aligning the well plate WP along the position reference member 15. Figure 5 is a top view of the holding mechanism 16. Figure 6 is a side view of the holding mechanism 16 as seen from the direction of the solid white arrow D2 in Figure 5. Note that in Figure 6, the mounting base 12 is shown with a dashed line. As shown in Figures 5 and 6, the holding mechanism 16 has a main body 161 and a rotating plate 162.
[0040] The main body 161 includes a spring 91, a fixed shaft 92, and a cover 93. As shown by the dashed line in Figure 5, the spring 91 in this embodiment is a torsion spring. The spring 91 has a coil portion 911, one arm portion 912, and the other arm portion 913. The coil portion 911 is arranged along a central axis 90 that extends vertically. Hereinafter, the direction perpendicular to the central axis 90 will be referred to as the "radial direction," and the direction along the arc centered on the central axis 90 will be referred to as the "circumferential direction."
[0041] The fixed shaft 92 is a columnar member extending along the central axis 90. In this embodiment, for example, a screw is used for the fixed shaft 92. The fixed shaft 92 extends radially along the central axis 90 from the inner side of the coil portion 911 of the spring 91 and is fastened and fixed to a screw hole 121 provided in the mounting base 12. As a result, the spring 91 is rotatable about the central axis 90.
[0042] The cover 93 is fixed to the upper surface of the mounting base 12 using a mechanism not shown in the figure. The cover 93 has an upper cover portion 931 and a side cover portion 932. The upper cover portion 931 covers the fixed shaft 92 from above in the vertical direction. The side cover portion 932 covers the spring 91 and a part of the side of the fixed shaft 92. The side cover portion 932 is provided with a restricting portion 933. The restricting portion 933 extends, for example, in a wall-like manner along the vertical direction. One arm portion 912 of the spring 91 is fixed to the restricting portion 933. This restricts the movement of one arm portion 912 of the spring 91 circumferentially to the rear (counterclockwise around the central axis 90 in a top view). However, the restricting portion 933 does not have to be fixed to one arm portion 912 of the spring 91. The restricting portion 933 may abut against the circumferential rearward side of one arm portion 912 of the spring 91, thereby preventing the circumferential rearward movement of the one arm portion 912.
[0043] The rotating plate 162 is a plate-shaped member that extends horizontally. Figure 7 is a top view of the rotating plate 162. As shown in Figure 7, the rotating plate 162 has a front wing portion 41, a rear wing portion 42, and a projection portion 43. The front wing portion 41 is a portion that extends radially from the central axis 90. The rear wing portion 42 extends radially from the central axis 90 and is located circumferentially behind the front wing portion 41 (in a top view, in a counterclockwise direction around the central axis 90). Also, in a top view, the rear wing portion 42 extends circumferentially behind the front wing portion 41 in a wing shape. The projection portion 43 protrudes circumferentially forward from the front wing portion 41 (in a top view, in a clockwise direction around the central axis 90). The projection portion 43 protrudes circumferentially forward from the radially outer portion of the front wing portion 41. Furthermore, in this embodiment, the projection 43 protrudes semicircularly forward in the circumferential direction when viewed from above. However, the projection 43 may also protrude in a polygonal shape, such as a triangular or quadrilateral, in the circumferential direction when viewed from above.
[0044] Furthermore, the rotating plate 162 is provided with a through hole 40. The through hole 40 penetrates the rotating plate 162 along the central axis 90. In this embodiment, the through hole 40 also penetrates the radially inner portion of the front wing portion 41 along the central axis 90. As shown in Figure 6, the rotating plate 162 is positioned such that the portion near the through hole 40 is sandwiched between the upper cover portion 931 of the main body portion 161 and the mounting base 12. A fixed shaft 92 is inserted into the radially inner side of the through hole 40. That is, the fixed shaft 92 penetrates the through hole 40 of the rotating plate 162, extends radially inside the coil portion 911 of the spring 91 along the central axis 90, and is fixed to the mounting base 12. As a result, the rotating plate 162 is rotatable about the central axis 90.
[0045] As shown in Figures 5 and 6, the rotating plate 162 is further provided with a contact portion 44. The contact portion 44 extends, for example, in a wall-like manner along the vertical direction. When the rotating plate 162 is sandwiched between the upper cover portion 931 of the main body portion 161 and the mounting base 12 and fixed to the mounting base 12 via the fixing shaft 92, the contact portion 44 contacts the circumferential front (in a clockwise direction around the central axis 90 in a top view) of the other arm portion 913 of the spring 91. The other arm portion 913 of the spring 91 may be fixed to the contact portion 44.
