Magnifying glass device

The magnifying glass device addresses the challenge of miniaturization and weight reduction by using a variable focus lens with automatic focus adjustment, enabling clear vision at different distances without mechanical complexity.

JP2026061522AActive Publication Date: 2026-04-09VIXION INC
View PDF 4 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2026-04-09

AI Technical Summary

Technical Problem

Conventional magnifying glass devices face challenges in miniaturization and weight reduction due to the need for a moving mechanism to adjust the focusing lens for users with refractive abnormalities, making them cumbersome and difficult to wear.

Method used

A magnifying glass device with a focus adjustment unit that uses a variable focus lens, controlled by a distance detection unit and a control unit, allowing automatic focus adjustment without moving the lens position, and includes a storage unit for pre-stored focal length information to adapt to individual user needs.

Benefits of technology

The device achieves miniaturization and weight reduction while providing automatic focus adjustment for users, enhancing convenience by allowing clear vision at various distances without mechanical complexity.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2026061522000001_ABST
    Figure 2026061522000001_ABST
Patent Text Reader

Abstract

The goal is to miniaturize and lighten a magnifying glass device that can automatically adjust the user's focus for magnified images of objects at different distances. [Solution] A magnifying glass device comprising: a magnifying optical unit 4 that outputs a magnified image of an object viewed by the user; a distance detection unit 21 that detects the distance to the object; and a focus adjustment unit that adjusts the focus of the magnified image output from the magnifying optical unit based on the detection result of the distance detection unit 21, wherein the focus adjustment unit is arranged on the optical path passing through the magnifying optical unit 4 and has a variable focus lens 3 whose focal length can be changed, and a control unit 10 that controls the focal length of the variable focus lens 3 to a suitable focal length that is suitable for the user's eye based on the detection result of the distance detection unit 21.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to a magnifying glass device used for a user to visually recognize an enlarged image of a visual target object.

Background Art

[0002] Patent Document 1 discloses a surgical loupe (magnifying glass device) used for a surgeon to visually recognize a visual target object in an enlarged manner during surgery. This surgical loupe is integrated with glasses or a glasses frame and is worn on the face of the surgeon (user) for use. This surgical loupe includes a distance measuring sensor unit (distance detecting unit) that measures the distance to the visual target object (visual recognition distance), and a focus adjustment unit that automatically performs focus adjustment (diopter adjustment) based on the measured distance. In this focus adjustment unit, the position of the focusing lens is moved by controlling a focus adjustment drive unit (moving mechanism) that moves the position of the focusing lens by a control unit, thereby performing focus adjustment.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] However, for a conventional magnifying glass device, in order for each user with various refractive abnormalities such as myopia or hyperopia to focus on the enlarged image of the visual target object, a moving mechanism for moving the position of the focusing lens is required, so there is a problem that miniaturization and weight reduction are difficult.

Means for Solving the Problems

[0005] To solve the above-mentioned problems, one aspect of the present invention provides a magnifying glass device comprising: a magnifying optical unit that outputs a magnified image of an object viewed by a user; a distance detection unit that detects the distance to the object; and a focus adjustment unit that adjusts the focus of the magnified image output from the magnifying optical unit based on the detection result of the distance detection unit, wherein the focus adjustment unit is arranged on the optical path passing through the magnifying optical unit and has a variable focus lens whose focal length can be changed; and a control unit that controls the focal length of the variable focus lens to a suitable focal length that is suitable for the user's eye based on the detection result of the distance detection unit. In this magnifying glass device, the focus adjustment unit adjusts the focus of the magnified image output from the magnifying optical unit based on the detection result of the distance detection unit, which detects the distance to the object being viewed. The focus adjustment unit in this magnifying glass device has a variable focus lens, and based on the distance detection result to the object being viewed by the distance detection unit, the focal length of the variable focus lens is controlled to a suitable focal length that fits the user's eye. This makes it possible to automatically adjust the user's focus for magnified images of objects at different distances. Moreover, the variable focus lens can change its focal length without requiring a movement mechanism to move the lens position, making it easy to miniaturize and lighten the device. Therefore, it becomes easy to realize a small and lightweight magnifying glass device using a small and lightweight variable focus lens. Miniaturization and weight reduction of the magnifying glass device are significant advantages that directly lead to improved user convenience, especially when the magnifying glass device is worn on the user's face or other body parts.

[0006] In the magnifying glass device, the focus adjustment unit may have a storage unit that stores focal length identification information for determining the focal length of the variable focus lens according to the distance to the object to be viewed, and the control unit may control the focal length of the variable focus lens to the appropriate focal length based on the detection result of the distance detection unit and the focal length identification information in the storage unit. In this magnifying glass device, focal length identification information is pre-stored in a memory unit to determine the appropriate focal length (suitable focal length) of the variable focus lens for the user, depending on the distance to the object being viewed. The distance to the object being viewed by the user through the magnifying glass device is detected by the distance detection unit, and the control unit controls the focal length of the variable focus lens to become the suitable focal length based on the detection result and the focal length identification information in the memory unit. As a result, by pre-stored focal length identification information in the memory unit to determine the suitable focal length for each user, it is possible to automatically adjust the focus for each user to magnified images of objects at different distances.

