Magnetic material block carrying and unloading mechanism and tool

By designing the magnetic block handling and unloading mechanism, the combination of magnetic material suction groove and material pushing needle is used to solve the cumbersome problems of magnetic block handling and unloading, and stable handling and batch unloading are achieved, which is suitable for mass production of toy water balloons.

CN223280147UActive Publication Date: 2025-08-29HUIZHOU SAIEN MAKER TECH CO LTD
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Patent Information

Application Number
CN202422545517.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-21
Publication Date
2025-08-29
Estimated Expiration
2034-10-21

AI Technical Summary

Technical Problem

In mass production of toy water balloons, the handling and unloading of magnetic material blocks are complicated and easy to sprinkle, which affects production efficiency.

Method used

A magnetic material block handling and unloading mechanism is designed, including a loading plate and a pushing plate. A magnetic material suction groove and a pushing needle are provided on the loading plate. The material block is absorbed by magnetic force and batch unloading is achieved using the pushing needle.

Benefits of technology

It realizes stable handling and batch unloading of magnetic material blocks, simplifies the operation process, and is suitable for mass production of toy water balloons.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a magnetic material block carrying and unloading mechanism and a tool. The magnetic material block carrying and unloading mechanism comprises a loading plate and a pushing and unloading plate. A plurality of magnetic suction material grooves are formed in the loading plate at intervals, and magnetic blocks are installed at the positions, corresponding to the magnetic suction material grooves, of the loading plate; the magnetic material suction groove is used for containing the magnetic material blocks so that the magnetic material blocks can be magnetically sucked through the magnetic blocks, and therefore the magnetic material blocks can be attracted and fixed, a plurality of magnetic material blocks can be carried by hands at a time, and the magnetic material blocks are not prone to scattering. Meanwhile, a through hole is formed in the bottom of each magnetic suction groove; the pushing and unloading plate is installed on the loading plate in a lifting mode and arranged opposite to the through holes. A plurality of material pushing needles are arranged on the pushing and unloading plate towards the loading plate in a protruding mode, each material pushing needle on the loading plate is correspondingly arranged in one through hole in a penetrating mode, when the pushing and unloading plate is pushed to move close to the loading plate, each material pushing needle can stretch into the corresponding magnetic suction material groove through the corresponding through hole, and batch unloading of the magnetic material blocks can be achieved.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of toy water ball production, and in particular to a magnetic material block handling mechanism and tooling. Background Art

[0002] Chinese patent document CN221637331U discloses a toy water ball. By throwing a water-filled toy ball at a player, the player's body gets soaked by the water as the ball bursts, providing a cooling effect. Because toy water balls are safer to play with than water guns, they have become increasingly popular in summer recreational activities.

[0003] However, since the annular edge of the toy water ball needs to be installed with a magnetic attraction part, the magnetic attraction part is obtained by magnetizing magnetic blocks such as iron, cobalt, nickel, etc., and the magnetic blocks used in the mass production of toy water balls are in block shape and a large number of them need to be used at a time, it is necessary to carry a large number of magnetic blocks at one time. The magnetic blocks are easy to fall off during manual handling, and at the same time, they need to be removed one by one during the unloading process. The operation is cumbersome and complicated and is not convenient for the mass production of toy water balls. Utility Model Content

[0004] The purpose of the present invention is to overcome the shortcomings of the prior art and provide a magnetic material block handling mechanism and tooling that can smoothly transport and unload materials in batches.

[0005] The purpose of this disclosure is achieved through the following technical solutions:

[0006] A magnetic material block handling mechanism, comprising:

[0007] A loading plate, wherein the loading plate is provided with a plurality of magnetic material slots at intervals, and a magnetic block is installed on the loading plate at a position corresponding to each of the magnetic material slots; the magnetic material slots are used to place magnetic material blocks so as to magnetically attract the magnetic material blocks through the magnetic blocks; and a through hole is respectively provided at the bottom of each of the magnetic material slots;

[0008] A push plate is mounted on the loading plate for lifting and lowering, and is arranged opposite to each of the through holes; a plurality of push pins are protruding from the pushing plate toward the loading plate, and each of the push pins is correspondingly inserted into one of the through holes; the push pins are used to extend into the corresponding magnetic material groove when pushing the pushing plate close to the loading plate, so as to push the magnetic material block out of the magnetic material groove.

