Novel continuous heat treatment equipment for tobacco flavor and use method of novel continuous heat treatment equipment
This new type of tobacco flavoring heat treatment equipment, which uses a motor to drive the ball-cone plate to shake and the metal rod to generate heat through friction, solves the problems of high energy consumption and uneven heating of traditional equipment. It achieves uniform heating and rapid temperature rise of flavorings, reduces costs and improves quality.
Patent Information
- Application Number
- CN202511478622.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-16
- Publication Date
- 2026-01-23
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional tobacco flavoring heat treatment equipment is energy-intensive, has inaccurate temperature control, and uneven heating, resulting in unstable quality. In particular, it is costly and difficult to guarantee quality when processing high-viscosity and heat-sensitive flavorings.
A novel continuous heat treatment equipment for tobacco flavorings is adopted, which achieves uniform heating and rapid temperature rise of flavorings by using a motor to drive the ball-cone plate to shake, the metal ball rod to generate heat through friction, and a heat conduction structure, thereby reducing additional energy consumption.
This achieves uniform heating of the spices, reduces energy consumption, minimizes the risk of spice component degradation, and improves the quality stability and efficiency of spice processing.
Smart Images

Figure CN121379733A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of tobacco spice heat treatment, and particularly relates to a novel continuous heat treatment equipment for tobacco spices and a use method. BACKGROUND
[0002] Tobacco is an annual or limited perennial herbaceous plant of Solanaceae Nicotiana, the stem is 0.7-2 meters high, the whole plant is densely covered with glandular hairs, the leaf blade is in the shape of an oblong lanceolate or ovate, 10-30 centimeters long, the base is gradually narrowed into an ear-shaped semi-clasping stem, the top is a conic inflorescence, the corolla is funnel-shaped and light red, the capsule is ovate, and the seed is round and brown, the tobacco likes a warm and humid environment, the suitable growth temperature is 8-28 DEG C, and the soil adaptability is wide, and the red soil is the best, when the tobacco is sold in the preparation period, spices need to be added to the broken tobacco, and the spices are divided into various types.
[0003] When the spices are added into the tobacco, heat pretreatment is very important in the tobacco spice processing, for example, cinnamon, nutmeg, etc., need to be baked (120-150 DEG C) to stimulate the volatile oil components, enhance the sweet and woody flavor, and adjust the preparation state through short-time heating (150-180 DEG C), which needs to provide additional resources to force the temperature to be quickly increased, therefore, the energy consumption resource cost of the spices used in the tobacco is too high in the preparation process, and the traditional sandwich steam heating, fixed electric heating, etc. have high energy consumption, inaccurate temperature control, uneven heating and unstable quality when processing high-viscosity and heat-sensitive tobacco spices. SUMMARY
[0004] To solve the problems in the background art, the application provides a novel continuous heat treatment equipment for tobacco spices and a use method.
[0005] To achieve the above purpose, the application provides the following technical scheme: a novel continuous heat treatment equipment for tobacco spices, comprising an electric heating box, an oil plug is tightly connected through the box body on one side of the bottom end of the electric heating box, a spherical cone plate is movably connected to the bottom end plate of the electric heating box, U-shaped connecting frames are fixedly connected to the outer walls of the two ends of the spherical cone plate, and a heating part is jointly arranged between the two U-shaped connecting frames and the electric heating box.
[0006] The heating part comprises a plurality of metal ball rods, each metal ball rod is jointly provided with a support disc, the outer walls of the two ends of the support disc are fixedly connected to the other end plate bodies of the two U-shaped connecting frames, a plurality of alloy cylinder blocks are fixedly connected to the disc body of the support disc in a penetrating manner, and each alloy cylinder block is in sliding connection with each metal ball rod in a fitting manner, for generating high temperature through friction, and the heating part is also provided with a heat conduction structure for suddenly heating and treating the spices in the electric heating box.
[0007] Preferably, a motor is fixedly connected to the outer wall of the top end of the supporting disc in the heating part, a rotating shaft of the motor is fixedly connected with a horizontal plate, a ball shaft rotating rod is movably connected to the other side plate of the horizontal plate, and a hollow ball cylinder is fixedly connected to the other end rod of the ball shaft rotating rod.
