Multifunctional twist egg induction bin

By designing a multi-functional gauge sensing chamber in the gauge machine, the combination of the egg-output sensing mechanism and proximity sensor in the gauge barrel is solved, the problem of uncontrolled egg production by the existing gauge machine is achieved, and the number of eggs is accurately identified and counted, improving the management and gameplay experience of the gauge machine.

CN222952737UActive Publication Date: 2025-06-06GUANGZHOU KEKU ANIMATION TECH CO LTD
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Patent Information

Application Number
CN202421926749.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2025-06-06
Estimated Expiration
2034-08-09

AI Technical Summary

Technical Problem

The egg production method of the existing gambler drops directly into the gift exit, resulting in inability to identify, classify, count and count inconvenient, prone to the problem of extra eggs, and it is difficult to effectively control the number of eggs.

Method used

A multi-functional gauge sensing chamber is designed, and the first and second egg-output sensing mechanisms in the gauge are used to control the gauge's egg-output. Through the opening and closing of the first and second gates, combined with the motor-driven eccentric wheel structure and the proximity sensor, the identification and counting of the number of eggs produced by the gauges is achieved.

Benefits of technology

Accurate identification and counting of the number of eggs produced by the gauze, avoiding the problem of extra eggs produced, enhancing the management and control of the number of eggs produced by the merchant, improving the ornamental, fun and fidelity of the gauze machine, and avoiding the occurrence of egg jamming phenomenon.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multifunctional twist egg induction bin which comprises an egg outlet barrel, a first egg outlet induction mechanism and a second egg outlet induction mechanism are sequentially arranged in the egg outlet barrel from top to bottom, a first connecting rod is rotationally installed on the edge of the lower surface of a first disc, and the end of the first connecting rod is rotationally connected with the bottom of a connecting frame. A first proximity probe is arranged on one side of the upper surface of the first disc, and a first proximity sensor is arranged at the position, corresponding to the motion trail of the first proximity probe, of the lower surface of the supporting plate. The end of the second connecting rod is rotationally connected with the end of the second gate plate, and a second proximity probe is arranged on one side of the lower surface of the second disc. According to the automatic egg discharging device, the first egg discharging induction mechanism and the second egg discharging induction mechanism are used for controlling egg discharging of the twisted eggs in sequence, the number of the discharged eggs can be recognized, errors of the number of the discharged eggs are avoided, the stability of egg discharging is guaranteed, and the phenomenon of egg clamping is avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of gashapon induction warehouses, in particular to a multifunctional gashapon induction warehouse. Background Art

[0002] A gashapon machine refers to a machine that sells gashapon toys. You can clearly know what type of toys are sold inside by looking at the promotional card in front of the machine. Just put in coins or game coins, and then turn the switch in front of the machine, and the vending machine will drop out a round egg-shaped capsule from the bottom exit. The round egg-shaped capsule is usually called a gashapon.

[0003] The existing method of releasing eggs from gashapon machines on the market is that the gashapon balls fall directly into the gift outlet, and then the players directly take the gashapon balls away. This method of releasing eggs has the following defects:

[0004] The capsule balls fall directly into the gift outlet, and the players take them out without any identification, classification, or counting. This makes it easy for too many eggs to appear, and it is impossible to control the egg output well. Utility Model Content

[0005] The purpose of the utility model is to provide a multifunctional capsule sensor warehouse to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a multifunctional capsule egg sensing bin, comprising an egg discharging tube, wherein a first egg discharging sensing mechanism and a second egg discharging sensing mechanism are sequentially arranged inside the egg discharging tube from top to bottom, wherein the first egg discharging sensing mechanism comprises a first gate plate slidably mounted inside the egg discharging tube, a connecting frame is arranged at the bottom of one end of the first gate plate, a first support plate is arranged at one side of the egg discharging tube, a first motor is arranged at the lower surface of the first support plate, a first disc is arranged at the output end of the first motor, a first connecting rod is rotatably mounted at the edge of the lower surface of the first disc, an end of the first connecting rod is rotatably connected to the bottom of the connecting frame, a first proximity probe is arranged at one side of the upper surface of the first disc, and a first proximity sensor is arranged at a position on the lower surface of the first support plate corresponding to the motion trajectory of the first proximity probe;

