Intelligent smoke furnace body

By employing a circular array of multiple smoke strips and an intelligent control system on the furnace body, the problems of slow flue gas emission speed and inaccurate temperature control have been solved, enabling rapid flue gas diffusion and stable equipment operation, thereby improving the efficiency of artificial weather modification operations and equipment protection.

CN121876476APending Publication Date: 2026-04-17江西省人工影响天气中心 +2
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-18
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing flue gas furnaces have slow flue gas emission speeds under low pressure and weak airflow conditions, limited catalyst diffusion range, and lack of precise temperature control, resulting in unstable equipment operation and easy damage, which affects the efficiency of artificial weather modification operations.

Method used

The intelligent flue gas furnace body adopts multiple smoke strips arranged in a circumferential array, combined with an electronic ignition device, temperature monitor and air supply unit, to achieve rapid mixing and heating of flue gas. The combustion rate and temperature are adjusted by the controller, and it is equipped with a detachable pre-embedded part for stable installation and to prevent equipment displacement.

Benefits of technology

It improves the speed of flue gas diffusion and the accuracy of temperature control, ensuring that flue gas quickly diffuses to the target area, protecting equipment, reducing maintenance difficulty and cost, and adapting to complex operating environments.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121876476A_ABST
    Figure CN121876476A_ABST
Patent Text Reader

Abstract

The invention provides an intelligent smoke furnace body, and relates to the technical field of smoke furnaces, the intelligent smoke furnace body comprises a plurality of smoke strip parts, the plurality of smoke strip parts are distributed in a circumferential array mode, a combustion chamber is arranged in the center surrounded by the plurality of smoke strip parts, and the combustion chamber and the smoke strip parts are assembled together and installed on the ground of the windward slope side by means of an embedded part. A smoke exhaust pipe is installed at the upper end of the combustion chamber, cigarette bars in the cigarette bar parts are ignited by an electronic ignition device, and smoke generated by combustion of the silver iodide cigarette bars in the cigarette bar parts is mixed in the combustion chamber and exhausted upwards from the smoke exhaust pipe along with hot air. According to the invention, the air supply part drives the curved-surface long-strip fan blades to rotate through the rotating wheel, and a high-rotating-speed rotating disc and an arc-shaped air supply sheet which are realized through transmission of the variable-speed shaft are combined, so that dual upward air supply acting force is formed, the speed of smoke exhausted from the smoke exhaust pipe is greatly accelerated, and the smoke can be quickly diffused to a target area.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of smoke generator technology, and more particularly to intelligent smoke generator bodies. Background Technology

[0002] Artificial weather modification smoke generators are key equipment for conducting artificial rain enhancement and hail suppression operations in high-altitude mountainous areas and windward slopes. Their core principle involves releasing a catalyst through the combustion of silver iodide smoke sticks. This catalyst is then dispersed to the target cloud layer by natural updrafts, promoting water vapor condensation or inhibiting hail formation, thereby achieving the goals of meteorological disaster prevention and water resource regulation. With the increasing demands for precision and efficiency in artificial weather modification operations, the smoke generator's flue gas emission efficiency, catalyst diffusion range, and equipment operational stability have become core factors affecting the effectiveness of these operations.

[0003] Currently, existing weather modification smoke generators generally include a basic structure such as a furnace body, combustion chamber, smoke strip installation components, exhaust pipe, and ignition control device. To improve exhaust efficiency, some generators increase the negative pressure in the furnace by installing a conical smoke hood. However, this fails to generate a continuous and strong upward driving force, resulting in slow flue gas exhaust and difficulty for the catalyst to quickly rise to the target cloud level. Especially in low-pressure, weak-airflow environments, the diffusion range is limited, directly affecting the efficiency of weather modification operations. Regarding temperature control and equipment protection, existing generators rely heavily on traditional manual experience for temperature regulation, lacking a precise closed-loop feedback mechanism. While some generators are equipped with temperature detection elements, they cannot link the temperature signal with airflow intensity and combustion rate for coordinated adjustment. This results in excessively high flue gas temperatures damaging components such as the exhaust pipe, while excessively low temperatures weaken the upward force of hot air, exacerbating the problem of poor flue gas exhaust. Summary of the Invention

