A continuous disinfection system for cloth toys

Through the cloth toy disinfection system with condenser and swing ball structure, the swing of the Unicom pipe is driven by high-temperature steam to drive the toys to shake, and combined with high-temperature steam engine and atomizer for disinfection, the complex and high-energy consumption of the existing system is solved, and the low-cost, durable and efficient disinfection effect is achieved.

CN119607233BActive Publication Date: 2025-07-22惠州市添美工艺品有限公司
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Patent Information

Application Number
CN202411899083.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-07-22
Estimated Expiration
2044-12-23

AI Technical Summary

Technical Problem

The existing cloth toy disinfection system has complex mechanisms, high costs, waste of energy, and easy to damage the driving source, making it difficult to achieve continuous automated disinfection and subsequent cleaning steps.

Method used

The condensing tube and swing ball structure are adopted. The temperature of the high-temperature steam is repeatedly unbalanced and the Unicom pipe is driven to swing back and forth, which drives toys to sway and rinse. The high-temperature steam engine and atomizer are used to disinfect, and the waste heat is recovered by the condenser, which simplifies the system structure.

Benefits of technology

It realizes continuous automated disinfection and rinsing with low cost and low energy consumption, avoids damage to the drive source, improves system durability, and ensures disinfection effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a continuous disinfection system for cloth toys, which relates to the technical field of toy disinfection. It includes a condensing pipe, and two emission pipes are connected to both ends of the condensing pipe. Two emission plates are respectively connected to the side surfaces of the two emission pipes, and a number of emission holes are respectively provided on the upper surfaces of the two emission plates; it also includes a connecting pipe, the upper end of the connecting pipe is connected to a second swing ball, the lower end of the connecting pipe penetrates through a first swing ball, the lower end of the connecting pipe is inserted into the inside of the first swing ball, a swing liquid is provided inside the first swing ball, and the first swing ball is located above the emission plate. The continuous disinfection system for cloth toys provided by the present invention emits high-temperature steam through the emission holes on the emission plate, causing the connecting pipe to lose its balance of gravity and swing towards the direction of the second swing ball. When the second swing ball swings to the lower side, the second swing ball starts to be heated by the steam and its internal temperature rises, resulting in a temperature imbalance in the connecting pipe again, realizing the continuous reciprocating swing of the connecting pipe, so that after the toy is disinfected, it swings left and right passively for rinsing.
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Description

Technical Field

[0001] The present invention relates to the technical field of toy disinfection, and particularly relates to a continuous disinfection system for cloth toys. Background Art

[0002] Cloth toys refer to toys made of cloth, plush or other textile materials. These toys usually have a soft texture and diverse shapes, including animal shapes, cartoon characters, dolls, etc. Cloth toys are not only suitable for children to play with, but are also often used as decorations or collectibles.

[0003] Since children's immune systems are not fully developed, they are vulnerable to infections. Cloth toys need to be disinfected during manufacturing to ensure that the toys are not contaminated by bacteria, viruses or other microorganisms during the production process, thus protecting children's health. Disinfection can reduce the pathogens that may be carried on the toys and reduce the risk of children getting sick.

[0004] However, the mechanisms set in the existing toy disinfection systems are complex, requiring many driving sources, with high costs, wasting a lot of energy, and it is difficult to perform subsequent cleaning and dehydration of the toys at one time. Moreover, in the disinfection system, due to the storage of high-temperature steam, the temperature inside the system will rise sharply, which will cause the driving sources to be exposed to high temperatures, affecting their durability and being extremely prone to damage. Therefore, there is a great need for a system with fewer driving sources, low costs and good linkage to perform continuous automated pipeline disinfection and subsequent steps on toys. Summary of the Invention

[0005] The purpose of the present invention is to provide a continuous disinfection system for cloth toys to solve the above deficiencies in the prior art.

[0006] To achieve the above purpose, the present invention provides the following technical solutions:

[0007] A continuous disinfection system for cloth toys includes a condenser tube, and two emission tubes are connected to both ends of the condenser tube. Two emission plates are respectively connected to the side surfaces of the two emission tubes, and a number of emission holes are respectively provided on the upper surfaces of the two emission plates;

[0008] It also includes a connecting tube. The upper end of the connecting tube is connected to a second swinging ball, and the lower end of the connecting tube penetrates through a first swinging ball. The lower end of the connecting tube is inserted into the first swinging ball. A swinging liquid is provided inside the first swinging ball. The first swinging ball is located above the emission plate. When steam emits from the emission holes, the swinging liquid is pressed into the second swinging ball under the action of air pressure, causing the connecting tube to lose balance in gravity and swing. When the second swinging ball swings to the lower side, the second swinging ball is heated by the steam, causing the connecting tube to lose balance in gravity again and swing back.