[0007] The second egg-discharging sensing mechanism includes a second gate plate slidably mounted inside the egg-discharging barrel, a support seat is provided on one side of the egg-discharging barrel, a second motor is provided on the support seat, a second disc is provided at the output end of the second motor, a second connecting rod is rotatably mounted at the edge of the upper surface of the second disc, an end of the second connecting rod is rotatably connected to an end of the second gate plate, a second proximity probe is provided on one side of the lower surface of the second disc, and a second proximity sensor is provided at a position on the upper surface of the support seat corresponding to the motion trajectory of the second proximity probe.

[0008] Among them, two symmetrical first slide rails are fixedly installed on the inner wall of the egg dispensing tube corresponding to the position of the first gate plate, and first pulleys cooperating with the first slide rails are rotatably installed on both sides of the first gate plate. The first gate plate is slidably installed in the egg dispensing tube through the first pulleys cooperating with the first slide rails.

[0009] Among them, two symmetrical second slide rails are fixedly installed on the inner wall of the egg discharging tube corresponding to the position of the second gate plate, and second pulleys cooperating with the second slide rails are rotatably installed on both sides of the second gate plate. The second gate plate is slidably installed in the egg discharging tube through the second pulleys cooperating with the second slide rails.

[0010] A baffle is fixedly installed on the lower surface of the first slide rail at a position corresponding to the end of the second gate plate, and the baffle is used to prevent the capsule from moving synchronously with the second gate plate.

[0011] Wherein, a second support plate is provided at the bottom of the egg dispensing tube, and a capsule egg outlet which is connected with the egg dispensing tube is provided on the lower surface of the second support plate.

[0012] Wherein, the first gate plate and the second gate plate are arranged in parallel, and the first gate plate and the second gate plate are arranged perpendicular to the egg discharging tube.

[0013] Compared with the prior art, the beneficial effects of the utility model are:

[0014] The utility model controls the egg discharging of capsule eggs through a first egg discharging sensing mechanism and a second egg discharging sensing mechanism in an egg discharging tube. When the capsule eggs pass through the first egg discharging sensing mechanism, the capsule eggs are supported by a first gate plate. When the eggs need to be discharged, the first motor drives the first disc to rotate, and the first disc and the first connecting rod are combined into an eccentric wheel structure. Then, the first disc drives the first gate plate to reciprocate through the first connecting rod, thereby controlling the opening and closing of the first gate plate. When the first gate plate is opened, the capsule eggs fall from the first gate plate. At the same time, during the rotation of the first disc, the first proximity probe on the upper surface of the first disc will pass through the first proximity sensor. Every time the first disc rotates one circle, the first proximity probe will pass through the first proximity sensor once. Therefore, in the process of controlling the opening and closing of the first gate plate once, the number of eggs discharged from the capsule eggs once can be detected through the cooperation of the first proximity sensor and the first proximity probe.

[0015] When the capsule egg passes through the second egg-out sensing mechanism, the capsule egg is supported by the second gate. When the egg needs to be out, the second motor drives the second disc to rotate, and the second disc and the second connecting rod are combined into an eccentric wheel structure. Then the second disc drives the second gate to reciprocate through the second connecting rod, so as to control the opening and closing of the second gate. When the second gate is opened, the capsule egg falls from the second gate. At the same time, during the rotation of the second disc, the second proximity probe on the lower surface of the second disc will pass through the second proximity sensor. Every time the second disc rotates one circle, the second proximity probe will pass through the second proximity sensor once. Therefore, in the process of controlling the opening and closing of the second gate once, the number of eggs out of the capsule egg can be detected through the cooperation of the second proximity sensor and the second proximity probe. Classification and counting statistics are more convenient for business management, and can also avoid excessive eggs. It increases the viewing, fun and authenticity of the capsule egg machine during play.