[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing an intelligent smoke and gas stove body.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: an intelligent flue gas furnace body, comprising multiple flue sections, each flue section being arranged in a circular array around the same center, with a combustion chamber located at the center. The combustion chamber and each flue section are fixedly assembled to form an integral structure, which is fixedly installed on the ground on the windward slope side via a pre-embedded part. The upper end of the combustion chamber extends vertically upward and is fixedly installed with a flue pipe. Each flue section is equipped with a silver iodide flue and an electronic ignition device. The electronic ignition device contacts the flue to ignite it. The flue gas generated by the combustion of each flue flows into the combustion chamber along the internal channel of the flue section and mixes. The mixed flue gas is discharged upward along the flue pipe with the hot air.

[0006] Preferably, the cigarette pack includes a square-shaped cigarette box, with a fixing frame fixedly connected inside the cigarette box along its length. A port plate is fixedly installed at one end of the cigarette box. It also includes a double-section ceramic tube, which horizontally passes through the port plate and the fixing frame along the length of the cigarette box and is fixed to both. The cigarette can be inserted into the double-section ceramic tube along its axial direction. The electronic ignition device is embedded in the double-section ceramic tube near the end of the port plate and contacts the end of the cigarette. A door is also rotatably installed at the port of the cigarette box, and the door can be rotated around a rotation axis to open and close the port of the cigarette box.

[0007] Preferably, a cover is rotatably connected to the outer surface of the port plate in the horizontal direction. The rotation trajectory of the cover covers the port of the dual-segment ceramic tube. When the cover rotates around the rotation point toward the dual-segment ceramic tube to fit the port plate, the cover seals the port of the dual-segment ceramic tube. A magnetic block is fixedly installed on the outer surface of the port plate corresponding to the fitting position of the cover. When the cover seals the port, it is magnetically attracted and fixed to the magnetic block.

[0008] Preferably, the embedded part includes a connecting frame and an embedded frame. The connecting frame is horizontally arranged and detachably fixed to the bottom of the cigarette box by bolts. The embedded frame has a rectangular frame structure, and its top end is vertically fixed to the bottom end of the connecting frame. The embedded frame is vertically inserted into the preset concrete foundation and fixed to the ground after the concrete solidifies, thereby realizing the embedded installation of the overall structure.

[0009] Preferably, the bottom of the cigarette box has an air vent extending along its length. When the cigarette burns, the smoke flows upward with the hot air, creating negative pressure. External air enters the cigarette box vertically upward along the air vent to assist the cigarette combustion. An electric telescopic rod is fixedly installed on the inner bottom wall of the cigarette box along the length of the air vent. A baffle is fixedly connected to the output end of the electric telescopic rod. The baffle is horizontally slidable along the inner wall of the cigarette box. When the electric telescopic rod extends or retracts, it drives the baffle to slide along the length of the air vent. By adjusting the area of ​​the baffle blocking the air vent, the amount of air entering the cigarette box is controlled, thereby adjusting the burning rate of the cigarette.

[0010] Preferably, a detection unit is fixedly installed at the top of the exhaust pipe. The detection unit includes a conical top, with the large end of the conical top facing downwards and fixedly connected to the top of the exhaust pipe. Multiple exhaust holes are evenly opened on the side of the conical top in a circumferential direction. The flue gas in the exhaust pipe is discharged horizontally from the exhaust holes. The side of the conical top is inclined, which, together with the exhaust holes opened on the side, can prevent rainwater from entering the exhaust pipe vertically downwards.

[0011] Preferably, a temperature monitor is vertically inserted downwards at the upper end of the conical top, and the detection end of the temperature monitor extends into the interior of the exhaust pipe to detect the temperature of the flue gas in the exhaust pipe in real time. The temperature monitor is electrically connected to an external controller and transmits the monitored temperature signal to the controller. The controller outputs control commands to the electric telescopic rod according to the temperature signal, driving the electric telescopic rod to extend and retract to move the baffle. By adjusting the degree of obstruction of the air vent by the baffle, the burning rate of the smoke bar is controlled, thereby providing feedback to adjust the working efficiency of the smoke furnace.