[0008] Preferably, a ball disc is fixedly connected to the outer wall of the lower half cylinder of the hollow ball cylinder, the bottom end outer wall of the ball disc and the top end outer wall of the electric heating box are intermittently and slidably connected, and a hollow valve is movably and penetratively connected to the bottom end cylinder of the hollow ball cylinder.
[0009] Preferably, a supporting plate is fixedly connected to the rod of the metal ball rod, a spring one is fixedly connected between the top end outer wall of the supporting plate and the bottom end outer wall of the supporting disc, a rubber plate is fixedly connected to the rod near the top of the metal ball rod, a piston cylinder is slidably connected to the outer wall of the rubber plate, and the bottom end outer wall of the piston cylinder is fixedly connected to the top end outer wall of the supporting disc.
[0010] Preferably, a ring tube is fixedly connected to the top end outer wall of the supporting disc in the heat conduction structure, air holes are penetratively formed at the connection between the one end tube of the ring tube and the one end cylinder of the piston cylinder, a flow guide pipe is penetratively and fixedly connected to the bottom end tube of the ring tube, and the tube of the flow guide pipe is penetratively and fixedly connected to the disc of the supporting disc.
[0011] Preferably, a gas collecting disc is penetratively and fixedly connected to the other end tube of the flow guide pipe, the other end of the gas collecting disc is slidably connected to the outer wall of the hollow ball cylinder, an air inlet hole corresponding to the gas collecting disc is penetratively formed in the cylinder of the hollow ball cylinder, and an air plug is slidably connected to the inner wall of the air inlet hole.
[0012] Preferably, a spring two is fixedly connected between the one end plate of the air plug and the inner wall of the hollow ball cylinder, a slide rod is slidably connected to the one end inner wall of the air plug, a ring plate is fixedly connected to the other end rod of the slide rod, and a plurality of inclined supporting rods are fixedly connected between the top end outer wall of the ring plate and the inner wall of the hollow ball cylinder.
[0013] Preferably, a T-shaped heating column is slidably connected to the inner wall of the ring plate, the column body of the T-shaped heating column is specifically made of a honeycomb shape, the upper half column of the T-shaped heating column is slidably connected to the top end cylinder of the hollow ball cylinder, and the lower half column of the T-shaped heating column is intermittently and slidably connected to the hollow valve formed at the bottom end of the hollow ball cylinder.
[0014] Preferably, a magnetic plate is magnetically connected to the top end of the T-shaped heating column, an extension electric cylinder is fixedly connected to the top end outer wall of the magnetic plate, and the top end outer wall of the extension electric cylinder is fixedly connected to the bottom end outer wall of the horizontal plate.
[0015] The use steps of a new type of tobacco flavor continuous heat treatment equipment are applied to the new type of tobacco flavor continuous heat treatment equipment in claim 9, and the specific operation steps are as follows:
[0016] Step one: the existing electric heating box is continuously heat treated by heating, and meanwhile, the motor installed on the support disc is started to drive the horizontal plate to rotate, the rotating horizontal plate drives the shaft-connected ball shaft rotating rod and the hollow ball cylinder to rotate, the ball shaft rotating rod is installed at a position deviating from the ball center shaft of the hollow ball cylinder, thereby driving the hollow ball cylinder and the installed ball disc to swing significantly, so that the electric heating box is shaken on the ball cone plate to generate the same force, and the flavor in the electric heating box is shaken to make the flavor fully and uniformly contact with the internal heat;
[0017] Step two: the multiple metal ball rods arranged at the top are sequentially fluctuated through the ring-shaped inclined rotation of the ball disc bottom, the passively stressed metal ball rod drives the spring I combined with the support disc to stretch and contract, so that the movement track of the ball disc and the elastic stretching force of the spring I can drive each metal ball rod to move reciprocatingly, thereby continuously generating friction heat with the alloy cylinder block, the high-temperature gas is naturally placed in the piston cylinder, and the movement of the rubber plate driven by the metal ball rod repeatedly causes the gas in the inner cavity to be subjected to negative pressure, so that the gas enters the hollow ball cylinder through the air hole and the ring pipe;
[0018] Step three: the high-temperature gas passively and continuously entering the hollow ball cylinder through the above process directly contacts the T-shaped heating column, the surface of the honeycomb shape makes the high-temperature gas repeatedly contact the column body in the form of flow reversal, so that the high-temperature gas transmits heat to the honeycomb column body, causing the temperature of the honeycomb column body to rise and store heat energy, and the T-shaped heating column connected by the magnetic plate is driven downward by the starting telescopic cylinder, so that the column body contacts the flavor, and continuous and rapid heat treatment of the flavor is realized.
