Animal carcass wheels

The animal harness with a lead and sensor attachment system, using absorbent members to isolate sensor placement, addresses inaccurate measurements from lead pulling, ensuring stable health and movement tracking.

JP7733356B2Active Publication Date: 2025-09-03MURATA MFG CO LTD
View PDF 7 Cites 0 Cited by

Patent Information

Application Number
JP2024526401
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-06-06
Filing Date
2023-05-31
Publication Date
2025-09-03
Estimated Expiration
2043-05-31

AI Technical Summary

Technical Problem

Existing animal harnesses do not accurately measure the health and movement of animals due to interference from lead pulling and harness movement, leading to inaccurate sensor readings.

Method used

The animal harness features a first belt with a lead attachment portion and a second belt with a sensor attachment portion, connected by a distal connecting portion, incorporating absorbent members to absorb lead-induced movements, ensuring the sensor is positioned away from direct influence, thus stabilizing measurements.

Benefits of technology

This design allows for stable measurement of animal health and movement by minimizing interference from lead pulling and harness movement, enhancing measurement accuracy.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007733356000001
    Figure 0007733356000001
  • Figure 0007733356000002
    Figure 0007733356000002
  • Figure 0007733356000003
    Figure 0007733356000003
Patent Text Reader

Abstract

The present invention stably measures a value representing the health state of an animal when a sensor is attached to the animal. An animal harness 1 to be worn by an animal, comprises: a first belt 10 provided with a lead attachment part 103 to which a lead can be attached; a second belt 11 provided with a sensor attachment part 113 to which a sensor can be attached; and a linking part 12 that links the first belt and the second belt. The first belt 10 has or is connected to a set of absorption units 13A, 13B which absorb the load produced in the first belt. The first belt 10 forms a harness alone or with another connected member, with the lead attachment part 103 positioned distally relative to the linking part 12 between the set of absorption units 13A, 13B along the first belt 10. The second belt 11 forms a harness either alone or with another connected member, with the sensor attachment part 113 positioned distally relative to the linking part 12 along the second belt 11.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] FIELD OF THE DISCLOSURE The present disclosure relates to animal harnesses. [Background technology]

[0002] In recent years, with the increase in pet populations and their longer lifespans, animal healthcare, which monitors pets' daily health conditions and the amount of exercise they get, has been attracting attention. For example, there are sensors that can be attached to an animal's collar or harness to measure their health condition and amount of exercise.

[0003] Patent Document 1 discloses a harness to be worn by an animal. The harness comprises a collar portion to be worn around the animal's neck, and a first belt portion and a second belt portion, one end of which is connected to the collar portion. The other ends of the first and second belt portions are provided with connecting portions for connecting the other ends of the first and second belt portions to each other. Patent Document 2 discloses a pet harness comprising a collar portion, a harness portion, a connecting strap connecting the two at the back, and a connecting portion connecting the two at the ventral side. The pet harness is formed wide and continuous to roughly fit the pet's body, and the connecting strap connecting the collar portion and harness portion at the ventral side is provided with a back side that is freely adjustable in length. The pet harness also has a connecting strap connecting the collar portion and harness portion at the back that is formed in a loop shape. The pet harness is installed by inserting the back side of the harness part into the loop of the connecting belt so as to be movable in the front-rear and left-right directions, and also by inserting a ring for connecting a lead or the tip of the lead into the loop so as to be movable in the front-rear direction. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] International Publication No. 2019 / 031265 [Patent Document 2] Japanese Patent Application Laid-Open No. 2002-204629 Summary of the Invention [Problem to be solved by the invention]

[0005] The present disclosure provides an animal harness to which a sensor can be attached that measures a value representing the animal's state of movement. [Means for solving the problem]

[0006] The animal harness of the present disclosure is an animal harness to be worn by an animal, and includes a first belt provided with a lead attachment portion to which a lead can be attached, a second belt provided with a sensor attachment portion to which a sensor can be attached, and a connecting portion connecting the first belt and the second belt. The first belt has a set of absorbent portions that absorb loads generated in the first belt, or is connected to the set of absorbent portions. The first belt forms a loop, either alone or together with other connected members, and the lead attachment portion is located at a position distal to the connecting portion between the set of absorbent portions along the first belt. The second belt forms a loop, either alone or together with other connected members, and the sensor attachment portion is located at a position distal to the connecting portion along the second belt.