[0007] In the magnifying glass device described above, the magnifying optical unit may be a magnifying optical system that includes an objective lens and an eyepiece lens. According to this, the configuration of the magnifying optical unit can be simplified, resulting in a smaller and lighter magnifying optical unit. Therefore, the configuration of the magnifying glass device is simplified, which is further advantageous for miniaturizing and lightening the magnifying glass device.

[0008] In the magnifying glass device, the variable focus lens may be a shape-variable lens in which the shape of the refractive surface changes and the focal length changes according to an electrical signal controlled by the control unit. Because such variable-shape lenses are small and lightweight, they offer further advantages in realizing small and lightweight magnifying glass devices.

[0009] The magnifying glass device may include a pair of left and right automatic focusing magnifying glass sections, each equipped with a magnifying optical section and a variable focus lens, and a holding section for holding the pair of left and right automatic focusing magnifying glass sections. According to this, a binocular magnifying glass device can be provided.

[0010] The magnifying glass device may have a distance adjustment unit that adjusts the distance between the left and right pair of automatic focusing magnifying glass units to match the interpupillary distance of the user. According to this, the distance between the left and right pair of automatic focusing magnifying glass units (the distance between the output units that output a magnified image to the user's eye) can be adjusted to match the interpupillary distance of each user. Therefore, there is no need to individually design and manufacture binocular magnifying glass devices, and a general-purpose binocular magnifying glass device can be provided in which the distance between the left and right pair of automatic focusing magnifying glass units can be adjusted to match the user's interpupillary distance.

[0011] In the magnifying glass device, the holding portion may include an eyeglass frame. According to this, the user can wear and use this magnifying glass device with the same comfort as wearing eyeglasses. The eyeglass frame consists of, for example, the temples and nose pads of eyeglasses.

[0012] The magnifying glass device may have a mounting portion for attaching it to the user's device. According to this, the magnifying glass device can be attached to the user's personal clothing (glasses, goggles, headband, helmet, etc.), which is a separate component from the magnifying glass device itself, allowing the user to wear and use the device. [Effects of the Invention]

[0013] According to the present invention, it is possible to miniaturize and lighten a magnifying glass device that can automatically adjust the user's focus to magnified images of objects at different distances. [Brief explanation of the drawing]

[0014] [Figure 1] A perspective view showing the external appearance of a binocular magnifier according to an embodiment. [Figure 2] A schematic cross-sectional view showing the autofocus magnifying glass section of the binocular loupe. [Figure 3] A cross-sectional view showing the schematic configuration of the variable focus lens in the automatic focusing magnifying glass section. [Figure 4] A plan view showing the schematic configuration of the variable focus lens. [Figure 5] A block diagram showing the configuration of the control unit for the binocular magnifier. [Figure 6]An explanatory diagram showing an example of table data which is focal length specifying information stored in the storage unit of the control device. [Figure 7] A flowchart showing an example of a setting mode of focal length control in an embodiment. [Figure 8] A flowchart showing an example of a usage mode of focal length control in an embodiment. [[ID=⑧]] [Figure 9] A graph for explaining an approximate expression calculated from the table data. [Figure 10] A front view schematically showing another configuration of the binocular magnifier according to the embodiment.

Mode for Carrying Out the Invention

[0015] Hereinafter, an embodiment in which the present invention is applied to a binocular magnifier as a magnifying device will be described. Note that the magnifying device of the present embodiment will be described by taking, as an example, a glasses-type binocular magnifier that is worn on the face of a user (hereinafter referred to as "user"), but is not limited thereto.

[0016] For example, instead of a glasses-type that is worn on the user's face by hanging the temple part of the glasses frame on the user's ear, a goggle-type that is worn on the user's face using the tension of a band wound around the user's back head, a helmet-type that is worn on the user's head, etc., a magnifying device having a form of a wearing tool worn by the user is suitable. Further, not limited to wearing tools, a stationary magnifying device placed and used at a workplace or the like may be used, or a handy magnifying device held by the user's hand and used may be used. The type of the magnifying device is appropriately selected according to the use of the magnifying device and the like.

[0017] FIG. 1 is a perspective view showing the appearance of a binocular loupe 1 which is a glasses-type binocular magnifier according to the present embodiment. The binocular loupe 1 in the present embodiment mainly includes a glasses frame 2, a pair of left and right autofocus magnifying parts 5, 5, and a loupe main body part 6.

[0018] The eyeglass frame 2 comprises a bridge portion 2a, a pair of left and right temple portions 2b, 2b, a pair of left and right end portions 2c, 2c, and a pair of left and right transparent plate portions 2d, 2d.

[0019] The bridge portion 2a is positioned so as to be out of the wearer's field of vision when the glasses are worn, and extends horizontally between the left and right temple portions 2b, 2b. Endpiece portions 2c, 2c are provided at both ends of the bridge portion 2a in the horizontal direction, and the left and right temple portions 2b, 2b are connected to both ends of the bridge portion 2a via the endpiece portions 2c, 2c.

[0020] The temples 2b, 2b are components that rest on the user's ears when the user puts on the binocular magnifier 1. In this embodiment, the left and right temples 2b, 2b are configured to be folded toward the left-right center of the binocular magnifier 1 by the hinges provided on the endpieces 2c, 2c.