[0046] As described above, one arm portion 912 of the spring 91 is restricted from moving backward in the circumferential direction (counterclockwise around the central axis 90 in a top view) by the restricting portion 933. Therefore, the other arm portion 913 is pushed forward in the circumferential direction (clockwise around the central axis 90 in a top view) by the elastic force of the pair of arm portions 912 and 913, which are trying to move away from each other outward in the circumferential direction. As described above, the contact portion 44 of the rotating plate 162 is in contact with the circumferential front of the other arm portion 913. As a result, the rotating plate 162, including the contact portion 44, is pushed forward in the circumferential direction together with the other arm portion 913 of the spring 91, causing it to pivot forward in the circumferential direction. In other words, in this embodiment, a structure is formed in which the rotating plate 162 is pivoted forward in the circumferential direction around the central axis 90, which extends vertically, by the elastic force of the torsion spring 91.
[0047] In the following, as shown in Figure 7, the line extending along the circumferential forward edge of the forewing portion 41 in a top view will be referred to as the "first line 451". The line connecting the circumferential forward endpoint P1 of the projection 43 and the point P2 on the first line 451 that is tangent to the projection 43 will be referred to as the "second line 452". In this embodiment, in a top view, the angle 450 between the first line 451 and the second line 452 is, for example, 135° or less. That is, if the angle between the line extended from the first line 451 and the second line 452 is defined as the "projection angle 500 of the projection 43 from the forewing portion 41", then the projection angle 500 is greater than 45°. In other words, the projection 43 protrudes forward from the forewing portion 41 in a circumferential direction at a sufficient angle.
[0048] Figures 8 to 10 are diagrams illustrating the position of the well plate WP placed on the mounting base 12 and the operation by the holding mechanism 16, respectively. Figure 8 assumes that when a worker or robot places the well plate WP on the mounting base 12, the well plate WP is shifted to the right with respect to the position reference member 15 in a top view. In this case, the rotating plate 162 pivots forward in the circumferential direction, and the first line 451 of the front wing portion 41 contacts the well plate WP, biasing it to the left. As a result, the well plate WP moves along the top surface of the mounting base 12 in the direction indicated by the solid white arrow D3, and aligns with the longitudinal extension portion 151. In other words, in this embodiment, when the rotating plate 162 pivots forward in the circumferential direction and the front wing portion 41 contacts the well plate WP, the well plate WP is biased to the left in a top view and aligns with the longitudinal extension portion 151.
[0049] Next, Figure 9 assumes a case where, when a worker or robot places the well plate WP on the mounting base 12, the well plate WP is shifted downward relative to the position reference member 15 in a top view. In this case, the rotating plate 162 pivots forward in the circumferential direction, and the protruding portion 43 contacts the well plate WP, biasing it upward. As described above, the protruding portion 43 protrudes forward from the front wing portion 41 in the circumferential direction at a sufficient angle. Therefore, when the rotating plate 162 pivots and contacts the well plate WP, the protruding portion 43 becomes a convex shape facing upward in a top view, and the well plate WP can be biased vertically with a sufficiently large force. As a result, the well plate WP moves along the upper surface of the mounting base 12 in the direction indicated by the white solid arrow D4, and along the lateral extension portion 152. In other words, in this embodiment, when the rotating plate 162 pivots forward in the circumferential direction and the protruding portion 43 contacts the well plate WP, the well plate WP is biased upward in a top view and aligns with the lateral extension portion 152.
[0050] As described above, the protrusion 43 of this embodiment protrudes semicircularly forward in the circumferential direction when viewed from above. This allows the protrusion 43 to smoothly change position and make contact with the well plate WP when the rotating plate 162 rotates.
[0051] Next, Figure 10 assumes a case where, when a worker or robot places the well plate WP on the mounting base 12, the well plate WP is shifted to the lower right side relative to the position reference member 15 in a top view. In this case, the rotating plate 162 pivots forward in the circumferential direction, and first, the first line 451 of the front wing portion 41 contacts the well plate WP and biases it to the left. As a result, the well plate WP moves along the top surface of the mounting base 12 in the direction indicated by the solid white arrow D5, and aligns with the longitudinal extension portion 151. Next, the rotating plate 162 pivots further forward in the circumferential direction, and the contact position between the rotating plate 162 and the well plate WP is displaced downward in a top view on the first line 451 of the front wing portion 41. Then, the protruding portion 43 contacts the well plate WP and biases it upward. As a result, the well plate WP moves along the upper surface of the mounting base 12 in the direction indicated by the solid white arrow D6, and aligns with the lateral extension 152. Consequently, the well plate WP can be positioned along both the vertical extension 151 and the lateral extension 152. In other words, the well plate WP can be positioned at a predetermined reference position on the upper surface of the mounting base 12.