[0009] As a further preferred solution in the embodiments of the present invention, a critical rod and a rotating rod are fixedly connected to the side surface of the middle part of the connecting pipe. One end of the critical rod is fixedly connected to a disinfection chamber. A number of disinfection holes are respectively provided on both side surfaces of the disinfection chamber. A water outlet valve is communicated with the lower surface of the disinfection chamber. It further includes a housing. One end of the rotating rod is rotatably connected to one side surface inside the housing. When the connecting pipe swings back and forth, the disinfection chamber is driven to swing back and forth.

[0010] As a further preferred solution in the embodiments of the present invention, a high-temperature steam engine is provided on one side surface of the housing. A steam pipe is communicated with one side surface of the high-temperature steam engine. One end of the steam pipe penetrates through one side of the housing and is communicated with a control valve. A connecting pipe is communicated with the lower end of the control valve. A number of steam nozzles are communicated with one side surface of the connecting pipe. A number of atomizers are respectively provided at one ends of the number of steam nozzles. The number of atomizers are respectively communicated with the number of disinfection holes.

[0011] As a further preferred solution in the embodiments of the present invention, a diversion groove is provided on the upper surface of the condensation pipe. A diversion plate is connected to the upper surface of the condensation pipe. A diversion cover is connected to the upper end of the diversion plate. The diversion cover is located above the disinfection chamber. High-temperature steam is diverted through the diversion cover and the diversion plate and introduced into the condensation pipe through the diversion groove for condensation.

[0012] As a further preferred solution in the embodiments of the present invention, a storage slide rail is provided on one side surface inside the housing. A storage pulley is rotatably connected to one side surface of the diversion cover. The storage pulley is slidably matched with the storage slide rail.

[0013] As a further preferred solution in the embodiments of the present invention, a telescopic rod is connected to the lower surface of the condensation pipe. A water tank is communicated with the lower surface of the condensation pipe.

[0014] As a further preferred solution in the embodiments of the present invention, a first connecting rod is fixedly connected to one side surface of the water tank. One end of the first connecting rod is rotatably connected to a first force-increasing rod. The upper end of the first force-increasing rod is rotatably connected to a second force-increasing rod. One end of the second force-increasing rod is rotatably connected to a second connecting rod.

[0015] As a further preferred solution in the embodiments of the present invention, a connecting plate is fixedly connected to one end of the second connecting rod. A dehydration block is fixedly connected to the lower surface of the connecting plate. The dehydration block is located directly above the disinfection chamber, and the size of the dehydration block is the same as the internal size of the disinfection chamber.

[0016] As a further preferred solution in the embodiments of the present invention, a telescopic pipe is connected to the upper surface of the dehydration block. The upper end of the telescopic pipe is connected to a top plate.

[0017] As a further preferred solution in the embodiments of the present invention, support feet are fixedly connected to the lower surface of the housing.

[0018] In the above technical solution, the beneficial effects of a continuous disinfection system for cloth toys provided by the present invention are as follows:

[0019] In the present invention, a condensing pipe is provided to collect high-temperature steam. A part of the high-temperature steam is emitted through the emission holes on the emission plate, causing the temperature inside the first swinging ball to rise, thereby increasing the air pressure inside the first swinging ball. Under the action of the air pressure, the swinging liquid is pressed into the second swinging ball through the connecting pipe. At this time, the connecting pipe is out of balance in gravity and swings towards the direction of the second swinging ball. When the second swinging ball swings to the lower side, the first swinging ball is lifted, resulting in the surface steam cooling and taking away heat, and the internal temperature drops. While the second swinging ball starts to be heated by the steam and the internal temperature rises, causing the temperature inside the connecting pipe to be out of balance again. The air pressure change causes the swinging liquid to flow back into the first swinging ball, making the connecting pipe out of balance in gravity again and swing back. This cycle of repeated temperature imbalance realizes the continuous reciprocating swing of the connecting pipe, thereby driving the toy to shake reciprocally, so that after the toy is disinfected, it swings left and right passively for rinsing.