[0012] Preferably, a base plate is detachably installed at the bottom of the combustion chamber, and the base plate is sealed to the inner wall of the combustion chamber to achieve a seal at the bottom of the combustion chamber; a heating element is vertically and fixedly connected to the upper end of the base plate, and the heating element is inserted into the combustion chamber along the axial direction of the combustion chamber to heat the mixed flue gas in the combustion chamber, thereby increasing the flue gas temperature and accelerating the upward discharge of the flue gas along the exhaust pipe; the heating element is electrically connected to an electric heating controller, and the electric heating controller is signal connected to an external controller. The controller controls the electric heating controller to adjust the heating temperature of the heating element according to the temperature signal fed back by the temperature monitor, so as to avoid damage to the exhaust pipe due to excessive temperature.

[0013] Preferably, the combustion chamber has an air supply section located outside the heating element. The air supply section includes two coaxially arranged rotating wheels, with multiple elongated fan blades uniformly fixedly connected circumferentially between the two rotating wheels. Each elongated fan blade is twisted into a curved structure, and the two rotating wheels are coaxially sleeved on the surface of the heating element and have a clearance fit with the heating element. The combustion chamber also includes a drive assembly, which is a motor. The motor is fixedly installed on the outer wall of the combustion chamber, and a heat-insulating protective cover is fitted onto the output shaft of the motor. The output shaft of the motor passes through the side wall of the combustion chamber via a metal synchronous belt and is connected to one of the rotating wheels. The rotating wheel is rotatably installed inside the combustion chamber via bearings. After the motor starts, it drives the rotating wheel to rotate around the axis of the heating element via the metal synchronous belt. The rotating wheel drives the elongated fan blades to rotate synchronously. When the curved elongated fan blades rotate, they generate an upward airflow, which transports the flue gas in the combustion chamber upwards, accelerating the discharge of the flue gas from the exhaust pipe.

[0014] Preferably, the top of the upper rotary wheel is coaxially fixedly connected to an output gear, and also includes a speed-changing shaft. The speed-changing shaft is rotatably mounted inside the combustion chamber via a mounting bracket, which is fixedly connected to the inner wall of the combustion chamber. A small gear is coaxially fixedly connected to the bottom of the speed-changing shaft, and the small gear meshes with the output gear for transmission. Inside the combustion chamber, above the speed-changing shaft, is a turntable. The upper end of the turntable is evenly provided with multiple conical air-blowing vanes along the circumference. Each air-blowing vane is twisted into an arc structure. An input gear is coaxially fixedly connected to the bottom of the turntable. A large gear meshes with the side of the input gear, and the large gear is coaxially fixed to the top of the speed-changing shaft. When the rotary wheel rotates, it drives the output gear to rotate. The output gear drives the speed-changing shaft to rotate through the small gear. The speed-changing shaft transmits power to the turntable and increases the rotational speed of the turntable through the meshing of the large gear and the input gear. The high-speed turntable drives the air-blowing vanes to rotate, further accelerating the upward discharge of flue gas and assisting in the heating of the flue gas.

[0015] Compared with the prior art, the advantages and positive effects of the present invention are as follows:

[0016] 1. In this invention, multiple smoke strips are arranged in a circumferential array around the combustion chamber, allowing the flue gas generated by the combustion of silver iodide smoke strips in each smoke strip to quickly converge into the combustion chamber and mix thoroughly. Combined with the heating element inside the combustion chamber to heat the flue gas, the flue gas temperature can be effectively increased, enhancing the upward force of hot air. At the same time, the air supply unit drives the curved strip fan blades to rotate through the rotating wheel. Combined with the high-speed turntable and arc-shaped air supply blades achieved by the variable speed shaft transmission, a double upward air supply force is formed, which greatly accelerates the speed at which the flue gas is discharged from the exhaust pipe, ensuring that the flue gas can quickly diffuse to the target area and meet the high-efficiency requirements of artificial weather modification operations.