[0007] By using the animal harness of the present disclosure, values ​​that represent a stable animal health state can be measured. [Effects of the Invention]

[0008] According to the animal harness of the present disclosure, when a sensor is attached, values ​​representing the health condition of the animal can be stably measured. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 shows a perspective view of an animal harness. [Figure 2] An example of a dog pulling on a lead while wearing the animal harness shown in Figure 1 is shown. [Figure 3] Figure 2 shows an example of the measurement results taken when the dog was stopped. [Figure 4] 1 shows an example of a dog pulling on a lead when wearing an animal harness of the comparative example. [Figure 5] Figure 4 shows an example of the measurement results taken when the dog was stopped. [Figure 6] Figure 2 shows an example of the measurement results taken while the dog was walking. [Figure 7] Figure 4 shows an example of the measurement results taken while the dog was walking. [Figure 8A] 1 shows an example of a dog wearing the animal harness of variant 1. [Figure 8B] 10 shows an example of a dog wearing an animal harness according to the second modification. [Figure 8C] 10 shows an example of a dog wearing an animal harness according to variant 3. [Figure 8D] 10 shows an example of a dog wearing an animal harness according to variant 4. DETAILED DESCRIPTION OF THE INVENTION

[0010] An animal harness according to the present disclosure will be described below with reference to the drawings. Here, the animal is a non-human animal, more specifically, a quadrupedal animal that can be kept by humans. The animal harness according to the embodiment can be equipped with a sensor that can measure values ​​that represent the health status of the animal wearing the harness. In the following description, identical components will be assigned the same reference numerals and will not be described again.

[0011] In the following, the animal is a dog, and the animal harness of the present disclosure will be described as a "harness" that is mainly attached to the dog's waist when the dog is being walked. The animal harness is formed so that a lead can be attached. Here, a "leash" is a string that connects a human and an animal, and is used when walking a dog. Generally, when walking a dog, one end of the lead is attached to the harness, and the other end is held by a human, such as the owner. This can prevent accidents and dangers that may occur when the animal becomes separated from the human.

[0012] As shown in Figure 1, the animal harness 1 according to this embodiment includes a first belt 10, a second belt 11, and a connecting portion 12. The first belt 10, the second belt 11, and the connecting portion 12 are outlined below.

[0013] The first belt 10 has a lead attachment portion 103 and a pair of absorbing members 13A and 13B. A person such as an owner can attach a lead to the lead attachment portion 103. The pair of absorbing members 13A and 13B absorbs unnecessary loads that occur on the first belt 10 due to movement of the lead. The second belt 11 includes a sensor mounting portion 113 and a pair of connecting members 14A and 14B. The connecting portion 12 connects the first belt 10 and the second belt 11 together.

[0014] In the following explanation, the origin will be the dog's shoulder blades when the dog is standing on all fours. The direction from the origin to the dog's head (horizontal to the ground) will be the Y-axis (+Y direction), the direction to the right from the origin (horizontal to the ground) will be the X-axis (+X direction), and the direction from the origin to the sky (perpendicular to the ground) will be the Z-axis (+Z direction).

[0015] First, the first belt 10 will be described in detail. 1, the first belt 10 has an upper member 101 and a lower member 102. The upper member 101 and the lower member 102 are connected via absorbent members 13A and 13B to form a loop. In other words, the first belt 10, either alone or together with the absorbent members 13A and 13B, forms a loop through which the dog's body passes.

[0016] When viewed from the absorbing members 13A and 13B, the upper member 101 is on the +Z direction side, and the lower member 102 is on the -Z direction side. When the animal harness 1 is attached to a dog, the upper member 101 is located on the dog's back, and the lower member 102 is located on the abdomen. The absorbing members 13A and 13B are located near the left and right flanks of the dog, respectively. The lead attachment portion 103 is located on the dog's back or near the spine.

[0017] The lead attachment portion 103 described above is ring-shaped, with the upper member 101 passing through the ring. Meanwhile, the connecting portion 12 is connected to the lower member 102. As a result, the lead attachment portion 103 is located away from the connecting portion 12. In other words, the lead attachment portion 103 is located along the loop of the first belt 10, between the pair of absorption members 13A and 13B, at a position distal to the connecting portion 12. As shown in FIG. 2 , the lead 20 may be pre-attached to the lead attachment portion 103. Note that, in this embodiment, the lead attachment portion 103 is configured as a ring-shaped member, but is not limited thereto. Furthermore, the lead 20 may be configured to be attached directly to the belt 10 at the position where the lead attachment portion 103 of the belt 10 is attached, without going through other members such as the lead attachment portion 103.

