Light irradiation device and puncture needle device

The light irradiation device and puncture needle device enhance surgical precision and speed by marking a line of light on the target, ensuring alignment with the needle, thus addressing inaccuracies and prolongation issues in existing guide devices.

JP2025183058APending Publication Date: 2025-12-16UNIVERSITY OF TOKUSHIMA
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Patent Information

Application Number
JP2024090931
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-06-04
Publication Date
2025-12-16

AI Technical Summary

Technical Problem

Existing guide devices for puncture needles in surgery limit the insertion position and angle, leading to potential inaccuracies and prolonged procedures.

Method used

A light irradiation device and puncture needle device that utilize a light source to mark a line of light on the puncture target, connected via a connecting member to the needle, ensuring the line of light overlaps with the needle, facilitating accurate and quick punctures.

Benefits of technology

Enables accurate and rapid punctures by clearly defining the positional relationship between the puncture direction and the probe, reducing errors and time required for the procedure.

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Abstract

To provide a light irradiation device that enables puncturing to be accurately and quickly performed.SOLUTION: A light irradiation device includes: a light source capable of emitting light such that line-shaped light is shown in a puncture target; and a connection member capable of connecting the light source directly or indirectly to a puncture needle. The connection member is configured to be able to connect the light source to the needle such that the line-shaped light shown by the light emitted from the light source connected to the needle overlaps with the needle.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a light irradiation device and a puncture needle device. [Background technology]

[0002] Patent Document 1 discloses a guide device that supports a puncture needle in surgery in which a tomographic image of the inside of a body is taken using a tomography device and the taken tomographic image is used to identify the surgical position. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent Publication No. 2021-58598 Summary of the Invention [Problem to be solved by the invention]

[0004] The guide device of Patent Document 1 is attached to a tomography imaging device, which may limit the position where the puncture needle is inserted (hereinafter referred to as the puncture position) and the angle of the puncture needle relative to the target (hereinafter referred to as the puncture angle), etc. In this case, there is a risk that the puncture may take a long time or may not be performed accurately.

[0005] An object of the present disclosure is to provide a light irradiation device and a puncture needle device that are capable of performing puncture accurately and quickly. [Means for solving the problem]

[0006] A light irradiation device according to one aspect of the present disclosure includes: a light source capable of irradiating light so that a line of light is marked on the puncture target; a connecting member that can connect the light source directly or indirectly to a puncture needle; Equipped with The connecting member is The light source connected to the needle is connectable to the needle so that the line of light indicated by the light emitted from the light source is superimposed on the needle.

[0007] The puncture needle device of one aspect of the present disclosure comprises: A puncture needle, a light source capable of irradiating light so that a line of light is marked on the puncture target; a connecting member connecting the light source to the needle; Equipped with The light source is connected to the needle so that the line of light indicated by the light emitted from the light source overlaps with the needle. [Effects of the Invention]

[0008] According to the present disclosure, it is possible to realize a light irradiation device and a puncture needle device that can perform puncture accurately and quickly. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is a plan view showing a puncture needle device equipped with a light irradiation device according to one embodiment of the present disclosure. [Figure 2] FIG. 2 is a top view of the needle device of FIG. 1. [Figure 3] FIG. 2 is a first view showing an example of how the puncture needle device of FIG. 1 is used. [Figure 4] FIG. 2 is a second view showing an example of how the puncture needle device of FIG. 1 is used. [Figure 5] FIG. 2 is a perspective view showing a first modified example of the light irradiation device of FIG. [Figure 6] FIG. 2 is a perspective view showing a second modified example of the light irradiation device of FIG. [Figure 7] FIG. 10 is a perspective view showing a third modified example of the light irradiation device of FIG. [Figure 8] FIG. 10 is a diagram showing the distance from the needle center line CL when a light irradiation device is used during puncturing and when a light irradiation device is not used during puncturing. [Figure 9] FIG. 10 is a diagram showing the puncturing time measured when a light irradiation device is used during puncturing and when a light irradiation device is not used during puncturing. DETAILED DESCRIPTION OF THE INVENTION

[0010] An example of the present disclosure will be described below with reference to the accompanying drawings. The following description is merely exemplary in nature and does not limit the present disclosure, its applications, or uses. The accompanying drawings are schematic drawings, and the illustrated configurations and actual products may differ in dimensional ratios, etc. In the following description, terms such as "about" or "approximately" mean that the values, shapes, etc. following these terms include an acceptable range of error as determined by a person skilled in the art.