[0009] In one embodiment, a plurality of mounting grooves are provided on the push plate, each of the mounting grooves is correspondingly arranged on the back side of the bottom of a magnetic material trough, and each of the mounting grooves is embedded with one magnetic block.

[0010] In one embodiment, a plurality of positioning piles are provided on the edge of the loading plate, which is away from the pushing plate, and the positioning piles are used to cooperate with the alignment holes of the unloading platform.

[0011] In one embodiment, the magnetic material block handling mechanism further includes a guide push bolt body, and a guide sliding mounting hole is opened on the pushing plate; the guide push bolt body slides through the guide sliding mounting hole and is connected to the loading plate.

[0012] In one embodiment, the guide push bolt body includes a lock head body and a guide rod body connected to each other, the lock head body is supported on the side of the ejection plate away from the loading plate; the guide rod body slides through the guide sliding mounting hole and is screwed to the loading plate.

[0013] In one embodiment, a movable gap is formed between the push plate and the loading plate, and an elastic reset member is provided in the movable gap; two ends of the elastic reset member respectively abut against the push plate and the loading plate.

[0014] In one embodiment, a limiting groove is provided on the loading plate, and the first end of the elastic return member is provided in the limiting groove; and / or,

[0015] A limited beam groove is provided on the push-off plate, and the second end of the elastic reset member is provided in the limited beam groove.

[0016] In one embodiment, a handle is provided on the push plate, and a pull handle is provided on the loading plate near the handle; the pull handle extends toward the handle to form a pull structure; the pull structure is used to bring the loading plate and the push plate closer together when gripping.

[0017] In one embodiment, two through holes are respectively opened at the bottom of each magnetic material trough, and each of the through holes is respectively arranged close to the end of the magnetic material trough.

[0018] A magnetic material block handling tool comprises the magnetic material block handling mechanism of any one of the above embodiments.

[0019] Compared with the prior art, the present disclosure has at least the following advantages:

[0020] The aforementioned magnetic material block handling mechanism, since the loading plate is provided with a plurality of magnetic material troughs, by placing magnetic material blocks in the magnetic material troughs, the magnetic blocks at the corresponding positions of the magnetic material troughs can attract the magnetic material blocks through magnetic force, thereby enabling the magnetic material blocks to be adsorbed and fixed in the magnetic material troughs. This not only allows multiple magnetic material blocks to be manually transported at one time, but also makes the magnetic material blocks less likely to fall out. At the same time, since the push plate is mounted on the loading plate in a lifting manner, each push pin on the loading plate is penetrated by a corresponding through hole. When the push plate is pushed closer to the loading plate, each push pin can extend into the corresponding magnetic material trough through the corresponding through hole, thereby pushing out the magnetic material blocks in the corresponding magnetic material trough, thereby achieving batch unloading of magnetic material blocks. The simple operation is more suitable for the mass production process of toy water balls. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present disclosure, the following briefly introduces the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present disclosure and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.

[0022] Figure 1 This is an exploded schematic diagram of a magnetic block handling mechanism according to an embodiment of the present disclosure;

[0023] Figure 2 for Figure 1 A partial enlarged view shown in the middle;

[0024] Figure 3 for Figure 1 A cross-sectional structural diagram of the magnetic block handling mechanism shown;

[0025] Figure 4 for Figure 3 The partial enlarged view shown at B in the middle;

[0026] Figure 5 for Figure 3 The enlarged view of the part shown at C in the middle.

[0027] Figure numerals: 10, magnetic material block handling mechanism; 100, loading plate; 110, magnetic material trough; 1110, through hole; 130, pull handle; 140, positioning pile; 200, push plate; 210, push needle; 220, magnetic block; 230, mounting groove; 260, handle; 300, guide bolt body; 310, lock body; 320, guide rod body; 400, movable gap; 410, elastic reset part; 20, magnetic material block. DETAILED DESCRIPTION

[0028] To facilitate understanding of the present disclosure, a more comprehensive description of the present disclosure will be provided below with reference to the accompanying drawings. The accompanying drawings illustrate preferred embodiments of the present disclosure. However, the present disclosure can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and comprehensive understanding of the disclosure.

