CO catalytic furnace
By introducing an automatic transport component and an LCD panel control system into the CO catalytic furnace, the problems of manual catalyst addition and timing have been solved, achieving automated operation of the catalyst and efficient reaction management.
Patent Information
- Application Number
- CN202520231031.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-13
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-02-13
AI Technical Summary
Existing CO catalytic furnaces require manual addition and removal of catalysts during operation, which is cumbersome, time-consuming, and labor-intensive, and also requires manual timing of catalyst reaction time.
An automatic transport component and an LCD panel control system are used to realize the automatic input and output of catalysts, and the reaction time of the catalysts is automatically controlled by a timer.
It enables automated operation of the catalyst, reduces manual intervention, improves operating efficiency, and simplifies catalyst replacement and reaction time management.
Smart Images

Figure CN223782874U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of catalytic furnaces, specifically a CO catalytic furnace. Background Technology
[0002] CO catalytic converters utilize catalysts to promote the oxidative decomposition of pollutants in exhaust gases. After the exhaust gas enters the furnace, harmful substances such as VOCs (volatile organic compounds) are oxidized into carbon dioxide and water under the action of the catalyst. This process is widely used in air purification and industrial production, and is characterized by high efficiency and environmental friendliness. However, CO catalytic converters have some unresolved problems during use: The converter requires the addition of a corresponding catalyst to promote decomposition, but the catalyst must be manually pushed into the converter, a process that is time-consuming and labor-intensive. Furthermore, the reaction time must be manually recorded, and the catalyst must be removed after it has fully reacted, making the entire process quite cumbersome. Utility Model Content
[0003] In view of the above, this utility model provides a CO catalytic furnace to solve the problems mentioned in the background art.
[0004] The technical solution adopted by this utility model to solve its technical problem is as follows: a CO catalytic furnace, comprising a catalytic furnace, the catalytic furnace including several sets of automatic transport components for transporting catalysts and an LCD panel electrically connected to the automatic transport components. Each set of automatic transport components is placed inside the catalytic furnace. Each set of automatic transport components includes a storage chamber for placing catalysts and a sliding component for moving the storage chamber. The sliding component is installed at the lower end of the storage chamber. The inner side of the storage chamber is provided with an inner door that opens into the catalytic furnace, and the outer side of the storage chamber is provided with an outer door that opens out of the catalytic furnace. The inner door and the outer door are connected to the storage chamber by an electric rotating shaft. The inner door is provided with a timer for timing the opening time of the inner door. The sliding component includes two sets of bidirectional sliding double-layer slide rails and a motor for moving the movable rail of the double-layer slide rails. One end of the motor is connected to the slide base of the double-layer slide rails, and the other end is connected to the movable rail of the double-layer slide rails. The two sets of double-layer slide rails are provided with platforms for placing catalysts, and the two ends of the platforms are respectively connected to the two sets of double-layer slide rails.
[0005] Furthermore, the number of liquid crystal panels corresponds one-to-one with the number of automatic transport component groups, and each liquid crystal panel operates the corresponding automatic transport component.
[0006] Furthermore, the LCD panel is equipped with a microcontroller. The output end of the LCD panel is connected to the input end of the microcontroller. The output end of the microcontroller is electrically connected to the electric shaft, the timer, and the motor, respectively. The microcontroller receives and transmits signals.
[0007] Furthermore, the LCD panel includes output keys, storage keys, and input keys; pressing the corresponding keys enables different operations.
[0008] Furthermore, the catalytic furnace is equipped with a power cord that connects to an external power source. The power cord is electrically connected to the LCD panel and provides power to the catalytic furnace through the power cord.
[0009] Furthermore, there are no fewer than two sets of automated transport components, which can be increased or decreased according to actual conditions.
[0010] Furthermore, the catalytic furnace is equipped with an inlet and an outlet. The required gas is input through the inlet, and the reacted gas is output through the outlet.
[0011] The beneficial effects of this utility model are: the catalytic furnace is equipped with an automatic transport component, which can automatically input or output the catalyst, making it more convenient to use. In addition, the automatic transport component is equipped with a timing component. When the timing ends, it proves that the catalyst has been fully oxidized and decomposed. Finally, the used catalyst is output, eliminating the need for manual timing and making it more convenient to use. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the structure of this utility model.
[0013] Figure 2 This is a schematic diagram of the storage compartment of this utility model.
[0014] Figure 3 This is a schematic diagram of the structure of the double-layer slide rail of this utility model.