[0018] Next, referring again to FIG. 1, the second belt 11 will be described in detail. The second belt 11 has an upper member 111 and a lower member 112. The upper member 111 and the lower member 112 are connected via connecting members 14A and 14B to form a loop. That is, the second belt 11 forms a loop either alone or together with connecting members 14A and 14B. The loop formed by the second belt 11 goes around the dog's neck. The "neck" here is not strictly defined, but refers to a loop-shaped portion that passes through both a position between below the face and above the front legs and the spine, such as the neck. When viewed from connecting members 14A and 14B, the upper member 111 is located on the +Z direction side, and the lower member 112 is located approximately on the -Y direction side. When the animal harness 1 is worn on a dog, the upper member 111 is located on the dog's back, and the lower member 112 is located below the neck. The connecting members 14A and 14B are located near the dog's left and right flanks, respectively.

[0019] The upper member 111 is provided with a sensor mounting portion 113. Meanwhile, the connecting portion 12 is connected to the lower member 112. As a result, the sensor mounting portion 113 is located away from the connecting portion 12. In other words, the sensor mounting portion 113 is located along the loop of the second belt 11, distal to the connecting portion 12. In the example shown in FIG. 1 , the animal harness 1 includes connecting portions 12A and 12B in addition to the connecting portion 12 on the abdomen of the dog. The connecting portion 12A connects the absorbent member 13A and the connecting member 14A. The connecting portion 12B connects the absorbent member 13B and the connecting member 14B.

[0020] It is not essential that the sensor mounting portion 113 be formed on the loop-formed second belt 11. For example, the upper member 111 may be composed of two parts, and the sensor mounting portion 113 may be attached between these two parts, so that the sensor mounting portion 113 and the entire second belt 11 form a loop. Similarly, the sensor mounting portion 113 and the sensor itself may be attached between the upper member 111 composed of two parts, so that the entire second belt 11 forms a loop.

[0021] The sensor attached to the sensor attachment portion 113 is primarily a sensor for measuring the dog's walking status and health condition. The force, rotation, and orientation applied to the dog are important when measuring the dog's walking status, with acceleration and angular velocity being particularly important. Furthermore, when measuring a dog's walking status, errors will occur in the measurement results if the sensor attached to the dog is subjected to movements other than walking. Specifically, in addition to data on the X, Y, and Z axes linked to the dog's movements, movements such as pulling on the leash and movements of the harness slipping can also be detected on each axis. Therefore, the sensor may be attached in a position that is in close contact with the dog and is less susceptible to influences other than those caused by the dog's walking. A position along the dog's spine can measure the symmetry of the dog's left and right movements. Therefore, by locating the sensor attachment portion 113 along the dog's spine when wearing the animal harness 1, the dog's walking status can be measured accurately.

[0022] For example, sensors attached to the sensor attachment portion 113 include an acceleration sensor that measures walking acceleration, an angular velocity sensor that measures body rotation, a geomagnetic sensor that measures orientation, and a temperature sensor that measures body temperature. Acceleration sensors and angular velocity sensors are particularly important for measuring body movement. Furthermore, the measurement results of acceleration sensors are easily affected by movements other than walking. Therefore, it is important to measure acceleration without being affected by movements other than walking. In the example described below, a sensor module including an acceleration sensor and a communication device that can send and receive data via wireless communication is attached to the sensor attachment portion 113. For example, by using a low-power communication standard such as BLE (Bluetooth Low Energy) for wireless communication, it is possible to reduce the burden on the human user and the dog to which the sensor is attached.

[0023] 1, the connecting part 12 is a belt-like member that connects the first belt 10, which is formed in a circular shape, and the second belt 11, which is also formed in a circular shape. In the example shown in FIG. 1, one end of the connecting part 12 is connected to the center of the lower member 102 of the first belt 10, and the other end is connected to the center of the lower member 112 of the second belt 11. In this way, the first belt 10 and the second belt 11 are connected at the abdomen of the animal when worn.

[0024] In the example shown in FIG. 1 , the absorbent member 13A and the connecting member 14A are connected via the connecting portion 12A, which is a belt-like member, and the absorbent member 13B and the connecting member 14B are also connected via the connecting portion 12B, which is also a belt-like member. As a result, when the animal harness 1 is worn, the animal's left leg passes through the loop formed by the first belt 10, the connecting portion 12, the second belt 11, and the connecting portion 12A. The animal's right leg passes through the loop formed by the first belt 10, the connecting portion 12, the second belt 11, and the connecting portion 12B. In this manner, the connecting portions 12A and 12B are also connected via the absorbent members 13A and 13B and the connecting members 14A and 14B. Therefore, unnecessary loads on the first belt 10 caused by the movement of the lead can be absorbed by the absorbent members 13A and 13B and the connecting members 14A and 14B. This prevents the movement of the lead caused by the first belt 10 from being transmitted to the second belt 11. This makes it possible to make the sensor installed on the second belt 11 less susceptible to the influence of the lead.

