Alcohol fuel production equipment based on biomass gasification synthesis
Through the design of the material carrier and the supporting assembly, combined with the circulating airflow of the air guide assembly, the problem of uneven heating of the biomass material is solved, and the efficiency of the biomass gasification synthesis reaction is improved.
Patent Information
- Application Number
- CN202510800493.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-16
- Publication Date
- 2025-09-16
AI Technical Summary
In existing biomass gasification furnace equipment, the heating range of biomass materials is not uniform enough, resulting in unsatisfactory gasification synthesis reaction effect.
The material carrier is designed in combination with the supporting assembly and the air guide assembly. The material position is exchanged through the rotation of the carrier and the height adjustment of the supporting platform. The air guide assembly is used to form a circulating airflow to promote full contact between hot air and materials.
The uniformity of the heating range of the biomass material is improved, the efficiency of the gasification synthesis reaction is enhanced, and the full thermal reaction of the biomass material is ensured.
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Figure CN120648501A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of biomass fuels, and in particular to an alcohol fuel production device based on biomass gasification synthesis. Background Art
[0002] "Liquid Sunshine", also known as "clean methanol" and "green methanol", refers to methanol produced when carbon emissions during the production process are extremely low or zero.
[0003] Green methanol is a technological product that converts biomass such as agricultural and forestry waste into green methanol through processes such as gasification and synthesis.
[0004] Biomass gasification synthesis is a process under certain thermodynamic conditions, with the help of part of the air (or oxygen) and water vapor, to cause the biomass polymers to undergo pyrolysis, oxidation, and reduction reforming reactions, and eventually convert them into combustible gases such as carbon monoxide, hydrogen and low molecular weight hydrocarbons. The combustible gas is then purified, added with a catalyst, and reacted at a certain temperature and pressure to produce methanol, namely green methanol.
[0005] In the existing related technologies, the gasification synthesis operation of biomass requires the use of production equipment such as gasifiers. The existing gasifier equipment usually only heats the biomass materials therein to make the temperature in the furnace reach a certain high temperature (usually 700-100°C or higher). During this operation, due to the accumulation of biomass materials, the heating range is not uniform. In order to improve the heating reaction efficiency, the common existing technical means usually adopt stirring or rotating methods to make the biomass materials move, thereby promoting the contact area between the materials and the hot air and improving the thermal reaction effect. However, such technical means have a relatively single movement mode for biomass materials, and still cannot promote the efficient and sufficient contact of biomass materials with hot air, and the resulting operation effect is still not ideal.
[0006] In summary, how to improve the uniformity of the heating range of biomass materials has become an urgent problem that researchers in this field need to solve. Summary of the Invention
[0007] The technical problem to be solved by the present invention is: how to improve the uniformity of the heating range of biomass materials;
[0008] In order to solve the above technical problems, the technical solution adopted by the present invention is:
[0009] The present invention is an alcohol fuel production device based on biomass gasification synthesis, comprising: a machine body; a loading seat, which is arranged in the machine body and has a cone-shaped structure extending downward at its center; a power source, which is fixed to the machine body and is used to drive the rotation of the loading seat; a supporting assembly, which is arranged at the center of the loading seat for lifting and supporting materials that fall at the center of the loading seat, so that the materials that fall at the center of the loading seat can be thrown to the surrounding areas before the surrounding materials under the action of the rotation of the loading seat.
[0010] Furthermore, the power source is a drive motor, which is arranged in the middle of the top upper surface of the body, and the output end of the drive motor is fixedly connected to the loading base through a rotating rod.
[0011] Furthermore, hollow grooves for material throwing are provided on the vertical side walls and the inclined bottom wall of the loading seat.
[0012] Furthermore, the material support assembly includes: a material support platform, which is arranged at the center of the loading seat; a plug-in rod, one end of which is connected to the material support platform, and one end of which is connected to the sliding support through the hollow groove; a driving member, which is arranged outside the bottom of the loading seat, and the output end of which is connected to the sliding support.
