Curing and cleaning integrated machine

By integrating an ultrasonic cleaning tank and a curing chamber into a single device, the complexity and space requirements caused by separating cleaning and curing in dental mold processing are solved, achieving efficient and safe integrated cleaning and curing operations.

CN224374905UActive Publication Date: 2026-06-19SHENZHEN NOVA ROBOTICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-25
Publication Date
2026-06-19

AI Technical Summary

Technical Problem

In the 3D printing process for dental mold processing, cleaning and curing need to be carried out separately, which leads to complex operation, high time cost and large equipment space occupation.

Method used

Design an integrated cleaning and curing machine that combines an ultrasonic cleaning tank and a curing chamber into one device, enabling cleaning, drying, and curing to be completed on the same equipment, reducing product transfer.

Benefits of technology

It improves processing efficiency, reduces the risk of product damage, saves space and time costs, and simplifies the operation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of cleaning solidification all-in-one machine, it is related to 3D printing technical field, wherein, the cleaning solidification all-in-one machine includes: cabinet;Ultrasonic cleaning pool, it is embedded in the top of the cabinet, the ultrasonic cleaning pool is used to accommodate cleaning fluid and product to be cleaned;Top cover, one end rotationally arranged in the top of the cabinet, to open and close the ultrasonic cleaning pool;Solidification box, it is embedded in the side of the cabinet, the solidification box is used to dry and solidify the product after cleaning.The technical scheme provided by the utility model realizes the function integration of cleaning and solidification, facilitates worker operation and improves processing efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of 3D printing technology, and in particular to a cleaning and curing integrated machine. Background Technology

[0002] Currently, the following problems exist in 3D printing processes such as dental mold processing: On the one hand, users need to transfer the model from the cleaning machine to the curing machine, which undoubtedly increases the complexity of the operation, prolongs the time cost of the entire operation, and reduces work efficiency; on the other hand, since cleaning and curing are two separate devices, this undoubtedly results in a large overall space occupied by the equipment. Utility Model Content

[0003] The main purpose of this invention is to propose an integrated cleaning and curing machine to solve the aforementioned technical problems.

[0004] To achieve the above objectives, this utility model proposes an integrated cleaning and curing machine, comprising:

[0005] chassis;

[0006] An ultrasonic cleaning tank is embedded in the top of the housing and is used to hold the cleaning solution and the product to be cleaned.

[0007] The top cover is rotatably mounted on the top of the housing to open and close the ultrasonic cleaning tank.

[0008] A curing chamber, embedded in the side of the housing, is used to dry and cure the cleaned product.

[0009] In one embodiment, at least two ultrasonic cleaning tanks are provided, and the at least two ultrasonic cleaning tanks are arranged side by side on the top of the housing.

[0010] In one embodiment, the integrated cleaning and curing machine further includes a drain pipe located inside the machine housing. One end of the drain pipe is connected to the bottom of the ultrasonic cleaning tank, and the other end extends to the bottom of the machine housing.

[0011] In one embodiment, a valve is provided at one end of the drain pipe near the bottom of the housing, the valve being used to control the opening and closing of the drain pipe.

[0012] In one embodiment, a limiting body protrudes from one end of the top cover that is connected to the housing. The top cover has an open state and a closed state. In the closed state, the top cover is fitted to the top of the housing, and the limiting body is spaced apart from the side of the housing. In the open state, the top cover is separated from the top of the housing, and the limiting body abuts against the side of the housing to limit the top cover.

[0013] In one embodiment, the curing chamber includes:

[0014] The housing is embedded within the casing, and the housing has an opening exposed on the side of the casing;

[0015] A tray that slides into or out of the box body to hold the cleaned product;

[0016] A light source assembly is disposed on the housing, and the light source assembly is used to emit ultraviolet light into the housing;

[0017] A drying assembly is disposed on the chamber and is used to supply hot air into the chamber.

[0018] In one embodiment, an insertion port is provided on the side of the housing opposite to the opening, and the curing chamber further includes:

[0019] A sensor is disposed on the side of the tray facing the socket. When the tray slides into the box, the sensor passes through the socket. When the tray slides out of the box, the sensor detaches from the socket.