[0025] 1, the upper member 101 and the lower member 102 are each made up of a single part, and the upper member 111 and the lower member 112 are also each made up of a single part, but this is not limiting. For example, as shown in FIG. 1, instead of each of the members 101, 102, 111, and 112 being made up of a single part, at least any of the members 101, 102, 111, and 112 may be made up of multiple parts. This allows at least one loop of the first belt 10 or the second belt 11 to be openable and closable when putting on or taking off the animal harness 1, for example, like a belt that uses an openable and closable buckle, making it easier to put on and take off the animal harness 1.

[0026] Furthermore, the first belt 10 and the second belt 11 may be formed so that the loop size can be freely changed, for example, by using an openable and closable buckle. The chest (torso) size and neck size of dogs vary from dog to dog. On the other hand, by fitting the animal harness 1 to the dog, it can be used safely without coming off during walks, and stable measurement can be achieved by the sensor attached to the sensor attachment portion 113. Therefore, the loop size may be freely changed to fit the dog's body shape.

[0027] 1, each of the absorbent members 13A and 13B is formed in a ring shape. For example, one end of the upper member 101 and the lower member 102 is folded back and sewn or joined, thereby forming loops at each end, through which the absorbent member 13A is passed. The other ends of the upper member 101 and the lower member 102 are also folded back and sewn or joined, thereby forming loops at each end, through which the absorbent member 13B is passed. In this way, the first belt 10 forms a ring by connecting one end of the upper member 101 to the first absorbent member 13A, the first absorbent member 13A to one end of the lower member 102, the other end of the lower member 102 to the second absorbent member 13B, and the other end of the second absorbent member 13B to the upper member 101.

[0028] At this time, as described above, the ring-shaped absorbent members 13A and 13B are threaded through the loops formed at the ends of the upper member 101 and the lower member 102. The loops formed by the upper member 101 and the lower member 102 can move along the ring-shaped absorbent members 13A and 13B. The movement of the upper member 101 and the lower member 102 is generally a rotational movement about the center of the absorbent members 13A and 13B. Therefore, for example, even if the lead 20 is pulled and the lead attachment portion 103 provided on the first belt 10 moves, the upper member 101 can rotate along the rings of the absorbent members 13A and 13B. In addition, in some cases, the lower member 102 can also rotate along the rings of the absorbent members 13A and 13B. As a result, even if an impact is applied to the upper member 101 by the lead 20, the impact on parts of the animal harness 1 other than the upper member 101 can be reduced. Furthermore, the rotational movement is a movement of the upper member 101 and the lead attachment portion 103 attached to the upper member 101, but can be considered the same as a sliding movement. Therefore, even if a force in the y-axis direction is applied to the first belt 10 because the walking speeds of the dog and the human do not match, the first belt 10 will slide in the y-axis direction along the ring-shaped absorbing members 13A and 13B as shown in Fig. 2. As a result, for example, even if the lead is pulled backward by the dog as shown in Fig. 2, the force applied to the first belt 10 will be absorbed by the sliding movement of the absorbing members 13A and 13B.

[0029] Note that FIG. 1 shows an example of absorbing members 13A and 13B having an O-ring shape formed from a material such as metal or resin, but the shape of absorbing members 13A and 13B is not limited to an O-shape. For example, absorbing members 13A and 13B may be D-shaped or polygonal, such as a triangle or a square, as long as they can absorb the force applied to first belt 10 by upper member 101 moving along absorbing members 13A and 13B. Furthermore, absorbing members 13A and 13B may be made of an elastic material such as rubber. Elastic absorbing members 13A and 13B may be sewn or bonded to the ends of upper member 101 and lower member 102, respectively. In this case, the force applied to first belt 10 when lead is pulled in the y-axis direction is absorbed by the expansion and contraction of absorbing members 13A and 13B made of elastic material.

[0030] In the example shown in FIG. 1 , like the absorbing members 13A and 13B, the connecting members 14A and 14B are each O-ring shaped and made of a material such as metal or resin. Similarly, the connecting members 14A and 14B are passed through loops formed at the ends of the upper member 111 and the lower member 112, respectively, to form rings. The shape of the connecting members 14A and 14B is not limited to a ring shape, and may be, for example, a D-shape or a polygonal shape such as a triangle or a square. As a result, even if there remains force generated in the y-axis or z-axis direction that is not absorbed by the absorbing members 13A and 13B, the connecting members 14A and 14B can function as an absorber to absorb this force.