[0013] Furthermore, the driving member is an electric telescopic rod, the fixed end of the electric telescopic rod is fixedly connected to the machine body, and the movable end of the electric telescopic rod is fixedly connected to the sliding bearing.
[0014] Furthermore, a discharge groove is provided at the center of the bottom of the material loading seat, and a blocking arm matching the discharge groove is provided extending downward from the bottom of the material supporting platform.
[0015] Furthermore, a discharge port is provided at the bottom of the machine body, the discharge port is arranged opposite to the discharge trough, and a feed pipe is connected to the top of the machine body.
[0016] Furthermore, a support is provided on the inner wall of the machine body extending radially inward, and a plurality of air guide components are provided at the lower end of the support; the air guide component includes: an air guide channel fixed to the inner wall of the machine body, the first end opening of the air guide channel is close to the inner wall of the machine body, and the second end opening of the air guide channel is close to the center of the loading seat; an impeller is provided at the first end opening of the air guide channel; a transmission rod, one end of which is connected to the impeller, and the other end of which is provided with a transmission gear, and the transmission gear is engaged with the transmission gear seat on the outer wall of the loading seat.
[0017] Furthermore, a lifting air diffuser is provided at the opening of the second end of the air guide channel, an air diffuser cover is installed on the top of the air diffuser, and a connecting rod is connected between the air diffuser and the sliding support.
[0018] Furthermore, the upper end surface of the support platform is inclined, and the inclination angle is not lower than the inclination angle of the conical structure of the loading seat, and a filter plate is installed on the support platform.
[0019] Beneficial effects of the present invention:
[0020] 1. The present invention provides a support platform with adjustable height to create a height difference between the material deposited in the center of the loading seat and the material deposited in the surrounding area. The loading seat is rotated rapidly to throw the material in the lower center to the periphery of the loading seat before the material in the higher surrounding area. Therefore, the heating position of the material can be changed, thereby improving the uniformity of the heating range of the biomass material.
[0021] 2. The present invention sets up a group of air guide components consisting of an air guide channel, an impeller, a transmission rod, a transmission gear and a filter plate, and cooperates with the rotating gear seat arranged on the periphery of the loading seat, so that the air guide component can use the rotational movement of the loading seat to generate an air flow guiding and conveying operation effect, so that the hot air in the upper space of the machine body can be extracted and guided to be conveyed to the lower space of the machine body, thereby forming a circulating hot air flow, which can continuously flush the biomass material circulated and thrown in the loading seat with hot air, thereby promoting the thermal reaction effect of the overall gasification synthesis of the biomass material. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The present invention will be further described below with reference to the accompanying drawings and examples.
[0023] Figure 1 This is a schematic structural diagram of an alcohol fuel production device based on biomass gasification synthesis according to the present invention;
[0024] Figure 2 This is a schematic diagram of the internal structure of an alcohol fuel production device based on biomass gasification synthesis according to the present invention;
[0025] Figure 3 This is a schematic structural diagram of a material carrier and a lifting assembly in an alcohol fuel production device based on biomass gasification synthesis according to the present invention;
[0026] Figure 4 This is a cross-sectional view of the connection relationship between the material carrier and the lifting assembly in the alcohol fuel production equipment based on biomass gasification synthesis according to the present invention;
[0027] Figure 5 This is a schematic diagram of the independent structure of the material loading base in the alcohol fuel production equipment based on biomass gasification synthesis according to the present invention;
[0028] Figure 6 This is a schematic diagram of the independent structure of the lifting component in the alcohol fuel production equipment based on biomass gasification synthesis according to the present invention;
[0029] Figure 7 This is a cross-sectional view of the positional relationship of the air guide components in the alcohol fuel production equipment based on biomass gasification synthesis according to the present invention;
[0030] Figure 8 This is a schematic diagram of the connection relationship between the air guide assembly and the sliding bearing in the alcohol fuel production equipment based on biomass gasification synthesis according to the present invention;
[0031] Figure 9 This is a schematic diagram of the connection relationship between the rotating gear seat and the transmission gear in the alcohol fuel production equipment based on biomass gasification synthesis according to the present invention;
[0032] Figure 10 This is a schematic structural diagram of an air guide channel in an alcohol fuel production device based on biomass gasification synthesis according to the present invention;
[0033] Figure 11 It is a structural cross-sectional view of an air guide channel in an alcohol fuel production device based on biomass gasification synthesis described in the present invention.