[0029] It should be noted that when an element is referred to as being "fixed to" another element, it may be directly attached to the other element or there may be an intermediate element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only implementation methods.

[0030] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this disclosure pertains. The terms used herein in the specification of this disclosure are intended only to describe specific embodiments and are not intended to limit this disclosure. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0031] In order to better understand the technical solutions and beneficial effects of the present disclosure, the present disclosure is further described in detail below with reference to specific embodiments:

[0032] like Figure 1 and Figure 2 As shown, a magnetic material block handling mechanism 10 of an embodiment includes a loading plate 100 and a pushing plate 200; the loading plate 100 is provided with a plurality of magnetic material grooves 110 at intervals, and a magnetic block 220 is installed on the loading plate 100 at a position corresponding to each magnetic material groove 110, and the magnetic material groove 110 is used to place and magnetically attract the magnetic material block 20; a through hole 1110 is provided at the bottom of each magnetic material groove 110; the pushing plate 200 is lifted and installed on the loading plate 100 and is arranged opposite to each through hole 1110; the pushing plate 200 is provided with a plurality of pushing needles 210 protruding toward the loading plate 100, and each pushing needle 210 is correspondingly penetrated into a through hole 1110; the pushing needle 210 is used to extend into the corresponding magnetic material groove 110 when pushing the pushing plate 200 close to the loading plate 100, so as to push the magnetic material block 20 out of the magnetic material groove 110.

[0033] It can be understood that since a number of magnetic material slots 110 are provided on the loading plate 100, by placing the magnetic material blocks 20 in the magnetic material slots 110, the magnetic blocks 220 at the corresponding positions of the magnetic material slots 110 can attract the magnetic material blocks 20 through magnetic force, so that the magnetic material blocks 20 can be adsorbed and fixed in the magnetic material slots 110. In this way, not only can multiple magnetic material blocks 20 be manually carried at one time, but the magnetic material blocks 20 are also less likely to fall off. At the same time, since the push plate 200 is installed in a lifting manner on the loading plate 100, each push needle 210 on the loading plate 100 is passed through a corresponding through hole 1110. When the push plate 200 is pushed to move close to the loading plate 100, each push needle 210 can extend into the corresponding magnetic material groove 110 through the corresponding through hole 1110, thereby pushing out the magnetic material block 20 in the corresponding magnetic material groove 110, and realizing batch unloading of the magnetic material blocks 20. The operation is simple and more suitable for the batch production process of toy water balls.

[0034] In one embodiment, the magnetic material block 20 includes iron, cobalt, nickel, etc., but this is not limited here, and those skilled in the art may also make other selections as needed.

[0035] Combine Figure 1 As shown, in one embodiment, a plurality of positioning stakes 140 are provided at intervals on the edge of the loading plate 100, away from the ejection plate 200. The positioning stakes 140 are configured to engage with the alignment holes of the unloading platform. It is understood that when the loading plate 100 needs to be unloaded in batches on the unloading platform, the positioning stakes 140 can be engaged with the alignment holes on the unloading platform, thereby keeping the loading plate 100 and the unloading platform relatively stationary. This allows the magnetic blocks 20 to be unloaded in batches smoothly, making it more convenient to use.

[0036] Combine Figure 3 and Figure 4 As shown in one embodiment, a magnetic block 220 is installed on the loading plate 100 at a position corresponding to each magnetic material slot 110. It can be understood that by installing the magnetic block 220 at a position corresponding to each magnetic material slot 110, each magnetic material slot 110 has a magnetic attraction force. Under the action of the magnetic attraction force, the magnetic material block 20 can be more stably adsorbed in the magnetic material slot 110, thereby effectively reducing the possibility of the magnetic material block 20 being scattered during manual handling.