[0031] Furthermore, the first belt 10 and the second belt 11 of the animal harness 1 are not connected to each other at the back of the animal when the harness is worn. Specifically, the first belt 10 and the second belt 11 are not connected to each other in areas not interposed between the absorbers 13A and 13B. For example, when walking a dog, the dog's walking speed may not match the owner's, causing the lead to be pulled strongly, as shown in FIG. 2. As such, if the first belt 10 is connected to the second belt 11 near the lead attachment portion 103, the lead attached to the lead attachment portion 103 will be pulled. When the first belt 10 moves, the sensor attached to the sensor attachment portion 113 of the second belt 11 moves in conjunction with the first belt 10. In this case, the sensor will detect movements other than the dog's walking state, resulting in poor detection accuracy. As described above, the first belt 10 forms a loop, and the lead attachment portion 103 is attached to the first belt 10. The second belt 11 forms a loop, and the sensor attachment portion 113 is attached to the second belt 11. The connecting portion 12 connects the first belt 10 and the second belt 11 at a position distal to the lead attachment portion 103 and the sensor attachment portion 113. This makes it difficult for movements occurring at the lead attachment portion 103 due to reasons other than the dog's walking, specifically movements occurring at the lead attachment portion 103 of the animal harness 1 due to pulling on the lead, to be transmitted to the sensor attached to the sensor attachment portion 113. Therefore, the sensor attached to the sensor attachment portion 113 of the animal harness 1 can improve the accuracy of detecting the dog's walking state. In other words, the first belt 10 and the second belt 11 do not need to be connected proximal to the lead attachment portion 103 and the sensor attachment portion 113.

[0032] [Experimental Example 1] FIG. 3 shows an example of the sensor measurement results in Experimental Example 1. In Experimental Example 1, a dog was fitted with an animal harness 1 having a sensor attached to the sensor attachment portion 113, and one end of a lead was attached to the lead attachment portion 103. A human held the other end of the lead and, while the dog was stationary and not walking, pulled the lead in the y-axis direction at any timing to measure the sensor value. The sensor attached to the sensor attachment portion 113 is an acceleration sensor. In the graph shown in FIG. 3, the vertical axis represents acceleration (mG) and the horizontal axis represents time (seconds). Specifically, the vertical axis represents data in the z-axis direction. In the measurement results shown in FIG. 3, the point in time when the human pulled the lead attached to the lead attachment portion 103 is enclosed by a dashed line. From FIG. 3, it can be seen that even when the lead is pulled, the movement associated with the lead is absorbed by the absorbing members 13A and 13B, so there is little effect on the second belt 11 on which the sensor is located.

[0033] That is, as shown in FIG. 2, when a human pulls the lead 20 toward the human, the dog is pulled diagonally upward by the lead 20, taking into account the relative positions of the dog and the human. Therefore, when a human pulls the lead 20, movement occurs mainly in the Y and Z components. FIG. 3 shows the measurement of movement in the z-axis direction in this case. Specifically, when the dog is pulled backward, only the upper member 111 of the first belt 10 is pulled backward in the y and z directions along with the lead 20. However, this movement is absorbed by the absorbing members 13A and 13B, so the lower member 102 of the first belt 10 and the second belt 11 connected to the lower member 102 via the connecting portion 12 are not moved in conjunction with the movement of the lead 20. Therefore, as shown in FIG. 3, there is little effect on the sensor measurement results.

[0034] The upper and lower members 101, 102, 111, 112 of the animal harness 1 used here were made of belt-shaped leather materials with a thickness of approximately 1 mm and a width of approximately 1 cm. The dog worn with the animal harness 1 in Experimental Example 1 was a so-called small dog. The thickness, width, length, etc. of each of the members 101, 102, 111, 112 differs depending on the size of the animal wearing the animal harness 1. In other words, as the size of the animal increases, the width and length of each of the members 101, 102, 111, 112 also increase accordingly.

[0035] In contrast, the example shown in FIG. 5 is a sensor measurement result when using the comparative animal harness shown in FIG. 4 instead of the animal harness 1 described above with reference to FIG. 1. In the animal harness shown in FIG. 4, the upper member 101 of the first belt 10 and the upper member 111 of the second belt 11 are connected at the connecting portion 16. In the case of the animal harness shown in FIG. 4, when the lead 20 is pulled backward on the dog, pulling the first belt 10 backward, the second belt 11 is also moved backward in conjunction with the movement of the first belt 10. Therefore, the sensor attached to the sensor attachment portion 113 of the animal harness shown in FIG. 5 detects the backward pulling movement. In the measurement results in FIG. 5, the measurement results at the time when a person pulls the lead attached to the lead attachment portion 103 are surrounded by a dashed line. Comparing Figures 3 and 5, it can be seen that in a configuration in which the connection is made by the connecting portion 16 from the vicinity of the lead attachment portion 103 to the vicinity of the sensor attachment portion 113, the lead 20 is affected when it is pulled.