[0016] The first egg-out sensing mechanism and the second egg-out sensing mechanism are used to sequentially control the egg-out of the twisted eggs, so that the number of eggs out can be identified, thereby avoiding errors in the number of eggs out, ensuring the stability of the egg-out, and avoiding the phenomenon of egg jamming. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 This is a schematic diagram of the overall axonometric structure of the utility model in the first direction;

[0018] Figure 2 This is a schematic diagram of the overall axonometric structure of the utility model in the second direction;

[0019] Figure 3 This is a schematic diagram of the axonometric structure of the utility model in the first direction of the egg dispensing cone;

[0020] Figure 4 This is a schematic diagram of the axonometric structure of the egg dispensing cone of the utility model in the second direction;

[0021] Figure 5 This is a schematic diagram of the explosion structure of the egg cone of the utility model;

[0022] Figure 6 This is a schematic diagram of the axonometric structure of the first egg-discharging induction mechanism of the utility model;

[0023] Figure 7 This is a schematic diagram of the explosion structure of the first egg-ejecting induction mechanism of the utility model;

[0024] Figure 8 This is a schematic diagram of the combined structure of the first proximity sensor and the first proximity probe of the utility model;

[0025] Fig. 9 This is a schematic diagram of the axonometric structure of the second egg-discharging sensing mechanism of the utility model;

[0026] Fig.10This is a schematic diagram of the explosion structure of the second egg-discharging induction mechanism of the utility model;

[0027] Fig.11 This is a schematic diagram of the combined structure of the second proximity sensor and the second proximity probe of the utility model;

[0028] Fig.12 This is a schematic diagram of the practical application structure of the utility model;

[0029] Fig.13 It is a schematic diagram of the explosion structure for practical application of the utility model.

[0030] In the figure: 100, egg discharging tube; 200, first egg discharging sensing mechanism; 201, first slide rail; 202, first gate plate; 203, first pulley; 204, connecting frame; 205, first support plate; 206, first motor; 207, first disc; 208, first connecting rod; 209, first proximity sensor; 210, first proximity probe; 211, baffle; 300, second egg discharging sensing mechanism; 301, second slide rail; 302, second gate plate; 303, second pulley; 304, support seat; 305, second motor; 306, second disc; 307, second connecting rod; 308, second proximity sensor; 309, second proximity probe; 400, second support plate; 500, egg outlet; 600, egg; 700, egg replenishing bin; 800, turning drum. DETAILED DESCRIPTION

[0031] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments.

[0032] See also Figure 1-13 The utility model provides a technical solution: a multifunctional capsule egg sensing bin, comprising an egg discharging tube 100, the egg discharging tube 100 is installed at the egg outlet at the bottom of a turning drum 800, an egg replenishing bin 700 is installed at the egg inlet at the top of the turning drum 800, and a capsule egg outlet 500 is installed at the bottom of the egg discharging tube 100 through a second support plate 400, eggs are replenished for the turning drum 800 through the egg replenishing bin 700, and then the turning drum 800 drives the capsule eggs to roll, so that the rolled eggs are discharged irregularly, thereby improving the fairness and justice of the egg discharging, and then the capsule eggs are discharged to the capsule egg outlet 500 through the egg discharging tube 100, and the players can take the capsule eggs at the capsule egg outlet 500.

[0033] The first egg-out sensor mechanism 200 and the second egg-out sensor mechanism 300 are sequentially arranged inside the egg-out tube 100 from top to bottom. The egg-out sensor mechanism 200 and the second egg-out sensor mechanism 300 in the egg-out tube 100 are used to control the egg-out of the capsule 600. The first egg-out sensor mechanism 200 is arranged at the egg-out opening of the turning drum 800. The first egg-out sensor mechanism 200 is used to control the opening and closing of the egg-out opening of the turning drum 800. When the turning drum 800 needs to output eggs, the egg-out opening of the turning drum 800 is opened by the first egg-out sensor mechanism 200.