[0015] exist Figures 1-3 In the middle, 1. Catalytic furnace; 2. LCD panel; 201. Microcontroller; 3. Storage room; 4. Inner door; 401. Timer; 5. Outer door; 6. Electric rotating shaft; 7. Double-layer slide rail; 701. Platform; 8. Motor; 9. Input port; 10. Output port; 11. Power cord. Detailed Implementation
[0016] The present invention will be further described below with reference to the accompanying drawings and some embodiments.
[0017] exist Figures 1-3A CO catalytic furnace includes a catalytic furnace 1, which is a common device that uses a catalyst to promote the oxidative decomposition of CO in waste gas. The catalytic furnace 1 includes several sets of automatic catalyst transport components and an LCD panel 2 electrically connected to the automatic transport components. The LCD panel 2 is a common control panel, such as the ZZ-2020 model or the iTC602TAT-2 model. Alarm and prompt software can also be installed on the LCD panel 2 to facilitate monitoring of the decomposition status of the catalytic furnace 1. Each set of automatic transport components is placed inside the catalytic furnace 1, and each set of automatic transport components includes a storage compartment 3 for storing the catalyst. A sliding assembly drives the storage chamber 3 to slide. The sliding assembly is installed at the lower end of the interior of the storage chamber 3. The inner side of the storage chamber 3 has an inner door 4 that opens into the catalytic furnace 1, and the outer side of the storage chamber 3 has an outer door 5 that opens out of the catalytic furnace 1. When the inner door 4 and the outer door 5 are closed simultaneously, the storage chamber 3 can form a closed space. The inner door 4 and the outer door 5 can be closed or opened simultaneously, or they can be closed or opened separately. The inner door 4 and the outer door 5 are connected to the storage chamber 3 by an electric rotating shaft 6. The rotation of the electric rotating shaft 6 drives the inner door 4 and the outer door 5 to open or close. The electric rotating shaft 6 is a common rotating shaft device, mainly composed of a rotating motor and a rotating shaft, such as the common Y80 series electric rotating shaft. 6. The inner door 4 is equipped with a timer 401 to time the opening time of the inner door 4. Different timing times can be set according to actual conditions. For example, the more catalyst there is, the longer the timing time may be required, and vice versa. When the inner door 4 opens, it means that the catalyst has started to react with the gas in the catalytic furnace 1. When the timing ends, it means that the catalyst has been fully decomposed and needs to be replaced with a new catalyst. The timer 401 is a common timing device, such as the TS-27 model or the J-MS-6 model. The sliding assembly includes two sets of bidirectional sliding double-layer slide rails 7 and a motor 8 that drives the movable rail of the double-layer slide rails 7 to move. The double-layer slide rail 7 mainly includes a slide base and a movable rail. The movable rail is movably mounted on the slide base and slides on the slide base. The motor 8 is a common linear motor device, such as the 25BYZ series linear motor. One end of the motor 8 is connected to the slide base of the double-layer slide rail 7, and the other end is connected to the movable rail of the double-layer slide rail 7. Each set of double-layer slide rails 7 is equipped with a motor 8. Both motors 8 are connected to the microcontroller 201 and move synchronously. The two sets of double-layer slide rails 7 are equipped with a platform 701 for placing catalysts. The two ends of the platform 701 are connected to the two sets of double-layer slide rails 7 respectively. The catalyst is a common CO catalyst, such as precious metals such as platinum, palladium, and rhodium, and activated carbon.
[0018] In this embodiment, the number of liquid crystal panels 2 corresponds one-to-one with the number of automatic transport component groups, and each liquid crystal panel 2 operates the corresponding automatic transport component.
[0019] In this embodiment, the liquid crystal panel 2 is provided with a microcontroller 201. The output end of the liquid crystal panel 2 is connected to the input end of the microcontroller 201. The output end of the microcontroller 201 is electrically connected to the electric rotating shaft 6, the timer 401, and the motor 8 respectively. The microcontroller 201 receives and transmits signals, and the electric rotating shaft 6, the timer 401, and the motor 8 are operated by manipulating the liquid crystal panel 2.
[0020] In this embodiment, the LCD panel 2 includes an output key, a storage key, and an input key. Different operation keys are installed on the LCD panel 2. Pressing the corresponding key will perform different operations. For example, pressing the output key will open the outer door 5 and slide the double-layer slide rail 7 outward; pressing the storage key will slide the double-layer slide rail 7 into the storage compartment 3 and close the outer door 5; pressing the input key will open the inner door 4, start the timer 401, slide the double-layer slide rail 7 into the storage compartment 3, and after the timer ends, slide the double-layer slide rail 7 into the storage compartment 3 and close the inner door 4.
[0021] In this embodiment, the catalytic furnace 1 is provided with a power cord 11 for connecting to an external power source. The power cord 11 is electrically connected to the liquid crystal panel 2. The power cord 11 is also connected to the electric rotating shaft 6, the timer 401, and the motor 8 through the microcontroller 201. Therefore, the external power source is connected to the power cord 11 to provide power to the catalytic furnace 1.