[0017] 2. In this invention, the temperature monitor at the top of the flue pipe can detect the flue gas temperature in real time and feed it back to the external controller. The controller flexibly adjusts the extension and retraction of the electric telescopic rod according to the detection data. By changing the degree of obstruction of the air vent by the baffle, the amount of air entering the smoke box is precisely controlled, thereby adjusting the burning rate of the smoke bar. At the same time, the controller can synchronously regulate the heating temperature of the heating element, ensuring that the flue gas maintains a suitable temperature to improve emission efficiency, while avoiding damage to the flue pipe caused by excessively high temperature, thus achieving a dynamic balance between the working efficiency of the flue gas furnace and equipment protection.

[0018] 3. In this invention, the pre-embedded part is detachably connected to the smoke bar box via a connecting frame. It is fixed in concrete with a vertically set rectangular frame-shaped pre-embedded bracket, allowing the entire smoke generator to be stably installed on the windward slope of the ground, resisting the influence of outdoor wind and other environmental factors, ensuring that the equipment does not shift during operation. The smoke bar section uses a double-section ceramic tube to fix the smoke bar and is precisely ignited with an electronic ignition device. The cap on the port plate and the magnetic block magnetically engage, sealing the double-section ceramic tube port to prevent impurities from entering or smoke leakage, while also facilitating smoke bar replacement. The box door further enhances the protection and maintenance convenience of the smoke bar box. The exhaust hole on the conical top side ensures smooth smoke discharge while effectively preventing rainwater from vertically entering the exhaust pipe, avoiding damage to internal components from moisture and extending the equipment's service life.

[0019] 4. In this invention, the door and cover of the cigarette bar section are connected by a rotating mechanism, which makes it easy to open and close and facilitates the filling and replacement of cigarette bars. The detachable design of the pre-embedded part and the detachable installation of the base plate inside the combustion chamber mean that the equipment does not need to be completely disassembled during subsequent maintenance and component replacement, reducing maintenance difficulty and cost. The electronic ignition device is built into the double-section ceramic tube, eliminating the need for manual on-site ignition. Combined with the intelligent control system, it reduces manual intervention and is suitable for complex outdoor operating environments. Attached Figure Description

[0020] Figure 1 This invention presents a three-dimensional structural diagram of the intelligent smoke generator body.

[0021] Figure 2 This is a schematic diagram of the intelligent smoke furnace body from another angle, as proposed in this invention.

[0022] Figure 3 This is a partial disassembly diagram of the intelligent smoke generator body proposed in this invention;

[0023] Figure 4 This is a partial schematic diagram of the pre-embedded part in the intelligent smoke furnace body proposed in this invention;

[0024] Figure 5 The present invention proposes an intelligent smoke furnace body. Figure 3 Enlarged view of point A;

[0025] Figure 6 This invention presents an internal schematic diagram of the smoke bar section within the intelligent smoke furnace body;

[0026] Figure 7 This is a partial schematic diagram of the detection unit in the intelligent flue gas furnace body proposed in this invention.

[0027] Legend: 1. Smoke bar section; 11. Smoke bar box; 12. Fixing frame; 13. Double-section ceramic tube; 14. Box door; 15. Cover; 16. Magnetic block; 2. Combustion chamber; 3. Exhaust pipe; 4. Detection section; 41. Conical top; 42. Temperature monitor; 5. Embedded section; 51. Connecting frame; 52. Embedded frame; 6. Air outlet; 7. Base plate; 8. Heating element; 9. Air supply section; 91. Rotary wheel; 92. Long fan blade; 93. Output gear; 94. Speed ​​change shaft; 95. Mounting bracket; 96. Input gear; 97. Turntable; 98. Air supply vane. Detailed Implementation

[0028] like Figure 1-7 As shown, this invention provides an intelligent flue gas stove body, including multiple flue sections 1, which are arranged in a circular array around the same center. This layout allows the flue gas generated by the combustion of each flue to quickly converge towards the center. A combustion chamber 2 is set at the center. The flue sections 1 and the combustion chamber 2 are assembled into one unit by common mechanical fixing methods, ensuring a stable connection and facilitating subsequent disassembly and maintenance. The whole unit is installed on the ground on the windward slope side through a pre-embedded part 5, which is suitable for typical installation scenarios of artificial weather modification operations. An exhaust pipe 3 is set upward at the upper end of the combustion chamber 2 and is connected to the inside of the combustion chamber 2 to ensure smooth exhaust of flue gas. Each flue section 1 is equipped with a silver iodide flue and an electronic ignition device. The electronic ignition device contacts the flue to achieve ignition. Its ignition triggering method is adapted to the installation state of the flue, ensuring accurate and reliable ignition.