[0019] Compared with the prior art, the beneficial effects of the present application are as follows:
[0020] When the hollow ball cylinder and the ball disc swing are driven by the motor, the electric heating box on the ball cone plate is shaken synchronously, the flavor in the box is uniformly heated, the problem of local temperature being too high caused by simple heating and uneven volatilization is solved, the heat is dispersed through liquid flow during shaking, and the risk of degradation of effective components of the flavor caused by high temperature is reduced;
[0021] The reciprocating friction heat between the metal ball rod and the alloy cylinder block provides an additional heat source, reduces the dependence on energy consumption provided by additional equipment, the high-temperature gas generated by friction is conducted in a directional manner through the piston cylinder, the ring pipe and other structures, heat loss is avoided, and the processing cost of tobacco flavor is reduced;
[0022] This invention utilizes a single motor to simultaneously drive three functions: shaking temperature control, frictional heating, and heat conduction. The rotating motor drives the spherical disc to oscillate the metal rod, achieving reciprocating frictional heating. Simultaneously, it drives the electric heating box to shake, ensuring uniform heating. The high-temperature gas generated by friction can also be automatically collected into the T-shaped heating column through a piston and ring tube structure, allowing for rapid heating of the spices as needed. No additional power equipment is required, enabling continuous processing. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 This is a schematic diagram of the overall planar structure of the present invention;
[0025] Figure 3 This is a schematic diagram of the overall partial cross-sectional structure of the present invention;
[0026] Figure 4 This is a partial cross-sectional structural diagram of the heating section of the present invention;
[0027] Figure 5 For the present invention Figure 3 A magnified view of the structure at point A in the middle;
[0028] Figure 6 For the present invention Figure 3 A magnified schematic diagram of the structure at point B in the middle;
[0029] Figure 7 For the present invention Figure 3 A magnified schematic diagram of the structure at point C.
[0030] In the picture:
[0031] 1. Electric heating box; 101. Oil plug; 102. Ball-cone plate; 103. U-shaped connecting frame;
[0032] 2. Heating section; 201. Support plate; 202. Motor; 203. Horizontal plate; 204. Ball shaft rotating rod; 205. Hollow ball cylinder; 206. Ball plate; 207. Metal ball rod; 208. Support plate; 209. Spring one; 210. Alloy cylinder block; 211. Rubber plate; 212. Piston cylinder; 213. Ring pipe; 214. Vent hole; 215. Guide pipe; 216. Air collection plate; 217. Air inlet; 218. Air plug; 219. Spring two; 220. Slide rod; 221. Ring plate; 222. Diagonal support rod; 223. T-shaped heating column; 224. Magnetic plate; 225. Telescopic electric cylinder. Detailed Implementation
[0033] Clearly, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort, fall within the protection scope of the present application.
[0034] As shown in Figures 1 to 7 The present application provides a new type of tobacco flavor continuous heat treatment equipment, which comprises an electric heating box 1, an oil plug 101 is tightly connected through the box body on one side of the bottom end of the electric heating box 1, a spherical cone plate 102 is movably connected to the bottom end plate of the electric heating box 1, two U-shaped connecting frames 103 are fixedly connected to the outer walls of both ends of the spherical cone plate 102, and a heating part 2 is jointly arranged between the two U-shaped connecting frames 103 and the electric heating box 1.
[0035] The heating part 2 comprises a plurality of metal ball rods 207, each metal ball rod 207 is jointly provided with a support disc 201, the outer walls of both ends of the support disc 201 are fixedly connected to the other end plate bodies of the two U-shaped connecting frames 103, a plurality of alloy cylinder blocks 210 are fixedly connected to the disc body of the support disc 201, and each alloy cylinder block 210 is in sliding connection with each metal ball rod 207 for frictional high-temperature generation, and the heating part 2 further comprises a heat conduction structure for sudden heating treatment of the flavor in the electric heating box 1.