[0052] As shown in Figure 3, a stopper member 200 is further positioned on the upper surface of the support frame 19. The stopper member 200 protrudes vertically upward from the upper surface of the support frame 19. The stopper member 200 is also located near the retracted position Pb of the support frame 19 in a top view. When the mounting base 12, the position reference member 15 and holding mechanism 16 fixed to the upper surface of the mounting base 12, and the well plate WP placed on the upper surface of the mounting base 12 move to the retracted position Pb due to the operation of the moving mechanism 17, the stopper member 200 comes into contact with the rear wing portion 42 of the rotating plate 162. As a result, the rear wing portion 42 is pressed in the direction opposite to the direction in which the holding mechanism 16 moves. As a result, the rotating plate 162, including the rear wing section 42, rotates backward in the circumferential direction around the central axis 90 (counterclockwise direction around the central axis 90 in a top view), against the elastic force of the spring 91. This causes the rotating plate 162 to move away from the well plate WP, and the biasing force applied to the well plate WP by the rotating plate 162 is released. As a result, workers or robots can easily move the well plate WP, making it easier to perform tasks such as replacing the well plate WP.
[0053] <3. Overall Processing Flow> Next, we will explain the overall general processing flow using imaging device 1.
[0054] First, the worker or robot places the well plate WP on the upper surface of the mounting table 12, which is located in the retracted position Pb of the imaging device 1. At this time, the rotating plate 162 of the holding mechanism 16 does not interfere with the well plate WP because it is swung backward in the circumferential direction around the central axis 90 by the stopper member 200. The well plate WP is placed on the upper surface of the mounting table 12, below the lateral extension portion 152 and to the right of the vertical extension portion 151, when viewed from above. In this case, the well plate WP may be misaligned from the lateral extension portion 152 or the vertical extension portion 151.
[0055] Next, the imaging device 1 activates the moving mechanism 17 to move the mounting table 12, the position reference member 15 and holding mechanism 16 fixed to the upper surface of the mounting table 12, and the well plate WP placed on the upper surface of the mounting table 12 toward the imaging position Pa. As a result, the rotating plate 162 separates from the stopper member 200 and, due to the elastic force of the spring 91, pivots forward in the circumferential direction around the central axis 90. The rotating plate 162 then contacts the well plate WP and biases it upward and to the left. As a result, even if the well plate WP was initially placed on the upper surface of the mounting table 12 misaligned with the lateral extension portion 152 or the longitudinal extension portion 151, it moves biased by the rotating plate 162, aligning itself with the longitudinal extension portion 151 and the lateral extension portion 152. In other words, the well plate WP can be aligned with a predetermined reference position on the upper surface of the mounting table 12.
[0056] Next, the imaging device 1 activates the drive mechanism 14 to move the illumination unit 10 and the imaging unit 13, while photographing each well W on the well plate WP, dividing it into multiple regions. In other words, the imaging device 1 acquires an image of the well plate WP. Once the entire well plate WP, which is placed on the upper surface of the mounting table 12, has been photographed, the movement mechanism 17 is activated again to move the mounting table 12, the position reference member 15 and holding mechanism 16 fixed to the upper surface of the mounting table 12, and the well plate WP placed on the upper surface of the mounting table 12 toward the retracted position Pb. As a result, the rotating plate 162 contacts the stopper member 200 again and rotates circumferentially backward around the central axis 90. This causes the rotating plate 162 to move away from the well plate WP, and the biasing force applied to the well plate WP by the rotating plate 162 is released. Then, the worker or robot can replace the well plate WP with a new one and repeat the above process.
[0057] <4. Variation> Although the main embodiments of the present invention have been described above, the present invention is not limited to the embodiments described above.
[0058] In the above embodiment, the position reference member 15 was provided on the upper left side of the well plate WP in a top view, forming a reference position for aligning the well plate WP to a predetermined position on the upper surface of the mounting base 12. The holding mechanism 16 was provided on the lower right side of the well plate WP in a top view, and had a structure for aligning the well plate WP to the reference position. However, the reference position for aligning the well plate WP does not have to be the upper left side in a top view.
[0059] In other words, in the present invention, it is sufficient that when the rotating plate 162 pivots forward in the circumferential direction and the front wing portion 41 contacts the well plate WP, the well plate WP is biased in the lateral direction in a top view and aligns with the longitudinal extension portion 151. Also, when the rotating plate 162 pivots forward in the circumferential direction and the protrusion portion 43 contacts the well plate WP, the well plate WP is biased in the longitudinal direction in a top view and aligns with the lateral extension portion 152. As a result, even if the well plate WP is placed misaligned from the longitudinal extension portion 151 or the lateral extension portion 152, it can be aligned with the longitudinal extension portion 151 and the lateral extension portion 152 by pivoting the rotating plate 162 and biasing it by contacting the well plate WP.