[0022] In this embodiment, there are no fewer than two sets of automatic transport components, which can be increased or decreased according to actual conditions. For example, the more CO that needs to be decomposed and oxidized, the more automatic transport components are needed, and vice versa.
[0023] In this embodiment, the catalytic furnace 1 is provided with an inlet and an outlet 109. The required gas is input through the inlet and reacts and decomposes with the catalyst. The reacted gas is output through the outlet 109.
[0024] In this embodiment, the microcontroller 201 is a common electrical component, such as a single-chip microcomputer of model AT89C2051 or TMS320VC5509A.
[0025] In this embodiment, the control circuit of this utility model is a common circuit in the field of circuits. The device of this utility model can be connected to an external power source or a built-in battery through a power cord to provide power to the device. Those skilled in the art can implement it, so it will not be described in detail here.
[0026] In practical implementation, this utility model is used as follows: When in use, an external power source is connected via power cord 11, and the automatic transport component is operated via the LCD panel 2. The entire process is controlled by the microcontroller 201, which receives and transmits signals. First, pressing the output button on the LCD panel 2 automatically opens the outer door 5 via the electric rotating shaft 6. Then, the motor 8 drives the movable rail of the double-layer slide rail 7 to slide outwards, allowing the catalyst to be placed on the platform 701. Next, pressing the storage button causes the motor 8 to slide the movable rail on the double-layer slide rail 7 into the storage chamber 3, closing the outer door 5 for storage. Finally, pressing the input button... When the button is pressed, the inner door 4 opens via the electric rotating shaft 6. As the electric rotating shaft 6 drives the inner door 4 to open, the timer 401 starts timing simultaneously. The motor 8 drives the movable rail on the double-layer slide rail 7 into the catalytic furnace 1, allowing the catalyst to fully react with the gas in the catalytic furnace 1. After the timing ends, the motor 8 drives the movable rail on the double-layer slide rail 7 into the storage chamber 3, and the inner door 4 closes. Finally, the output button can be pressed again to output the catalyst on the platform 701 to the outside of the storage chamber 3 and place a new catalyst on the platform 701. This process is repeated to complete the catalyst replacement process.
[0027] It is worth noting that in the description of this utility model, "multiple" means two or more, unless otherwise explicitly specified. In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can also refer to a mechanical connection. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0028] It will be apparent to those skilled in the art that this utility model patent is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this utility model patent. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of this utility model patent is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of the equivalent elements of the claims be encompassed within this utility model patent. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A CO catalytic furnace, comprising a catalytic furnace, characterized in that: The catalytic furnace includes several sets of automatic transport components for transporting catalysts and an LCD panel electrically connected to the automatic transport components. Each set of automatic transport components is placed inside the catalytic furnace. Each set of automatic transport components includes a storage chamber for placing catalysts and a sliding component for moving the storage chamber. The sliding component is installed at the lower end of the storage chamber. The inner side of the storage chamber is provided with an inner door that opens into the catalytic furnace, and the outer side of the storage chamber is provided with an outer door that opens out of the catalytic furnace. The inner door and the outer door are connected to the storage chamber by an electric rotating shaft. The inner door is provided with a timer for timing the opening time of the inner door. The sliding assembly includes two sets of bidirectional sliding double-layer slide rails and a motor that drives the movable rail of the double-layer slide rails to move. One end of the motor is connected to the slide base of the double-layer slide rail, and the other end is connected to the movable rail of the double-layer slide rail. The two sets of double-layer slide rails are provided with a platform for placing the catalyst, and the two ends of the platform are respectively connected to the two sets of double-layer slide rails.
2. The CO catalytic furnace according to claim 1, characterized in that: The number of liquid crystal panels corresponds one-to-one with the number of automated transport component groups.
3. A CO catalytic furnace according to claim 1, characterized in that: The LCD panel contains a microcontroller, and the output terminal of the LCD panel is connected to the input terminal of the microcontroller. The output terminal of the microcontroller is electrically connected to the electric shaft, the timer, and the motor, respectively.
4. A CO catalytic furnace according to claim 1, characterized in that: The LCD panel includes an output key, a storage key, and an input key.
5. A CO catalytic furnace according to claim 1, characterized in that: The catalytic furnace is equipped with a power cord that connects to an external power source, and the power cord is electrically connected to the LCD panel.
6. A CO catalytic furnace according to claim 1, characterized in that: The number of automated transport components shall be no less than two.
7. A CO catalytic furnace according to claim 1, characterized in that: The catalytic furnace is equipped with an inlet and an outlet.