[0020] It should be understood that the foregoing general description and the following detailed description are merely exemplary and explanatory and are not intended to limit the present disclosure.

[0021] This application document provides an overview of various implementations or examples of the technologies described in the present disclosure, and is not a complete disclosure of the entire scope or all features of the disclosed technologies. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the embodiments. Obviously, the drawings in the following description are only some embodiments described in the present invention. For those of ordinary skill in the art, other drawings can also be obtained based on these drawings.

[0023] Figure 1 It is a schematic diagram of the overall structure provided by an embodiment of the present invention;

[0024] Figure 2 It is a schematic diagram of the overall structure from another perspective provided by an embodiment of the present invention;

[0025] Figure 3 It is a schematic diagram of the internal structure provided by an embodiment of the present invention;

[0026] Figure 4 It is provided by an embodiment of the present invention Figure 3 The partial enlarged structure schematic diagram at A;

[0027] Figure 5 It is provided by an embodiment of the present invention Figure 3 The partial enlarged structure schematic diagram at B;

[0028] Figure 6 Schematic diagram of the internal structure of the housing provided by the embodiment of the present invention;

[0029] Figure 7 Schematic diagram of the internal structure of the housing from another perspective provided by the embodiment of the present invention;

[0030] Figure 8 Provided by the embodiment of the present invention Figure 7 Schematic diagram of the partially enlarged structure at position C in

[0031] Figure 9 Schematic diagram of the structure of the condenser tube and the flow guide cover provided by the embodiment of the present invention;

[0032] Figure 10 Provided by the embodiment of the present invention Figure 9 Schematic diagram of the partially enlarged structure at position D in

[0033] Figure 11 Schematic diagram of the internal structure of the connecting pipe provided by the embodiment of the present invention.

[0034] Explanation of reference numerals:

[0035] 1. Housing; 101. Support feet; 102. High-temperature steam engine; 103. Disinfection chamber; 104. Disinfection holes; 105. Water outlet valve; 2. Connecting pipe; 201. First swing ball; 202. Second swing ball; 203. Swing liquid; 204. Critical rod; 205. Rotating rod; 3. Steam pipe; 301. Control valve; 302. Connecting pipe; 303. Steam nozzle; 304. Atomizer; 4. Condenser tube; 401. Flow guide groove; 402. Discharge pipe; 403. Discharge plate; 404. Discharge holes; 405. Telescopic rod; 406. Water tank; 5. Flow guide cover; 501. Flow guide plate; 502. Storage pulley; 503. Storage slide rail; 6. First connecting rod; 601. First force-increasing rod; 602. Second force-increasing rod; 603. Second connecting rod; 7. Dehydration block; 701. Telescopic tube; 702. Connecting plate; 703. Top plate. Detailed implementation manners

[0036] To make the objectives, technical solutions, and advantages of the embodiments of the present disclosure clearer, the technical solutions of the embodiments of the present disclosure will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present disclosure. Apparently, the described embodiments are some, but not all, of the embodiments of the present disclosure. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present disclosure without creative efforts shall fall within the scope of protection of the present disclosure.

[0037] Please refer to Figure 1 - Figure 11, A continuous disinfection system for cloth toys, including a condensing pipe 4. Both ends of the condensing pipe 4 are connected to two emitting pipes 402. Two emitting plates 403 are respectively connected to the side surfaces of the two emitting pipes 402. A number of emitting holes 404 are respectively provided on the upper surfaces of the two emitting plates 403;

[0038] It also includes a connecting pipe 2. The upper end of the connecting pipe 2 is connected to a second swing ball 202. The lower end of the connecting pipe 2 penetrates through a first swing ball 201. The lower end of the connecting pipe 2 is inserted into the inside of the first swing ball 201. A swing liquid 203 is provided inside the first swing ball 201. The first swing ball 201 is located above the emitting plate 403. When steam is emitted from the emitting holes 404, the swing liquid 203 is pressed into the second swing ball 202 under the action of air pressure, causing the connecting pipe 2 to lose balance in gravity and swing. When the second swing ball 202 swings to the lower side, the second swing ball 202 is heated by the steam, causing the connecting pipe 2 to lose balance in gravity again and swing back.