[0036] Adopt the above scheme: through the passive force of metal ball rod 207 drive and spring 209 joint installation of branch disc 201, the elastic extension and contraction of the movement trajectory of ball disc 206 and spring 209, can drive each metal ball rod 207 in turn reciprocating, thereby continuously and alloy cylinder block 210 generate friction heat, high temperature gas natural in the piston cylinder 212, while through the metal ball rod 207 drive rubber plate 211 movement, and repeatedly in its inner cavity of the gas for negative pressure, under the pressure of high temperature gas will be through the piston cylinder 212 and ring pipe 213 on the vent hole 214 into the ring pipe 213, and then its high temperature gas is collected in the rotating swing hollow ball cylinder 205, and continuously intermittent high temperature gas will directly contact T-shaped heating column 223, and the surface of its honeycomb form will make high temperature gas backflow repeatedly contact its column, so that high temperature gas transmits heat to the honeycomb column, resulting in temperature rise and heat storage, directly start telescopic cylinder 225 drive by magnetic plate 224 connected T-shaped heating column 223 to move down, so that its column through hollow valve to move down to contact the spice raw materials in the electric heating box 1, realize the continuous rapid heating treatment of spices, stimulate volatile oil components, the whole through the swing of hollow ball cylinder 205 and ball disc 206 drive the whole electric heating box 1, so that the spices in the box dynamic tumbling, combined with the subsequent T-shaped heating column 223 of active intervention, realize the leap from static passive heating to dynamic active heating, effectively solve the problem of local overheating or heating blind area caused by thermal inertia of traditional equipment.
[0037] The heating part 2 further comprises a motor 202 fixedly connected to the top end outer wall of the branch disc 201, a transverse plate 203 fixedly connected to the rotating shaft of the motor 202, a ball shaft rotating rod 204 movably connected to the other side plate body of the transverse plate 203, a hollow ball cylinder 205 fixedly connected to the other end rod body of the ball shaft rotating rod 204, a ball disc 206 fixedly connected to the lower half cylinder body outer wall of the hollow ball cylinder 205, the bottom end outer wall of the ball disc 206 and the top end outer wall of the electric heating box 1 can be intermittently connected by sliding, a hollow valve movably connected through the bottom end cylinder body of the hollow ball cylinder 205, a support plate 208 fixedly connected to the rod body of the metal ball rod 207, a spring 209 fixedly connected between the top end outer wall of the support plate 208 and the bottom end outer wall of the branch disc 201, a rubber plate 211 fixedly connected to the rod body close to the top of the metal ball rod 207, a piston cylinder 212 slidably connected to the outer wall of the rubber plate 211, the bottom end outer wall of the piston cylinder 212 and the top end outer wall of the branch disc 201 are fixedly connected, wherein the metal ball rod 207 and the alloy cylinder block 210 adopt copper-based alloy with wear resistance and high temperature resistance.
[0038] Adopt the above scheme: through the existing technology in the electric heating box 1 heat to carry on the sustained heat treatment, and at the same time start the electric machine 202 installed on the branch disc 201 drive horizontal plate 203 rotation, rotating horizontal plate 203 will drive shaft connected ball shaft 204 and hollow ball cylinder 205 rotation, because the installation position of ball shaft 204 deviates from the ball center axis of hollow ball cylinder 205, the torque generated by the passive driving force of horizontal plate 203, in turn drive hollow ball cylinder 205 and its installed ball disc 206 swing effect is remarkable, the ball disc 206 in the form of shaking rotation will surround the electric heating box 1, make the electric heating box 1 in the ball cone plate 102 produce the same force shaking, thus the electric heating box 1 placed in the spice raw materials are shaken, this kind of physical disturbance can make up the problem of uneven volatilization caused by the local temperature of electric heating box 1 is too high when simply heated, and the shaking can also disperse heat through the flow of raw material objects, reduce the degradation risk of oil components generated by the spice under high temperature, at the same time, the bottom of the ball disc 206 around the inclined rotation, will in turn fluctuate the multiple metal ball rods 207 set at the top, such as Figure 3 The passive force metal ball rod 207 will drive the spring I 209 combined with the installation of the branch disc 201 to stretch, thus through the movement track of ball disc 206 and the elastic extension force of spring I 209, can drive each metal ball rod 207 to move reciprocatingly, so as to continuously generate heat with alloy cylinder block 210, the high temperature generated between them will automatically rise due to the volume expansion and density decrease of gas after heating, as shown in Figure 4 Through the friction of metal ball rod 207 to move up and make the high temperature gas naturally placed in the piston cylinder 212, at the same time through the movement of rubber plate 211 driven by metal ball rod 207, repeatedly negative pressure in the cavity.
