A new type of disc cabinet with debugging platform structure
By installing a commissioning platform on the inside of the electrical control cabinet of a hydropower station, and using connecting rods and support rods to enable the commissioning platform to expand and close, the problem of the lack of commissioning platforms in the existing technology is solved, and the convenience and comfort of commissioning work are improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHINA YANGTZE POWER
- Filing Date
- 2025-06-20
- Publication Date
- 2026-06-02
AI Technical Summary
The existing electrical control cabinets in hydropower stations lack a commissioning platform structure, which requires maintenance personnel to move tables during commissioning, increasing their workload. This also makes operation inconvenient in emergency situations, affecting the commissioning progress and comfort.
An debugging platform is installed on the inside of the cabinet door. The platform can be opened and closed through connecting rods, support rods and pivot structure, providing convenient equipment placement space and maintaining a stable state through magnetic suction unit.
It improves the convenience and comfort of debugging work, reduces tedious workload, and ensures efficient debugging operations even in emergency situations.
Smart Images

Figure CN224319677U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electrical equipment technology, and in particular to a novel control panel with a debugging platform structure. Background Technology
[0002] The electrical control cabinet of a hydropower station is a key piece of equipment ensuring the safe and efficient operation of the station. It is responsible for controlling, protecting, monitoring, and communicating with the turbine generator units, auxiliary equipment, and the station's drainage system. Its design must balance functionality, reliability, and environmental adaptability. Before each maintenance, programs need to be backed up at the control cabinet; after maintenance, functional tests are performed; and on-site emergency troubleshooting requires connecting a laptop to the control cabinet's programmable controller. Existing hydropower station electrical control cabinets, due to their design not considering the convenience of equipment debugging for operators and lacking a debugging platform structure, lead to the following problems: First, maintenance personnel have to carry a table to the site to place the debugging computer, increasing their workload. Second, in case of emergencies, emergency personnel, lacking time to move a table, must hold the computer with one hand while operating it to check the program, affecting the progress of program review and easily causing hand pain and soreness. Especially during online debugging, there is nowhere to place the debugging laptop; one operator must hold the computer continuously, unable to free one hand, hindering the debugging personnel's inspection of on-site automation components. Utility Model Content
[0003] To address the aforementioned technical problems, this application provides a novel cabinet with a debugging platform structure. The debugging platform facilitates operators' debugging of the electronic equipment within the cabinet, effectively improving the convenience, comfort, and efficiency of the debugging process. To achieve the above-mentioned technical features, the purpose of this utility model is as follows:
[0004] A novel cabinet with a debugging platform structure includes a cabinet body, which is hinged to a cabinet door. A debugging platform is installed on the inner side of the cabinet door. The cabinet body has a cavity for placing electronic equipment. The inner side of the cabinet door is the side of the cabinet door facing the cavity when the cabinet door is closed relative to the cabinet body.
[0005] The debugging platform includes a connecting rod installed on the inner side of the cabinet door. The first end of the connecting rod is hinged to the support rod, and the second end of the support rod is hinged to the debugging platform via a first pivot. The connecting rod is provided with an L-shaped groove. One end of the debugging platform is provided with a second pivot fitted into the L-shaped groove. The horizontal section of the L-shaped groove extends away from the cabinet door, and the vertical section of the L-shaped groove extends away from the hinge point between the connecting rod and the support rod. The hinge point between the connecting rod and the support rod is located below the L-shaped groove.
[0006] The second pivot moves along the L-shaped groove so that the test bench can be in an open or closed state;
[0007] The locking device acts on the test bench to keep the test bench in a closed state.
[0008] The end of the transverse section of the L-shaped slide is provided with a slot extending vertically, which engages with the second pivot to restrict the movement of the second pivot.
[0009] Rollers are fitted on the outer side of the second pivot.
[0010] The connecting rod is provided with a receiving groove adapted to the second pivot, and the receiving groove is located above the hinge point between the connecting rod and the support rod.
[0011] The connecting rod is an auxiliary reinforcing rib used to strengthen the cabinet door.
[0012] The locking device includes a first magnetic unit installed on the test bench away from the second pivot side. The first magnetic unit is located on the side of the test bench opposite to the working surface. A second magnetic unit that cooperates with the first magnetic unit is installed on the inner side of the cabinet door. The connecting rod and the support rod are made of stainless steel.