[0011] As shown in FIG. 1, a puncture needle device 1 according to one embodiment of the present disclosure includes a puncture needle 10 and a light irradiation device 20.

[0012] In this embodiment, the needle 10 includes a linearly extending needle tube portion 11 and a needle base portion 12 connected to one end of the needle tube portion 11 in the direction in which the needle tube portion 11 extends. The other end of the needle tube portion 11, located on the opposite side of the needle base portion 12 in the direction in which the needle tube portion 11 extends, forms a needle tip 13. A syringe (not shown) is connected to the needle base portion 12. As an example, the light irradiation device 20 is connected to the needle base portion 12, but it may also be connected to a syringe connected to the needle base portion 12, for example.

[0013] The light irradiation device 20 includes a light source 21 and a connecting member 22 .

[0014] Light source 21 is configured to be able to emit light so that a line of light L (see FIG. 2) is marked on the puncture target. The puncture target includes, for example, a human or an animal. Light source 21 includes, for example, an LED element or a laser element. If light source 21 includes an LED element, light source 21 can mark the line of light on the puncture target by further including, for example, a lens that focuses the light emitted from the LED element. If light source 21 includes a laser element, light source 21 can mark the line of light on the puncture target by further including, for example, an optical lens that can project the laser light emitted from the laser element as a line. Light source 21 may include a cord for connection to an external power source (not shown), or may include an internal power source such as a battery.

[0015] The connecting member 22 is configured to be able to connect the light source 21 directly or indirectly to the puncture needle 10. Aspects in which the light source 21 is directly connected to the needle 10 include, for example, a mode in which the light source 21 is connected to the needle base 12. Aspects in which the light source 21 is indirectly connected to the needle 10 include, for example, a mode in which the light source 21 is connected to a syringe.

[0016] As shown in Fig. 2, connecting member 22 is configured to connect light source 21 to needle 10 so that line-shaped light L, indicated by light emitted from light source 21 connected to needle 10, overlaps with needle 10 (needle tube portion 11 in this embodiment). In other words, light source 21 is connected to needle 10 by connecting member 22 so that line-shaped light L overlaps with needle 10 (needle tube portion 11 in this embodiment). "Line-shaped light L overlaps with needle tube portion 11" means, for example, that the entire needle tube portion 11 overlaps with line-shaped light L when viewed in the direction in which light source 21 is connected to needle base 12 (for example, the up-and-down direction in Fig. 1).

[0017] 3 and 4 show an example of how the puncture needle device 1 is used. FIG. 3 shows an example of puncture using the cross method, and FIG. 4 shows an example of puncture using the parallel method. In FIGS. 3 and 4, a line of light L from a light irradiation device 20 is indicated on a puncture target 40 while the puncture position is confirmed with a probe (an example of an ultrasound device) 30. The probe 30 has a longitudinal surface 31 and a lateral surface 32 that intersects with the longitudinal surface 31. In FIG. 3, the puncture needle device 1 is positioned relative to the puncture target 40 so that the line of light L is indicated at a center P1 of the longitudinal surface 31 of the probe 30. In FIG. 4, the puncture needle device 1 is positioned relative to the puncture target 40 so that the line of light L is indicated at a center P2 of the lateral surface 32 of the probe 30.

[0018] The light irradiation device 20 can achieve the following effects.

[0019] The light irradiation device 20 includes a light source 21 capable of irradiating light so that a line of light is marked on the puncture target, and a connecting member 22 capable of directly or indirectly connecting the light source 21 to the puncture needle 10. The connecting member 22 is configured to connect the light source 21 to the needle 10 so that the line of light L marked by the light irradiated from the light source 21 connected to the needle 10 overlaps with the needle 10. With the light irradiation device 20 configured as described above, the line of light L makes it easy to grasp, for example, the positional relationship between the puncture direction and the probe, thereby assisting the practitioner in puncturing in the intended direction. Furthermore, not only the practitioner but also a person other than the practitioner (e.g., an instructor) positioned next to the practitioner can easily grasp the positional relationship between the puncture direction and the probe. As a result, a light irradiation device 20 capable of performing puncture accurately and quickly can be realized.