[0039] In the present invention, by setting the condensing pipe 4 to collect high-temperature steam, a part of the high-temperature steam is emitted through the emitting holes 404 on the emitting plate 403, causing the temperature inside the first swing ball 201 to rise, thereby increasing the air pressure inside the first swing ball 201. Under the action of air pressure, the swing liquid 203 is pressed into the second swing ball 202 through the connecting pipe 2. At this time, the connecting pipe 2 loses balance in gravity and swings towards the direction of the second swing ball 202. When the second swing ball 202 swings to the lower side, the first swing ball 201 is lifted, resulting in the surface steam cooling and taking away heat, and the inside cools down. While the second swing ball 202 starts to be heated by the steam and the inside temperature rises, causing the connecting pipe 2 to lose balance in temperature again. The air pressure change causes the swing liquid 203 to flow back into the first swing ball 201, causing the connecting pipe 2 to lose balance in gravity again and swing back. This cycle of repeated temperature imbalance realizes the continuous reciprocating swing of the connecting pipe 2, thereby driving the toy to perform reciprocating shaking, so that after the toy is disinfected, it swings left and right passively for rinsing.

[0040] Further, the swing liquid 203 is liquid ether, and its boiling point is only thirty-four degrees, resulting in its extremely easy volatility. When it is not moving, the swing liquid 203 in the lower half of the tail is liquid ether, and the upper half is gaseous ether.

[0041] Furthermore, when the temperature of the first swinging ball 201 rises due to being blown by steam while the temperature of the second swinging ball 202 does not rise, the air pressure inside the second swinging ball 202 decreases. The swinging liquid 203 inside the first swinging ball 201 rises along the connecting pipe 2 due to the suction force. As a result, the weight of the second swinging ball 202 increases, the weight of the first swinging ball 201 decreases, and the position of the center of gravity changes, thus causing a pitching phenomenon. When the center of gravity exceeds the rotating rod 205 and moves towards the second swinging ball 202, the connecting pipe 2 will rotate. When the second swinging ball 202 comes into contact with the steam, the swinging liquid 203 rises along the second swinging ball 202 to the first swinging ball 201 again. At this time, part of the swinging liquid 203 is stored in the middle connecting pipe 2 and separated from the liquid below, but its position is still inclined, and the swinging liquid 203 will flow down again, and the connecting pipe 2 stands upright. At this time, the second swinging ball 202 has been heated up, while the first swinging ball 201 is far away from the steam and its temperature begins to drop, forming an air pressure difference again, so the above scene will appear again, repeating in a cycle, making the connecting pipe 2 rotate continuously.

[0042] Specifically, the volume of the first swinging ball 201 is larger than that of the second swinging ball 202, so that the first swinging ball 201 is at a lower position in the static state. The connecting pipe 2 is inserted into and extends deep into the first swinging ball 201, so that the swinging liquid 203 can flow back smoothly after being unbalanced.

[0043] Further, the connecting pipe 2 moves by using the waste heat of the high-temperature steam, recovering the waste heat, being more energy-saving and environmentally friendly, and avoiding the pollution caused by using traditional mechanical transmission structures. Moreover, when the high-temperature steam system is working, the temperature inside the system will rise sharply, which will inevitably affect the service life of mechanical drives. However, the structure of this system is simple, greatly avoiding damage and being more durable.

[0044] Furthermore, the heat dissipation holes 404 on the heat dissipation plate 403 are arranged below the first swinging ball 201 and the second swinging ball 202, so that the high-temperature steam can be precisely blown on the first swinging ball 201 and the second swinging ball 202, bringing about temperature changes. And in the static state, the first swinging ball 201 is below and the second swinging ball 202 is above, so that the second swinging ball 202 is blown first until it rotates, and the second swinging ball 202 will be blown by the steam to form a temperature change only when it rotates to the lower position.

[0045] In the embodiment further provided by the present invention, a critical rod 204 and a rotating rod 205 are fixedly connected to the side surface of the middle part of the connecting pipe 2. One end of the critical rod 204 is fixedly connected to a disinfection chamber 103. A plurality of disinfection holes 104 are respectively arranged on both side surfaces of the disinfection chamber 103. The lower surface of the disinfection chamber 103 is communicated with a water outlet valve 105. It further includes a housing 1. One end of the rotating rod 205 is rotatably connected to the inner side surface of one side of the housing 1. When the connecting pipe 2 swings back and forth, it drives the disinfection chamber 103 to swing back and forth.

[0046] Specifically, toys to be disinfected are placed in the disinfection chamber 103. When the connecting pipe 2 swings back and forth with the critical rod 204 as the axis, it drives the disinfection chamber 103 to swing back and forth.

