Performance detection line of ice making equipment
By combining conductive tracks and moving fixtures, dynamic detection of ice-making equipment is achieved, solving the problems of high cost and long cycle caused by manual operation, realizing an automated and rapid detection process, and adapting to large-scale production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-05
- Publication Date
- 2026-04-10
AI Technical Summary
The performance testing of existing ice-making equipment relies on manual operation, resulting in high labor costs, long testing cycles, and difficulty in meeting the rapid testing needs of large-scale production.
Design a performance testing line for ice-making equipment. The line uses a conductive track and a moving fixture to achieve dynamic testing of the ice-making equipment during movement. The conductive track powers the equipment and sets up power-on, testing, and power-off stations in sequence to reduce manual operation.
It has enabled automated and continuous testing of ice-making equipment, reduced labor costs, improved testing efficiency and accuracy, and met the needs of large-scale production.
Smart Images

Figure CN224109075U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of ice-making equipment, and more particularly to a performance detection line of ice-making equipment. BACKGROUND
[0002] With the wide application of ice-making equipment in the fields of food processing, catering, industrial cooling, medical treatment and sports, the quality and performance of ice-making equipment are increasingly concerned, and the performance detection thereof becomes an important link to ensure product quality and reliability. The performance detection of the existing ice-making equipment mainly adopts the method of powering on the ice-making equipment to make ice, and then observing the running condition of the ice-making equipment by visual observation of the staff, including the formation speed of ice cubes, the shape and quality of ice cubes, the running noise of the equipment and whether there are abnormal conditions such as water leakage, etc. In this way, the staff can judge whether the ice-making equipment meets the quality standards and screen out unqualified products. This detection method has been used for a long time in the production field of ice-making equipment. Its operation process is relatively simple, and the detection result of the equipment also has a certain intuitiveness. In the period when the production scale of ice-making equipment is relatively small and the technical requirements are relatively simple, it can basically meet the production demand. However, when multiple ice-making equipment needs to be detected, a staff cannot visually inspect multiple ice-making equipment at the same time, so multiple staffs need to work together. This multi-person cooperation mode leads to high labor cost, especially in the case of large-scale production, the increase of labor cost will have a significant impact on the production cost of enterprises. The existing performance detection of ice-making equipment adopts a static detection method. The ice-making equipment needs to complete all detection processes such as power-on, ice-making and observation at a fixed position. The entry and exit of the equipment and the detection operation completely depend on manual work. After the detection is completed, the equipment needs to be manually carried or moved. In this mode, the detection cycle of the equipment is long, and the detection time of a single equipment cannot be effectively shortened, which is difficult to meet the demand of large-scale production for rapid detection. SUMMARY
[0003] The technical problem to be solved by the present application is to provide a performance detection line of ice-making equipment, which sets up a conductive track and a mobile tooling to realize that the ice-making equipment can still be powered on during the moving process, so as to realize the dynamic detection of the ice-making equipment. The detection process is continuous and automatic, and only a small amount of staff is needed to complete the whole detection process, which significantly reduces the labor cost.
[0004] The application provides a performance detection line of an ice-making device, comprising a conductive track, a plurality of mobile tooling devices are installed on the conductive track, the mobile tooling devices are used to support the ice-making device, the mobile tooling devices are electrically connected with the conductive track to supply power to the ice-making device, the performance detection line is sequentially provided with a first station, a second station and a third station along the conductive track, the first station is used to perform power-on operation on the ice-making device on the mobile tooling device, the second station is used to perform performance detection on the ice-making device on the mobile tooling device, and the third station is used to perform power-off operation on the ice-making device on the mobile tooling device.
[0005] In the technical solution, the conductive track and the mobile tooling device are electrically connected, the conductive track not only provides physical support for the movement of the mobile tooling device, but also supplies power to the ice-making device, the conductive track internally includes but is not limited to a multi-track power supply, a conductive coating or an embedded conductive strip and the like to realize efficient and reliable power supply, the design of the mobile tooling device allows the ice-making device to move along a predetermined path on the track while ensuring stable power supply, the first station, the second station and the third station are sequentially arranged, the first station is mainly used for an operator to perform power-on operation on the ice-making device on the mobile tooling device to make it enter a working state, the second station is mainly used for the operator to check the running condition of the ice-making device by visual inspection or other detection tools, including ice-making speed, ice quality, equipment running sound and the like, and the third station is mainly used for the operator to perform power-off operation on the ice-making device after detection, the detection process is more modular, each station focuses on a specific operation task, and the detection efficiency and accuracy are improved, the operator only needs to complete a specific operation task such as power-on, detection and power-off operation at a fixed station, unnecessary personnel movement and operation complexity are reduced, only a small amount of workers can complete the entire detection process, human cost is significantly reduced, the ice-making device sequentially passes through each station on the conductive track through the mobile tooling device, realizes a continuous and automatic process from power-on to detection and then to power-off, this dynamic detection mode reduces the time of manual carrying and operation, significantly improves the detection efficiency, and can meet the needs of modern large-scale production.