[0021] The pair of transparent plates 2d, 2d are held by the bridge 2a and are positioned in front of the user's left and right eyes when the user wears the binocular loupe 1. The transparent plates 2d, 2d are primarily for protecting the user's eyes. For example, the transparent plates 2d, 2d protect the pair of automatic focusing magnifying glass units 5, 5, which are positioned in front of the user's left and right eyes, from coming into contact with the user's eyes for any reason. The transparent plates 2d, 2d may also be prescription lenses or astigmatism-correcting lenses.

[0022] Figure 2 is a schematic cross-sectional view showing the autofocus magnifying glass section 5 of the binocular loupe 1 in this embodiment. The binocular loupe 1 of this embodiment is provided with two automatic focusing magnifying glass units 5, 5, one for each of the user's eyes, forming a left and right pair. The two automatic focusing magnifying glass units 5, 5 have substantially the same configuration, and each automatic focusing magnifying glass unit 5, 5 is equipped with a variable focus lens 3 and a magnifying optical unit 4.

[0023] The magnifying optical unit 4 of this embodiment is composed of a magnifying optical system including an objective lens 4a and an eyepiece lens 4b. The objective lens 4a and the eyepiece lens 4b are held and fixedly positioned on the inner wall of the lens barrel 4c. For example, a simple Galilean magnifying optical system using a convex lens for the objective lens 4a and a concave lens for the eyepiece lens 4b can be used for the magnifying optical unit 4. In this case, because the configuration is simple, it is easier to realize a simpler and lighter magnifying optical unit 4.

[0024] Furthermore, the magnifying optical unit 4 can also be a prism-type magnifying optical system (such as a Porro prism or roof prism type) in which a prism is arranged in the optical path between the objective lens 4a and the eyepiece lens 4b. The magnifying optical unit 4 is not particularly limited as long as it is capable of outputting a magnified image of the object being viewed by the user.

[0025] As shown in Figure 2, in this embodiment, the automatic focusing magnifying glass unit 5 has a lens holder 5a attached to the eyepiece side portion of the lens barrel 4c that holds the objective lens 4a and eyepiece lens 4b of the magnifying optical unit 4, thereby holding the variable focus lens 3. As a result, the variable focus lens 3 is positioned near the downstream side of the optical path of the eyepiece lens 4b of the magnifying optical unit 4 so that their optical axes LO coincide. In this embodiment, the lenses provided in the automatic focusing magnifying glass unit 5 (the objective lens 4a and eyepiece lens 4b of the magnifying optical unit 4, and the variable focus lens 3) are all fixed in place, and there is no mechanism to move the positions of these lenses. Therefore, the automatic focusing magnifying glass unit 5 can be made small and lightweight.

[0026] However, the magnifying optical unit 4 may be configured to include a mechanism for moving the position of the lens. In other words, it is sufficient if the configuration for the user to adjust the focus (i.e., the variable focus lens 3 in this embodiment) does not include a mechanism for moving the position of the lens.

[0027] In this embodiment, the automatic focusing magnifying glass unit 5, as described above, has the magnifying optical unit 4 positioned upstream and the variable focus lens 3 positioned downstream in the optical path (the optical path from the object to the user's eye) passing through the magnifying optical unit 4. Therefore, the image of the object viewed by the user through the binocular loupe 1 is magnified by the magnifying optical unit 4, and the magnified image output from the magnifying optical unit 4 is output to the user's eye through the variable focus lens 3.

[0028] The arrangement of the variable focus lens 3 relative to the magnifying optical unit 4 is not limited to the arrangement in this embodiment. For example, the variable focus lens 3 can be positioned upstream and the magnifying optical unit 4 downstream. It is also possible to position the variable focus lens 3 inside the magnifying optical unit 4, for example, in the optical path between the objective lens 4a and the eyepiece lens 4b.

[0029] The variable focus lens 3 in this embodiment is not limited in its configuration as long as it can electrically control the focal length of the lens without requiring a movement mechanism to move the position of the lens. However, it is preferable that the variable focus lens 3 is a shape-variable lens in which the focal length changes by changing the shape of the refractive surface. Among shape-variable lenses, a liquid lens (also called an electrowetting device, etc.) is preferred, in which the focal length can be changed by electrically controlling the wettability of the liquids and changing the shape of the interface, using the interface of two types of liquids as the refractive surface. With a liquid lens, high-speed and highly flexible control of the focal length is possible.

[0030] Figure 3 is a cross-sectional view showing the schematic configuration of the variable focus lens 3 in this embodiment. Figure 4 is a plan view showing the schematic configuration of the variable focus lens 3 in this embodiment. As shown in Figure 3, the variable focus lens 3 of this embodiment has a configuration in which an insulating liquid 311 and a conductive liquid 312, which are in contact in an unmixed state at interface I, are sealed by an annular first electrode 301 and two transparent window members 303 and 304 that close the upper and lower ends of the first electrode 301. The insulating liquid 311 is, for example, an oily liquid, and the conductive liquid 312 is, for example, an aqueous liquid with relatively low conductivity. A voltage V0 is applied to the first electrode 301, but in this embodiment, since the annular first electrode 301 is grounded, V0 = 0V. Furthermore, the first electrode 301 is insulated from the sealed insulating liquid 311 and conductive liquid 312 by an insulating layer 301a.

[0031] Furthermore, in this embodiment, the variable focus lens 3 has multiple pairs of second electrodes 302A, 302B, ... arranged symmetrically with respect to the axis O of the first electrode 301. In this embodiment, as shown in Figure 4, four pairs of second electrodes 302A to 302H are arranged on a circle centered on axis O, providing a total of eight second electrodes 302A to 302H.