[0036] [Experimental Example 2] FIG. 6 shows an example of the measurement results of the sensor in Experimental Example 2. In Experimental Example 2, a dog was fitted with animal harness 1 having a sensor attached to sensor attachment portion 113, and one end of a lead was attached to lead attachment portion 103. A human was holding the other end of the lead while walking, and the Z-axis acceleration of the sensor was measured when the lead was pulled toward the human at any timing. The walking speed at this time was approximately 1 to 2 m / s. In the measurement results in FIG. 6, the point at which the human pulled the lead attached to lead attachment portion 103 is surrounded by a dashed line. It can also be seen from FIG. 6 that even when the lead was pulled, the sensor detected only the amplitude caused by walking, and did not substantially detect the effect of the lead being pulled, because the absorbing members 13A and 13B absorbed the movement associated with the lead.

[0037] In contrast, the example shown in FIG. 7 is a measurement result of the Z-axis acceleration of the sensor when using the comparative animal harness shown in FIG. 4 instead of the animal harness 1 described above with reference to FIG. 1. As shown in FIG. 7, the sensor attached to the sensor attachment portion 113 detects a backward pulling motion. In the measurement result of FIG. 7, the point in time when the human pulled the lead attached to the lead attachment portion 103 is surrounded by a dashed line. In the example shown in FIG. 7, it can be seen that the movement when the lead is pulled is superimposed on the amplitude caused by walking. Therefore, comparing FIG. 6 and FIG. 7, it can be seen that in a configuration in which the lead attachment portion 103 is connected by the connecting portion 16 from the vicinity of the lead attachment portion 103 to the vicinity of the sensor attachment portion 113, pulling on the lead 20 will have an effect.

[0038] [Variation 1] FIG. 8A shows an animal harness 1A according to Modification 1. In the example shown in FIG. 8A, the animal harness 1A includes a connecting portion 200, which is a sheet-like member formed so that the animal's two front legs can be inserted therein. The animal harness 1A also includes a first belt 201 having a lead attachment portion 202 and forming a loop, together with the connecting portion 200, into which the animal's torso can be inserted. The animal harness 1A also includes a second belt 204 having a sensor attachment portion 205 and forming a loop, together with the connecting portion 200, into which the animal's neck can be inserted. Specifically, the first belt 201 is fastened to the connecting portion 200 by a fastener 203, which is an absorbent member, so that the first belt 201 and the connecting portion 200 form a loop. In other words, the first belt 201 is connected to the end of the connecting portion 200 facing the hind legs. The second belt 204 is connected to the end of the connecting portion 200 facing the front legs. At this time, as shown in FIG. 8A , the fastener 203 can rotatably fasten the first belt 201 along the surface of the sheet-like connecting portion 200. As a result, even if the first belt 201 moves due to the lead 20 being pulled, the movement of the first belt 201 is absorbed by the rotation of the first belt 201 around the fastener 203. Therefore, it is possible to prevent the movement of the first belt 201 from affecting the sensor attached to the sensor attachment portion 205. Here, by configuring either the first belt 201 or the second belt 204 to be detachable, the animal harness 1A can be easily attached to and detached from the animal. Note that while FIG. 8A shows the left side of a dog wearing the animal harness 1A, the right side is configured similarly.

[0039] [Variation 2] FIG. 8B shows an animal harness 1B according to Modification 2. In the example shown in FIG. 8B, the animal harness 1B includes a connecting portion 300, which is a sheet-like member formed so that the animal's two front legs can be inserted therein. The animal harness 1B also includes a first belt 301 having a lead attachment portion 302 and forming a loop, together with the connecting portion 300, into which the animal's torso can be inserted. The animal harness 1B also includes a second belt 304 having a sensor attachment portion 305 and forming a loop, together with the connecting portion 300, into which the animal's neck can be inserted. Specifically, the connecting portion 300 has an opening 303, which is an absorbent portion, through which an end of the first belt 301 is passed. In other words, the first belt 301 is connected to the end of the connecting portion 300 facing the hind legs. The second belt 304 is connected to the end of the connecting portion 300 facing the front legs. For example, the end of the first belt 301 is connected to the connecting portion 300 by being folded back through the opening 303 and sewn. As a result, even if the first belt 301 moves due to pulling on the lead 20, the first belt 201 moves along the opening 303, as in the case described above with reference to FIG. 2. Therefore, the movement of the first belt 301 is absorbed by the opening 303. This prevents the force of the lead 20 from affecting the sensor attached to the sensor attachment portion 305. Here, by making either the first belt 301 or the second belt 304 detachable, the animal harness 1B can be easily attached to and detached from the animal. Note that while FIG. 8B shows the left side of a dog wearing the animal harness 1B, the right side is configured similarly.