[0006] As an improvement, the first mounting frame, the second mounting frame and the conveying track are further included, one end of the conductive track and the conveying track is mounted on the first mounting frame, the other end of the conductive track and the conveying track is mounted on the second mounting frame, the mobile tool enters the conductive track through the first mounting frame and moves along the conductive track to the second mounting frame, the mobile tool on the second mounting frame is transferred from the conductive track to the conveying track and moves along the conveying track to the first mounting frame to realize the circulation movement. In the technical solution, the first mounting frame and the second mounting frame are respectively mounted at two ends of the conductive track and the conveying track, the first mounting frame and the second mounting frame provide stable physical support for the conductive track and the conveying track, ensure the stability and reliability of the two tracks, the conductive track is used for supplying power for the ice making equipment on the mobile tool and bearing its movement, the conveying track is used for returning the mobile tool from the second mounting frame to the first mounting frame, realizing the circulation use of the mobile tool, without manually transferring the mobile tool, saving manpower, the cooperative work of the two tracks makes the detection process more efficient, the operator only needs to perform simple power-on and power-off operation at the first mounting frame and the second mounting frame, reducing the complexity of multi-person cooperation in the traditional detection line, the whole detection process can be completed by a small amount of workers, significantly reducing the labor cost.
[0007] As an improvement, the conductive track and the conveying track are arranged in parallel in an up-down manner, the first lifting mechanism is mounted on the first mounting frame, one end of the conductive track and one end of the conveying track are communicated through the first lifting mechanism, the second lifting mechanism is mounted on the second mounting frame, the other end of the conductive track and the other end of the conveying track are communicated through the second lifting mechanism. In the technical solution, the conductive track and the conveying track are arranged in parallel in an up-down manner, fully utilizing the vertical space, reducing the floor area of the detection line in the horizontal direction, suitable for use in the production environment with limited space, the first lifting mechanism and the second lifting mechanism are respectively added on the first mounting frame and the second mounting frame, used for lifting the mobile tool from the conveying track to the conductive track, or lowering the mobile tool from the conductive track to the conveying track, ensuring that the mobile tool can be smoothly switched between the two tracks, realizing the automatic operation through the first lifting mechanism and the second lifting mechanism, reducing the manual operation and improving the detection efficiency.
[0008] As an improvement, the conductive tracks are provided with at least two, and the first mounting frame, the second mounting frame and the conveying track are each provided with at least two corresponding to the conductive tracks, and the two conductive tracks are arranged side by side. In the technical solution, two or more conductive tracks are arranged side by side, each track is equipped with an independent first mounting frame, a second mounting frame and a conveying track, so that multiple conductive tracks can operate simultaneously without interfering with each other, each conductive track is used for performance detection of the ice-making equipment, provides stable power supply, and supports the movement of the mobile tool, and the conveying track is used to return the mobile tool to the starting point to realize cyclic use. Each conductive track and its corresponding mounting frame and conveying track can be regarded as an independent module, which can be expanded or adjusted according to actual needs. Multiple conductive tracks are arranged side by side, which can simultaneously detect multiple ice-making equipment. The detection line can increase more detection channels according to production needs to improve detection efficiency. Through the parallel operation and cyclic movement mechanism of multiple tracks, the detection line can realize higher equipment throughput, reduce the risk of downtime caused by a single fault, and better adapt to the needs of modern large-scale production.