[0013] The novel cabinet provided by this invention features a modulation platform installed on the inner side of the cabinet door. A second pivot moves along an L-shaped groove, allowing the modulation platform to be in an open or closed state. When the modulation platform is in the open state, the second pivot is located at the end of the horizontal section of the L-shaped groove. At this time, the modulation platform is horizontal and forms a triangular support structure with the support rod and connecting rod. The working surface of the modulation platform faces upward to facilitate the placement of debugging equipment, thus facilitating debugging operations for the operator. When the modulation platform is in the closed state, the second pivot is located near the top of the vertical section of the L-shaped groove. At this time, the modulation platform and support rod are vertically retracted, allowing the modulation platform to be as close as possible to the cabinet door, thereby reducing the volume of the modulation platform. The modulation platform facilitates the operator's debugging of electronic equipment inside the cabinet, effectively improving the convenience, comfort, and efficiency of debugging work. Attached Figure Description
[0014] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0015] Figure 1 A diagram showing the working state of the debugging platform when unfolded, provided for an embodiment of this utility model;
[0016] Figure 2 The diagram shows the structure of the debugging platform in its unfolded state as provided in this embodiment of the utility model.
[0017] Figure 3 The structural diagram of the debugging platform provided in this embodiment of the present invention when it is in a closed state;
[0018] Figure 4 A structural diagram of the connecting rod provided in an embodiment of this utility model;
[0019] In the diagram: Cabinet 1, Cabinet door 2, Connecting rod 3, L-shaped slide 3a, Horizontal section 3a1, Vertical section 3a2, Receiving groove 3b, Support rod 4, Debugging table 5, First pivot 6, Second pivot 7, First magnetic attraction unit 8, Second magnetic attraction unit 9. Detailed Implementation
[0020] The embodiments of this utility model will be further described below with reference to the accompanying drawings.
[0021] To achieve the above-mentioned technical features, the purpose of this utility model is as follows:
[0022] See appendix Figures 1-4 A novel cabinet with a debugging platform structure includes a cabinet body 1, which is hinged to a cabinet door 2. A debugging platform is installed on the inner side of the cabinet door 2. The cabinet body 1 has a cavity for housing electronic equipment. The inner side of the cabinet door 2 is the side facing the cavity when the cabinet door 2 is closed relative to the cabinet body 1. The debugging platform includes a connecting rod 3 installed on the inner side of the cabinet door 2. The connecting rod 3 is hinged to a first end of a support rod 4, and the second end of the support rod 4 is hinged to a debugging platform 5 via a first pivot 6. The connecting rod 3 has an L-shaped groove 3a, and one end of the debugging platform 5 is fitted into the L-shaped groove 3a. The second pivot 7 has a horizontal segment 3a1 on the L-shaped slide 3a extending away from the cabinet door 2, and a vertical segment 3a2 on the L-shaped slide 3a extending away from the hinge point of the connecting rod 3 and the support rod 4. The hinge point of the connecting rod 3 and the support rod 4 is located below the L-shaped slide 3a. The second pivot 7 moves along the L-shaped slide 3a to allow the test bench 5 to be in an open or closed state. A locking device acts on the test bench 5 to keep the test bench 5 in a closed state. There are two connecting rods 3 and two support rods 4, which are symmetrically distributed on both sides of the test bench 5.
[0023] The novel control panel provided by this invention has a modulation platform installed on the inner side of the cabinet door 2; the second pivot 7 moves along the L-shaped slide 3a, allowing the adjustment table 5 to be in an open or closed state; when the adjustment table 5 is in the open state, the second pivot 7 is located at the end of the transverse section 3a1 of the L-shaped slide 3a, at which time the adjustment table 5 is horizontal and forms a triangular support structure with the support rod 4 and the connecting rod 3, see Figure 1 , Figure 2The working surface of the test bench 5 faces upwards to facilitate the placement of test equipment and thus the operator's test work. When the test bench 5 is in the closed state, the second pivot 7 is located near the top of the vertical section 3a2 of the L-shaped slide 3a. At this time, the test bench 5 and the support rod 4 are vertically retracted. Figure 3 This allows the debugging platform 5 to be positioned as close as possible to the cabinet door 2, reducing the volume and space required for the debugging platform. The setup of the debugging platform facilitates the debugging of electronic equipment within the cabinet 1 by operators, effectively improving the convenience, comfort, and efficiency of the debugging process.