[0032] As shown in Figure 3, the second electrodes 302A to 302H are positioned in contact with the conductive liquid 312. When voltages VA to VH are applied to each of the second electrodes 302A to 302H, a potential difference is generated between each of the second electrodes 302A to 302H and the first electrode 301, and the electrowetting effect can displace the end Ia of the insulating liquid 311 (the end Ia of interface I) along the insulating layer portion 301b on the first electrode 301. As the end Ia of the insulating liquid 311 is displaced in this way, the shape of the insulating liquid 311 changes, and the curvature of interface I is altered. Therefore, by controlling the voltages VA to VH applied to the second electrodes 302A to 302H, the focal length of the variable focus lens 3, which uses interface I as its refractive surface, can be changed.

[0033] In particular, the variable focus lens 3 of this embodiment can deform the interface I, which is the refractive surface, into a diffusion lens (concave lens), a planar lens, or a focusing lens (convex lens) by controlling the voltage VA to VH applied to the second electrodes 302A to 302H.

[0034] The variable focus lens 3 of this embodiment can change the focal length within a range of -15D to +15D in diopter equivalent (reciprocal of focal length). By using a variable focus lens 3 with such a wide range of focal length variation, it is possible to accommodate users with low vision, such as those with amblyopia.

[0035] In this embodiment, by applying the same voltage to all second electrodes 302A to 302H, which are positioned symmetrically with respect to the axis O of the first electrode 301, the focal length can be changed while keeping the optical axis of the variable focus lens 3 aligned with the axis O of the first electrode 301. On the other hand, by applying different voltages to each of the second electrodes 302A to 302H, it is possible not only to change the focal length but also to shift or tilt the optical axis of the variable focus lens 3. In other words, the variable focus lens 3 of this embodiment can change either the position and direction of the optical axis, or both, by controlling the applied voltages VA to VH.

[0036] As shown in Figure 1, the main body 6 of the magnifying glass in this embodiment is attached to a holding arm 2e supported at the left-right center of the bridge portion 2a of the eyeglass frame 2. The main body case 6a of the main body 6 is provided with a distance adjustment unit 6b that adjusts the distance between a pair of left and right autofocus magnifying glass units 5, 5 (the distance between the output units that output a magnified image to the user's eye). Specifically, the distance adjustment unit 6b in this embodiment adjusts the inter-lens distance between the variable focus lenses 3, 3, which are provided on the left and right autofocus magnifying glass units 5, 5, respectively. The inter-lens distance can be defined, for example, by the distance between the reference positions on the variable focus lenses 3, 3 (for example, the center positions of the variable focus lenses 3, 3). Here, the reference positions of the variable focus lenses 3, 3 are equal to, for example, the optical center positions of the variable focus lenses 3, 3, and the inter-lens distance is equal to the distance between the optical centers of each variable focus lens 3, 3.

[0037] By providing such a distance adjustment unit 6b, it is not necessary to individually design and manufacture the binocular loupe 1 to match each user's interpupillary distance PD, and a general-purpose binocular loupe 1 can be provided in which the distance between the left and right pair of automatic focusing magnifying units 5, 5 can be adjusted to match the user's interpupillary distance PD. In particular, when the variable focus lenses 3, 3 are small, as in this embodiment, it is beneficial to be able to adjust the distance between the lenses of the variable focus lenses 3, 3 for each user to match the user's interpupillary distance PD.

[0038] In this embodiment, the distance adjustment section 6b is provided for each of the left and right automatic focusing magnifying glass sections 5, 5 and is composed of grooves formed on the lower surface of the main body case 6a of the magnifying glass body section 6. Each groove extends in the left-right direction along the lower surface of the main body case 6a. Mounting sections 5b (see Figure 2), which are provided on the upper part of the lens holding section 5a of each automatic focusing magnifying glass section 5, 5, are fitted into these grooves and slidably attached.

[0039] In this embodiment, for example, the user can grasp each autofocus magnifying glass unit 5, 5 and move it from side to side, thereby moving each autofocus magnifying glass unit 5, 5 along the grooves in the main body case 6a of the magnifying glass body 6 in the left-right direction. Also, for example, if the user releases their hand from each autofocus magnifying glass unit 5, 5, the position of each autofocus magnifying glass unit 5, 5 is fixed by the static friction force between the mounting portion 5b of each autofocus magnifying glass unit 5, 5 and the groove in the main body case 6a. In this embodiment, the distance between the autofocus magnifying glass units 5, 5 can be adjusted in this way.

[0040] Furthermore, in this embodiment, the mounting portion 5b of each autofocus magnifying glass unit 5, 5 is attached to a groove in the main body case 6a so as to be rotatable around an axis RO that extends perpendicularly to the lower surface of the main body case 6a. Therefore, for example, a user can change the orientation of the optical axis LO of each autofocus magnifying glass unit 5, 5 by gripping the autofocus magnifying glass unit 5, 5 and rotating it around the axis RO. This makes it possible to adjust the convergence angle of the left and right pair of autofocus magnifying glass units 5, 5. If, for example, the user releases their hand from the autofocus magnifying glass unit 5, 5, the rotational position of each autofocus magnifying glass unit 5, 5 is fixed by the static friction force between the mounting portion 5b of the autofocus magnifying glass unit 5, 5 and the groove in the main body case 6a.

