Efficient energy-saving potato chip dewatering and drying device based on intelligent temperature control

Through the intelligent temperature-controlled French fries dehydration and drying device, combined with the dehydration components, leveling components, transmission components and filtering components, the problems of low dehydration efficiency, unevenness, high labor demand and waste of water resources of the existing devices are solved, and efficient and energy-saving French fries dehydration and drying are achieved.

CN120477388AInactive Publication Date: 2025-08-15CUISHENGSHENG
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Patent Information

Application Number
CN202510617287.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-08-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing French fries dehydration and drying device has problems such as low dehydration efficiency, uneven drying, high labor demand, waste of water resources and subsequent processing of waste.

Method used

Using intelligent temperature control, high-efficiency energy-saving French fries dehydration and drying device, waste is collected by adding dehydration components, leveling components, transmission components, filtering components and quick disassembly components, centrifugal force dehydration, leveling rakes, conveying materials, conveying belt conveying materials, filter filtering water and waste tanks.

Benefits of technology

It improves the efficiency and quality of dehydration and drying, reduces labor demand, saves time and water resources, prevents waste from being mixed into subsequent processing, and improves overall production efficiency and material quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an efficient and energy-saving potato chip dewatering and drying device based on intelligent temperature control, and relates to the technical field of potato chip processing, the efficient and energy-saving potato chip dewatering and drying device comprises a supporting base, a conveying assembly is mounted at the top of the supporting base, device bodies are mounted on one sides of the two ends of the conveying assembly, and a dewatering assembly is mounted at the top of each device body; and a filtering assembly is mounted on one side of the exterior of the device body. According to the efficient and energy-saving French fries dewatering and drying device based on intelligent temperature control, by additionally arranging the dewatering assembly, materials can be effectively dewatered through centrifugal force before hot drying, by additionally arranging the flattening assembly, a flattening rake can correspondingly flatten the materials in a reciprocating mode, by additionally arranging the conveying assembly, the materials can be conveyed to the conveying assembly, and the conveying efficiency is improved. According to the material dewatering and drying device, materials can be continuously conveyed after dewatering and drying work is completed, workers do not need to carry the materials manually, and by additionally arranging the filtering assembly, water liquid can be effectively recycled after being subjected to double filtration.
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Description

Technical Field

[0001] The present invention relates to the technical field of French fry processing, and in particular to a high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control. Background Art

[0002] French fry processing primarily involves raw material selection, cleaning, peeling, cutting, soaking, pre-cooking, frying, and cooling. French fry dehydration and drying equipment pre-treats fresh-cut potato chunks or strips, then removes moisture using hot air circulation or infrared radiation to extend shelf life, reduce transportation costs, and facilitate storage. Dehydration and drying equipment typically utilizes high-efficiency hot air circulation, heat pump drying, or microwave drying technologies to quickly remove moisture from the fries while preserving their nutritional value and flavor.

[0003] Current:

[0004] 1. Common French fry dehydration and drying devices usually only use a single method such as hot air circulation or infrared radiation to remove moisture. This may reduce the efficiency of material dehydration and drying, resulting in some water remaining inside the material that has not been dried, which may lead to a decrease in the dehydration and drying quality of the material.

[0005] 2. When the common French fry dehydration and drying device is dehydrating and drying, the material is usually in a stationary state. When there is a lot of material, it will cause accumulation. As a result, when the material on the surface is dried, the material at the bottom has not yet been dried, which may cause uneven drying of the material, thereby reducing the quality of the material.

[0006] 3. After the dehydration and drying of French fries is completed, the staff needs to unload the materials. After unloading, the materials may need to be transferred to the corresponding area for subsequent processing, which increases the labor of the staff and also increases the time cost.

[0007] 4. Common French fry dehydration and drying devices will dehydrate and dry the materials after cleaning, causing the water inside the materials to evaporate and cannot be effectively recycled, resulting in a waste of water.

[0008] 5. After the general French fry dehydration and drying device dehydrates and dries the material, there will be some waste materials such as debris. These waste materials will enter the subsequent processing process together with the material, which may cause the subsequent material processing quality to be reduced. Summary of the Invention

[0009] In view of the shortcomings of the existing technology, the present invention provides a high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control, which solves the problems raised in the above background technology.