[0034] In the figure: 1. Machine body; 2. Driving motor; 3. Rotating rod; 4. Loading seat; 5. Supporting assembly; 6. Supporting platform; 7. Air guide assembly; 8. Discharge port; 9. Feed pipe; 401. Hollow slot; 402. Discharge slot; 403. Rotating gear seat; 501. Supporting platform; 502. Connecting rod; 503. Sliding bearing; 504. Electric telescopic rod; 505. Blocking arm; 601. Sliding cavity; 701. Air guide channel; 702. Impeller; 703. Transmission rod; 704. Transmission gear; 705. Filter plate; 706. Air diffuser; 707. Air diffuser hood; 708. Connecting rod. DETAILED DESCRIPTION
[0035] The present invention will now be described in further detail with reference to the accompanying drawings, which are simplified schematic diagrams that illustrate the basic structure of the present invention in a schematic manner.
[0036] In one embodiment, see Figure 1 、 2 In this embodiment, an alcohol fuel production device based on biomass gasification synthesis includes a body 1, a power source is fixed to the upper end of the body 1, and a loading seat 4 is connected to the body 1 through rotation by the power source. The loading seat 4 is a cylindrical structure with a conical bottom;
[0037] See also Figure 2 , a supporting assembly 5 is movably connected in the material carrier 4, and the supporting assembly 5 is used to lift the material that falls at the lower center of the material carrier 4, so that the material that falls at the lower center of the material carrier can be thrown to the surrounding areas before the surrounding materials under the rotation of the material carrier 4;
[0038] The loading seat 4 in the body 1 can be loaded with an appropriate amount of biomass material, and driven by the power source to perform horizontal rotational motion in the body 1. When the rotation speed is fast, the material loaded in the loading seat 4 can be thrown around. When the rotation speed is slow, since the loading seat 4 has a cylindrical structure with a conical bottom, the scattered material will fall back into the conical bottom of the loading seat 4. In this embodiment, the power source can drive the loading seat 4 to rotate rapidly within a certain period of time according to the set program, and change to slow rotation after a specified time, and then change to fast rotation after another specified time, and cycle in sequence. In this operating mode, although the contact area between the biomass material and the hot air can be promoted, and the operating effect of the gasification synthesis reaction of the biomass material can be promoted, the biomass material located in the center of the loading seat 4 is always slower than the biomass material deposited around it due to the rotational motion, which easily leads to uneven heating area.
[0039] See also Figure 3 、 5 On the basis of the above-mentioned operation mode, the side walls and bottom walls of the loading seat 4 are provided with hollow grooves 401, which are used to meet the ventilation effect of the loading seat 4, so that hot air can pass through the loading seat 4 and contact the biomass material therein to achieve thermal reaction.
[0040] See also Figure 4 、 6 Through the above-mentioned operation mode, this embodiment adds a supporting assembly 5, which includes a supporting platform 501 overlapped at the bottom end of the center of the loading seat 4, and the lower end of the supporting platform 501 is fixedly connected to a plug-in rod 502, which passes through the hollow groove 401 on the bottom wall of the loading seat 4 and extends below the loading seat 4. A driving member is arranged below the loading seat 4 in the body 1, and a sliding bearing 503 is fixedly installed on the upper end of the driving member, and the bottom end of the plug-in rod 502 is rotatably connected to the sliding bearing 503; the sliding bearing 503 acts like a bearing, that is, when the driving member drives the supporting platform 501 to rise, the supporting platform 501 can rotate at the same time.