[0020] A photoelectric sensor is disposed around the periphery of the socket on the housing to detect the sensing element.

[0021] In one embodiment, an air inlet is provided on the side of the housing opposite to the opening, and the drying assembly includes:

[0022] A heater is provided at the air inlet to heat the surrounding air;

[0023] An airflow generator is located on the side of the heater away from the housing, for delivering airflow toward the air inlet.

[0024] In one embodiment, the tray has a support portion for carrying the product, the support portion being transparent, and mounting openings are provided at the top and bottom of the box. The light source assembly includes:

[0025] The first lamp panel is located at the mounting opening on the top of the housing, and multiple ultraviolet lamps are provided at the bottom of the first lamp panel;

[0026] The second lamp panel is located at the mounting port at the bottom of the housing, and a plurality of ultraviolet lamps are provided on the top of the second lamp panel;

[0027] A heat sink is provided on the housing, and the heat sink is used to deliver airflow toward the first lamp panel and the second lamp panel.

[0028] In one embodiment, the number of ultraviolet lamps on the first lamp panel is greater than the number of ultraviolet lamps on the second lamp panel; and / or, the distance from the support portion to the first lamp panel is greater than the distance from the support portion to the second lamp panel.

[0029] In the technical solution of this utility model, the integrated cleaning and curing machine includes a housing, an ultrasonic cleaning tank at the top of the housing containing cleaning fluid, and a rotatable top cover that can open and close the ultrasonic cleaning tank to protect the cleaning fluid inside. Furthermore, a curing chamber is embedded in the side of the housing, which dries and cures the products placed inside. During use, the operator first places the product in the ultrasonic cleaning tank for ultrasonic cleaning to improve cleanliness and ensure subsequent curing effects. After cleaning, the user can remove the product and place it in the curing chamber below. The curing chamber first dries the product to remove surface moisture, and then performs UV curing. Thus, cleaning, drying, and curing can be completed on a single machine, eliminating the need for repeated product transfers. This not only prevents damage caused by product transfer but also improves processing efficiency. Furthermore, the integrated functionality reduces the machine's footprint, saving space. Attached Figure Description

[0030] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0031] Figure 1 This is a schematic diagram of the integrated cleaning and curing machine provided by this utility model;

[0032] Figure 2 This is another structural schematic diagram of the cleaning and curing integrated machine provided by this utility model;

[0033] Figure 3 This is a schematic diagram of the curing chamber in the integrated cleaning and curing machine provided by this utility model;

[0034] Figure 4 This is another structural schematic diagram of the curing chamber in the integrated cleaning and curing machine provided by this utility model.

[0035] Explanation of icon numbers:

[0036] 100. Housing; 200. Ultrasonic cleaning tank; 300. Top cover; 310. Limiting body; 400. Curing box; 410. Box body; 420. Tray; 430. Light source assembly; 431. First lamp panel; 432. Second lamp panel; 433. Heat sink; 440. Drying assembly; 450. Induction plate; 460. Photoelectric sensor; 500. Drainage pipe.

[0037] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0038] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.

[0039] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.

[0040] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0041] To facilitate worker operation and improve work efficiency, this technical solution proposes an integrated cleaning and curing machine, comprising: a housing 100; an ultrasonic cleaning tank 200, embedded in the top of the housing 100, used to hold cleaning fluid and the product to be cleaned; a top cover 300, one end of which is rotatably mounted on the top of the housing 100 to open and close the ultrasonic cleaning tank 200; and a curing chamber 400, embedded in the side of the housing 100, used to dry and cure the cleaned product.

[0042] In the technical solution of this utility model, the integrated cleaning and curing machine includes a housing 100, an ultrasonic cleaning tank 200 is provided on the top of the housing 100, the ultrasonic cleaning tank 200 contains cleaning fluid, and a top cover 300 is rotatably provided on the top of the housing 100. The top cover 300 can open and close the ultrasonic cleaning tank 200 to protect the cleaning fluid in the ultrasonic cleaning tank 200. In addition, a curing chamber 400 is embedded in the side of the housing 100. The curing chamber 400 can dry and cure the products placed inside. In use, the operator can first place the product... Ultrasonic cleaning is performed in the ultrasonic cleaning tank 200 to improve the cleanliness of the product and ensure the subsequent curing effect. After cleaning, the user can take out the product and put it into the curing chamber 400 below. The curing chamber 400 first dries the product to remove surface moisture, and then the product can be UV cured. In this way, the cleaning, drying and curing of the product can be completed on one machine. The operator does not need to repeatedly transfer the product, which not only prevents damage caused by product transfer, but also improves processing efficiency. Moreover, the integrated functions reduce the footprint of the equipment and save space.