[0009] As an improvement, an intermediate passage is formed between two adjacent conductive tracks, and the intermediate passage is used for the passage of the operator. In the technical solution, an intermediate passage is formed between two adjacent conductive tracks, and the intermediate passage is specially used for the passage of the operator, so that the operator can simultaneously consider two adjacent conductive tracks and the independent modules they are in, further saving labor costs, and the operator does not need to detour or frequently switch work positions, which is convenient for the operator of the second station to detect the ice-making equipment, and is also convenient for maintaining and checking the equipment in the performance detection line. The design of the intermediate passage considers the passage requirements of the operator, facilitates the quick entry and exit of the operator, improves the detection efficiency and reduces the detection cost.
[0010] As an improvement, a conductive strip is mounted on the conductive track along the length direction, and the mobile tool is electrically connected with the conductive strip. In the technical solution, the conductive strip is a key component of the conductive track, which is usually made of materials with good conductivity such as copper, aluminum or conductive composite materials, etc. The conductive strip is arranged along the length direction of the conductive track to provide stable power supply for the mobile tool. The mobile tool is equipped with a current collecting device for contacting the conductive strip and obtaining power. Through the close cooperation between the conductive strip and the mobile tool, the ice-making equipment can obtain stable power supply when moving on the conductive track, ensuring normal operation. The low resistivity material, good mechanical properties and environmental adaptability of the conductive strip ensure the stability of the power supply, while reducing maintenance costs and safety risks.
[0011] As an improvement, the first mounting frame is provided with an automatic water filling mechanism, and when the ice making equipment is moved to the automatic water filling mechanism by the moving tool, the automatic water filling mechanism automatically fills water for the ice making equipment. In the technical solution, the automatic water filling mechanism is installed on the first mounting frame and cooperates with the conductive track and the moving tool, so that the automatic water filling mechanism can accurately fill water for the ice making equipment on the moving tool. When the moving tool moves the ice making equipment to the automatic water filling mechanism, the automatic water filling mechanism is triggered and starts the water filling operation. The triggering mechanism includes but is not limited to mechanical type such as sensor detection, electrical type such as proximity switch or combination of the two. By providing a water receiving port on the ice making equipment, the automatic water filling mechanism fills water for the ice making equipment through the water receiving port, ensuring the accuracy and efficiency of the water filling process. The automatic water filling mechanism can automatically complete the water filling operation according to the preset program or real-time detection signal without manual intervention, significantly improving the operation efficiency.
[0012] As an improvement, the conductive track is connected with an ice receiving groove along the length direction, and the conductive track and the ice receiving groove are arranged in an upper and lower distribution. In the technical solution, the ice receiving groove is used to collect ice blocks or ice chips generated by the ice making equipment during the detection process, preventing them from scattering onto the conductive track or other components and avoiding interference of the ice blocks with the normal operation of the detection line. The conductive track is arranged above, and the ice receiving groove is arranged below, so that the ice blocks or ice chips naturally fall into the ice receiving groove without the need for additional power devices, ensuring the continuous operation of the detection line and improving the detection efficiency. The connection design of the conductive track and the ice receiving groove makes the layout of the entire detection line more compact, reduces the space occupation, improves the detection efficiency and system reliability, enhances the safety, and reduces the maintenance cost.
[0013] As an improvement, the first connecting track and the second connecting track are further included, one end of two adjacent conductive tracks is communicated through the first connecting track, and the other end of the two adjacent conductive tracks is communicated through the second connecting track. In the technical solution, the main function of the first connecting track is to transfer the plurality of ice making equipment to different conductive tracks respectively. Through the guidance of the first connecting track, the plurality of ice making equipment enters different conductive tracks respectively, improving the flexibility and efficiency of the detection line. The main function of the second connecting track is to transfer the ice making equipment on different conductive tracks out and collect them, so that the plurality of ice making equipment sequentially enters the next process, facilitating the unified processing of the subsequent process and improving the safety and flexibility of the entire detection line.
[0014] As an improvement, a plurality of moving seats are mounted on the first connecting track, the moving seats are used to mount the ice making equipment, and the moving seats move along the first connecting track and take the ice making equipment to the moving tool. In the technical solution, the moving seat is a carrier for mounting the ice making equipment, can firmly fix the ice making equipment, ensures the stability of the ice making equipment moving on the first connecting track and the second connecting track, can move the ice making equipment from one position to another position, realizes dynamic transmission of the ice making equipment, and the moving tool mounts the ice making equipment through the moving seat. The whole performance detection line only needs to realize the position transfer of the ice making equipment by transferring the position of the moving seat, can avoid the ice making equipment directly contacting with each track, and better protects the ice making equipment. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is a schematic diagram of the performance detection line of the embodiment one of the application.