[0047] In an embodiment further provided by the present invention, a high-temperature steam engine 102 is provided on one side surface of the outer shell 1. A steam pipe 3 is connected to one side surface of the high-temperature steam engine 102. One end of the steam pipe 3 penetrates through one side of the outer shell 1 and is connected to a control valve 301. A connecting pipe 302 is connected to the lower end of the control valve 301. A number of steam nozzles 303 are connected to one side surface of the connecting pipe 302. A number of atomizers 304 are respectively provided at one ends of the number of steam nozzles 303. The number of atomizers 304 are respectively communicated with a number of disinfection holes 104.

[0048] Specifically, the high-temperature steam engine 102 generates high-temperature steam. The steam nozzles 303 and the atomizers 304 spray the high-temperature steam onto the toys. The high-temperature steam speeds up the movement speed of the dirt molecules on the toys and destroys the binding force between them, so as to achieve the purpose of removing stains; at the same time, the high-temperature steam can also eliminate various bacteria, mites, microorganisms and pathogens attached to the object, realizing the effect of disinfecting and sterilizing the toys.

[0049] In an embodiment further provided by the present invention, a diversion groove 401 is provided on the upper surface of the condensing pipe 4. A diversion plate 501 is connected to the upper surface of the condensing pipe 4. The upper end of the diversion plate 501 is connected to a diversion cover 5. The diversion cover 5 is located above the disinfection chamber 103. The high-temperature steam is diverted through the diversion cover 5 and the diversion plate 501 and introduced into the condensing pipe 4 through the diversion groove 401 for condensation.

[0050] Specifically, the lower surface of the diversion cover 5 is an arc surface, and the side surface of the diversion plate 501 is another arc surface connected thereto. The diversion cover 5 and the diversion plate 501 divert the high-temperature steam generated during disinfection to the diversion groove 401. The high-temperature steam enters the condensing pipe 4 through the diversion groove 401. Part of it is condensed into condensed water by the condensing pipe 4, and part of it escapes into the emission pipe 402 and is finally emitted through the emission holes 404.

[0051] In an embodiment further provided by the present invention, a storage slide rail 503 is provided on one side surface inside the outer shell 1. A storage pulley 502 is rotatably connected to one side surface of the diversion cover 5. The storage pulley 502 is slidably engaged with the storage slide rail 503.

[0052] In an embodiment further provided by the present invention, a telescopic rod 405 is connected to the lower surface of the condensing pipe 4. A water tank 406 is communicated with the lower surface of the condensing pipe 4.

[0053] Specifically, during the collection of condensed water in the water tank 406, under the action of gravity, the telescopic rod 405 is continuously driven to contract, causing the condenser tube 4 on the telescopic rod 405 to continuously descend. As a result, the deflector 501 drives the deflector cover 5 to move downward. The storage slide rail 503 is in the shape of a "factory", and the storage pulley 502 slides to drive the deflector cover 5 to be stored under the storage slide rail 503.

[0054] Furthermore, a spring is arranged inside the telescopic rod 405 for the automatic reset of the deflector cover 5.

[0055] Even further, a water outlet valve channel is provided below the water tank 406. After the disinfection is completed, the water in the water tank 406 is discharged through the water outlet valve channel, and under the reset effect of the spring, the entire system returns to the initial state.

[0056] In an embodiment further provided by the present invention, a first connecting rod 6 is fixedly connected to one side surface of the water tank 406. One end of the first connecting rod 6 is rotatably connected to a first force-increasing rod 601. The upper end of the first force-increasing rod 601 is rotatably connected to a second force-increasing rod 602. One end of the second force-increasing rod 602 is rotatably connected to a second connecting rod 603.

[0057] In an embodiment further provided by the present invention, one end of the second connecting rod 603 is fixedly connected to a connecting plate 702. A dehydrating block 7 is fixedly connected to the lower surface of the connecting plate 702. The dehydrating block 7 is located directly above the disinfection chamber 103, and the size of the dehydrating block 7 is the same as the internal size of the disinfection chamber 103.

[0058] Specifically, when the water tank 406 moves downward, it drives the dehydrating block 7 connected to the second connecting rod 603 to move downward synchronously. The settings of the first force-increasing rod 601 and the second force-increasing rod 602 constitute a set of force-increasing connecting rod mechanisms, increasing the downward force, so that the dehydrating block 7 has sufficient force to press the toy for dehydration after moving downward.