[0034] The first egg-discharging sensing mechanism 200 includes a first gate plate 202 slidably mounted inside the egg-discharging cylinder 100, the first gate plate 202 corresponds to the egg-discharging port position of the turning drum 800, and the first gate plate 202 is used to control the opening and closing of the egg-discharging port of the turning drum 800. A connecting frame 204 is provided at the bottom of one end of the first gate plate 202, a first support plate 205 is provided at one side of the egg-discharging cylinder 100, a first motor 206 is provided at the lower surface of the first support plate 205, a first disc 207 is provided at the output end of the first motor 206, a first connecting rod 208 is rotatably mounted at the edge of the lower surface of the first disc 207, an end of the first connecting rod 208 is rotatably connected to the bottom of the connecting frame 204, a first proximity probe 210 is provided on one side of the upper surface of the first disc 207, and a first proximity sensor 209 is provided at a position corresponding to the motion trajectory of the first proximity probe 210 on the lower surface of the first support plate 205; when the capsule egg 600 passes through the first egg-discharging sensing mechanism 200, the capsule egg 600 passes through the first gate plate 205. 02 supports the capsule egg 600. When the egg needs to be taken out, the first motor 206 drives the first disc 207 to rotate. The first disc 207 and the first connecting rod 208 are combined into an eccentric wheel structure. Then the first disc 207 drives the first gate plate 202 to reciprocate through the first connecting rod 208, thereby controlling the opening and closing of the first gate plate 202. When the first gate plate 202 is opened, the capsule egg 600 falls from the first gate plate 202. At the same time, during the rotation of the first disc 207, the first proximity probe 210 on the upper surface of the first disc 207 will pass through the first proximity sensor 209. The first proximity sensor 209 receives a signal once. Every time the first disc 207 rotates one circle, the first proximity probe 210 will pass through the first proximity sensor 209 once. Therefore, in the process of controlling the opening and closing of the first gate plate 202 once, the cooperation of the first proximity sensor 209 and the first proximity probe 210 can detect the number of eggs taken out of the capsule egg 600 at one time.

[0035] Among them, the second egg-discharging sensing mechanism 300 includes a second gate plate 302 slidably installed inside the egg-discharging tube 100, a support seat 304 is provided on one side of the egg-discharging tube 100, a second motor 305 is provided on the support seat 304, a second disc 306 is provided at the output end of the second motor 305, a second connecting rod 307 is rotatably installed at the edge of the upper surface of the second disc 306, the end of the second connecting rod 307 is rotatably connected to the end of the second gate plate 302, a second proximity probe 309 is provided on one side of the lower surface of the second disc 306, and a second proximity sensor 308 is provided on the upper surface of the support seat 304 at a position corresponding to the motion trajectory of the second proximity probe 309. When the capsule egg 600 passes through the second egg-discharging sensing mechanism 300, the capsule egg 600 is supported by the second gate plate 302, and when the egg needs to be discharged, the second disc 306 is driven by the second motor 305. The second disc 306 and the second connecting rod 307 are combined into an eccentric wheel structure, and then the second disc 306 drives the second gate plate 302 to reciprocate through the second connecting rod 307, so as to control the opening and closing of the second gate plate 302. When the second gate plate 302 is opened, the capsule egg 600 falls from the second gate plate 302. At the same time, during the rotation of the second disc 306, the second proximity probe 309 on the lower surface of the second disc 306 will pass through the second proximity sensor 308, and the second proximity sensor 308 will receive a signal once. For every rotation of the second disc 306, the second proximity probe 309 will pass through the second proximity sensor 308 once. Therefore, in the process of controlling the opening and closing of the second gate plate 302 once, the cooperation of the second proximity sensor 308 and the second proximity probe 309 can detect the number of capsule eggs 600 taken out at one time.

[0036] Among them, two symmetrical first slide rails 201 are fixedly installed on the inner wall of the egg dispensing tube 100 corresponding to the position of the first gate plate 202, and first pulleys 203 cooperating with the first slide rails 201 are rotatably installed on both sides of the first gate plate 202. The first gate plate 202 is slidably installed in the egg dispensing tube 100 through the first pulley 203 cooperating with the first slide rail 201. Through the cooperation between the first pulley 203 and the first slide rail 201, during the rotation of the first disc 207, the first disc 207 can drive the first gate plate 202 to slide along the first slide rail 201 through the first connecting rod 208, so that the first gate plate 202 makes reciprocating motion along the first slide rail 201, thereby controlling the opening and closing of the first gate plate 202.