[0060] In the above embodiment, the well plate WP had a rectangular shape when viewed from above. However, the shape of the well plate WP is not limited to this. The well plate WP may have any shape that, when viewed from above, has corners for aligning with a rectangular position reference member that forms a predetermined reference position.
[0061] Furthermore, the detailed configuration of the device may differ from that shown in the figures of this application. In addition, the elements that appear in the above embodiments and modifications may be combined as appropriate, to the extent that no inconsistencies arise. [Explanation of Symbols]
[0062] 1. Imaging device 10 Lighting Section 12 Mounting platform 13 Imaging Unit 14 Drive mechanism 15 Position reference member 16 Retention mechanism 17 Moving mechanism 18 Control Unit 40 Through holes (of the rotating plate) 41 (Forward wing of the rotating plate) 42 Rear wing section (of the rotating plate) 43 (Protrusion of the rotating plate) 44 Contact portion (of the rotating plate) 90 center axis 91 spring 92 Fixed axis 93 Cover 151 Longitudinal extension 152 Lateral extension section 161 Main body 162 Rotating Plate 200 Stopper component 450 (angle between the first and second lines) 451 First Line 452 Second Line 500 (Protrusion angle of the protrusion from the front wing) 911 (Spring) coil section 912 (One of the spring) arm section 913 (The other arm of the spring) 933 Regulatory Department P1 (the circumferentially forward endpoint of the projection) Point P2 (touching the protruding part of the first line) Pa imaging position Pb evacuation position W Well WP Well Plate
Claims
1. An imaging device that acquires an image of a plate-shaped sample container having a rectangular shape when viewed from above, A mounting platform on which the aforementioned sample container is placed, A position reference member provided on the upper surface of the mounting platform, including a vertically extending portion and a horizontally extending portion that extend in directions that intersect each other at right angles when viewed from above, A holding mechanism provided on the upper surface of the mounting platform, which aligns the sample container along the position reference member, A moving mechanism for moving the mounting base, the position reference member, and the holding mechanism in the horizontal direction, An illumination unit that irradiates light onto the sample container, An imaging unit that photographs the sample container illuminated by the illumination unit, It has, The aforementioned holding mechanism is A rotating plate that extends horizontally in a plate-like shape, The rotating plate is rotated forward in the circumferential direction around a central axis extending vertically by the elastic force of a spring, and the main body comprises... It has, The aforementioned rotating plate is A front wing portion extending radially from the central axis, A protruding portion extending forward in the circumferential direction from the aforementioned front wing portion, It has, When the rotating plate rotates forward in the circumferential direction and the front wing portion contacts the sample container, the sample container is biased in the lateral direction in a top view and along the longitudinally extended portion, An imaging device wherein, when the rotating plate pivots forward in the circumferential direction and the protruding portion contacts the sample container, the sample container is biased in the vertical direction in a top view and moves along the lateral extension portion.
2. The imaging apparatus according to claim 1, The rotating plate has a through hole that penetrates the rotating plate along the central axis, The main body is, The aforementioned spring is a torsion spring, A fixing shaft that penetrates the through hole of the rotating plate and extends radially inward along the central axis of the coil portion of the spring, and is fixed to the aforementioned mounting base, A restricting portion that restricts the rearward movement of one arm portion of the spring in the circumferential direction, It has, The aforementioned rotating plate is The contact portion of the other arm portion of the spring that contacts the front in the circumferential direction An imaging device having the following features.
3. An imaging device according to claim 1 or claim 2, In a top view, the protruding portion protrudes semicircularly forward in the circumferential direction, in an imaging device.
4. An imaging device according to any one of claims 1 to 3, The aforementioned rotating plate is The rear wing portion extends radially from the central axis and is located behind the front wing portion in the circumferential direction. It has, The aforementioned moving mechanism moves the aforementioned base, the position reference member, and the holding mechanism back and forth horizontally between the imaging position and a retracted position located away from the imaging position. A stopper member, when the mounting base, the position reference member, and the holding mechanism move to the retracted position, contacts the rear wing portion, causing the rotating plate to pivot backward in the circumferential direction about the central axis, thereby releasing the biasing force on the sample container. An imaging device that is further equipped with these features.
5. An imaging device according to any one of claims 1 to 4, The aforementioned sample container is a well plate having a plurality of sample storage sections, each of which is a circular recess when viewed from above. An imaging device in which a liquid is held within the sample storage compartment.
6. An imaging device according to any one of claims 1 to 5, In a top view, the sample container is placed below the lateral extension and to the right of the vertical extension. When the rotating plate pivots forward in the circumferential direction and the front wing portion contacts the sample container, the sample container is biased to the left in the top view and along the longitudinal extension portion. An imaging device wherein, when the rotating plate pivots forward in the circumferential direction and the protruding portion contacts the sample container, the sample container is biased upward in a top view and moves along the laterally extended portion.
Citation Information
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