[0020] Needle 10 includes needle tube 11 that extends linearly and needle base 12 that is connected to one end of needle tube 11 in the direction in which needle tube 11 extends. Connection member 22 is configured to be able to connect light source 21 to needle 10 so that linear light L overlaps with needle tube 11. This configuration more reliably realizes light irradiation device 20 that can perform puncture accurately and quickly.

[0021] The puncture needle device 1 can achieve the following effects.

[0022] The puncture needle device 1 includes a puncture needle 10, a light source 21 capable of irradiating light so that a line of light L is marked on the target to be punctured, and a connecting member 22 connecting the light source 21 to the needle 10. The light source 21 is connected to the needle 10 so that the line of light L marked by the light irradiated from the light source 21 overlaps with the needle 10. In the puncture needle device 1 configured as described above, the line of light L makes it easy to grasp, for example, the positional relationship between the puncture direction and the probe, thereby assisting the practitioner in puncturing in the direction intended. Furthermore, not only the practitioner but also a person other than the practitioner (e.g., an instructor) positioned next to the practitioner can easily grasp the positional relationship between the puncture direction and the probe. As a result, a puncture needle device 1 capable of performing puncture accurately and quickly can be realized.

[0023] Needle 10 includes needle tube 11 that extends linearly and needle base 12 that is connected to one end of needle tube 11 in the direction in which needle tube 11 extends. Light source 21 is connected to needle 10 so that line-shaped light L overlaps with needle tube 11. This configuration more reliably realizes light irradiation device 20 that can perform puncture accurately and quickly.

[0024] The light source 21 is located at the needle base 12. With this configuration, the linear light L makes it possible to more accurately grasp, for example, the positional relationship between the puncture direction and the probe.

[0025] The light irradiation device 20 and the puncture needle device 1 can be configured as follows.

[0026] The light irradiation device 20 may be detachably connected to the needle 10, or may be non-detachably connected to the needle 10. Figures 5 to 7 show an example of a light irradiation device 20 configured to be detachably connected to the needle 10.

[0027] In the light irradiation device 20 shown in FIG. 5, the connecting member 22 is configured to be able to clamp the light source 21 together with the needle hub 12. The connecting member 22 has a first clip member 221, a second clip member 222 facing the first clip member 221, and a third clip member 223 connecting one end of the first clip member 221 and the second clip member 222. The tips of the first clip member 221 and the second clip member 222 are biased in a direction to approach each other. The first clip member 221 and the second clip member 222 are fitted with handles 224 that extend from the tips of the first clip member 221 and the second clip member 222 toward the third clip member 223. A space capable of accommodating the light source 21 and the needle hub 12 is provided between the first clip member 221 and the second clip member 222.

[0028] In the light irradiation device 20 shown in FIG. 6, the connecting member 22 includes a clamping portion 23 configured to be able to clamp the needle base 12 and a fixing portion 24 that fixes the light source 21 to the clamping portion 23. The clamping portion 23 has the same structure as the connecting member 22 in FIG. 5. The fixing portion 24 is located on a third clip member 223. The fixing portion 24 has any configuration that can fix the light source 21 to the clamping portion 23. For example, the fixing portion 24 may include a permanent magnet, an adhesive, or a fastening member. When the fixing portion 24 includes a permanent magnet, the light source 21 is configured to be attracted to the permanent magnet of the fixing portion 24. In this way, various methods can be used to form the light irradiation device 20, making it possible to more reliably realize a light irradiation device 20 that can perform puncture accurately and quickly.

[0029] In the light irradiation device 20 shown in Fig. 7, the connecting member 22 includes an adjustment unit 25 that can adjust the direction of light emitted from the light source 21 with respect to the needle 10 while the light source 21 is connected to the needle 10. The connecting member 22 further includes a clamping unit 23, for example. The adjustment unit 25 is located in a third clip member 223 of the clamping unit 23. The light source 21 is connected to the clamping unit 23 via the adjustment unit 25. The adjustment unit 25 includes, for example, a hinge or a rotating disk that can hold any angle.