[0041] The main body of the magnifying glass 6 is also equipped with a control device 10, a battery 20, and a distance detection unit 21.

[0042] As shown in Figure 1, the control device 10 is located inside the main body case 6a of the magnifying glass body 6, together with the battery 20. The control device 10 can control the focal length of the variable focus lens 3 by controlling the voltage (electrical signal) applied from the battery 20 to each of the second electrodes 302A to 302H of the variable focus lens 3.

[0043] Figure 5 is a block diagram showing the configuration of the control device 10 in this embodiment. The control device 10 in this embodiment includes a main control unit 11, a voltage changing unit 12, an operation unit 13, and a storage unit 14. The control device 10 is connected to the second electrodes 302A to 302H of two variable focus lenses 3,3, a battery 20 as a power source that supplies voltage, and a distance detection unit 21 that detects the distance to an object that the user views through the auto-focusing magnifying glass units 5,5.

[0044] The main control unit 11 is composed of, for example, a control board (computer) on which a CPU, RAM, ROM, etc. are mounted, and performs overall control of the binocular magnifier 1 by executing a predetermined control program stored in the ROM. In particular, in this embodiment, the main control unit 11 functions as a control unit (control means) that controls the variable focus lenses 3, 3 so that the focal length of the variable focus lenses 3, 3 changes based on the viewing distance (detection result) to the viewing object detected by the distance detection unit 21.

[0045] The voltage changing unit 12, under the control of the main control unit 11, changes the voltage applied from the battery 20 to each of the second electrodes 302A to 302H of the variable focus lens 3. The voltage changing unit 12 can individually change the voltage applied to each of the second electrodes 302A to 302H. However, the voltage changing unit 12 may be capable of partially changing only a portion of the second electrodes 302A to 302H (for example, only one pair of second electrodes).

[0046] The operation unit 13, when operated by the user, outputs an operation signal to the main control unit 11 indicating the user's operation. User operations accepted by the operation unit 13 include, for example, turning the power on and off, issuing execution instructions to the main control unit 11, and changing the control content of the main control unit 11. In particular, the operation unit 13 in this embodiment accepts user operations to change the focal lengths of the two variable focus lenses 3, 3.

[0047] The operation unit 13 is composed of an operating device of a type suitable for the content of the user operation to be received (such as mechanical or electrostatic touch buttons, or rotary operating parts such as dials). As shown in Figure 1, the operation unit 13 of this embodiment is composed of two dial parts 13a, 13a that can be operated by rotation (dial operation) and push operation (button operation).

[0048] As shown in Figure 1, the dials 13a, 13a are provided at both the left and right ends of the magnifying glass body 6, respectively, and are configured to rotate around a rotation axis that extends in a substantially vertical direction. When the dial 13a on the left side is rotated in the forward direction, it receives an instruction to shorten the focal length of the variable focus lens 3 in the automatic focusing magnifying glass 5 for the left eye, and when rotated in the reverse direction, it receives an instruction to lengthen the focal length of the variable focus lens 3 in the automatic focusing magnifying glass 5 for the left eye. Similarly, when the dial 13a on the right side is rotated in the forward direction, it receives an instruction to shorten the focal length of the variable focus lens 3 in the automatic focusing magnifying glass 5 for the right eye, and when rotated in the reverse direction, it receives an instruction to lengthen the focal length of the variable focus lens 3 in the automatic focusing magnifying glass 5 for the right eye.

[0049] Furthermore, the dials 13a, 13a can also accept user input by being pressed in a manner that pushes their rotation axes inward in the left-right direction. In this embodiment, pressing operations on the dials 13a, 13a are used, for example, for switching operations to switch the operating mode of the main control unit 11, or for user-determined instruction operations.

[0050] The switching operation performed by pressing the dials 13a, 13a switches between the setting mode and the usage mode. The setting mode is an operation mode for setting the focal length identification information used in the usage mode, and sets the user's suitable focal length according to the viewing distance detected by the distance detection unit 21. The usage mode is an operation mode in which the focal lengths of the variable focus lenses 3, 3 are automatically controlled to become the suitable focal length according to the viewing distance detected by the distance detection unit 21.

[0051] The user-instructed operation to make a decision by pressing the dials 13a, 13a involves, for example, rotating the dials 13a, 13a to change the focal length of each variable focus lens 3, 3, searching for (measuring) a focal length that suits the user, and then issuing a decision instruction when a suitable focal length is determined.

[0052] The memory unit 14 stores programs and data used by the control device 10. In particular, in this embodiment, it stores focal length identification information for determining the focal length of the variable focus lenses 3,3 according to the distance to the object being viewed, as data used for controlling the focal length of the variable focus lenses 3,3 in the usage mode.

[0053] The focal length identification information is, for example, information that shows the relationship between the viewing distance to the object being viewed (detection result of the distance detection unit 21) and the respective focal lengths of the two variable focus lenses 3,3 corresponding to each viewing distance (focal lengths suitable for the user corresponding to each viewing distance). Such information can be stored in the storage unit 14 as table data describing the correspondence between the viewing distance and the focal lengths of the two variable focus lenses 3,3, as shown in Figure 6, for example.

