Dangerous waste standardized management terminal
By building a backup power supply and cooling fan into the hazardous waste management terminal, the problem of equipment downtime caused by mains power outages is solved, the stable operation and data integrity of the terminal are achieved, and the continuity and safety of hazardous waste management are improved.
Patent Information
- Application Number
- CN202422482809.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-14
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-10-14
AI Technical Summary
The existing hazardous waste management terminals lack a backup power system, resulting in the inability to continue working when the mains power is interrupted, affecting the stability of the hazardous waste management process and data integrity.
A backup power supply is installed inside the terminal host, and is equipped with an operating door and a cooling fan to ensure continuous power supply during utility power outages, while also optimizing equipment maintenance and cooling design.
It enhances the stability and continuous operation capability of the equipment in the event of sudden power outages, reduces the risk of data loss, and ensures the integrity and traceability of hazardous waste treatment data.
Smart Images

Figure CN223362678U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hazardous waste management terminals, in particular to a standardized hazardous waste management terminal. Background Art
[0002] Hazardous waste, or hazardous waste, refers to solid waste that has been identified as having hazardous properties according to relevant regulations. These hazardous properties include, but are not limited to, toxicity (such as leaching toxicity, acute toxicity, and biological toxicity), corrosiveness, flammability, infectivity, and chemical reactivity. Solid waste that exhibits one or more of these properties is considered hazardous waste. The hazardous waste management terminal is an intelligent, standardized hazardous waste management system designed specifically for companies that generate hazardous waste. This system combines the Internet of Things with information technology to create a digital management platform designed to help companies manage their hazardous waste more efficiently and in a standardized manner.
[0003] Some existing hazardous waste management terminals rely mainly on mains power supply when in use and are not equipped with a backup power supply. When the mains power is interrupted, the terminals cannot continue to work, thus affecting the entire hazardous waste management process.
[0004] For example, the announcement number CN221175501U discloses a highly integrated intelligent hazardous waste management terminal. The patented intelligent hazardous waste management terminal has a high degree of automation. It reads data through a barcode scanner and card reader without the need to manually enter weight information, greatly improving work efficiency. The integrated structure is easy to use and effectively improves the management efficiency and standardization of waste-producing units.
[0005] The above-mentioned intelligent hazardous waste management terminal has demonstrated many advantages in design and functional implementation, such as a high degree of automation, convenient operation, improved work efficiency and management standardization. However, from the perspective of system stability and continuous operation, a significant disadvantage is the lack of a backup power supply system. Specifically, the terminal relies on mains power supply and is connected to the mains through a power interface to power the entire machine. However, in actual application scenarios, the mains power may be interrupted due to various reasons (such as power outages, voltage fluctuations, line failures, etc.), which will directly affect the normal operation of the intelligent hazardous waste management terminal. Especially when handling hazardous waste, any interruption may lead to data loss, operation delays or safety hazards. The lack of a backup power supply system means that when the mains power is interrupted, the terminal cannot continue to work and cannot complete key tasks such as scanning codes, weighing, printing labels, and uploading data, thereby affecting the entire hazardous waste management process.
[0006] Therefore, it is necessary to invent a standardized hazardous waste management terminal to solve the above problems. Utility Model Content
[0007] The purpose of this utility model is to provide a standardized hazardous waste management terminal to solve the problems in the above technology.
[0008] In order to achieve the above-mentioned purpose, the present invention provides the following technical solutions: a terminal for standardized management of hazardous waste, comprising a terminal host, a power supply room being provided near the bottom end of the terminal host, a backup power supply being provided inside the power supply room, a wiring terminal being installed at the output end of the backup power supply, a sinking groove being provided on the bottom surface of the power supply room, a wiring terminal block being installed inside the sinking groove, the wiring terminal being plugged into the wiring terminal block, the front and back of the power supply room being both open in design, an operating door being installed at the front opening of the power supply room, a perforated heat dissipation plate being installed in the middle of the operating door, and a heat dissipation fan being installed at the back opening of the power supply room.