[0043] Specifically, such as Figure 1 ,and Figure 2The integrated cleaning and curing machine includes a housing 100, which serves as the main support and protection for the entire device. The housing 100 has an internal cavity for installing other components. An opening is located at the top of the housing 100, within which an ultrasonic cleaning tank 200 is embedded. The ultrasonic cleaning tank 200 has a cavity with a top opening, containing an appropriate amount of cleaning fluid and various dental mold products to be cleaned. A vibrator is located at the bottom of the ultrasonic cleaning tank 200, driving the cleaning fluid to vibrate and thus clean the products. A top cover 300 is also provided on the top of the housing 100, one end of which is hinged to the housing 100, allowing the top cover 300 to open and close the ultrasonic cleaning tank 200. When cleaning is in progress, closing the top cover 300 protects the cleaning fluid, preventing foreign objects from falling in or the liquid from evaporating unnecessarily, ensuring the stability of the cleaning process. When it is necessary to place or remove products, the top cover 300 can be opened. Furthermore, a curing chamber 400 is embedded in the side of the housing 100. The curing chamber 400 is equipped with ultraviolet lamps and a drying fan. The ultraviolet lamps are used to irradiate and cure the product, while the drying fan supplies hot air into the curing chamber 400 to dry the product. In the actual operation process, the worker first places the dental mold product to be processed in the ultrasonic cleaning tank 200, then closes the top cover 300 and starts the ultrasonic cleaning program. The ultrasonic waves propagate rapidly in the cleaning solution, removing impurities and contaminants attached to the product, thereby improving the cleanliness of the product. After the cleaning process is completed, the worker can remove the cleaned dental mold product from the ultrasonic cleaning tank 200 and place it directly into the curing chamber 400 on the side. The curing chamber 400 first turns on the drying mode, using hot air circulation and other technologies to remove moisture from the product surface, making the product surface dry. Then, the ultraviolet lamps in the curing chamber 400 are turned on, irradiating the product and causing the product to quickly change from a liquid or semi-solid state to a solid state, completing the curing process. In the above solution, the cleaning, drying and curing processes of the product can be completed on one piece of equipment. Workers do not need to repeatedly transfer products between different pieces of equipment. This not only prevents the risk of collision and damage that the product may encounter during the transfer process and reduces the product loss rate, but also simplifies the operation process and saves manpower and time costs. At the same time, due to the integration of cleaning and curing functions, the overall footprint of the equipment is reduced, freeing up more usable space in the workplace and facilitating the optimization and adjustment of the workshop layout.

[0044] like Figure 1 and Figure 2In one embodiment of this utility model, at least two ultrasonic cleaning tanks 200 are provided, arranged side by side on the top of the housing 100. In this design, two ultrasonic cleaning tanks 200 are arranged side-by-side. One ultrasonic cleaning tank 200 can be used for preliminary cleaning to remove large particles and obvious contaminants from the product surface, while the other ultrasonic cleaning tank 200 can be configured with a cleaning fluid with higher cleaning efficiency or set with stronger ultrasonic parameters for secondary deep cleaning of the product to remove tiny particles and hard-to-detect residues. This not only improves cleaning efficiency and reduces the time spent on a single product in the entire cleaning process, but also eliminates the need for workers to adjust equipment or change cleaning fluids; they simply place the corresponding product in the pre-defined ultrasonic cleaning tank 200. Furthermore, the arrangement of multiple ultrasonic cleaning tanks 200 provides more possibilities for subsequent process optimization. For example, multiple ultrasonic cleaning tanks 200 can be used to perform targeted cleaning of products of different specifications, reducing production costs.