[0029] The cigarette pack 1 includes a square-shaped cigarette box 11, which is made of high-temperature resistant material to adapt to the high-temperature environment during cigarette combustion. A fixing frame 12 is fixed inside the cigarette box 11 along its length. The fixing frame 12 is used to enhance the structural strength of the cigarette box 11 and provide stable support for the double-section ceramic tube 13. A port plate is fixedly installed at one end of the cigarette box 11. The double-section ceramic tube 13 passes through the port plate and the fixing frame 12 along the length of the cigarette box 11 and forms a stable connection with the two. The double-section ceramic tube 13 has good high-temperature resistance and heat insulation performance, which can prevent the high temperature during cigarette combustion from being transferred to the cigarette box 11. The cigarette can be inserted into the double-section ceramic tube 13 from its port. The electronic ignition device is installed inside the double-section ceramic tube 13 near the port plate and makes precise contact with the end of the cigarette to ensure a high success rate of ignition.

[0030] A door 14 is installed at the port of the cigarette box 11 via a hinge. The door 14 can be rotated around the hinge to open and close the port of the cigarette box 11. When the door 14 is closed, it can protect the internal components of the cigarette box 11 and reduce the entry of external dust and debris. A cover 15 is rotatably connected to the outer surface of the port plate via a pivot. When the cover 15 rotates, it can cover the port of the double-section ceramic tube 13. When the cover 15 rotates to fit the port plate, it can just block the port of the double-section ceramic tube 13. A magnetic block 16 is fixedly installed on the outer surface of the port plate at the position corresponding to the closed position of the cover 15. When the cover 15 blocks the port, it is attracted and fixed to the magnetic block 16. This magnetic structure is not only easy to operate, but also ensures the sealing performance after sealing, preventing smoke leakage and external impurities from entering the interior of the double-section ceramic tube 13.

[0031] The embedded part 5 includes a connecting frame 51 and an embedded frame 52. The connecting frame 51 is horizontally set and detachably connected to the bottom of the smoke box 11 by bolts, which facilitates the assembly and subsequent maintenance of the embedded part and the smoke box. The embedded frame 52 is a rectangular frame structure, and its top is vertically fixed to the bottom of the connecting frame 51 to form a stable support structure. The embedded frame 52 is inserted downward into the preset concrete foundation. After the concrete solidifies, the whole device is stably connected to the ground, which can resist the external forces such as wind common on windward slopes and avoid equipment displacement during operation.

[0032] The bottom of the cigarette box 11 has an air vent 6 arranged along its length to provide sufficient air passage for the combustion of the cigarette. An electric telescopic rod is fixedly installed on the inner bottom wall of the cigarette box 11. The baffle is fixedly connected to the telescopic end of the electric telescopic rod. The edge of the baffle fits against the inner wall of the cigarette box 11 and can slide smoothly along the inner wall. The baffle is made of a material with good sealing performance to ensure the control accuracy when adjusting the air intake and avoid inaccurate adjustment of the combustion rate due to air leakage.

[0033] A detection unit 4 is fixedly installed at the top of the exhaust pipe 3. The detection unit 4 includes a conical top 41, with the large end of the conical top 41 facing downward and fixed to the top of the exhaust pipe 3. Its conical structure can guide rainwater to flow down the side. Multiple exhaust holes are evenly opened on the side of the conical top 41. The exhaust holes are oriented at a certain angle to the horizontal direction, which can ensure that the flue gas is discharged smoothly and prevent rainwater from entering. The temperature monitor 42 is inserted from the top of the conical top 41, passes through the conical top 41 and extends into the interior of the exhaust pipe 3. The detection end is in direct contact with the flue gas in the exhaust pipe 3 to ensure the authenticity and timeliness of the temperature detection.