[0037] Among them, two symmetrical second slide rails 301 are fixedly installed on the inner wall of the egg dispensing tube 100 at the position corresponding to the second gate plate 302, and second pulleys 303 cooperating with the second slide rails 301 are rotatably installed on both sides of the second gate plate 302. The second gate plate 302 is slidably installed in the egg dispensing tube 100 through the second pulleys 303 cooperating with the second slide rails 301. Through the cooperation of the second pulleys 303 and the second slide rails 301, during the rotation of the second disc 306, the second disc 306 can drive the second gate plate 302 to slide along the second slide rail 301 through the second connecting rod 307, so that the second gate plate 302 makes reciprocating motion along the second slide rail 301, thereby controlling the opening and closing of the second gate plate 302.

[0038] Among them, a baffle 211 is fixedly installed on the lower surface of the first slide rail 201 at a position corresponding to the end of the second gate plate 302. The baffle 211 is used to prevent the capsule egg 600 from moving synchronously with the second gate plate 302. When the second gate plate 302 is opened, the baffle 211 is used to block the capsule egg 600 on the second gate plate 302 to prevent the capsule egg 600 from moving synchronously with the second gate plate 302, ensuring that when the second gate plate 302 is opened, the capsule egg 600 on the second gate plate 302 can fall from the position where the second gate plate 302 is opened, and then the capsule egg 600 falls into the capsule egg outlet 500, and the user can take out the capsule egg 600 from the capsule egg outlet 500.

[0039] Among them, a second support plate 400 is provided at the bottom of the egg tube 100, and a capsule egg outlet 500 is provided on the lower surface of the second support plate 400 and is connected to the egg tube 100. After the capsule egg 600 passes through the first egg sensor mechanism 200 and the second egg sensor mechanism 300 in sequence, the capsule egg 600 will fall into the capsule egg outlet 500, and the user can take out the capsule egg 600 from the capsule egg outlet 500.

[0040] Among them, the first gate plate 202 and the second gate plate 302 are arranged in parallel, and the first gate plate 202 and the second gate plate 302 are both arranged perpendicular to the egg dispensing tube 100. The interior of the egg dispensing tube 100 is hollow. When in use, the first gate plate 202 and the second gate plate 302 can support the capsule eggs 600, and separate the capsule eggs 600 that need to be discharged, so as to avoid the capsule eggs 600 piling up and causing egg jamming.

[0041] Working principle: When in use, the first egg-out sensor mechanism 200 and the second egg-out sensor mechanism 300 in the egg-out tube 100 are used to control the egg-out of the capsule 600; when the egg-out of the capsule 600 passes through the first egg-out sensor mechanism 200, the first gate plate 202 is used to support the egg-out of the capsule 600. When the egg-out of the capsule 600 needs to be out, the first motor 206 drives the first disc 207 to rotate, and the first disc 207 and the first connecting rod 208 are combined into an eccentric wheel structure. Then, the first disc 207 drives the first gate plate 202 to reciprocate through the first connecting rod 208, thereby controlling the opening and closing of the first gate plate 202. When the first gate 202 is opened, the capsule egg 600 falls from the first gate plate 202. At the same time, during the rotation of the first disc 207, the first proximity probe 210 on the upper surface of the first disc 207 passes through the first proximity sensor 209. The first proximity sensor 209 receives a signal once. Every time the first disc 207 rotates one circle, the first proximity probe 210 passes through the first proximity sensor 209 once. Therefore, in the process of controlling the opening and closing of the first gate plate 202 once, the number of capsule eggs 600 taken out at one time can be detected through the cooperation of the first proximity sensor 209 and the first proximity probe 210. When the capsule egg 600 passes through the second egg-taking sensor When the mechanism 300 is in operation, the second gate plate 302 is used to support the capsule egg 600. When the egg needs to be taken out, the second motor 305 drives the second disc 306 to rotate. The second disc 306 and the second connecting rod 307 are combined into an eccentric wheel structure. Then, the second disc 306 drives the second gate plate 302 to reciprocate through the second connecting rod 307, thereby controlling the opening and closing of the second gate plate 302. When the second gate plate 302 is opened, the capsule egg 600 falls from the second gate plate 302. At the same time, during the rotation of the second disc 306, the second proximity probe 309 on the lower surface of the second disc 306 passes through the second proximity sensor 309. 8. The second proximity sensor 308 receives a signal once. Every time the second disc 306 rotates one circle, the second proximity probe 309 will pass through the second proximity sensor 308 once. Therefore, in the process of controlling the second gate 302 to open and close once, the cooperation of the second proximity sensor 308 and the second proximity probe 309 can detect the number of eggs taken out of the capsule eggs 600. The first egg-out sensing mechanism 200 and the second egg-out sensing mechanism 300 control the egg-out of the capsule eggs 600 in turn, and the number of eggs taken out can be identified to avoid errors in the number of eggs taken out, thereby ensuring the stability of the egg-out and avoiding the phenomenon of egg jam.