[0016] Figure 2 It is a schematic diagram of the performance detection line of the embodiment one of the application. Figure 1 It is a schematic diagram of the performance detection line of the embodiment one of the application.
[0017] Figure 3 It is a schematic diagram of the performance detection line of the embodiment one of the application.
[0018] Figure 4 It is a schematic diagram of the performance detection line of the embodiment one of the application.
[0019] In the drawing: 1, conductive track; 2, moving tool; 3, first mounting frame; 4, second mounting frame; 5, conveying track; 6, intermediate channel; 7, automatic water filling mechanism; 8, ice receiving groove; 9, first connecting track; 10, second connecting track; 11, moving seat; 12, ice making equipment. DETAILED DESCRIPTION
[0020] In order to better understand the application, various aspects of the application will be described in more detail with reference to the accompanying drawings. It should be understood that these detailed descriptions are only descriptions of exemplary embodiments of the application, and do not limit the scope of the application in any way. Throughout the specification, the same reference numbers refer to the same elements.
[0021] In the drawings, the thickness, size and shape of the objects have been slightly exaggerated for ease of illustration. The drawings are only examples and are not strictly drawn to scale.
[0022] It should also be understood that the terms "comprise", "comprising", "include", "including", "contain", "containing", "have", "having", "composed of" or "comprises" when used in this specification, specify the presence of stated features, integers, steps, operations, elements, or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, or groups thereof. The terms "first", "second", and the like, are used merely to distinguish one element from another, without necessarily implying a relative importance or a quantity. The meaning of "a", "an", and "the" includes singular and plural references unless the context clearly dictates otherwise.
[0023] Furthermore, it should be understood that the terms "mount", "set", "provided with", "connected", "linked" are to be interpreted broadly. For example, it can be a fixed connection, detachable connection, or integral structure; it can be a mechanical connection, or an electrical connection; it can be a direct connection, or an indirect connection through an intermediate medium; or it can be an internal connection between two devices, elements or components; it can be directly provided on another component, or there can be another intermediate component. The terms "vertical", "horizontal", "left", "right", and similar expressions used herein are for illustrative purposes only. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used in the specification of the application herein is only for the purpose of describing specific embodiments and is not intended to limit the application. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0024] Embodiment one
[0025] As Figures 1 to 3 shown, the present application discloses a performance detection line for ice-making equipment, including a conductive track 1, a plurality of mobile tooling 2 is installed on the conductive track 1, the mobile tooling 2 is used to support the ice-making equipment 12, the mobile tooling 2 is electrically connected with the conductive track 1 for power supply of the ice-making equipment 12, by setting the electrically connected conductive track 1 and the mobile tooling 2, the conductive track 1 not only provides physical support for the movement of the mobile tooling 2, but also supplies power for the ice-making equipment 12 through electrical connection, the conductive track 1 inside includes but is not limited to the use of multi-track power supply, conductive coating or embedded conductive strip and other ways to achieve efficient and reliable power supply, the design of the mobile tooling 2 allows the ice-making equipment 12 to move along the predetermined path on the track, while ensuring stable power supply;
[0026] The performance detection line is sequentially provided with a first station, a second station and a third station along the conductive track 1. The first station is mainly used for the operator to power on the ice making equipment 12 on the mobile tool 2 to make it enter the working state. The second station is mainly used for the operator to check the running condition of the ice making equipment 12 by visual inspection or other detection tools, including ice making speed, ice quality, equipment running sound, etc. The third station is mainly used for the operator to power off the ice making equipment 12 after detection. The detection process is more modularized, each station focuses on a specific operation task, which improves the detection efficiency and accuracy. The operator only needs to complete a specific operation task such as power on, detection and power off at a fixed station, which reduces unnecessary personnel movement and operation complexity. Only a small number of workers are needed to complete the entire detection process, which significantly reduces labor costs. The ice making equipment 12 passes through each station on the conductive track 1 through the mobile tool 2, realizing a continuous and automatic process from power on to detection and then to power off. This dynamic detection mode reduces the time for manual handling and operation, significantly improves the detection efficiency, and can meet the needs of modern large-scale production.