[0040] [Variation 3] FIG. 8C shows an animal harness 1C according to Modification 3. In the example shown in FIG. 8C, the animal harness 1C includes a connecting portion 400, which is a sheet-like member formed so that the animal's two front legs can be inserted therein. The animal harness 1C also includes a first belt 401 having a lead attachment portion 402 and forming a loop, together with the connecting portion 400, into which the animal's torso can be inserted. The animal harness 1C also includes a second belt 404 having a sensor attachment portion 405 and forming a loop, together with the connecting portion 400, into which the animal's neck can be inserted. Specifically, the first belt 401 has a strip-shaped absorbent member 403, which is an absorbent member, made of an elastic material such as rubber, and is connected to the connecting portion 400 via this absorbent member 403. In other words, the first belt 401 is connected to the end of the connecting portion 400 facing the hind legs. The second belt 404 is connected to the end of the connecting portion 400 facing the front legs. For example, one end of the first belt 401 body and one end of the absorbing member 403 are sewn together, and the other end of the absorbing member 403 and the connecting part 400 are sewn together. As a result, even if the first belt 401 moves due to the lead 20 being pulled, the movement caused by the first belt 201 is absorbed by the expansion and contraction of the absorbing member 403. This prevents the force of the lead 20 from affecting the sensor attached to the sensor attachment part 405. Here, by making either part of the first belt 401 or the second belt 404 detachable, the harness can be easily attached to and detached from the animal. Note that while FIG. 8C shows the left side of a dog wearing the animal harness 1C, the right side is configured in the same way.

[0041] [Variation 4] FIG. 8D shows an animal harness 1D according to Modification 4. In the example shown in FIG. 8D, the animal harness 1D includes a first belt 501 having a lead attachment portion 502 and forming a loop into which the animal's torso can be inserted. The animal harness 1D also includes a second belt 504 having a sensor attachment portion 505 and forming a loop into which the animal's neck can be inserted. The animal harness 1D also includes a connecting portion 500 connecting the first belt 501 and the second belt 504. Specifically, the first belt 501 includes a belt-shaped upper member 501A and a belt-shaped lower member 501B. The end of the upper member 501A is formed wider than the center portion and has an opening 503 that serves as an absorbent portion. The end of the lower member 501B passes through this opening 503, is folded back, and is sewn together, thereby connecting the upper member 501A and the lower member 501B. The second belt 504 includes an upper member 504A provided with a sensor mounting portion 505, and a lower member 504B. The upper member 504A and the lower member 504B are connected via a ring-shaped connecting member 506. In this case, for example, an end of the upper member 504A and an end of the lower member 504B are folded back through the connecting member 506 and sewn together, thereby connecting the upper member 504A and the lower member 504B. The opening 503, which serves as the absorber, and the ring-shaped connecting member 506 are connected by a strip-shaped connecting portion 500A. In this case, one end of the connecting portion 500A is folded back through the opening 503 and sewn together, and the other end is folded back through the connecting member 506 and sewn together, thereby connecting the first belt 501 and the second belt 504. Furthermore, the lower member 501B of the first belt 501 and the lower member 504B of the second belt 504 are connected by stitching each end of the belt-shaped connecting portion 500B near the abdomen of the animal when worn. As a result, even if the first belt 501 moves due to the lead 20 being pulled, the lower member 501B and connecting portion 500A connected to the opening 503, which is the absorption portion of the upper member 501A of the first belt 501, slide through the opening 503. Therefore, they are not affected by the movement of the upper member 501A, and therefore the force of the lead 20 can be prevented from affecting the sensor attached to the sensor attachment portion 405.Here, by making either the first belt 501 or the second belt 404 detachable at any part, the animal harness 1D can be easily attached to and detached from the animal. Note that although Fig. 8D shows the left side of the dog wearing the animal harness 1D, the right side is configured in the same way.

[0042] <1> An animal harness to be worn by an animal, a first belt provided with a lead attachment portion to which a lead can be attached; a second belt provided with a sensor attachment portion to which a sensor can be attached; a connecting portion that connects the first belt and the second belt; Equipped with the first belt has a set of absorption portions that absorb a load generated in the first belt, or is connected to a set of absorption portions; The first belt forms a loop either alone or together with other members to which it is connected; the lead attachment portion is located between the pair of absorbent portions along the first belt at a position distal to the connecting portion; The second belt forms a loop either alone or together with other members to which it is connected; The sensor mounting portion is located at a position distal to the connecting portion along the second belt. Animal harness.

[0043] <2> The connecting portion is a belt-like member that connects a first belt formed in a circular shape with a second belt formed in a circular shape. <1> The animal harness described in 1.