[0037] In this embodiment, a plurality of mounting slots 230 are provided on the ejection plate 200. Each mounting slot 230 is correspondingly provided on the back side of the bottom of a magnetic material trough 110, and each mounting slot 230 is embedded with a magnetic block 220. It can be understood that by having each magnetic block 220 embedded in the corresponding mounting slot 230, since each mounting slot 230 is correspondingly provided on the back side of the bottom of a magnetic material trough 110, the magnetic field of the magnetic material trough 110 is mainly distributed on the bottom of the magnetic material trough 110. Each magnetic block 20 can be attracted by the corresponding magnetic block 220 to penetrate into the magnetic material trough 110 and adhere to the bottom of the magnetic material trough 110. In this way, not only can the magnetic block 20 be restrained by the wall of the magnetic material trough 110 to prevent it from falling, but the magnetic block 20 can also be easily pushed away from the bottom of the magnetic material trough 110 by the ejection needle 210, so that the magnetic block 20 can be quickly removed from the magnetic material trough 110.

[0038] Combine Figure 3 and Figure 5 As shown, in one embodiment, the magnetic material block handling mechanism 10 further includes a guide pin 300, and a guide slide mounting hole is formed on the unloading plate 200; the guide pin 300 slides through the guide slide mounting hole and is connected to the loading plate 100. It can be understood that because the guide pin 300 slides through the guide slide mounting hole and is connected to the loading plate 100, the slide mounting hole can slide under the guidance of the guide pin 300, thereby reducing the occurrence of misalignment during the relative movement of the loading plate 100 and the unloading plate 200, and further ensuring that the unloading plate 200 can smoothly approach or move away from the loading plate 100.

[0039] Combine Figure 5 As shown, in this embodiment, the guide bolt body 300 includes a connected lock body 310 and a guide rod body 320. The lock body 310 abuts against the side of the ejection plate 200 away from the loading plate 100. The guide rod body 320 slides through a guide mounting hole and is screwed to the loading plate 100. It can be understood that because the lock body 310 abuts against the side of the ejection plate 200 away from the loading plate 100, the lock body 310 can restrain the ejection plate 200, thereby preventing the ejection plate 200 from dislodging away from the loading plate 100. At the same time, because the guide rod body 320 slides through the guide mounting hole and is screwed to the loading plate 100, the ejection plate 200 can be securely assembled with the guide bolt body 300, while the ejection plate 200 can still be raised and lowered relative to the loading plate 100.

[0040] Combine Figure 5As shown, in one embodiment, a movable gap 400 is formed between the ejection plate 200 and the loading plate 100 , and an elastic return member 410 is provided in the movable gap 400 ; two ends of the elastic return member 410 respectively abut against the ejection plate 200 and the loading plate 100 . It can be understood that because an elastic return member 410 is provided in the movable gap 400 between the push plate 200 and the loading plate 100, the two ends of the elastic return member 410 are respectively pressed against the push plate 200 and the loading plate 100, so that the push plate 200 can be lifted above the loading plate 100 by the elastic return member 410. When the push plate 200 is pushed to overcome the elastic force of the elastic return member 410 and move close to the loading plate 100, each pusher needle 210 can extend into the corresponding magnetic material groove 110 through the corresponding through hole 1110, thereby pushing out the magnetic material block 20 in the corresponding magnetic material groove 110. When the force on the push plate 200 is stopped, the elastic return member 410 can push the push plate 200 away from the loading plate 100 by the elastic force, so that each pusher needle 210 is automatically withdrawn from the magnetic material groove 110 and then reset, which is more convenient for next use.

[0041] Combine Figure 5 As shown, in one embodiment, a limiting groove is provided on the loading plate 100, and the first end of the elastic return member 410 is disposed in the limiting groove. It is understood that since the limiting groove is provided on the loading plate 100, when the first end of the elastic return member 410 is disposed in the limiting groove, the position of the first end of the elastic return member 410 can be restricted by the limiting groove, thereby reducing the occurrence of the first end of the elastic return member 410 slipping out from the side during the elastic expansion and contraction process of the elastic return member 410, further improving the installation stability of the elastic return member 410.