[0030] The connecting member 22 is not limited to the examples shown in Figures 5 to 7, and any configuration that can connect the light source 21 directly or indirectly to the needle 10 can be adopted. For example, the connecting member 22 may be configured to be insertable into the needle base 12 or a syringe connected to the needle base 12 (hereinafter referred to as the needle base 12 or the syringe), or may be configured to be adhesively attached to the needle base 12 or the syringe. The connecting member 22 may be configured to form a single member together with the needle base 12 or the syringe.

[0031] In this way, various methods can be used to form the light irradiation device 20, so that the light irradiation device 20 that can perform puncturing accurately and quickly can be more reliably realized.

[0032] The puncture needle is not limited to needle 10 including needle tube portion 11 and needle base portion 12, but may be a needle of another configuration.

[0033] Various aspects of the disclosure are described below.

[0034] The light irradiation device of the first aspect of the present disclosure includes: a light source capable of irradiating light so that a line of light is marked on the puncture target; a connecting member that can connect the light source directly or indirectly to a puncture needle; Equipped with The connecting member is The light source connected to the needle is connectable to the needle so that the line of light indicated by the light emitted from the light source is superimposed on the needle.

[0035] A light irradiation device of a second aspect of the present disclosure is the light irradiation device of the first aspect, The needle a needle tube portion extending linearly; a needle base connected to one end of the needle tube portion in the extending direction of the needle tube portion; Including, The connecting member is The light source is connectable to the needle so that the linear light and the needle tube portion overlap.

[0036] A light irradiation device according to a third aspect of the present disclosure is the light irradiation device according to the first or second aspect, The connecting member is a clamping portion capable of clamping the needle; a fixing portion that fixes the light source to the clamping portion; Includes.

[0037] A light irradiation device according to a fourth aspect of the present disclosure is the light irradiation device according to any one of the first to third aspects, The connecting member is The needle includes an adjustment unit that can adjust the direction of light emitted from the light source toward the needle while the light source is connected to the needle.

[0038] A puncture needle device according to a fifth aspect of the present disclosure includes: A puncture needle, a light source capable of irradiating light so that a line of light is marked on the puncture target; a connecting member connecting the light source to the needle; Equipped with The light source is connected to the needle so that the line of light indicated by the light emitted from the light source overlaps with the needle.

[0039] A sixth aspect of the present disclosure provides the puncture needle device according to the fifth aspect, The needle a needle tube portion extending linearly; a needle base connected to one end of the needle tube portion in the extending direction of the needle tube portion; Including, The light source is connected to the needle base so that the line of light overlaps with the needle tube portion.

[0040] A seventh aspect of the present disclosure provides the puncture needle device according to the sixth aspect, The light source is located at the needle base.

[0041] A puncture needle device according to an eighth aspect of the present disclosure is the puncture needle device according to any one of the fifth to seventh aspects, The connecting member is The needle includes an adjustment unit that can adjust the direction of light emitted from the light source toward the needle while the light source is connected to the needle. [Example]

[0042] The following examples are provided, but are not intended to limit the present disclosure.

[0043] Using the probe 30, five Japanese Board Certified Anesthesiologists (with 7 to 20 years of medical experience) examined the accuracy of puncture and the time required for puncture with and without the light irradiation device 20. The probe 30 was placed against an echo phantom at the puncture target 40, and the needle 10 was advanced by the crossover method from a position 5 cm or more away from the probe 30, aiming toward the center line CL (see Figure 3) of the probe 30. The center line CL is assumed to be, for example, a virtual straight line extending vertically in Figure 3, passing through the center P1 (see Figure 3) of the longitudinal surface 31 of the probe 30 and the center P2 (see Figure 4) of the lateral surface 32.

[0044] The needle 10, light irradiation device 20, probe 30 and puncture target 40 used in this example are described in detail below. Needle 10: Nerve block needle MM [20G x 140mm], manufactured by Okayama Hakko Shoji Light irradiation device 20: Light irradiation device 20 shown in FIG. 5 (light source 21: small laser light source (red) line 670 nm, manufactured by AS ONE Corporation) Probe 30: SonoSite SII, linear probe [6-13MHz], manufactured by Fujifilm Corporation Puncture target 40: Echo phantom (CAE blue phantom TM Ultrasound Training Models, manufactured by CAE healthcare Inc.)