[0045] like Figure 2 In another embodiment of this utility model, the integrated cleaning and curing machine further includes a drain pipe 500, which is disposed inside the housing 100. One end of the drain pipe 500 is connected to the bottom of the ultrasonic cleaning tank 200, and the other end extends to the bottom of the housing 100. In this technical solution, a drain pipe 500 is provided below each ultrasonic cleaning tank 200, with one end connected to the bottom of each ultrasonic cleaning tank 200 and the other end extending to the bottom of the housing 100. In addition, a controllable drain port can be provided at the bottom of each ultrasonic cleaning tank 200. When the cleaning process is completed and the cleaning fluid needs to be replaced, the operator can open the drain pipe 500, allowing the cleaning fluid to be discharged through the drain pipe 500 under gravity. This can quickly empty the cleaning fluid in the ultrasonic cleaning tank 200, reducing the time required for cleaning fluid replacement and thus improving the overall cleaning efficiency. In addition, the residue and sediment at the bottom of the cleaning tank can be discharged along with the cleaning fluid, reducing the frequency and difficulty of manual cleaning and lowering the maintenance cost of the equipment.

[0046] In another embodiment of this utility model, a valve is provided at one end of the drain pipe 500 near the bottom of the housing 100. The valve is used to control the opening and closing of the drain pipe 500. During the daily operation of the equipment, when the cleaning fluid in the ultrasonic cleaning tank 200 needs to be replaced, the operator only needs to control the valve. Opening the valve allows the cleaning fluid to flow smoothly along the drain pipe 500 into the collection area at the bottom of the housing 100 under gravity, facilitating subsequent processing or recycling of the cleaning fluid. Closing the valve ensures that the cleaning fluid remains stably in the ultrasonic cleaning tank 200, guaranteeing the normal progress of the cleaning process. This avoids the problem of excessive downtime caused by the cumbersome drain operation of traditional equipment, thus improving cleaning efficiency.

[0047] like Figure 1 In one embodiment of this utility model, a limiting body 310 protrudes from one end of the top cover 300 that connects to the housing 100. The top cover 300 has an open state and a closed state. In the closed state, the top cover 300 is fitted against the top of the housing 100, and the limiting body 310 is spaced apart from the side of the housing 100. In the open state, the top cover 300 is separated from the top of the housing 100, and the limiting body 310 abuts against the side of the housing 100 to limit the top cover 300. By providing the limiting body 310 on the top cover 300, positioning and support are achieved during the opening and closing operation of the top cover 300, which not only improves the safety and reliability of the equipment but also enhances the user's operating experience.

[0048] like Figure 3 In one embodiment of this utility model, the curing chamber 400 includes: a chamber body 410, embedded within the housing 100, the chamber body 410 having an opening exposed on the side of the housing 100; a tray 420, slidably fitted with the chamber body 410 to slide into or out of the chamber body 410, the tray 420 being used to hold the cleaned product; a light source assembly 430, disposed on the chamber body 410, the light source assembly 430 being used to emit ultraviolet light into the chamber body 410; and a drying assembly 440, disposed on the chamber body 410, the drying assembly 440 being used to deliver hot air into the chamber body 410. The chamber body 410 is embedded inside the housing 100, and has an opening on one side exposed on the side of the housing 100, facilitating the placement and removal of products by the operator. The interior of the chamber 410 forms a relatively enclosed environment. The tray 420 slides into and out of the chamber 410, making it easier for operators to place or remove products without having to reach inside, thus improving safety and convenience. A light source assembly 430 is mounted on the chamber 410 and emits ultraviolet light into the chamber. This light source assembly 430 includes one or more ultraviolet lamps. A drying assembly 440 is also mounted on the chamber 410 and supplies hot air into the chamber. The hot air helps remove moisture from the product surface, accelerates the drying process, and provides suitable temperature conditions for the curing reaction.