[0041] In this embodiment, the driving member is an electric telescopic rod 504, which can drive the sliding support 503 to move upward by extending, thereby driving the connecting rod 502 and the supporting platform 501 to move upward. When the supporting platform 501 moves upward, it can lift the material deposited at the center of the inner conical bottom of the loading seat 4 and move it upward. Then, when the loading seat 4 enters the fast rotation movement mode, the material on the lifting platform can be thrown to the surrounding areas before the surrounding materials. Therefore, the position of the material deposited at the center of the inner conical bottom of the loading seat 4 and the material located at the periphery of the center of the inner conical bottom of the loading seat 4 can be exchanged, thereby improving the uniformity of the heating area of the biomass material at different positions in the loading seat 4, and promoting the overall gasification synthesis reaction operation effect of the biomass material.
[0042] As a supplement, the driving member may also be provided with a driving telescopic member on the outside, the driving end of which extends below the loading seat 4 and is fixedly connected to the sliding bearing 503.
[0043] One embodiment of the present invention provides a device with a built-in supporting component 5 that can lift the material at the center of the conical bottom of the loading seat 4, so that the rotating loading seat 4 can throw the lifted material to the surrounding areas before the surrounding materials. Therefore, the position of the material deposited at the center of the conical bottom of the loading seat 4 and the material located at the periphery of the center of the conical bottom of the loading seat 4 can be exchanged to improve the overall gasification synthesis operation effect of the biomass material. The alcohol fuel production equipment based on biomass gasification synthesis solves the problem in the prior art that the accumulation of biomass materials leads to uneven heating range, which easily causes the operation effect of the biomass material gasification synthesis reaction to be less than ideal. The overall idea of this embodiment to solve the above problem is: by providing a supporting platform 501 with adjustable height to create a height difference between the material deposited at the center of the loading seat 4 and the material deposited at the surrounding, and using the rapidly rotating loading seat 4 to throw the material at the lower center to the periphery of the loading seat 4 before the material at the higher surrounding. Therefore, the heating position of the material can be changed, thereby improving the uniformity of the heating range of the biomass material.
[0044] As a specific technical solution of the above embodiment, Figure 1-Figure 3 As shown, the power source is a drive motor 2, which is fixedly installed in the middle of the upper end of the body 1, and the transmission output end of the drive motor 2 is fixedly connected to the loading base 4 through the rotating rod 3; the drive motor 2 can drive the loading base 4 to perform slow and fast rotational movements according to a set program and a certain time pattern. When the loading base 4 rotates quickly, the biomass material loaded therein can be thrown around. When the loading base 4 rotates slowly, the biomass material thrown around will be redeposited on the bottom of the loading base 4 and the supporting platform 501.
[0045] As a specific detail of the above embodiment, the specific width of the hollow groove 401 opened on the loading seat 4 should be adaptively adjusted according to the size, particle size, coarseness and other details of different biomass materials. The main function of the hollow groove 401 is to allow hot air to pass through the loading seat 4 and contact the biomass material therein to achieve thermal reaction.
[0046] At the same time, if Figure 4 、 Figure 5 、 Figure 6As shown, a discharge groove 402 is provided at the bottom center of the material loading seat 4, and a plurality of blocking arms 505 are fixedly installed in the discharge groove 402 at the lower end of the material supporting platform 501; when the material loading seat 4 is in a slow rotation motion, the material supporting platform 501 is located at the bottom of the material loading seat 4, covering the discharge groove 402 to prevent the material loaded in the material loading seat 4 from falling through the discharge groove 402, and when the material supporting platform 501 moves upward, the blocking arm 505 can be left in the discharge groove 402 as an extended closing structure for sealing Close the discharge chute 402 to prevent the material from falling. When the biomass material has completed the thermal reaction operation, the supporting platform 501 can continue to move upward under the action of the driving member until the blocking arm 505 is also moved out of the loading seat 4, which will release the sealing effect on the discharge chute 402, so that the biomass material that has completed the thermal reaction operation can be discharged from the loading seat 4 through the discharge chute 402; the number or gap of the blocking arms 505 should be adaptively adjusted according to the size, particle size, coarseness and other details of different biomass materials.