[0009] The built-in backup power supply ensures continuous power supply to the terminal host in the event of a mains power outage, ensuring the continuity and stability of the hazardous waste management process. The operating door and cooling fan are designed for easy maintenance and heat dissipation, extending the service life of the equipment.
[0010] Preferably, a slide groove is provided at the bottom of the power supply chamber, one end of the slide groove is connected to the sinking groove, and a sealing plate is slidably connected inside the slide groove, and the sealing plate matches the sinking groove.
[0011] The design of the chute and blocking plate makes the installation and replacement of the backup power supply more convenient. At the same time, when the backup power supply is not in use, the sinking chute can be effectively closed to prevent dust and debris from entering.
[0012] Preferably, an interactive screen is installed on the front of the terminal host near the top thereof, and an inner groove is provided on the front of the terminal host near the bottom of the interactive screen.
[0013] The installation of interactive screens improves the friendliness and interactivity of the user interface, allowing operators to obtain information and perform operations more intuitively.
[0014] Preferably, the bottom of the inner groove is designed as a slope, and an operation panel and a card reader are installed on the slope of the bottom of the inner groove.
[0015] The slope design of the inner groove and the layout of the operation panel and card reader optimize the space utilization of the operation area and improve operational efficiency. At the same time, the card reader facilitates the reading of IC card documents and simplifies the login process.
[0016] Preferably, a No. 1 storage slot and a No. 2 storage slot are provided on the front side of the terminal host near the lower side of the inner groove, and a No. 1 drawer is slidably connected to the No. 1 storage slot, and a No. 2 drawer is slidably connected to the No. 2 storage slot.
[0017] The design of storage slots 1 and 2 provides additional storage space, allowing accessories such as printers and print rolls to be stored in an orderly manner for easy access and management.
[0018] Preferably, a printer is installed inside the drawer No. 1, and an output port is provided on the front of the drawer No. 1, and the output port matches the paper output port on the surface of the printer.
[0019] The printer design in drawer No. 1 makes receipt printing more convenient, and the output port matches the paper output port, ensuring that the receipts can be output smoothly, thereby improving work efficiency.
[0020] Preferably, a printing paper roll is placed inside the second drawer, the printing paper roll matches the printer, the number of the printing paper rolls is set to multiple, and the multiple printing paper rolls are distributed in a linear array.
[0021] The linear array of multiple printing paper rolls in drawer No. 2 facilitates quick replacement of printing paper, and the sufficient quantity reduces the possibility of work interruption due to insufficient printing paper.
[0022] Preferably, a signal transmitter is installed on the top of the terminal host, a mounting slot is provided on one side of the terminal host, and a multi-function plug port is installed inside the mounting slot.
[0023] The installation of the signal transmitter enables the terminal host to upload hazardous waste management data to the cloud server in real time, realizing remote backup and management; the setting of the multi-function plug port provides flexible interface options, facilitating the connection of various peripheral devices and expanding the functions of the terminal host.
[0024] In the above technical solution, the technical effects and advantages provided by the utility model are:
[0025] By setting up a backup power supply inside the terminal host, not only is the stability and continuous operation capability of the equipment significantly enhanced in the event of a sudden power outage, ensuring the smooth operation of the hazardous waste management process, but it also greatly reduces the risk of data loss caused by power outages, ensuring the integrity and traceability of hazardous waste treatment data. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 This is a schematic diagram of the overall structure of the utility model from a first perspective;
[0027] Figure 2 This is a schematic diagram of the overall structure of the utility model from a second perspective;
[0028] Figure 3 This is a schematic diagram of the overall structure of the utility model when the operating door is opened;
[0029] Figure 4This is a schematic diagram of the overall structure of the utility model when the first drawer and the second drawer are opened;
[0030] Figure 5 It is a partial structural cross-sectional view of the utility model;
[0031] Figure 6 For this utility model Figure 5 A magnified view of the structure of part A.