[0042] Combine Figure 5 As shown, in one embodiment, a limited beam groove is provided on the push plate 200, and the second end of the elastic return member 410 is disposed within the limited beam groove. It is understood that since the limited beam groove is provided on the push plate 200, when the second end of the elastic return member 410 is disposed within the limited beam groove, the position of the second end of the elastic return member 410 can be limited by the limited beam groove, thereby reducing the occurrence of the second end of the elastic return member 410 slipping laterally during the elastic expansion and contraction process of the elastic return member 410, further improving the installation stability of the elastic return member 410. Specifically, the elastic return member 410 is a compression spring, a rubber elastic block, etc., of course, this is not limited here, and those skilled in the art can also make other choices as needed.

[0043] Combine Figure 1As shown, in one embodiment, a handle 260 is provided on the ejection plate 200, and a pull handle 130 is provided on the loading plate 100 near the handle 260. The pull handle 130 extends toward the handle 260 to form a pull structure. The pull structure is used to bring the loading plate 100 and the ejection plate 200 closer together when grasped. It is understood that because the pull handle 130 extends toward the handle 260, the pull handle 130 and the handle 260 form a pull structure. When an operator grasps the pull structure, i.e., simultaneously grasps the pull handle 130 and the handle 260, bringing the pull handle 130 and the handle 260 closer together, the pull handle 130 pulls the loading plate 100 toward the ejection plate 200, allowing each ejector pin 210 to pass through the corresponding through hole 1110 and extend into the corresponding magnetic material trough 110, thereby ejecting and removing the magnetic material block 20 within the corresponding magnetic material trough 110. The above-mentioned pulling and gripping structure not only facilitates the operator to grasp, but also can synchronously pull the loading plate 100 to move, thereby making it more convenient for the operator to use.

[0044] Combine Figure 4 As shown, in one embodiment, two through holes 1110 are respectively provided at the bottom of each magnetic material trough 110, and each through hole 1110 is respectively provided near the end of the magnetic material trough 110. It can be understood that since a through hole 1110 is respectively provided near both ends of the magnetic material trough 110, the corresponding pushing needle 210 can enter the corresponding magnetic material trough 110 through the through hole 1110, that is, the two pushing needles 210 can simultaneously push the two ends of the magnetic material block 20 in the same magnetic material trough 110. When the loading plate 100 unloads the magnetic material block 20, the magnetic material block 20 can be more quickly removed from the magnetic material trough 110 through the two pushing needles 210.

[0045] like Figure 1 and Figure 2 As shown, the present disclosure also provides a magnetic material block 20 handling tool, including the magnetic material block handling mechanism 10 of any of the above-mentioned embodiments. It can be understood that by applying the magnetic material block handling mechanism 10 of the present disclosure to the magnetic material block 20 handling tool, by placing the magnetic material block 20 in the magnetic material trough 110, the magnetic block 220 at the corresponding position of the magnetic material trough 110 can attract the magnetic material block 20 through magnetic force, thereby allowing the magnetic material block 20 to be adsorbed and fixed in the magnetic material trough 110. This not only allows multiple magnetic material blocks 20 to be manually transported at one time, but also makes the magnetic material blocks 20 less likely to fall out. At the same time, when the push plate 200 is pushed relative to the loading plate 100, each push pin 210 can extend into the corresponding magnetic material trough 110 through the corresponding through hole 1110, thereby pushing out the magnetic material block 20 in the corresponding magnetic material trough 110, thereby achieving batch unloading of magnetic material blocks 20. The simple operation is more suitable for the mass production process of toy water balls.