[0044] <3> the first belt includes an upper member on which the lead attachment portion is provided and a lower member connected to the connecting portion, The ends of the upper member and the ends of the lower member are connected via ring-shaped absorbing members as the absorbing portions. <1> or <2> The animal harness described in 1.

[0045] <4> The connecting portion is a sheet-like member formed so that the two front legs of the animal can be inserted therein, the first belt forms a loop and is connected to an end of the connecting portion in the rear leg direction; The second belt forms a loop and is connected to the end of the connecting part in the front leg direction. <1> The animal harness described in 1.

[0046] <5> a sensor module including at least one of an acceleration sensor, an angular velocity sensor, or a geomagnetic sensor for measuring the movement of the animal is attached to the sensor attachment portion; <1> from <4> 10. An animal harness according to any one of the preceding items.

[0047] <6> The sensor module includes a communication device capable of transmitting and receiving data wirelessly. <6> The animal harness described in 1.

[0048] <7> A lead is attached to the lead attachment portion. <1> from <6> 10. An animal harness according to any one of the preceding items.

[0049] <8> An animal harness to be worn by an animal, a first belt, a second belt, and a connecting portion that connects the first belt and the second belt; The first belt has a first upper member and a first lower member connected via a pair of absorbent members to form a loop, a lead attachment portion to which a lead can be attached is provided on the first upper member; the connecting portion is connected to the first lower member, The second belt has a second upper member and a second lower member connected via a pair of connecting members to form a loop, a sensor mounting portion on which a sensor can be mounted is provided on the second upper member; The connecting portion is connected to the second lower member. Animal harness.

[0050] As described above, examples of the technology disclosed in the present application have been shown and the above embodiments have been described. However, the technology in the present disclosure is not limited to these and can be applied to embodiments in which modifications, substitutions, additions, omissions, etc. are made as appropriate. [Industrial Applicability]

[0051] The animal harness of the present disclosure is useful for measuring the walking state of an animal with high accuracy. [Explanation of symbols]

[0052] 1 animal trunk 10 First Belt 101 Upper member 102 Lower part 103 Lead attachment part 11 Second Belt 111 Upper member 112 Lower part 113 Sensor mounting part 12 Connecting part 13A, 13B Absorption member 14A, 14B connecting member

Claims

1. An animal harness to be worn by an animal, a first belt provided with a lead attachment portion to which a lead can be attached; a second belt provided with a sensor attachment portion to which a sensor can be attached; a connecting portion that connects the first belt and the second belt; Equipped with the first belt has a set of absorption portions that absorb a load generated in the first belt, or is connected to a set of absorption portions; The first belt forms a loop either alone or together with other members to which it is connected; the lead attachment portion is located between the pair of absorbent portions along the first belt at a position distal to the connecting portion; The second belt forms a loop either alone or together with another member to which it is connected; The sensor mounting portion is located at a position distal to the connecting portion along the second belt. Animal harness.

2. The connecting portion is a belt-like member that connects the first belt, which is formed in a circular shape, and the second belt, which is also formed in a circular shape. The animal harness according to claim 1.

3. the first belt includes an upper member on which the lead attachment portion is provided and a lower member connected to the connecting portion, The ends of the upper member and the ends of the lower member are connected via ring-shaped absorbing members as the absorbing portions. The animal harness according to claim 1 or 2.

4. the connecting portion is a sheet-like member formed so that two front legs of an animal can be inserted therein, the first belt is connected to an end of the connecting portion in a rear leg direction, The second belt is connected to an end of the connecting portion in the front leg direction. The animal harness according to claim 1.

5. A sensor module including at least one of an acceleration sensor, an angular velocity sensor, and a geomagnetic sensor for measuring the movement of the animal is attached to the sensor attachment portion. The animal harness according to claim 1.

6. The sensor module includes a communication device capable of transmitting and receiving data wirelessly. The animal harness according to claim 5.

7. A lead is attached to the lead attachment portion. The animal harness according to claim 1.

8. An animal harness to be worn by an animal, a first belt, a second belt, and a connecting portion that connects the first belt and the second belt, The first belt has a first upper member and a first lower member connected via a pair of absorbent members to form a loop, a lead attachment portion to which a lead can be attached is provided on the first upper member; the connecting portion is connected to the first lower member, The second belt has a second upper member and a second lower member connected via a pair of connecting members to form a loop, a sensor mounting portion on which a sensor can be mounted is provided on the second upper member; The connecting portion is connected to the second lower member. Animal harness.

Citation Information

Patent Citations

  • Girth for pet

    JP2002204629A

  • Training girdle

    JP2013021991A

  • Multiple sensors for monitoring animal health or wellness

    JP2016514961A

  • Harness for pet

    JP2021087385A

  • Heart beat signal extraction circuit and animal emotion estimation device

    JP2021090425A