[0032] Description of reference numerals:
[0033] 1. Terminal host; 2. Power supply room; 3. Backup power supply; 4. Wiring terminal; 5. Wiring terminal block; 6. Operation door; 7. Punched heat sink; 8. Cooling fan; 9. Blocking plate; 10. Interactive screen; 11. Inner groove; 12. Operation panel; 13. Card reader; 14. Drawer No. 1; 15. Drawer No. 2; 16. Printer; 17. Output port; 18. Print paper roll; 19. Signal transmitter; 20. Multi-function plug port. DETAILED DESCRIPTION
[0034] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0035] The utility model provides Figure 1-6 A standardized hazardous waste management terminal shown in the figure includes a terminal host 1. A power supply room 2 is opened near the bottom of the terminal host 1. A backup power supply 3 is provided inside the power supply room 2. The output end of the backup power supply 3 is installed with a wiring terminal 4. A sinking groove is opened on the bottom surface of the power supply room 2. A wiring terminal block 5 is installed inside the sinking groove. The wiring terminal 4 is plugged into the wiring terminal block 5. The front and back of the power supply room 2 are both open designs. An operating door 6 is installed at the front opening of the power supply room 2. A perforated heat dissipation plate 7 is installed in the middle of the operating door 6. A heat dissipation fan 8 is installed at the back opening of the power supply room 2.
[0036] In one aspect of this embodiment, a slide groove is provided at the bottom of the power supply room 2, one end of the slide groove is connected to the sinking groove, a blocking plate 9 is slidably connected inside the slide groove, and the blocking plate 9 matches the sinking groove. An interactive screen 10 is installed at a position near the top of the front of the terminal host 1, and an inner groove 11 is provided below the interactive screen 10 on the front of the terminal host 1. The bottom of the inner groove 11 is designed as a slope, and an operation panel 12 and a card reader 13 are installed on the slope of the bottom of the inner groove 11. A first storage slot and a second storage slot are provided on the front of the terminal host 1 near the bottom of the inner groove 11. The interior of the No. 1 storage slot is slidably connected to the bottom of the No. 1 storage slot. A drawer No. 14 is connected, and a drawer No. 2 15 is slidably connected to the inside of the No. 2 storage slot. A printer 16 is installed inside the No. 1 drawer 14. An output port 17 is provided on the front of the drawer No. 14, and the output port 17 matches the paper output port on the surface of the printer 16. A printing paper roll 18 is placed inside the No. 2 drawer 15, and the printing paper roll 18 matches the printer 16. The number of printing paper rolls 18 is set to multiple, and the multiple printing paper rolls 18 are distributed in a linear array. A signal transmitter 19 is installed on the top of the terminal host 1, and an installation slot is provided on one side of the terminal host 1, and a multi-function plug port 20 is installed inside the installation slot.
[0037] Working principle of this utility model:
[0038] Refer to the instruction manual Figure 1-6 When using the present invention, first, plug one end of the power cord into the multi-function plug port 20, and the other end into the mains socket to provide the main power supply for the terminal host 1. Plug the output line of the peripherals that need to be connected, such as the electronic scale, into the multi-function plug port 20 to ensure that these devices can communicate and transmit data normally with the terminal host 1.
[0039] Place the IC card in the recognition area of the card reader 13, wait for the system to recognize it and log in to the operating system, use the connected electronic scale to weigh the hazardous waste to be processed, the electronic scale will automatically transmit the weighing data to the terminal host 1, and enter relevant hazardous waste information such as the factory area, hazardous waste name, and person in charge through the operation panel 12 to ensure the accuracy and completeness of the data;
[0040] After the operation is completed, the relevant receipts and vouchers are printed through the printer 16 in the first drawer 14. Make sure there is enough printing paper 18 in the printer 16. If it is insufficient, it can be taken out from the second drawer 15. The output port 17 of the printer 16 matches the paper output port on the front of the first drawer 14 to facilitate the use of receipts.