[0034] A base plate 7 is detachably mounted on the bottom of the combustion chamber 2 via bolts. The edge of the base plate 7 fits against the inner wall of the combustion chamber 2 to seal the bottom of the combustion chamber 2 and prevent flue gas from leaking from the bottom. The heating element 8 is fixed on the upper end of the base plate 7 and extends upward along the axial direction of the combustion chamber 2, inserting into the interior of the combustion chamber 2. The heating element 8 is of a type that is resistant to high temperature and has stable heating efficiency. Its detachable design facilitates later replacement and maintenance. An air supply section 9 is provided inside the combustion chamber 2 on the outside of the heating element 8. The air supply section 9 includes two rotating wheels 91 and multiple long fan blades 92 are evenly distributed between the two rotating wheels 91. The two ends of the long fan blades 92 are fixed to the two rotating wheels 91 respectively. The long fan blades 92 are twisted to form a curved surface structure, which can improve the air supply efficiency and enhance the upward airflow driving force. The two rotating wheels 91 are coaxially sleeved on the surface of the heating element 8 and maintain a certain gap with the heating element 8 to avoid interference during rotation.

[0035] The drive assembly uses a motor, which is fixed to the outer wall of the combustion chamber 2. The motor's output shaft faces the combustion chamber 2. The motor is encased in a heat-insulating protective cover, which prevents the high temperature inside the combustion chamber 2 from being transmitted to the motor, ensuring normal motor operation. One end of a metal synchronous belt is fitted onto the motor's output shaft, and the other end passes through the side wall of the combustion chamber 2 and connects to one of the pulleys 91, ensuring stable power transmission. The output gear 93 is fixed to the top of the upper pulley 91. The transmission shaft 94 is mounted inside the combustion chamber 2 via a mounting bracket 95. The mounting bracket 95 is fixed to the inner wall of the combustion chamber 2, providing stable support for the transmission shaft 94. The transmission shaft 94 can... Rotating freely around its own axis, the first small gear is fixed at the bottom of the transmission shaft 94 and meshes with the output gear 93. The turntable 97 is installed inside the combustion chamber 2 via bearings, located above the transmission shaft 94. The bearings reduce the friction when the turntable 97 rotates. Multiple conical air delivery vanes 98 are evenly distributed on the upper end of the turntable 97. The air delivery vanes 98 are fixed to the turntable 97 and twisted into an arc structure to further enhance the upward pushing effect of the airflow. The input gear 96 is fixed at the bottom of the turntable 97, and the large gear is fixed at the top of the transmission shaft 94. The input gear 96 meshes with the large gear, and the speed is increased through gear transmission, thereby enhancing the air delivery intensity.

[0036] Working Principle: Before use, fix the device to the ground on the windward slope side via the pre-embedded part 5. Open the door 14 of the smoke box 11, lift the cover 15, insert the silver iodide smoke stick into the double-section ceramic tube 13, close the cover 15 (which is fixed by magnetic block 16), and then close the door 14. Start the electronic ignition device, which ignites the smoke stick. The flue gas generated by the combustion of the smoke stick flows towards the combustion chamber 2. During combustion, a negative pressure is generated inside the smoke box 11, and external air enters the smoke box 11 through the air vent 6 to provide sufficient oxygen for combustion. The temperature monitor 42 at the top of the exhaust pipe 3 collects the temperature in real time by contacting the flue gas. Its built-in temperature sensing element converts the physical temperature signal into an electrical signal, which is stably transmitted to the external controller via a wired connection. The controller performs preprocessing such as filtering and amplification on the signal, and then compares it with the preset suitable emission temperature range for flue gas and the upper limit of the safe protection temperature of the exhaust pipe. When the real-time temperature is below the lower limit of the suitable range, the controller outputs a retraction command to the electric telescopic rod drive module to reduce the area of ​​the baffle blocking the air vent 6, thereby increasing the air intake and improving the combustion rate of the smoke bar. At the same time, it outputs a heating command to the electric heating controller to increase the heating power of the heating element 8 and quickly increase the flue gas temperature. When the real-time temperature is above the upper limit of the safety protection, the controller outputs an extension command to the electric telescopic rod drive module to increase the area of ​​the baffle blocking the air intake, thereby reducing the combustion rate. At the same time, it outputs a cooling or shutdown command to the electric heating controller to prevent the flue gas temperature from becoming too high. When the temperature is within the suitable range, the controller outputs a maintenance command to maintain the current operating parameters. After the motor starts, it drives the rotor 91 to rotate via a metal synchronous belt. The rotor 91 drives the curved strip fan blades 92 to rotate, generating an upward airflow that pushes the flue gas in the combustion chamber 2 upward. When the upper rotor 91 rotates, it drives the output gear 93 to rotate. The output gear 93 drives the meshing of the first small gear to rotate, which in turn drives the speed change shaft 94 to rotate. The speed change shaft 94 drives the turntable 97 to rotate at high speed through the meshing of the top large gear and the input gear 96. The arc-shaped air supply vanes 98 on the turntable 97 rotate synchronously, further accelerating the upward flow of the flue gas. The temperature monitor 42 continuously captures changes in the flue gas temperature and feeds it back to the controller. The controller repeatedly compares, judges, and outputs commands, dynamically adjusting the position of the baffle and the heating power of the heating element 8 to form a closed-loop control, ensuring that the flue gas temperature remains stable within an efficient and safe range. The flue gas mixes inside the combustion chamber 2 and is heated by the heating element 8 before entering the exhaust pipe 3 upwards. Finally, it is discharged from the exhaust port on the side of the conical top 41. The inclined structure of the conical top 41, in conjunction with the side exhaust port, effectively prevents rainwater from entering the exhaust pipe 3 and protects the internal components of the device from rainwater corrosion.