[0047] As a supplement, Figure 2 、 Figure 7 、 Figure 8 and Figure 9 As shown, a discharge port 8 is provided in the middle of the lower end of the body 1, and the discharge port 8 corresponds to the discharge trough 402. The biomass material discharged from the discharge trough 402 can be discharged from the body 1 through the discharge port 8; a feed pipe 9 is fixedly connected to one side of the upper end of the body 1. The feed pipe 9 is a hollow structure and is used to transport biomass material into the body 1 and drop it into the loading seat 4.
[0048] As a supplement, Figure 7 and Figure 8 As shown, a support platform 6 is fixedly installed on the inner wall of the body 1, and a sliding cavity 601 is radially opened inward on the support platform 6. The loading seat 4 rotates horizontally along the sliding cavity 601 on the support platform 6; the support platform 6 and the sliding cavity 601 can provide a supporting basis for the sliding connection for the rotational movement of the loading seat 4, ensuring the stability of the rotational movement of the loading seat 4.
[0049] In another embodiment, Figure 7-Figure 9As shown, a plurality of air guide components 7 are arranged at the lower end of the support platform 6 in the machine body 1. The air guide component 7 includes an air guide channel 701 fixedly mounted on the inner wall of the machine body 1, and an impeller 702 is fixedly mounted in the air guide channel 701. The middle part of the upper end of the impeller 702 is fixedly connected to a transmission rod 703, which extends into the sliding cavity 601. A transmission gear 704 is fixedly mounted on the transmission rod 703 located in the sliding cavity 601. A transmission gear seat is fixedly mounted on the side wall of the loading seat 4 in the sliding cavity 601, and the transmission gear seat is meshed with the transmission gear 704. In this embodiment, the transmission gear seat and the loading seat 4 are connected at the same time. The rotating motion of the material carrier 4 drives the transmission rod 703 and the impeller 702 to rotate accordingly under the meshing connection between the transmission gear seat and the transmission gear 704. The rotating motion of the impeller 702 can extract the hot air above the base 6, and guide the extracted hot air into the air guide channel 701 to flow to the other end and then be discharged. The hot air flowing out of the air guide channel 701 comes to the bottom of the material carrier 4. As the amount of hot air drawn out increases, the hot air drawn out will pass through the material carrier 4 from bottom to top, thereby promoting the heating effect of the biomass material loaded in the material carrier 4.
[0050] like Figure 10 and Figure 11 As shown, an air diffuser 706 is installed at the other end of the air guide channel 701, and the air diffuser 706 is vertically movably connected to the air guide channel 701. An air diffuser hood 707 is fixedly installed on the upper end surface of the air diffuser 706, and a connecting rod 708 is fixedly installed on the side wall of the air diffuser 706 adjacent to the sliding support 503, and the other end of the connecting rod 708 is fixedly connected to the sliding support 503; in this embodiment, the hot air flowing out of the air guide channel 701 will be diffused by the air diffuser 707, reducing the air flow rate and expanding the air flow range, so that the hot air can fully contact the biomass material loaded in the loading seat 4 over a large range, thereby improving the operating effect of the thermal reaction.
[0051] The connecting rod 708 can establish a fixed connection relationship between the air diffuser 706 and the sliding support 503, so that the height position of the air diffuser 707 can change synchronously with the vertical displacement of the sliding support 503, so that the air diffuser 707 can adjust the specific deceleration and diffusion position of the hot air to ensure the flexibility of its structural function.
[0052] In the operating mode of this embodiment, the air guide component 7 can continuously extract the hot air in the space above the base 6 and guide it to the space below the base 6. As the hot air in the space below the base 6 gradually increases, it naturally passes through the loading seat 4 and flows upward thereto, forming a circulating airflow, so that the hot air can continuously flush the biomass material loaded in the loading seat 4 in the body 1. At the same time, the biomass material loaded in the loading seat 4 will also be continuously prevented from being thrown around by the rotating movement of the loading seat 4, thereby greatly promoting its heating area and heating effect.