[0039] The heat conduction structure includes a ring pipe 213 fixedly connected to the outer wall of the top end of the branch disc 201. The pipe body at one end of the ring pipe 213 and the cylinder body at one end of the piston cylinder 212 are both provided with a ventilation hole 214. The bottom end of the pipe body of the ring pipe 213 is further provided with a flow guide pipe 215 fixedly connected thereto in a penetrating manner. The pipe body of the flow guide pipe 215 is further fixedly connected to the disc body of the branch disc 201 in a penetrating manner. The other end of the pipe body of the flow guide pipe 215 is provided with a gas collecting disc 216 fixedly connected thereto in a penetrating manner. The other end of the gas collecting disc 216 is slidingly connected to the outer wall of the hollow ball cylinder 205. The cylinder body of the hollow ball cylinder 205 is provided with a gas inlet hole 217 corresponding to the gas collecting disc 216. A gas plug 218 is slidingly connected to the inner wall of the gas inlet hole 217. A spring 219 is fixedly connected between the end plate body of the gas plug 218 and the inner wall of the hollow ball cylinder 205. A sliding rod 220 is slidingly connected to the inner wall of the end of the gas plug 218. A ring plate 221 is fixedly connected to the other end of the rod body of the sliding rod 220. A plurality of inclined supporting rods 222 are fixedly connected between the top end outer wall of the ring plate 221 and the inner wall of the hollow ball cylinder 205. The flow guide pipe 215 and the ring pipe 213 are both provided with a high-efficiency heat preservation layer to reduce or avoid the loss of heat energy during the conveying process.
[0040] A T-shaped heating column 223 is slidingly connected to the inner wall of the ring plate 221. The column body of the T-shaped heating column 223 is formed in a honeycomb shape. The upper half of the column body of the T-shaped heating column 223 is slidingly connected to the top end of the cylinder body of the hollow ball cylinder 205. The lower half of the column body of the T-shaped heating column 223 is intermittently slidingly connected to the hollow valve at the bottom end of the hollow ball cylinder 205. A magnetic plate 224 is magnetically connected to the top end of the T-shaped heating column 223. An extension cylinder 225 is fixedly connected to the top end outer wall of the magnetic plate 224. The top end outer wall of the extension cylinder 225 is fixedly connected to the bottom end outer wall of the horizontal plate 203.
[0041] The high-temperature gas under pressure is introduced into the ring pipe 213 through the ventilation holes 214 in the piston cylinder 212 and the ring pipe 213. Figure 6As shown, the high-temperature gas is collected in the rotating and swinging hollow ball barrel 205 through the flow guide pipe 215 and the gas collecting disc 216 and the air inlet hole 217, and when the high-temperature gas entering the air inlet hole 217 will push the air plug 218 to drive the second spring 219 to separate from the air inlet hole 217, and the air plug 218 will slide on the slide rod 220. The presence of the second spring 219 can automatically reset the air inlet hole 217 when the hollow ball barrel 205 rotates and the gas collecting disc 216 and the air inlet hole 217 are not in the same position, preventing the collected high-temperature gas in the hollow ball barrel 205 from flowing out, and the continuously intermittent high-temperature gas will directly contact the T-shaped heating column 223, and the honeycomb-shaped surface of the T-shaped heating column 223 will repeatedly contact the high-temperature gas in the form of flow, so that the high-temperature gas transfers heat to the honeycomb column, causing the temperature of the honeycomb column to rise and store heat energy. When the continuously heated spices need to be reheated and processed, as shown in Figure 5 and Figure 3 As shown, the high-temperature gas is collected in the rotating and swinging hollow ball barrel 205 through the flow guide pipe 215 and the gas collecting disc 216 and the air inlet hole 217, and when the high-temperature gas entering the air inlet hole 217 will push the air plug 218 to drive the second spring 219 to separate from the air inlet hole 217, and the air plug 218 will slide on the slide rod 220. The presence of the second spring 219 can automatically reset the air inlet hole 217 when the hollow ball barrel 205 rotates and the gas collecting disc 216 and the air inlet hole 217 are not in the same position, preventing the collected high-temperature gas in the hollow ball barrel 205 from flowing out, and the continuously intermittent high-temperature gas will directly contact the T-shaped heating column 223, and the honeycomb-shaped surface of the T-shaped heating column 223 will repeatedly contact the high-temperature gas in the form of flow, so that the high-temperature gas transfers heat to the honeycomb column, causing the temperature of the honeycomb column to rise and store heat energy. When the continuously heated spices need to be reheated and processed, as shown in
[0042] It should be noted that the T-shaped heating column 223 is always in contact with the inner wall of the hollow valve at the top of the hollow ball barrel 205, and the presence of the hollow valve is beneficial to the passive and direct downward movement of the T-shaped heating column 223 through the hollow ball barrel 205 to contact the spices.