[0046] Compared with the prior art, the present disclosure has at least the following advantages:

[0047] The magnetic material block handling mechanism 10 is provided with a plurality of magnetic material slots 110 on the loading plate 100. By placing the magnetic material block 20 in the magnetic material slots 110, the magnetic blocks 220 at the corresponding positions of the magnetic material slots 110 can attract the magnetic material block 20 through magnetic force, thereby enabling the magnetic material block 20 to be adsorbed and fixed in the magnetic material slots 110. In this way, not only can multiple magnetic material blocks 20 be manually carried at one time, but the magnetic material blocks 20 are also less likely to be scattered. At the same time, since the push plate 200 is installed in a lifting manner on the loading plate 100, each push needle 210 on the loading plate 100 is passed through a corresponding through hole 1110. When the push plate 200 is pushed to move close to the loading plate 100, each push needle 210 can extend into the corresponding magnetic material groove 110 through the corresponding through hole 1110, thereby pushing out the magnetic material block 20 in the corresponding magnetic material groove 110, and realizing batch unloading of the magnetic material blocks 20. The operation is simple and more suitable for the batch production process of toy water balls.

[0048] The above-described embodiments merely represent several implementation methods of the present disclosure. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that a person of ordinary skill in the art could make various modifications and improvements without departing from the scope of the present disclosure, all of which fall within the scope of protection of the present disclosure. Therefore, the scope of protection of the present patent shall be determined by the appended claims.

Claims

1. A magnetic material block handling mechanism, characterized in that: include: A loading plate, wherein the loading plate is provided with a plurality of magnetic material slots at intervals, and a magnetic block is installed on the loading plate at a position corresponding to each of the magnetic material slots; the magnetic material slots are used to place magnetic material blocks so as to magnetically attract the magnetic material blocks through the magnetic blocks; and a through hole is respectively provided at the bottom of each of the magnetic material slots; A push plate is mounted on the loading plate for lifting and lowering, and is arranged opposite to each of the through holes; a plurality of push pins are protruding from the pushing plate toward the loading plate, and each of the push pins is correspondingly inserted into one of the through holes; the push pins are used to extend into the corresponding magnetic material groove when pushing the pushing plate close to the loading plate, so as to push the magnetic material block out of the magnetic material groove.

2. The magnetic block handling mechanism according to claim 1, characterized in that: The push plate is provided with a plurality of mounting grooves, each of which is correspondingly arranged on the back side of the bottom of a magnetic material trough, and each of which is embedded with a magnetic block.

3. The magnetic block handling mechanism according to claim 1, characterized in that: A plurality of positioning piles are protruded from the edge of the loading plate toward a side away from the pushing plate, and the positioning piles are used to cooperate with the alignment holes of the unloading platform.

4. The magnetic block handling mechanism according to claim 1, characterized in that: The magnetic material block handling mechanism further comprises a guide push bolt body, and a guide slide mounting hole is provided on the pushing plate; the guide push bolt body slides through the guide slide mounting hole and is connected to the loading plate.

5. The magnetic block handling mechanism according to claim 4, characterized in that: The guide push bolt body includes a connected lock head body and a guide rod body, the lock head body is held against the side of the push plate away from the loading plate; the guide rod body slides through the guide sliding mounting hole and is screwed to the loading plate.

6. The magnetic block handling mechanism according to claim 1, characterized in that: An active gap is formed between the push plate and the loading plate, and an elastic reset member is provided in the active gap; two ends of the elastic reset member are respectively abutted against the push plate and the loading plate.

7. The magnetic block handling mechanism according to claim 6, characterized in that: A limiting groove is provided on the loading plate, and the first end of the elastic reset member is disposed in the limiting groove; and / or, A limited beam groove is provided on the push-off plate, and the second end of the elastic reset member is provided in the limited beam groove.

8. The magnetic block handling mechanism according to claim 1, characterized in that: A gripping handle is provided on the push plate, and a pulling handle is provided on the loading plate near the gripping handle; the pulling handle extends toward the gripping handle to form a pulling structure; the pulling structure is used to bring the loading plate and the push plate closer together when gripping.

9. The magnetic block handling mechanism according to claim 1, characterized in that: The bottom of each magnetic material trough is provided with two through holes, and each of the through holes is arranged close to the end of the magnetic material trough.

10. A magnetic material block handling tool, characterized in that: It comprises the magnetic material block handling mechanism according to any one of claims 1 to 9.

Citation Information

Patent Citations

  • Toy water ball

    CN221637331U