[0027] More specifically, as shown in Figures 1 to 3 The first mounting frame 3, the second mounting frame 4 and the conveying track 5 are further included. One end of the conductive track 1 and the conveying track 5 is mounted on the first mounting frame 3, and the other end of the conductive track 1 and the conveying track 5 is mounted on the second mounting frame 4. The mobile tool 2 enters the conductive track 1 through the first mounting frame 3 and moves along the conductive track 1 to the second mounting frame 4. The mobile tool 2 on the second mounting frame 4 is transferred from the conductive track 1 to the conveying track 5 and moves along the conveying track 5 to the first mounting frame 3 to realize cyclic movement. The first mounting frame 3 and the second mounting frame 4 are respectively mounted at both ends of the conductive track 1 and the conveying track 5. The first mounting frame 3 and the second mounting frame 4 provide stable physical support for the conductive track 1 and the conveying track 5, ensuring the stability and reliability of the two tracks. The conductive track 1 is used to power the ice making equipment 12 on the mobile tool 2 and carry its movement. The conveying track 5 is used to return the mobile tool 2 from the second mounting frame 4 to the first mounting frame 3, realizing the cyclic use of the mobile tool 2 without manual transfer, saving manpower. The cooperative work of the two tracks makes the detection process more efficient. The operator only needs to perform simple power on and power off operations at the first mounting frame 3 and the second mounting frame 4, reducing the complexity of multi-person cooperation in traditional detection lines. The entire detection process only needs a small number of workers to complete, which significantly reduces labor costs.
[0028] More specifically, as shown in Figures 1 to 3As shown, the conductive track 1 and the conveying track 5 are arranged in parallel vertically, the first mounting frame 3 is provided with a first lifting mechanism, one end of the conductive track 1 and one end of the conveying track 5 are communicated through the first lifting mechanism, the second mounting frame 4 is provided with a second lifting mechanism, the other end of the conductive track 1 and the other end of the conveying track 5 are communicated through the second lifting mechanism, the conductive track 1 and the conveying track 5 are arranged in parallel vertically, which makes full use of the vertical space and reduces the floor area of the detection line in the horizontal direction, which is suitable for use in a production environment with limited space, the first mounting frame 3 and the second mounting frame 4 are respectively provided with a first lifting mechanism and a second lifting mechanism, which are used to lift the mobile tool 2 from the conveying track 5 to the conductive track 1 or lower the mobile tool 2 from the conductive track 1 to the conveying track 5, which ensures that the mobile tool 2 can be smoothly switched between the two tracks, and the first lifting mechanism and the second lifting mechanism realize automatic operation, reduce manual operation and improve detection efficiency.
[0029] More specifically, the conductive track 1 is provided with a conductive strip along the length direction, and the mobile tool 2 is electrically connected with the conductive strip, the conductive strip is a key component of the conductive track 1, which is usually made of materials with good conductivity such as copper, aluminum or conductive composite materials, and the conductive strip is arranged along the length direction of the conductive track 1 to provide stable power supply for the mobile tool 2, the mobile tool 2 is provided with a current collecting device for contacting the conductive strip and obtaining power, through the close cooperation between the conductive strip and the mobile tool 2, the ice making equipment 12 can obtain stable power supply when moving on the conductive track 1, which ensures normal operation, the low resistivity material, good mechanical properties and environmental adaptability of the conductive strip ensure the stability of power supply, and at the same time reduce the maintenance cost and safety risk.
[0030] More specifically, as shown in the figure, Figures 1 to 3 The first mounting frame 3 is provided with an automatic water filling mechanism 7, when the mobile tool 2 drives the ice making equipment 12 to move to the automatic water filling mechanism 7, the automatic water filling mechanism 7 automatically fills water for the ice making equipment 12, the automatic water filling mechanism 7 is installed on the first mounting frame 3 and works with the conductive track 1 and the mobile tool 2, so that the automatic water filling mechanism 7 can accurately fill water for the ice making equipment 12 on the mobile tool 2, when the mobile tool 2 drives the ice making equipment 12 to move to the automatic water filling mechanism 7, the automatic water filling mechanism 7 is triggered and starts water filling operation, this triggering mechanism includes but is not limited to mechanical type such as sensor detection, electrical type such as proximity switch or combination of the two, by providing a water inlet on the ice making equipment 12, the automatic water filling mechanism 7 fills water for the ice making equipment 12 through the water inlet, which ensures the accuracy and efficiency of the water filling process, the automatic water filling mechanism 7 can automatically complete the water filling operation according to the preset program or real-time detection signal without manual intervention, which significantly improves the operation efficiency.