[0053] As a supplement, Figure 7-Figure 9 As shown, the upper end surface of the support platform 6 is inclined, and the inclination angle is not lower than the inclination angle of the conical bottom of the loading seat 4, and the support platform 6 is installed with a filter plate 705 through a slot above the transmission gear 704; the inclined setting of the upper end surface of the support platform 6 can make the fine biomass materials accidentally thrown out of the loading seat 4 through the hollow groove 401 re-enter the loading seat 4, and the filter plate 705 can filter the air entering the air guide channel 701, thereby preventing fine biomass material particles from entering the air guide channel 701, ensuring smooth circulation of hot air.
[0054] In addition, the specific number of air guide components 7 is not limited and can be adjusted according to actual needs.
[0055] Another embodiment of the present invention provides a built-in air guide component 7 that can extract the hot air from the upper space of the body 1 and guide it to the lower space of the body 1, and form a circulating hot air flow, which can continuously perform hot air flushing on the biomass material that is circulated and thrown in the loading seat 4, ensuring its thermal reaction effect. The alcohol fuel production equipment based on biomass gasification synthesis solves the problem in the prior art that the hot air in the body 1 cannot circulate, thereby causing poor gasification synthesis effect of the biomass material. The overall idea of this embodiment to solve the above problem is: by setting a The air guide assembly 7 is composed of an air guide channel 701, an impeller 702, a transmission rod 703, a transmission gear 704 and a filter plate 705, and cooperates with the rotating gear seat 403 arranged on the periphery of the loading seat 4, so that the air guide assembly 7 can use the rotational movement of the loading seat 4 to generate an air flow guiding and conveying operation effect, so that the hot air in the upper space of the body 1 can be extracted and guided to be conveyed to the lower space of the body 1, thereby forming a circulating hot air flow, which can continuously flush the biomass material circulated and scattered in the loading seat 4 with hot air, thereby promoting the thermal reaction effect of the overall gasification synthesis of the biomass material.
[0056] As a combination of the above two embodiments, the driving motor 2 drives the loading seat 4 to perform fast and slow alternating rotational motion through the rotating rod 3. When rotating quickly, the biomass material loaded in the loading seat 4 will be thrown to the surrounding walls of the loading seat 4, thereby increasing the contact area between the biomass material and the hot air. When rotating slowly, the biomass material loaded in the loading seat 4 will naturally settle at the bottom of the cone, and the biomass material deposited on the supporting platform 501 can be lifted by the supporting platform 501, so it can be higher than the biomass material deposited around it. When the loading seat 4 rotates quickly again, the lifted biomass material will first be thrown to the surrounding walls. The impeller 702 rotates synchronously with the rotating gear 403 and the transmission gear 704, so that the impeller 702 can transport the hot air in the space above the support 6 to the space below the support 6 through the air guide channel 701. Moreover, the hot air in the space below the support 6 naturally passes through the material carrier 4 as it gradually increases, flows upwards thereof, and forms a circulating airflow, so that the hot air can continuously flush the materials contained in the material carrier 4 in the machine body 1. The biomass material carried is matched with the rotation speed of the loading seat 4. Here, the rotation speed of the impeller 702 matches the rotation speed of the loading seat 4, that is, the air guiding speed of the air guiding channel 701 matches the rotation speed of the loading seat 4. When the loading seat 4 rotates rapidly, the biomass material therein will be scattered. At the same time, the air guiding speed of the air guiding channel 701 will also be accelerated, promoting the hot air to be able to more efficiently flush the scattered biomass material. In addition, when the loading seat 4 enters a slow rotation motion, the scattered biomass material will be deposited on the conical bottom of the loading seat 4. At the same time, the sliding support 503 will drive the supporting platform 501 and the material on its upper end to move upward through the connecting rod 502. At the same time, the air diffuser 706 will be driven by the sliding support 503 under the action of the connecting rod 708 and synchronously displaced upward. Under the displacement of the air diffuser 706, the air diffuser 707 will be adjusted upward to slow down the diffusion position of the specific flow rate of the hot air in the circulating flow, so that the biomass material in the loading seat 4 can be supplied with air at a closer distance. Due to the slow rotation of the loading seat 4, it will also synchronously drive the rotation speed of the impeller 702, causing the flow rate of the hot air in the air guide channel 701 to decrease, and the upward position of the air diffuser 707 will enable the hot air to blow the biomass material in the loading seat 4 more efficiently, ensuring its stable heating effect.