[0049] like Figure 4In one embodiment of this utility model, an insertion port is provided on the side of the housing 410 opposite to the opening. The curing box 400 further includes: a sensing plate 450, disposed on the side of the tray 420 facing the insertion port; when the tray 420 slides into the housing 410, the sensing plate 450 passes through the insertion port; when the tray 420 slides out of the housing 410, the sensing plate 450 disengages from the insertion port; and a photoelectric sensor 460, disposed around the periphery of the insertion port on the housing 410, for detecting the sensing plate 450. The shape and size of the insertion port match the sensing plate 450 on the tray 420, ensuring that the sensing plate 450 can pass through or disengage from the insertion port when the tray 420 slides into or out of the housing 410. The sensing element 450 is installed on the side of the tray 420 facing the socket. When the tray 420 slides into the housing 410, the sensing element 450 gradually passes through the socket as the tray 420 moves. When the tray 420 slides out of the housing 410, the sensing element 450 gradually detaches from the socket as the tray 420 moves. A photoelectric sensor 460 is arranged around the socket of the housing 410. This sensor can monitor the presence of objects in the socket area in real time. When the tray 420 slides into the housing 410 and the sensing element 450 passes through the socket, the photoelectric sensor 460 detects the presence of the sensing element 450 and transmits this signal to the control system of the equipment. Correspondingly, when the tray 420 slides out of the housing 410 and the sensing element 450 detaches from the socket, the photoelectric sensor 460 detects the disappearance of the sensing element 450 and feeds this change back to the control system. In this way, the control system can confirm whether the product is in place, avoiding problems such as incomplete curing or equipment idling caused by the product not being in place, reducing operator intervention, and improving the automation level of the equipment.

[0050] The following describes one structural form of the drying assembly 440. In this design, an air inlet is provided on the side of the housing 410 opposite to the opening. The drying assembly 440 includes: a heater, located at the air inlet, for heating the nearby air; and an airflow generator, located on the side of the heater away from the housing 410, for delivering airflow toward the air inlet. The heater, a PTC heater, is installed at the air inlet and has advantages such as fast heating speed, high thermal efficiency, and long service life. The airflow generator, located on the side of the heater away from the housing 410, can be a centrifugal fan or an axial fan. During the drying process, the airflow generator is activated and generates airflow. The airflow flows toward the air inlet, is heated by the heater, forming high-temperature hot air. Subsequently, the hot air enters the housing 410 through the air inlet to dry the products placed on the tray 420.

[0051] like Figure 3In one embodiment of this utility model, the tray 420 has a support portion for carrying products, and the support portion is transparent. The top and bottom of the box 410 are provided with mounting openings. The light source assembly 430 includes: a first lamp plate 431, which is provided at the mounting opening at the top of the box 410, and a plurality of ultraviolet lamps are provided at the bottom of the first lamp plate 431; a second lamp plate 432, which is provided at the mounting opening at the bottom of the box 410, and a plurality of ultraviolet lamps are provided at the top of the second lamp plate 432; and a heat sink 433, which is provided on the box 410 and is used to supply airflow to the first lamp plate 431 and the second lamp plate 432.

[0052] The tray 420, with its product-contacting support section made of transparent material, ensures UV penetration, allowing UV light to reach the product surface from multiple directions during curing. This avoids curing dead zones and ensures uniform and consistent curing results. Mounting ports are located at the top and bottom of the curing chamber 400's body 410. The light source assembly 430, composed of a first lamp plate 431 and a second lamp plate 432, is mounted at these ports. Multiple UV lamps are evenly distributed at the bottom of the first lamp plate 431 and the top of the second lamp plate 432 to ensure uniform UV light penetration onto the product surface. The positions of the first lamp plate 431 and the second lamp plate 432 correspond to each other, forming a bidirectional light path. This allows the product to receive UV light from both the top and bottom simultaneously during curing, improving curing efficiency and effectiveness. To ensure stable operation and extend the lifespan of the light source assembly 430, the curing chamber 400 also includes a heat sink 433. The heat sink 433 is installed on the side of the first lamp plate 431 and the second lamp plate 432 away from the housing 410. The heat sink 433 includes heat dissipation fins that are attached to the first lamp plate 431 and the second lamp plate 432. The heat sink 433 also includes a fan that delivers airflow toward the heat dissipation fins. The heat from the first lamp plate 431 and the second lamp plate 432 can be transferred to the heat dissipation fins, and then the heat is carried away by the airflow, ensuring the stability of the ultraviolet output during the curing process.