[0054] In particular, in this embodiment, the focal length identification information includes measurement information that measures the focal lengths (adjusted focal lengths) of the two variable focus lenses 3, 3 that are suitable for the user according to the viewing distance to the object being viewed. This allows the focal lengths of the two variable focus lenses 3, 3 to be adjusted to an appropriate focal length for each user in each usage mode.

[0055] The battery 20 functions as a power source for the control device 10 and outputs a voltage to supply to the second electrodes 302A to 302H of the variable focus lens 3. The battery 20 may be a primary battery or a secondary battery. It may also be equipped with a power generation function such as a solar panel.

[0056] The distance detection unit 21 is not limited in its configuration as long as it can detect the distance to an object that is visible in the area in front of the binocular magnifier 1 (viewing area). In this embodiment, the distance detection unit 21 is located in the left-right center of the main body case 6a of the magnifier body 6, as shown in Figure 1, but it may also be located at the left-right ends of the main body case 6a or at a location away from the main body case 6a (for example, on the eyeglass frame 2). However, it is preferable that the distance detection unit 21 be located in a position where it is less likely to be covered by the user's hair (bangs) when the user wears the binocular magnifier 1.

[0057] The distance measurement method in the distance detection unit 21 is not particularly limited, and existing distance measurement methods such as laser and sound wave methods can be widely adopted. If it is difficult to cover the range of visible distance (from short to long distance) to be detected by the distance detection unit 21 with a single distance detection unit, multiple distance detection units with different effective detection ranges (distance ranges in which high-precision detection is possible) may be arranged.

[0058] Next, an example of focal length control for the variable focus lenses 3,3 of each automatic focusing magnifying glass unit 5,5 in this embodiment will be described. Figures 7 and 8 are flowcharts showing the flow of focal length control in this embodiment. However, Figure 7 shows the control content in setting mode, and Figure 8 shows the control content in usage mode. In the focal length control of this embodiment, in the usage mode, the main control unit 11, which executes a predetermined control program, controls the voltage change unit 12 to control the focal length of the variable focus lenses 3, 3 based on the viewing distance to the object to be viewed (detection result) detected by the distance detection unit 21 and the focal length identification information in the storage unit 14.

[0059] In this embodiment, when the operation unit 13 receives a power-on operation from the user (S1), it first receives a switching operation to switch the operating mode of the main control unit 11 to either setting mode or usage mode (S2). Specifically, if a press operation is performed on the dial units 13a, 13a within a predetermined time after the power-on operation, the system switches to setting mode (Yes in S2), and if no press operation is performed within the predetermined time, the system switches to usage mode (No in S2). In this example, focal length control is started when the power-on operation is performed, but this is not limited to this. For example, a mounting detection unit may be provided to detect when the binocular loupe 1 is attached to the user, and the system may be configured to start focal length control when it detects that the user has attached the binocular loupe 1.

[0060] When the system switches to setting mode (Yes in S2), the main control unit 11 executes a program for operation in setting mode. In setting mode, the user first rotates the left dial unit 13a while viewing an object at a reference viewing distance (Yes in S3). This sends an operation signal from the operation unit 13 to the main control unit 11, which controls the voltage change unit 12 so that a voltage corresponding to this operation signal is applied to the second electrodes 302A to 302H of the variable focus lens 3 (adjustment target lens) of the left eye autofocus magnifying glass unit 5. As a result, the curvature of the interface I between the insulating liquid 311 and the conductive liquid 312 in the left eye variable focus lens 3 is changed due to a change in the shape of the interface I, and the focal length of the left eye variable focus lens 3 is changed according to the user's operation on the left dial unit 13a (S4). The user then rotates the left dial 13a to adjust the focal length of the variable focus lens 3 for the left eye so that it is in focus on an object at a reference distance.

[0061] After adjusting the focal length of the variable focus lens 3 in the automatic focusing magnifying glass unit 5 for the left eye, the user then rotates the right dial unit 13a (S5, Yes) while viewing an object at the same reference distance. This sends an operation signal from the operation unit 13 to the main control unit 11, which controls the voltage change unit 12 so that a voltage corresponding to this operation signal is applied to the second electrodes 302A to 302H of the variable focus lens 3 of the automatic focusing magnifying glass unit 5 for the right eye. This changes the shape of the interface I between the insulating liquid 311 and the conductive liquid 312 in the variable focus lens 3 for the right eye, changing the curvature of the interface I, and the focal length of the variable focus lens 3 for the right eye is changed in accordance with the user's operation on the right dial unit 13a (S6). The user then rotates the right dial unit 13a to adjust the focal length of the variable focus lens 3 for the right eye so that it is in focus on an object at the reference distance.

[0062] In this way, after adjusting the focal lengths of the left and right variable focus lenses 3, 3 by rotating the left and right dial sections 13a, 13a so that the view is in focus on the object at the reference distance, the user performs a push operation (button operation) on the dial sections 13a, 13a (Yes in S7). Upon receiving this operation signal, the main control unit 11 acquires the detection result of the view distance detected by the distance detection unit 21 for the view object at the reference distance (S8). The main control unit 11 then stores the focal lengths of the left and right variable focus lenses 3, 3 at the time the push operation on the dial sections 13a, 13a was performed, and the acquired view distance detection result, as focal length identification information in the storage unit 14 (S9).