[0042] Based on the embodiments of the present utility model, all other embodiments obtained by ordinary technicians in the field without making any creative work shall fall within the scope of protection of the present utility model.

Claims

1. A multifunctional capsule egg induction bin, comprising an egg dispensing tube (100), characterized in that: A first egg-outlet sensing mechanism (200) and a second egg-outlet sensing mechanism (300) are sequentially arranged inside the egg-outlet cylinder (100) from top to bottom. The first egg-outlet sensing mechanism (200) comprises a first gate plate (202) slidably mounted inside the egg-outlet cylinder (100). A connecting frame (204) is arranged at the bottom of one end of the first gate plate (202). A first support plate (205) is arranged on one side of the egg-outlet cylinder (100). A first motor (206) is arranged on the lower surface of the first support plate (205). A first disc (207) is provided at the output end of the first motor (206); a first connecting rod (208) is rotatably mounted at the edge of the lower surface of the first disc (207); an end of the first connecting rod (208) is rotatably connected to the bottom of the connecting frame (204); a first proximity probe (210) is provided on one side of the upper surface of the first disc (207); and a first proximity sensor (209) is provided on the lower surface of the first support plate (205) at a position corresponding to the motion trajectory of the first proximity probe (210); The second egg-discharging sensing mechanism (300) comprises a second gate (302) slidably mounted inside the egg-discharging cylinder (100); a support seat (304) is provided on one side of the egg-discharging cylinder (100); a second motor (305) is provided on the support seat (304); a second disc (306) is provided at the output end of the second motor (305); a second connecting rod (307) is rotatably mounted at the edge of the upper surface of the second disc (306); the end of the second connecting rod (307) is rotatably connected to the end of the second gate (302); a second proximity probe (309) is provided on one side of the lower surface of the second disc (306); and a second proximity sensor (308) is provided on the upper surface of the support seat (304) at a position corresponding to the movement trajectory of the second proximity probe (309).

2. The multifunctional capsule induction warehouse according to claim 1, characterized in that: Two symmetrical first slide rails (201) are fixedly installed on the inner wall of the egg dispensing tube (100) at positions corresponding to the first gate plate (202); first pulleys (203) cooperating with the first slide rails (201) are rotatably installed on both sides of the first gate plate (202); the first gate plate (202) is slidably installed in the egg dispensing tube (100) through the first pulleys (203) cooperating with the first slide rails (201).

3. The multifunctional capsule induction warehouse according to claim 2, characterized in that: Two symmetrical second slide rails (301) are fixedly installed on the inner wall of the egg dispensing tube (100) at positions corresponding to the second gate plate (302); second pulleys (303) cooperating with the second slide rails (301) are rotatably installed on both sides of the second gate plate (302); the second gate plate (302) is slidably installed in the egg dispensing tube (100) through the second pulleys (303) cooperating with the second slide rails (301).

4. The multifunctional capsule induction warehouse according to claim 3, characterized in that: A baffle (211) is fixedly installed on the lower surface of the first slide rail (201) at a position corresponding to the end of the second gate plate (302), and the baffle (211) is used to prevent the capsule toy (600) from moving synchronously with the second gate plate (302).

5. The multifunctional capsule induction warehouse according to claim 4, characterized in that: A second support plate (400) is provided at the bottom of the egg dispensing tube (100), and a capsule egg outlet (500) which is in communication with the egg dispensing tube (100) is provided on the lower surface of the second support plate (400).

6. The multifunctional capsule induction warehouse according to claim 5, characterized in that: The first gate plate (202) and the second gate plate (302) are arranged in parallel, and the first gate plate (202) and the second gate plate (302) are both arranged perpendicular to the egg dispensing tube (100).