[0053] In one embodiment of this invention, the number of UV lamps on the first lamp plate 431 is greater than the number of UV lamps on the second lamp plate 432. The first lamp plate 431 has a larger number of UV lamps because the upper surface of the dental mold typically requires higher light energy to ensure a good curing effect. This design enhances the light intensity on the upper surface of the product, ensuring a uniform and thorough curing effect. In another embodiment of this invention, the distance from the support portion to the first lamp plate 431 is greater than the distance to the second lamp plate 432. Since the light energy of the first lamp plate 431 is greater than that of the second lamp plate 432, more space is provided above the tray 420, accommodating larger products while also ensuring a good curing effect.

[0054] The above are merely exemplary embodiments of this utility model and do not limit the patent scope of this utility model. Any equivalent structural transformations made based on the technical concept of this utility model and the contents of the specification and drawings of this utility model, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this utility model.

Claims

1. A cleaning and curing-in-one machine, characterized in that, include: chassis; An ultrasonic cleaning tank is embedded in the top of the housing and is used to hold the cleaning solution and the product to be cleaned. The top cover is rotatably mounted on the top of the housing to open and close the ultrasonic cleaning tank. A curing chamber, embedded in the side of the housing, is used to dry and cure the cleaned product.

2. The curing and washing integrated machine according to claim 1, wherein The ultrasonic cleaning tank is provided in at least two, and the at least two ultrasonic cleaning tanks are arranged side by side on the top of the housing.

3. The curing and washing cell as claimed in claim 2, wherein, The cleaning and curing integrated machine also includes a drain pipe, which is located inside the machine housing. One end of the drain pipe is connected to the bottom of the ultrasonic cleaning tank, and the other end extends to the bottom of the machine housing.

4. The curing and washing cell according to claim 3, wherein A valve is installed at one end of the drain pipe near the bottom of the housing, and the valve is used to control the opening and closing of the drain pipe.

5. The wash-cure-in-one machine of claim 1, wherein, A limiting body is protruding from one end of the top cover that is connected to the housing. The top cover has an open state and a closed state. In the closed state, the top cover is fitted to the top of the housing, and the limiting body is spaced apart from the side of the housing. In the open state, the top cover is separated from the top of the housing, and the limiting body abuts against the side of the housing to limit the top cover.

6. The wash-cure-in-one machine of claim 1, wherein, The curing chamber includes: The housing is embedded within the casing, and the housing has an opening exposed on the side of the casing; A tray that slides into or out of the box body to hold the cleaned product; A light source assembly is disposed on the housing, and the light source assembly is used to emit ultraviolet light into the housing; A drying assembly is disposed on the chamber and is used to supply hot air into the chamber.

7. The wash-cure-in-one machine of claim 6, wherein, An insertion port is provided on the side of the housing opposite to the opening, and the curing box further includes: A sensor is disposed on the side of the tray facing the socket. When the tray slides into the box, the sensor passes through the socket. When the tray slides out of the box, the sensor detaches from the socket. A photoelectric sensor is disposed around the periphery of the socket on the housing to detect the sensing element.

8. The wash-cure-in-one machine of claim 6, wherein, An air inlet is provided on the side of the housing opposite to the opening, and the drying assembly includes: A heater is provided at the air inlet to heat the nearby air; An airflow generator is located on the side of the heater away from the housing, for delivering airflow toward the air inlet.

9. The integrated cleaning and curing machine as described in claim 6, characterized in that, The tray has a support portion for carrying the product, the support portion being transparent. Mounting openings are provided at the top and bottom of the box. The light source assembly includes: The first lamp panel is located at the mounting opening on the top of the housing, and multiple ultraviolet lamps are provided at the bottom of the first lamp panel; The second lamp panel is located at the mounting port at the bottom of the housing, and a plurality of ultraviolet lamps are provided on the top of the second lamp panel; A heat sink is provided on the housing, and the heat sink is used to deliver airflow toward the first lamp panel and the second lamp panel.

10. The wash-cure-in-one machine of claim 9, wherein, The number of ultraviolet lamps on the first lamp panel is greater than the number of ultraviolet lamps on the second lamp panel; and / or, the distance from the support portion to the first lamp panel is greater than the distance from the support portion to the second lamp panel.