[0037] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention in any other way. Any person skilled in the art may utilize the disclosed technical content to make changes or modifications to create equivalent embodiments applicable to other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present invention, without departing from the scope of the present invention, still fall within the protection scope of the present invention. In the description of the present invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. For those skilled in the art, the specific meaning of the above terms in the present invention can be understood through specific circumstances.

Claims

1. An intelligent smoke oven body characterized by: It includes a smoke bar section (1), and multiple smoke bar sections (1) are arranged in a circular array. A combustion chamber (2) is arranged around the center of the multiple smoke bar sections (1). The combustion chamber (2) and the smoke bar section (1) are assembled together and installed on the ground on the windward slope side by means of a pre-embedded part (5). A smoke exhaust pipe (3) is installed at the upper end of the combustion chamber (2). The smoke bar inside the smoke bar section (1) is ignited by an electronic ignition device. The smoke from the combustion of the silver iodide smoke bar inside the multiple smoke bar sections (1) is mixed inside the combustion chamber (2) and discharged upward from the smoke exhaust pipe (3) with the hot air.

2. The intelligent smoker body of claim 1, wherein: The cigarette pack (1) includes a cigarette box (11), which is a square frame structure. The inside of the cigarette box (11) is fixedly connected to a fixing frame (12) and a port plate. It also includes a double-section ceramic tube (13), which passes through the port plate and the fixing frame (12). The cigarette is inserted into the double-section ceramic tube (13). The electronic ignition device is located inside the double-section ceramic tube (13) and is in contact with the cigarette. The port of the cigarette box (11) is rotatably equipped with a door (14).

3. The intelligent smoker body of claim 2, wherein: The surface of the port plate is rotatably connected to a cover (15), which can cover the port of the double-segment ceramic tube (13). A magnetic block (16) is installed on the surface of the port plate. When the cover (15) rotates on the surface of the port plate to block the port of the double-segment ceramic tube (13), the magnetic block (16) and the cover (15) are magnetically attracted to each other.

4. The intelligent smoke generator body according to claim 1, characterized in that: The pre-embedded part (5) includes a connecting frame (51), which is detachably installed between the connecting frame (51) and the cigarette box (11) by means of bolts. The bottom end of the connecting frame (51) is fixedly connected to the pre-embedded frame (52). The pre-embedded frame (52) and the connecting frame (51) are arranged perpendicularly to each other. The pre-embedded frame (52) is a rectangular frame structure. The pre-embedded frame (52) is inserted into the concrete and the concrete solidifies and is pre-embedded on the ground.