[0063] For example, if the detection result of the viewing distance detected by the distance detection unit 21 is d10, the main control unit 11 adds d10 as the viewing distance data in the table data shown in Figure 6. The main control unit 11 then stores the user-adjusted focal lengths (adjusted focal lengths), fL10 and fR10, respectively, as the focal lengths of the left and right variable focus lenses 3, 3 corresponding to the viewing distance d10.

[0064] When executing the usage mode, it is desirable to set the user's preferred focal length for a wider range of viewing distances. By repeatedly changing the viewing distance to the object being viewed and performing the setting mode described above, the user can set the user's preferred focal length (fL1, fL6, fL10, fR1, fR6, fR10 in Figure 6) for multiple viewing distances (three points in Figure 6: d1, d6, and d10).

[0065] Next, I will explain the usage modes. If no pressing operation is performed on the dials 13a, 13a within a predetermined time after the power-on operation, or if the setting mode is terminated, the system switches to the usage mode shown in Figure 8 (S10). When the system switches to usage mode, the main control unit 11 first calculates an approximate formula, as shown in the graph in Figure 9, from the focal length identification information (for example, the table data shown in Figure 6) stored in the memory unit 14 (S11).

[0066] This approximation formula shows the relationship between the viewing distance detected by the distance detection unit 21 and the user's suitable focal length at that viewing distance. As shown in Figure 9, it represents the approximation line when the focal length identification information (table data) stored in the storage unit 14 is plotted. For example, the least squares method or the Hough transform can be used to calculate the approximation formula. In this embodiment, the table data used to calculate the approximation formula is stored in the storage unit 14 as focal length identification information, but this approximation formula may also be stored in the storage unit 14 as focal length identification information.

[0067] Once the approximation formula is calculated in this way, the main control unit 11 obtains the detection result of the viewing distance from the distance detection unit 21 to the object to be viewed (S12). Subsequently, the main control unit 11 derives the suitable focal length corresponding to the acquired viewing distance (detection result) using the approximation formula calculated in processing step S11 (S13). Then, the main control unit 11 controls the voltage change unit 12 to change the voltage applied to the second electrodes 302A to 302H of the left and right variable focus lenses 3,3 so that the focal lengths of the left and right variable focus lenses 3,3 become the derived suitable focal length. As a result, the focal lengths of the variable focus lenses 3,3 in each of the left and right automatic focusing magnifying glass units 5,5 are changed to focal lengths suitable for the user (S14), and the object to be viewed is automatically brought into focus.

[0068] In this embodiment, when the operation unit 13 receives a power-off operation from the user (Yes in S15), the main control unit 11 terminates the focal length control. At this time, the voltage supply to each of the second electrodes 302A to 302H of the variable focus lens 3 may be turned off or on. Turning off the voltage supply to each of the second electrodes 302A to 302H of the variable focus lens 3 can save power consumption of the battery 20.

[0069] According to this embodiment, when a user views a relatively close object using the binocular loupe 1, the focal lengths of the variable focus lenses 3,3 of the left and right automatic focusing magnifying glass units 5,5 are automatically changed so that the object is in focus. Also, for example, when a user views a relatively distant object using the binocular loupe 1, the focal lengths of the left and right variable focus lenses 3,3 are automatically changed so that the object is in focus.

[0070] As a specific example, let us consider the use of this binocular loupe 1 as a surgical loupe used by a surgeon, such as a doctor, when performing surgery. In this embodiment, the surgeon wearing this binocular loupe 1 performs surgery while observing (visualizing) magnified images of objects to be viewed, such as the surgeon's hands or the affected area of ​​the patient, through the binocular loupe 1. In addition, during the surgery, the surgeon also needs to view objects at different distances, such as a monitor displaying patient information, surgical assistants, and surgical instruments. With the binocular loupe 1 of this embodiment, even if the surgeon changes their gaze to objects at different distances, the loupe can automatically adjust the surgeon's focus to each object. Therefore, the surgeon can view magnified images of any of the objects at different distances in focus.

[0071] This binocular loupe 1 can be used for a wide range of purposes, not just surgical loupes. For example, it is useful for technicians and craftsmen who handle tiny parts and equipment, medical technicians and nail technicians who perform detailed work, and anyone who uses magnifying glasses for their work.

[0072] In particular, it is preferable that the binocular loupe 1 of this embodiment be a type of wearable device that is attached to the user. Conventional binocular loupes either do not have a changeable focal length, or the range of focal lengths in which the user can focus is narrow, so they cannot focus on other objects that are at a different distance from the target object located at that focal length. Therefore, if the binocular loupe is a type of wearable device that is attached to the user, the user is forced to remove the binocular loupe each time they want to view the other object and then put the binocular loupe back on when they want to view the target object again, which is a cumbersome process. However, the binocular loupe 1 of this embodiment automatically focuses on any magnified image of objects that are at different distances from each other, so even if it is a type of wearable device that is attached to the user, as in this binocular loupe 1, the user is not forced to perform the cumbersome process of removing and reattaching the binocular loupe.

[0073] In this embodiment, the binocular loupe 1 is an accessory type integrated with the eyeglass frame 2, but it is not limited to this, and may be an attachment type that is attached to the user's eyeglasses. For example, as shown in Figure 10, it may be an attachment type binocular loupe 1' having a mounting part 8 for attaching to the user's eyeglasses 200. This binocular loupe 1' is attached to the eyeglasses 200 by mounting the mounting part 8 to the center of the bridge portion of the user's eyeglasses 200 in the left-right direction. This makes it possible for each user to use the binocular loupe 1' by attaching it to their own eyeglasses 200 that are suited to them.