[0045] FIG. 8 shows the distance of the needle 10 from the center line CL when the light irradiation device 20 was used and when the light irradiation device 20 was not used. In FIG. 8, the case where the light irradiation device 20 was used is indicated by "with device," and the case where the light irradiation device 20 was not used is indicated by "without device." As shown in FIG. 8, when the light irradiation device 20 was not used during puncture, the needle 10 was located an average of 0.33 cm away from the center line CL. On the other hand, when the light irradiation device 20 was used during puncture, the needle 10 was located an average of 0.08 cm away from the center line CL. In other words, using the light irradiation device 20 improved the accuracy of the puncture position by 83.6% compared to when the light irradiation device 20 was not used.

[0046] FIG. 9 shows the puncture time measured when the light irradiation device 20 was used and when the light irradiation device 20 was not used. The time required for the needle 10 to reach the puncture position was measured as the "puncture time." Whether the needle 10 reached the puncture position was determined, for example, by whether the probe 30 visualized the long axis of the needle 10. In FIG. 9, the case where the light irradiation device 20 was used is indicated by "with device," and the case where the light irradiation device 20 was not used is indicated by "without device." As shown in FIG. 9, when the light irradiation device 20 was not used, it took an average of 7.9 seconds for the needle 10 to reach the puncture position. On the other hand, when the light irradiation device 20 was used, it took an average of 3.1 seconds for the needle 10 to reach the puncture position. In other words, using the light irradiation device 20 reduced the time required for the needle 10 to reach the puncture position by 58.7% compared to when the light irradiation device 20 was not used.

[0047] The examples show that the use of the light irradiation device 20 enables accurate and rapid puncture.

[0048] Any of the various embodiments or modifications described above can be combined appropriately to achieve the effects of each. In addition, combinations of embodiments, combinations of examples, or combinations of embodiments and examples are possible, and combinations of features from different embodiments or examples are also possible.

[0049] Although the present disclosure has been described in each embodiment with a certain degree of detail, the disclosed contents of these embodiments may vary in structural details, and changes in the combination and order of elements in each embodiment may be made without departing from the scope and spirit of the claimed disclosure. [Industrial Applicability]

[0050] The light irradiation device and puncture needle device of the present disclosure can be used for, for example, nerve block puncture, central vein puncture, arterial (A-line) puncture, and peripheral vein puncture. [Explanation of symbols]

[0051] 1 Puncture needle device 10 needles 11 Needle tube section 12 Needle base 13 Needle tip 20 Light irradiation device 21 Light source 22 Connecting member 23 Clamping part 24 Fixed part 25 Adjustment section 30 probes 31, 32 sides 40 Puncture target 221 first clip member 222 second clip member 223 Third clip member 224 Handle

Claims

1. a light source capable of irradiating light so that a line of light is marked on the puncture target; a connecting member that can connect the light source directly or indirectly to a puncture needle; Equipped with The connecting member is A light irradiation device configured to be able to connect the light source to the needle so that the line of light indicated by the light emitted from the light source connected to the needle overlaps with the needle.

2. The needle a needle tube portion extending linearly; a needle base connected to one end of the needle tube portion in the extending direction of the needle tube portion; Including, The connecting member is The light irradiation device according to claim 1 , wherein the light source is connectable to the needle so that the linear light and the needle tube portion overlap.

3. The connecting member is a clamping portion capable of clamping the needle; a fixing portion that fixes the light source to the clamping portion; The light irradiation device according to claim 1 or 2, comprising:

4. The connecting member is The light irradiation device according to claim 1 , further comprising an adjustment unit that adjusts the direction of light irradiated from the light source relative to the needle when the light source is connected to the needle.

5. A puncture needle, a light source capable of irradiating light so that a line of light is marked on the puncture target; a connecting member connecting the light source to the needle; Equipped with A puncture needle device, wherein the light source is connected to the needle so that the line of light indicated by the light emitted from the light source overlaps with the needle.

6. The needle a needle tube portion extending linearly; a needle base connected to one end of the needle tube portion in the extending direction of the needle tube portion; Including, The puncture needle device according to claim 5 , wherein the light source is connected to the needle so that the linear light and the needle tube portion overlap.

7. The puncture needle device of claim 6 , wherein the light source is located at the needle base.

8. The connecting member is 8. The puncture needle device according to claim 5, further comprising an adjustment unit that adjusts the direction of light emitted from said light source toward said needle while said light source is connected to said needle.

Citation Information

Patent Citations

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