[0057] To sum up, the overall concept of the present invention is: first, a movable supporting platform 501 is used to establish a height difference for the biomass materials deposited at different positions in the loading seat 4, thereby changing the efficiency of their scattering, thereby causing a change in position, and ensuring the uniformity of the heating range of the entire material; secondly, the rotational movement of the loading seat 4 is used to drive the impeller 702 to rotate, so that the impeller 702 can extract the hot air in the upper space of the body 1 and guide it to the lower space of the body 1, and form a circulating hot air flow, which can continuously perform hot air flushing on the biomass materials circulated and scattered in the loading seat 4, ensuring its thermal reaction effect.
[0058] With the above-described preferred embodiments of the present invention as a guide, and with reference to the above description, relevant personnel are fully capable of making various changes and modifications without departing from the technical scope of this invention. The technical scope of this invention is not limited to the contents of the specification and must be determined according to the scope of the claims.
Claims
1. A biomass gasification-based alcohol fuel production device, characterized in that: include: body; A loading base is disposed in the machine body, and its center is a cone-shaped structure extending downward; a power source, fixed to the machine body and used to drive the rotation of the carrier; The material supporting assembly is arranged at the center of the material carrier and is used to lift the material falling at the center of the material carrier so that the material falling at the center of the material carrier can be thrown around before the surrounding materials under the rotation of the material carrier.
2. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 1 is characterized in that: The power source is a driving motor, which is arranged in the middle of the top upper surface of the machine body, and the output end of the driving motor is fixedly connected to the loading seat through a rotating rod.
3. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 2 is characterized in that: The vertical side walls and the inclined bottom wall of the material loading seat are provided with hollow grooves for throwing materials.
4. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 3 is characterized in that: The support assembly comprises: A material supporting platform is arranged at the center of the material loading seat; A plug-in rod, one top end of which is connected to the supporting platform, and one bottom end of which passes through the hollow groove and is connected to the sliding bearing; The driving member is arranged outside the bottom of the material loading seat, and the output end of the driving member is connected with the sliding bearing seat.
5. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 4 is characterized in that: The driving member is an electric telescopic rod, the fixed end of the electric telescopic rod is fixedly connected to the machine body, and the movable end of the electric telescopic rod is fixedly connected to the sliding bearing.
6. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 5, characterized in that: A discharge groove is provided at the center of the bottom of the material loading seat, and a blocking arm matching the discharge groove is provided downwardly extending from the bottom of the material supporting platform.
7. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 6, characterized in that: A discharge port is provided at the bottom of the machine body, and the discharge port is arranged opposite to the discharge trough. A feed pipe is connected to the top of the machine body.
8. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 7, characterized in that: The inner wall of the body is provided with a support platform extending radially outward, the support platform is provided with a sliding cavity radially inward, and a plurality of air guide components are provided at the lower end of the support platform; The air guide assembly includes: An air guide channel fixed to the inner wall of the machine body, wherein the first end opening of the air guide channel is close to the inner wall of the machine body, and the second end opening of the air guide channel is close to the center of the loading seat; an impeller, which is arranged at the first end opening of the air guide channel; A transmission rod has one end connected to the impeller and the other end provided with a transmission gear, and the transmission gear is meshed with a transmission gear seat on the outer wall of the loading seat.
9. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 8, characterized in that: A lifting air diffuser is provided at the opening of the second end of the air guide channel, an air diffuser cover is installed on the top of the air diffuser, and a connecting rod is connected between the air diffuser and the sliding support.
10. The alcohol fuel production equipment based on biomass gasification synthesis according to claim 9, characterized in that: The upper end surface of the support platform is inclined, and the inclination angle is not lower than the inclination angle of the conical structure of the loading seat, and a filter plate is installed on the support platform.