[0074] Furthermore, although the magnifying glass device according to the present invention has been described using a binocular magnifying glass as an example in this embodiment, it can also be applied to a monocular magnifying glass. In particular, when using the magnifying glass device according to the present invention for viewing objects at a very close distance, a monocular magnifying glass may be more convenient for the user.

[0075] Furthermore, the processing steps and control device components described herein can be implemented by various means. For example, these steps and components may be implemented in hardware, firmware, software, or a combination thereof.

[0076] With respect to hardware implementation, the means such as processing units used to realize the processes and components described above may be implemented in one or more application-specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing units (DSPDs), programmable logic devices (PLDs), field-programmable gate arrays (FPGAs), processors, controllers, microcontrollers, microprocessors, electronic devices, other electronic units designed to perform the functions described herein, computers, or combinations thereof.

[0077] Furthermore, with respect to the firmware and / or software implementation, means such as processing units used to realize the aforementioned components may be implemented with programs (e.g., code such as procedures, functions, modules, instructions, etc.) that perform the functions described herein. Generally, any computer / processor-readable medium that clearly embodies the firmware and / or software code may be used to implement means such as processing units used to realize the aforementioned processes and components as described herein. For example, the firmware and / or software code may be stored in memory in a control device, for example, and executed by a computer or processor. That memory may be implemented inside the computer or processor, or it may be implemented outside the processor. Also, the firmware and / or software code may be stored in a computer or processor-readable medium such as random access memory (RAM), read-only memory (ROM), non-volatile random access memory (NVRAM), programmable read-only memory (PROM), electrically erasable PROM (EEPROM), flash memory, floppy disks, compact disks (CDs), digital versatile disks (DVDs), magnetic or optical data storage devices, etc. The code may be executed by one or more computers or processors, and the computers or processors may be made to perform functional embodiments as described herein.

[0078] Furthermore, the medium may be a non-temporary recording medium. Also, the program code may be readable and executable by a computer, processor, or other device or machine, and its format is not limited to a specific format. For example, the program code may be source code, object code, or binary code, or it may be a mixture of two or more of these codes. [Explanation of Symbols]

[0079] 1,1': Binocular Magnifier 2: Eyeglass frames 2a: Bridge section 2b: Temple section 2c: Armor section 2d: Transparent plate part 2e: Holding arm 3: Variable focus lens 4: Magnifying Optical Section 4a: Objective lens 4b: Eyepiece 4c: Telescope tube 5: Automatic focusing magnifying glass section 5a: Lens holder 5b: Mounting part 6: Magnifying glass body 6a: Main unit case 6b: Distance adjustment section 8: Mounting part 10: Control device 11: Main Control Unit 12: Voltage change section 13:Operation section 13a: Dial section 14: Storage section 20: Battery 21: Distance detection unit 200: Glasses

Claims

1. A magnifying optical unit that outputs a magnified image of the object the user is looking at, A distance detection unit that detects the distance to the object being viewed, A magnifying glass device comprising: a distance detection unit that detects the distance to an object to be viewed, and a focus adjustment unit that adjusts the focus of the magnified image output from the magnifying optical unit, The aforementioned focus adjustment unit is A variable focus lens, whose focal length can be changed, is positioned on the optical path passing through the magnifying optical section. A magnifying glass device characterized by having a control unit that controls the focal length of the variable focus lens to a suitable focal length that fits the user's eye, based on the detection result of the distance detection unit.

2. In the magnifying glass device according to claim 1, The focus adjustment unit has a storage unit that stores focal length identification information for determining the focal length of the variable focus lens according to the distance to the object being viewed. The magnifying glass device is characterized in that the control unit controls the focal length of the variable focus lens to the appropriate focal length based on the detection result of the distance detection unit and the focal length identification information in the storage unit.

3. In the magnifying glass device according to claim 1 or 2, The magnifying optical unit is characterized by being a magnifying optical system that includes an objective lens and an eyepiece lens.

4. In the magnifying glass device according to claim 1 or 2, The magnifying glass device is characterized in that the variable focus lens is a shape-variable lens whose focal length changes as the shape of the refractive surface changes according to an electrical signal controlled by the control unit.

5. In the magnifying glass device according to claim 1 or 2, A pair of left and right auto-focusing magnifying mirrors equipped with the aforementioned magnifying optical unit and the aforementioned variable focus lens, A magnifying glass device characterized by having a holding part for holding the left and right pair of automatic focusing magnifying glass parts.

6. In the magnifying glass device according to claim 5, A magnifying glass device characterized by having a distance adjustment unit that adjusts the distance between the left and right pair of automatic focusing magnifying glass units to match the interpupillary distance of the user.

7. In the magnifying glass device according to claim 5, The magnifying glass device is characterized in that the holding portion includes an eyeglass frame.

8. In the magnifying glass device according to claim 1 or 2, A magnifying glass device characterized by having a mounting portion for attaching to the user's medical device.

Citation Information

Patent Citations

  • Optical device

    JP2009048195A

  • Variable Magnification Optical Loupe

    JP2013537648A

  • Variable binocular magnifier using fluid-filled lens technology

    JP2014506335A

  • Surgical loupe

    JP2018105974A