5. The intelligent smoke generator body according to claim 2, characterized in that: The bottom end of the cigarette box (11) is provided with an air vent (6). When the cigarette is burning, the smoke rises with the hot air and generates negative pressure. External air enters the inside of the cigarette box (11) through the air vent (6) to assist combustion. An electric telescopic rod is fixedly connected to the inner bottom wall of the cigarette box (11). The baffle is slidably connected to the inner wall of the cigarette box (11). The electric telescopic rod can drive the baffle to slide on the inner wall of the cigarette box (11) to block the air vent (6). The burning rate of the cigarette is controlled by controlling the degree of blocking of the air vent (6) by the baffle.

6. The intelligent smoke generator body according to claim 1, characterized in that: The top of the exhaust pipe (3) is provided with a detection part (4), which includes a conical top (41). The side of the conical top (41) is provided with an exhaust hole, and the flue gas can be discharged from the exhaust port on the side of the conical top (41). The exhaust hole on the side can reduce the amount of rainwater entering the exhaust pipe (3).

7. The intelligent smoke generator body according to claim 6, characterized in that: A temperature monitor (42) is provided at the upper end of the conical top (41). The temperature monitor (42) is inserted into the flue pipe (3) from the upper end of the conical top (41). The temperature monitor (42) can be used to detect the temperature of the flue gas inside the flue pipe (3). The temperature monitor (42) transmits the monitoring information to the external controller. The controller controls the electric telescopic rod to drive the baffle to slide on the inner wall of the smoke box (11) to block the air vent (6) according to the detected temperature. The controller controls the degree of blocking of the air vent (6) by the baffle to control the burning rate of the smoke bar to adjust the working efficiency of the smoke furnace.

8. The intelligent smoke generator body according to claim 1, characterized in that: The combustion chamber (2) is detachably installed with a base plate (7). The base plate (7) seals the bottom of the combustion chamber (2). A heating element (8) is fixedly connected to the upper end of the base plate (7). The heating element (8) is inserted into the combustion chamber (2). The heating element (8) can be used to heat the flue gas inside the combustion chamber (2) to increase the flue gas temperature. The high-temperature flue gas can be quickly discharged from the exhaust pipe (3). The external controller can control the heating temperature of the heating element (8) according to the temperature monitoring device (42) feedback temperature control electric heating controller to avoid excessive temperature damage to the exhaust pipe (3).

9. The intelligent smoke generator body according to claim 8, characterized in that: The combustion chamber (2) is provided with an air supply unit (9), which includes two rotating wheels (91). The two rotating wheels (91) are fixed together by a plurality of long fan blades (92). The plurality of long fan blades (92) are arranged in a circumferential array and twisted into a curved structure. The rotating wheels (91) are fitted on the surface of the heating element (8). The unit also includes a drive assembly, which can be a motor. The motor is fixed on the side of the combustion chamber (2). The surface of the motor is provided with a heat insulation protective cover. The motor passes through the combustion chamber (2) through a metal synchronous belt and drives the rotating wheels (91) to rotate. The rotating wheels (91) are rotatably installed inside the combustion chamber (2). The rotation of the rotating wheels (91) can drive the curved long fan blades (92) to transport the flue gas upward to accelerate the upward discharge of the flue gas from the exhaust pipe (3).

10. The intelligent smoke generator body according to claim 9, characterized in that: An output gear (93) is fixedly connected to the top of the upper rotary wheel (91), and a speed change shaft (94) is also included. A mounting bracket (95) is rotatably mounted on the surface of the speed change shaft (94). The mounting bracket (95) is fixed inside the combustion chamber (2). A small gear is fixedly connected to the bottom end of the speed change shaft (94). The small gear meshes with the output gear (93). A turntable (97) is rotatably connected inside the combustion chamber (2). A conical air supply vane (98) is provided at the upper end of the turntable (97). The air supply vane (98) is twisted into an arc structure. An input gear (96) is fixedly connected to the bottom end of the turntable (97). A large gear meshes with the side of the input gear (96). The large gear is fixed to the speed change shaft (94). The speed change shaft (94) can use the small gear to input power and then use the large gear to output power to increase the speed of the turntable (97). The high-speed air supply vane (98) further heats the flue gas and discharges it upward.