[0041] Through the signal transmitter 19 on the top of the terminal host 1, the offline registration information of hazardous waste management is uploaded to the cloud server in real time to achieve remote backup and management of data;
[0042] When assembling the backup power supply 3, first open the operating door 6 on the front of the power supply room 2, push the backup power supply 3 into the power supply room 2, then push the blocking plate 9 to move it to the other end of the slide slot to expose the terminal block 5 in the sinking slot, plug the terminal head 4 of the backup power supply 3 into the terminal block 5 to ensure a stable connection. When the mains power is interrupted, start the backup power supply 3 and use the backup power supply 3 to supply power to ensure the normal operation of the terminal host 1;
[0043] The heat dissipation fan 8 on the back of the power supply room 2 extracts the hot air inside the power supply room 2, while fresh air enters the power supply room 2 through the perforated heat dissipation plate 7 on the operating door 6, forming effective air convection, accelerating the heat dissipation of the backup power supply 3 and maintaining its normal operating temperature;
[0044] Through the above steps, it can be ensured that the standardized hazardous waste management terminal can operate stably under normal or interrupted mains power conditions, and various hazardous waste management tasks can be completed efficiently.
Claims
1. A hazardous waste standardized management terminal, comprising a terminal host (1), characterized in that: A power supply room (2) is provided near the bottom of the terminal host (1), a backup power supply (3) is provided inside the power supply room (2), a wiring terminal (4) is installed at the output end of the backup power supply (3), a sinking groove is provided on the bottom surface of the power supply room (2), a wiring terminal block (5) is installed inside the sinking groove, and the wiring terminal (4) is plugged into the wiring terminal block (5), the front and back of the power supply room (2) are both open-type designs, an operating door (6) is installed at the front opening of the power supply room (2), a punched heat dissipation plate (7) is installed in the middle of the operating door (6), and a heat dissipation fan (8) is installed at the back opening of the power supply room (2).
2. A hazardous waste standardized management terminal according to claim 1, characterized in that: A chute is provided at the bottom of the power supply chamber (2), one end of the chute is connected to the sinking trough, a blocking plate (9) is slidably connected inside the chute, and the blocking plate (9) matches the sinking trough.
3. A hazardous waste standardized management terminal according to claim 1, characterized in that: An interactive screen (10) is installed on the front of the terminal host (1) near the top thereof, and an inner groove (11) is provided on the front of the terminal host (1) near the bottom of the interactive screen (10).
4. A hazardous waste standardized management terminal according to claim 3, characterized in that: The bottom of the inner groove (11) is designed as a slope, and an operation panel (12) and a card reader (13) are installed on the slope of the bottom of the inner groove (11).
5. The standardized hazardous waste management terminal according to claim 3 is characterized by: The front of the terminal host (1) is provided with a first storage slot and a second storage slot below the inner groove (11), wherein the first storage slot is slidably connected to the first drawer (14), and the second storage slot is slidably connected to the second drawer (15).
6. A hazardous waste standardized management terminal according to claim 5, characterized in that: A printer (16) is installed inside the first drawer (14), and an output port (17) is provided on the front of the first drawer (14), and the output port (17) matches the paper output port on the surface of the printer (16).
7. A hazardous waste standardized management terminal according to claim 6, characterized in that: A printing roll (18) is placed inside the second drawer (15), and the printing roll (18) matches the printer (16). The number of the printing rolls (18) is set to multiple, and the multiple printing rolls (18) are distributed in a linear array.
8. The standardized hazardous waste management terminal according to claim 1, characterized in that: A signal transmitter (19) is installed on the top of the terminal host (1), and a mounting slot is provided on one side of the terminal host (1), wherein a multifunctional plug port (20) is installed inside the mounting slot.
Citation Information
Patent Citations
High-integration intelligent hazardous waste management terminal
CN221175501U