[0024] In one embodiment, the end of the transverse section 3a1 of the L-shaped slide 3a is provided with a slot 3a3 extending vertically. When the test bench 5 is in the unfolded state, the slot 3a3 engages with the second pivot 7 to restrict the movement of the second pivot 7, thereby ensuring that the test bench 5 is in a stable state.
[0025] In one embodiment, a roller is fitted on the outer side of the second pivot 7 to facilitate the movement of the second pivot 7 along the L-shaped groove 3a and reduce resistance.
[0026] In one embodiment, the connecting rod 3 is provided with a receiving groove 3b that is adapted to the second pivot 7. The receiving groove 3b is located above the hinge point between the connecting rod 3 and the support rod 4, so that the debugging platform 5 can be as close as possible to the cabinet door 2 when it is in the closed state, thereby reducing the volume space of the debugging platform.
[0027] In one implementation method, in this embodiment, the connecting rod 3 is an auxiliary reinforcing rib used to strengthen the cabinet door 2. Through the above structural arrangement, the connecting rod 3 can effectively strengthen the cabinet door 2.
[0028] In one embodiment, the locking device includes a first magnetic unit 8 installed on the test bench 5 away from the second pivot 7. The first magnetic unit 8 is located on the side of the test bench 5 opposite to the working surface. A second magnetic unit 9 is installed on the inner side of the cabinet door 2 to cooperate with the first magnetic unit 8. When the test bench 5 is closed, the test bench 5 is close to the cabinet door 2. Under the magnetic attraction between the first magnetic unit 8 and the second magnetic unit 9, the test bench 5 remains closed. When it is necessary to open the test bench 5, the test bench 5 is manually flipped upward to overcome the magnetic attraction and thus unlock.
[0029] In one embodiment, the connecting rod 3 and the support rod 4 are made of stainless steel.
Claims
1. A novel control panel with a debugging platform structure, characterized in that: The device includes a cabinet body, which is hinged to a cabinet door. An debugging platform is installed on the inner side of the cabinet door. The cabinet body has a cavity for storing electronic equipment. The inner side of the cabinet door is the side of the cabinet door facing the cavity when it is closed relative to the cabinet body. The debugging platform includes a connecting rod installed on the inner side of the cabinet door. The first end of the connecting rod is hinged to the support rod, and the second end of the support rod is hinged to the debugging platform via a first pivot. The connecting rod is provided with an L-shaped groove. One end of the debugging platform is provided with a second pivot fitted into the L-shaped groove. The horizontal section of the L-shaped groove extends away from the cabinet door, and the vertical section of the L-shaped groove extends away from the hinge point between the connecting rod and the support rod. The hinge point between the connecting rod and the support rod is located below the L-shaped groove. The second pivot moves along the L-shaped groove so that the test bench can be in an open or closed state; The locking device acts on the test bench to keep the test bench in a closed state.
2. The novel control panel with a debugging platform structure according to claim 1, characterized in that: The end of the transverse section of the L-shaped slide is provided with a slot extending vertically, which engages with the second pivot to restrict the movement of the second pivot.
3. The novel control panel with a debugging platform structure according to claim 1, characterized in that: Rollers are fitted on the outer side of the second pivot.
4. The novel control panel with a debugging platform structure according to claim 1, characterized in that: The connecting rod is provided with a receiving groove adapted to the second pivot, and the receiving groove is located above the hinge point between the connecting rod and the support rod.
5. The novel control panel with a debugging platform structure according to claim 1, characterized in that: The connecting rod is an auxiliary reinforcing rib used to strengthen the cabinet door.
6. The novel control panel with a debugging platform structure according to claim 1, characterized in that: The locking device includes a first magnetic unit installed on the test bench away from the second pivot side. The first magnetic unit is located on the side of the test bench opposite to the working surface. A second magnetic unit that works in conjunction with the first magnetic unit is installed on the inner side of the cabinet door.
7. The novel control panel with a debugging platform structure according to claim 1, characterized in that: The connecting rod and the support rod are made of stainless steel.