[0043] It should be noted that in this document, relational terms such as first and second and the like can be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Moreover, the terms "comprises", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus.
[0044] Although embodiments of the present application have been shown and described, it is to be understood that various modifications, substitutions, alternatives, and variations can be made in the embodiments without departing from the spirit and scope of the present application as defined by the appended claims and their equivalents.
Claims
1. A novel continuous heat treatment device for tobacco flavorings, comprising an electric heating box (1), characterized in that: An oil plug (101) is tightly snapped into one side of the bottom of the electric heating box (1). A ball-and-cone plate (102) is movably connected to the bottom plate of the electric heating box (1). U-shaped connecting frames (103) are fixedly connected to the outer walls of both ends of the ball-and-cone plate (102). A heating part (2) is provided between the two U-shaped connecting frames (103) and the electric heating box (1). The heating part (2) includes a plurality of metal rods (207), and each metal rod (207) is provided with a support plate (201). The outer walls of both ends of the support plate (201) are fixedly connected to the other end plates of the two U-shaped connecting frames (103), and a plurality of alloy cylinder blocks (210) are fixedly connected through the plate of the support plate (201) and are respectively fitted and slidably connected to each metal rod (207) for friction to generate high temperature. The heating part (2) is also provided with a heat conduction structure for rapidly heating the spices in the electric heating box (1).
2. The novel continuous heat treatment equipment for tobacco flavorings according to claim 1, characterized in that: The heating part (2) also includes a motor (202) fixedly connected to the outer wall of the top of the support plate (201). A horizontal plate (203) is fixedly connected to the rotating shaft of the motor (202). A ball shaft rotating rod (204) is movably connected to the other side of the plate of the horizontal plate (203). A hollow ball cylinder (205) is fixedly connected to the other end of the ball shaft rotating rod (204).
3. The novel continuous heat treatment equipment for tobacco flavorings according to claim 2, characterized in that: A ball plate (206) is fixedly connected to the outer wall of the lower half of the hollow ball cylinder (205). The outer wall of the bottom end of the ball plate (206) and the outer wall of the top end of the electric heating box (1) can be intermittently fitted and slidably connected. A hollow valve is also connected to the bottom end of the hollow ball cylinder (205) via a movable shaft.
4. The novel continuous heat treatment equipment for tobacco flavorings according to claim 1, characterized in that: A support plate (208) is fixedly connected to the shaft of the metal cue (207). A spring (209) is fixedly connected between the top outer wall of the support plate (208) and the bottom outer wall of the support plate (201). A rubber plate (211) is also fixedly connected to the shaft of the metal cue (207) near the top. A piston cylinder (212) is slidably connected to the outer wall of the rubber plate (211). The bottom outer wall of the piston cylinder (212) is fixedly connected to the top outer wall of the support plate (201).
5. The novel continuous heat treatment equipment for tobacco flavorings according to claim 1, characterized in that: The heat conduction structure includes an annular pipe (213) fixedly connected to the outer wall of the top of the support plate (201). A vent hole (214) is provided at the connection between one end of the annular pipe (213) and one end of the piston cylinder (212). A guide pipe (215) is also fixedly connected to the bottom end of the annular pipe (213). The guide pipe (215) is also fixedly connected to the plate of the support plate (201).