[0059] In an embodiment further provided by the present invention, a telescopic tube 701 is connected to the upper surface of the dehydrating block 7. The upper end of the telescopic tube 701 is connected to a top plate 703.

[0060] Furthermore, a spring is arranged inside the telescopic tube 701 for the automatic reset of the dehydrating block 7.

[0061] Specifically, the top plate 703 is fixed to other equipment or the ceiling. The telescopic tube 701 itself has elasticity and internal friction, enabling it to fix the dehydrating block 7 well and cooperate with the dehydrating block 7 to descend when the dehydrating block 7 descends.

[0062] In an embodiment further provided by the present invention, support feet 101 are fixedly connected to the lower surface of the outer shell 1.

[0063] In the present invention, firstly, the toy is placed in the disinfection chamber 103, the high temperature steam engine 102 is started to produce high temperature steam, the control valve 301 is opened, the steam nozzle 303 and the atomizer 304 spray the high temperature steam, and the high temperature steam is sprayed onto the toy through the disinfection hole 104, so as to disinfect the toy and clean the outside. During disinfection, the drifting high temperature steam rises below the guide cover 5, the guide cover 5 and the guide plate 501 guide the high temperature steam to the guide groove 401, and the high temperature steam enters the condenser 4 through the guide groove 401, a part of which is condensed into condensed water by the condenser 4, and a part of which escapes into the dispensing pipe 402, and finally is dissipated through the dispensing hole 404. The emitted high-temperature steam escapes to the surface of the first swinging ball 201, causing the internal temperature of the first swinging ball 201 to increase, thereby causing the internal air pressure of the first swinging ball 201 to increase. Under the action of the air pressure, the swinging liquid 203 is pressed into the second swinging ball 202 through the connecting pipe 2. At this time, the connecting pipe 2 has an imbalance in gravity and swings toward the second swinging ball 202. When the second swinging ball 202 swings downward, the first swinging ball 201 is lifted, causing the surface steam to cool and take away heat, and the internal temperature drops. The second swinging ball 202 begins to be heated by the steam and the internal temperature rises, causing the temperature in the connecting pipe 2 to be unbalanced again. The change in air pressure causes the swinging liquid 203 to flow back into the first swinging ball 201, causing the connecting pipe 2 to swing back again due to an imbalance in gravity. This cycle of repeated temperature imbalance realizes the continuous reciprocating swing of the connecting pipe 2, thereby driving the toy to shake back and forth, so that the toy is passively shaken left and right for rinsing after disinfection. After the disinfection is completed, the steam part remains in the disinfection chamber 103 to form a rinsing water flow, and the disinfection is stopped while rinsing, that is, the high-temperature steam engine 102 is turned off to stop the generation of high-temperature steam. At this time, rinsing is still in progress, and condensed water is continuously generated and enters the water tank 406. During the condensed water collection process, under the action of gravity, the telescopic rod 405 is continuously driven to contract, so that the condensation tube 4 on the telescopic rod 405 is continuously lowered, so that the guide plate 501 drives the guide cover 5 to move downward, and the storage pulley 502 slides to drive the guide cover 5 to be stored in the lower part of the storage slide rail 503, so that the guide cover 5 no longer covers the top of the disinfection chamber 103, and at the same time, the telescopic rod 405 drives the first connecting rod when it contracts. 6 descends, the first connecting rod 6 drives the first boosting rod 601 to rotate, and the first boosting rod 601 rotates to drive the second boosting rod 602 to rotate. At the same time, the first boosting rod 601 and the second boosting rod 602 increase the descending force, and the second connecting rod 603 converts the rotational motion into a lifting motion, driving the dehydration block 7 to descend, so that it enters the disinfection chamber 103 while the deflector 5 is stored. At this time, since the high-temperature steam has dissipated, the temperature in the connecting pipe 2 no longer changes, and the swing rinsing is no longer performed. The disinfection chamber 103 stops, and the water outlet valve 105 is opened to discharge the rinsing water, so that the dehydration block 7 can stably press the toy when entering, so that the toy is automatically dehydrated.

[0064] Only some exemplary embodiments of the present invention have been described by way of illustration. Without doubt, for those of ordinary skill in the art, the described embodiments can be modified in various different ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and description are illustrative in nature and should not be construed as limiting the scope of the claims of the present invention.