[0031] More specifically, as shown in the figure, Figure 2As shown, an ice-collecting trough 8 is connected to the conductive track 1 along its length. The conductive track 1 and the ice-collecting trough 8 are arranged vertically. The ice-collecting trough 8 is used to collect ice blocks or ice chips generated by the ice-making equipment 12 during the testing process, preventing them from falling onto the conductive track 1 or other components and avoiding interference with the normal operation of the testing line. With the conductive track 1 above and the ice-collecting trough 8 below, the ice blocks or ice chips fall naturally into the ice-collecting trough 8 without the need for an additional power device, ensuring the continuous operation of the testing line and improving testing efficiency. The connection design between the conductive track 1 and the ice-collecting trough 8 makes the layout of the entire testing line more compact, reducing space occupation, improving testing efficiency and system reliability, enhancing safety, and reducing maintenance costs.
[0032] Example 2
[0033] like Figures 1 to 4 As shown, this embodiment provides a performance testing line for an ice-making device based on Embodiment 1. Its structure is the same as in Embodiment 1. At least two conductive tracks 1 are provided, and at least two first mounting brackets 3, second mounting brackets 4, and conveyor tracks 5 are each provided corresponding to at least two conductive tracks 1. The two conductive tracks 1 are arranged side-by-side. Two or more conductive tracks 1 are arranged side-by-side, and each track is equipped with an independent first mounting bracket 3, second mounting bracket 4, and conveyor track 5, allowing multiple conductive tracks 1 to operate simultaneously without interference. Each conductive track 1 is used for performance testing of the ice-making device 12, providing a stable power supply and supporting the movement of tooling. The moving tool 2 is transported by the conveyor track 5, which is used to return the moving tool 2 to the starting point for cyclic use. Each conductive track 1 and its corresponding mounting frame and conveyor track 5 can be regarded as an independent module, which can be expanded or adjusted according to actual needs. Multiple conductive tracks 1 are arranged in parallel, which can simultaneously detect multiple ice-making devices 12. The detection line can add more detection channels according to production needs to improve detection efficiency. Through the parallel operation and cyclic movement mechanism of multiple tracks, the detection line can achieve higher equipment throughput, while reducing the downtime risk caused by a single failure, and can better adapt to the needs of modern large-scale production.
[0034] More specifically, such as Figure 4As shown, an intermediate passage 6 is formed between two adjacent conductive tracks 1, and the intermediate passage 6 is used for the passage of the operator. One intermediate passage 6 is formed between two adjacent conductive tracks 1, and the intermediate passage 6 is specially used for the passage of the operator, so that the operator can simultaneously consider two adjacent conductive tracks 1 and the independent module in which the two adjacent conductive tracks 1 are located, thereby further saving labor costs, and the operator does not need to detour or frequently switch work positions, which is convenient for the operator of the second station to detect the ice-making equipment 12, and is also convenient for maintaining and checking the equipment in the performance detection line. The design of the intermediate passage 6 takes into account the passage requirements of the operator, which is convenient for the operator to quickly enter and exit, improves the detection efficiency, and reduces the detection cost.
[0035] More specifically, as shown in Figure 4 The first connecting track 9 and the second connecting track 10 are further included, one end of the two adjacent conductive tracks 1 is connected through the first connecting track 9, and the other end of the two adjacent conductive tracks 1 is connected through the second connecting track 10. The main function of the first connecting track 9 is to transfer the plurality of ice-making equipment 12 to different conductive tracks 1 respectively. Through the guidance of the first connecting track 9, the plurality of ice-making equipment 12 enters different conductive tracks 1 respectively, which improves the flexibility and efficiency of the detection line. The main function of the second connecting track 10 is to transfer the ice-making equipment 12 on different conductive tracks 1 out and collect them, so that the plurality of ice-making equipment 12 sequentially enters the next process, which is convenient for unified processing of subsequent processes and improves the safety and flexibility of the entire detection line.