6. The novel continuous heat treatment equipment for tobacco flavorings according to claim 5, characterized in that: The other end of the guide pipe (215) is fixedly connected to an air collecting plate (216), and the other end of the air collecting plate (216) is slidably connected to the outer wall of the hollow ball cylinder (205). The hollow ball cylinder (205) has an air inlet hole (217) corresponding to the air collecting plate (216) through it. An air plug (218) is slidably engaged in the inner wall of the air inlet hole (217).
7. The novel continuous heat treatment equipment for tobacco flavorings according to claim 6, characterized in that: A spring (219) is fixedly connected between one end plate of the air plug (218) and the inner wall of the hollow ball cylinder (205). A slide rod (220) is slidably connected to one end of the inner wall of the air plug (218). A ring plate (221) is fixedly connected to the other end of the slide rod (220). Multiple inclined support rods (222) are fixedly connected between the outer top wall of the ring plate (221) and the inner wall of the hollow ball cylinder (205).
8. The novel continuous heat treatment equipment for tobacco flavorings according to claim 7, characterized in that: A T-shaped heating column (223) is slidably connected to the inner wall of the ring plate (221). The column body of the T-shaped heating column (223) is specifically made of honeycomb shape. The upper half of the column body of the T-shaped heating column (223) and the top cylinder of the hollow ball cylinder (205) are slidably connected through each other. The lower half of the column body of the T-shaped heating column (223) and the hollow valve opened at the bottom of the hollow ball cylinder (205) can be intermittently slidably connected.
9. The novel continuous heat treatment equipment for tobacco flavorings according to claim 8, characterized in that: A magnetic plate (224) is magnetically connected to the top of the T-shaped heating column (223). A telescopic electric cylinder (225) is fixedly connected to the outer wall of the top of the magnetic plate (224). The outer wall of the top of the telescopic electric cylinder (225) is fixedly connected to the outer wall of the bottom of the horizontal plate (203).
10. A method for using a novel continuous heat treatment equipment for tobacco flavorings, applied to any one of the novel continuous heat treatment equipment for tobacco flavorings according to claims 1-9, characterized in that: The specific steps are as follows: Step 1: The electric heating box (1) in the prior art is used to heat the material continuously, while the motor (202) installed on the support plate (201) is started to drive the horizontal plate (203) to rotate. The rotating horizontal plate (203) will drive the axially connected ball shaft rotating rod (204) and the hollow ball cylinder (205) to rotate. Since the installation position of the ball shaft rotating rod (204) is deviated from the ball shaft of the hollow ball cylinder (205), the hollow ball cylinder (205) and the ball plate (206) installed thereon will swing significantly. This will cause the electric heating box (1) to generate the same force on the ball cone plate (102), which will shake the spices in the electric heating box (1) so that the spices can fully and evenly contact the heat inside. Step 2: After the ball plate (206) rotates around the bottom in an inclined manner, multiple metal rods (207) set at the top will wave in sequence. The passively stressed metal rods (207) will drive the spring (209) installed together with the support plate (201) to extend and retract. Thus, through the movement trajectory of the ball plate (206) and the elastic extension force of the spring (209), each metal rod (207) can be driven to move back and forth in sequence, thereby continuously generating friction and heat with the alloy cylinder (210), so that the high temperature gas is naturally placed in the piston cylinder (212). At the same time, through the movement of the rubber plate (211) driven by the metal rods (207), the gas in its inner cavity is repeatedly negatively pressured, so that it enters the hollow ball cylinder (205) through the vent hole (214) and the ring pipe (213) and collects there; Step 3: The high-temperature gas that passively and intermittently enters the hollow spherical cylinder (205) through the above process will directly contact the T-shaped heating column (223). Its honeycomb-shaped surface will cause the high-temperature gas to repeatedly contact the column in a deflection manner, so that the high-temperature gas transfers heat to the honeycomb column, causing its temperature to rise and storing thermal energy. By activating the telescopic electric cylinder (225), the T-shaped heating column (223) connected by the magnetic plate (224) is moved downward, so that the column contacts the fragrance, realizing continuous and rapid heating and heat treatment of the fragrance.