Claims

1. A continuous disinfection system for cloth toys, comprising a condensing pipe (4), characterized in that: Both ends of the condenser tube (4) are communicated with two emission tubes (402), and two emission plates (403) are respectively communicated with the side surfaces of the two emission tubes (402). A plurality of emission holes (404) are respectively arranged on the upper surfaces of the two emission plates (403); It further includes a connecting pipe (2). The upper end of the connecting pipe (2) is communicated with a second swing ball (202), and the lower end of the connecting pipe (2) penetrates through a first swing ball (201). The lower end of the connecting pipe (2) is inserted into the inside of the first swing ball (201). A swing liquid (203) is arranged inside the first swing ball (201). The first swing ball (201) is located above the emission plate (403). When steam is emitted from the emission holes (404), the swing liquid (203) is pressed into the second swing ball (202) under the action of air pressure, causing the connecting pipe (2) to lose gravity balance and swing. When the second swing ball (202) swings to the lower side, the second swing ball (202) is heated by steam, causing the connecting pipe (2) to lose gravity balance again and swing back; A critical rod (204) and a rotating rod (205) are fixedly connected to the side surface of the middle part of the connecting pipe (2). One end of the critical rod (204) is fixedly connected to a disinfection chamber (103). A plurality of disinfection holes (104) are respectively arranged on the two side surfaces of the disinfection chamber (103). A water outlet valve (105) is communicated with the lower surface of the disinfection chamber (103). It further includes a housing (1). One end of the rotating rod (205) is rotatably connected to the inner side surface of one side of the housing (1). When the connecting pipe (2) swings back and forth, it drives the disinfection chamber (103) to swing back and forth; A diversion groove (401) is arranged on the upper surface of the condenser tube (4). A diversion plate (501) is connected to the upper surface of the condenser tube (4). The upper end of the diversion plate (501) is connected to a diversion cover (5). The diversion cover (5) is located above the disinfection chamber (103). High-temperature steam is diverted through the diversion cover (5) and the diversion plate (501), and enters the condenser tube (4) through the diversion groove (401) for condensation.

2. The continuous disinfection system for cloth toys according to claim 1, wherein A high-temperature steam engine (102) is arranged on one side surface of the housing (1). A steam pipe (3) is communicated with one side surface of the high-temperature steam engine (102). One end of the steam pipe (3) penetrates through one side of the housing (1) and is communicated with a control valve (301). A connecting pipe (302) is communicated with the lower end of the control valve (301). A plurality of steam spray nozzles (303) are communicated with one side surface of the connecting pipe (302). A plurality of atomizers (304) are respectively arranged at one ends of the plurality of steam spray nozzles (303). The plurality of atomizers (304) are respectively communicated with the plurality of disinfection holes (104).

3. The continuous disinfection system for cloth toys according to claim 2, characterized in that, A storage slide rail (503) is arranged on the inner side surface of one side of the housing (1). A storage pulley (502) is rotatably connected to one side surface of the diversion cover (5). The storage pulley (502) is slidably matched with the storage slide rail (503).

4. A continuous disinfection system for cloth toys according to claim 3, characterized in that, A telescopic rod (405) is connected to the lower surface of the condenser tube (4). A water tank (406) is communicated with the lower surface of the condenser tube (4).

5. The continuous disinfection system for cloth toys according to claim 4, wherein One side surface of the water tank (406) is fixedly connected with a first connecting rod (6), one end of the first connecting rod (6) is rotatably connected with a first force-increasing rod (601), the upper end of the first force-increasing rod (601) is rotatably connected with a second force-increasing rod (602), and one end of the second force-increasing rod (602) is rotatably connected with a second connecting rod (603).

6. The continuous disinfection system for cloth toys according to claim 5, characterized in that, One end of the second connecting rod (603) is fixedly connected with a connecting plate (702), the lower surface of the connecting plate (702) is fixedly connected with a dehydrating block (7), the dehydrating block (7) is located directly above the disinfection chamber (103), and the size of the dehydrating block (7) is the same as the internal size of the disinfection chamber (103).

7. The continuous disinfection system for cloth toys according to claim 6, characterized in that, The upper surface of the dehydrating block (7) is connected with a telescopic pipe (701), and the upper end of the telescopic pipe (701) is connected with a top plate (703).

8. A continuous disinfection system for cloth toys according to claim 7, characterized in that, The lower surface of the outer shell (1) is fixedly connected with support feet (101).

Citation Information

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