[0036] More specifically, as shown in Figure 4 The first connecting track 9 and the second connecting track 10 are further included, one end of the two adjacent conductive tracks 1 is connected through the first connecting track 9, and the other end of the two adjacent conductive tracks 1 is connected through the second connecting track 10. The main function of the first connecting track 9 is to transfer the plurality of ice-making equipment 12 to different conductive tracks 1 respectively. Through the guidance of the first connecting track 9, the plurality of ice-making equipment 12 enters different conductive tracks 1 respectively, which improves the flexibility and efficiency of the detection line. The main function of the second connecting track 10 is to transfer the ice-making equipment 12 on different conductive tracks 1 out and collect them, so that the plurality of ice-making equipment 12 sequentially enters the next process, which is convenient for unified processing of subsequent processes and improves the safety and flexibility of the entire detection line.
[0037] The present application is not limited to the above-mentioned best embodiment, and anyone can derive other various forms of products under the inspiration of the present application, but regardless of any changes in shape or structure, any technical solution with the same or similar technical solution as the present application falls within the protection scope of the present application.
Claims
1. A performance detection line of an ice making apparatus, characterized by, The utility model provides an ice making equipment performance detection line, including conductive track (1), a plurality of mobile tooling (2) are installed on conductive track (1), mobile tooling (2) are used for supporting ice making equipment (12), mobile tooling (2) are electrically connected with conductive track (1) to be used for power supply for ice making equipment (12), performance detection line is sequentially provided with first station, second station and third station along conductive track (1), first station is used to carry out electrifying operation to ice making equipment (12) on mobile tooling (2), second station is used to carry out performance detection to ice making equipment (12) on mobile tooling (2), third station is used to carry out power off operation to ice making equipment (12) on mobile tooling (2).
2. The performance detection line of an ice making device according to claim 1, wherein Still including first mounting bracket (3), second mounting bracket (4) and conveying track (5), one end of conductive track (1) and conveying track (5) is installed on first mounting bracket (3), the other end of conductive track (1) and conveying track (5) is installed on second mounting bracket (4), mobile tooling (2) enters conductive track (1) through first mounting bracket (3) and moves to second mounting bracket (4) along conductive track (1), mobile tooling (2) on second mounting bracket (4) is transferred from conductive track (1) to conveying track (5) and moves to first mounting bracket (3) along conveying track (5) to realize circulating movement.
3. The performance detection line of an ice-making apparatus according to claim 2, wherein Conductive track (1) and conveying track (5) are arranged in parallel, first lifting mechanism is installed on first mounting bracket (3), one end of conductive track (1) and one end of conveying track (5) are communicated through first lifting mechanism, second lifting mechanism is installed on second mounting bracket (4), the other end of conductive track (1) and the other end of conveying track (5) are communicated through second lifting mechanism.
4. The performance detection line of an ice-making apparatus according to claim 2 or 3, wherein Conductive track (1) is provided with at least two, first mounting bracket (3), second mounting bracket (4) and conveying track (5) are provided with at least two corresponding conductive track (1), two conductive track (1) are arranged in parallel.
5. The performance detection line of an ice making device according to claim 4, wherein Intermediate passage (6) is formed between two adjacent conductive track (1), and the intermediate passage (6) is used for the operator to pass through.
6. The performance detection line of an ice making device according to claim 1, wherein Conductive strip is installed on the conductive track (1) along the length direction, and the mobile tooling (2) is electrically connected with the conductive strip.
7. The performance detection line of an ice-making apparatus according to claim 2 or 3, wherein The first mounting bracket (3) is provided with an automatic water filling mechanism (7), when the mobile tooling (2) drives the ice making equipment (12) to move to the automatic water filling mechanism (7), the automatic water filling mechanism (7) automatically adds water to the ice making equipment (12).
8. The performance detection line of an ice making device according to claim 1, wherein The conductive track (1) is connected with an ice receiving groove (8) along the length direction, and the conductive track (1) and the ice receiving groove (8) are arranged in an upper and lower distribution.
9. The performance detection line of an ice making device according to claim 4, wherein The first connecting track (9) and the second connecting track (10) are further included, one end of two adjacent conductive track (1) is communicated through the first connecting track (9), and the other end of two adjacent conductive track (1) is communicated through the second connecting track (10).
10. The performance detection line of an ice making device according to claim 9, wherein The first connecting rail (9) is provided with a plurality of moving seats (11) for mounting ice-making devices (12), and the moving seats (11) move along the first connecting rail (9) and take the ice-making devices (12) to the moving tool (2).