[0010] To achieve the above objectives, the present invention is implemented through the following technical solutions: a high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control, comprising a support base, a transmission component is installed on the top of the support base, a device body is installed on one side of both ends of the transmission component, a dehydration component is installed on the top of the device body, a filtering component is installed on one side of the outside of the device body, a drying component is installed in the middle of both ends of the transmission component, a flattening component is installed on the top of the drying component, a quick-release component is installed on both sides of the middle of one end of the transmission component below the drying component, and a limit component is installed on one side of the top of the transmission component;

[0011] The transmission assembly includes a frame mounted on the top of the support base, a first motor is mounted on one end of the frame, an output shaft of the first motor is connected to the main rotating shaft, secondary rotating shafts are evenly mounted on the inner side of the frame, a mesh transmission belt is mounted on the outside of the main rotating shaft and the secondary rotating shaft, first limiting rods are mounted on both sides of the middle of the inner lower surface of the frame, and a waste trough is mounted on the inner side of the frame;

[0012] The device body includes brackets installed at both ends of the frame, a cylinder is installed on the inner side of the bracket, a feed hopper is installed on one side of the top of the cylinder, and a fixing ring is installed on the lower inner side of the cylinder;

[0013] The dehydration assembly includes a fixed frame installed on the top of the cylinder, a second motor is installed on one side of the top of the fixed frame, the output shaft of the second motor is connected to the main gear, the outer side of the main gear is connected to the sub-gear, a sleeve is installed at the bottom of the sub-gear, a dehydration bucket is installed at the bottom of the sleeve, a telescopic rod is installed on the inner side of the sleeve, a sealing cover is installed at the bottom of the telescopic rod, and a discharge pipe is installed at the bottom of the dehydration bucket;

[0014] The filter assembly includes a water inlet pipe installed at the lower part of one side of the outer shell of the cylinder, a water pump is installed on one side of the water inlet pipe, a water inlet pipe is installed at the bottom of the water pump, a box is installed at the bottom of the water inlet pipe, a water outlet pipe is installed at the lower part of one side of the box, a first frame and a second frame are installed on the inside of the box, and a filter layer and an activated carbon filter layer are installed on the top of the first frame and the second frame respectively;

[0015] The drying assembly includes a first fixed block and a second fixed block installed in the middle of both ends of the frame, a third motor is installed on the top of the first fixed block, the output shaft of the third motor is connected to the threaded rod, a threaded sleeve block is installed on the outside of the threaded rod, a drying box is installed on one end of the threaded sleeve block, a linkage sleeve block is installed on one end of the drying box, a limit shaft is installed on the inside of the linkage sleeve block, a box cover is installed on the top of the drying box, and a fan is evenly installed on the top of the box cover;

[0016] The flattening assembly includes a fourth motor installed at the center of the top of the box cover and a sliding frame installed inside the drying box, the output shaft of the fourth motor is connected to the connecting rod, a sliding block is installed on the lower part of one side of the connecting rod through a first connecting shaft, first limit blocks are installed at both ends of the sliding block, second limit blocks are installed on both sides of the sliding frame, and a flattening rake is installed at the bottom of the sliding frame;

[0017] The quick-release assembly includes a first connecting block and a second connecting block installed on both sides of the middle of one end of the frame, located above and below the waste trough. A pressing rod is installed on the inner side of the first connecting block through a second connecting shaft. A mounting bracket is installed on one side of the second connecting block. A pull rod is installed horizontally through one side of the mounting bracket. One end of the pull rod horizontally passes through the inner side of the spring and is connected to the third limit block.

[0018] The limiting assembly includes mounting blocks installed at both ends of one side of the top of the frame, a fixing rod is installed between the mounting blocks, mounting sleeves are installed at both ends of the outer side of the fixing rod, and a limiting plate is installed on the lower outer side of the mounting sleeve.

[0019] Further preferably, the first motor and the main rotating shaft form a rotating structure, and the main rotating shaft and the auxiliary rotating shaft form a linkage structure through a mesh transmission belt.

[0020] Further preferably, the second motor and the main gear form a rotating structure, and the main gear and the sub-gear form an engaging transmission structure, and the telescopic rod and the sealing cover form a telescopic structure, and sealing gaskets are installed around the sealing cover, the inner lower surface of the dehydration barrel is set to be inclined, and the top of the telescopic rod is installed on the inner upper surface of the fixed frame.

[0021] Further preferably, second limiting rods are installed on both sides of the bottom of the filter screen filter layer and the activated carbon filter layer, and first grooves consistent with the external size structure of the second limiting rods are opened on both sides of the top of the first frame and the second frame.

[0022] Further preferably, the third motor and the threaded rod form a rotating structure, and the threaded rod and the threaded sleeve block form a linkage structure through the cooperation of the drying box, the linkage sleeve block and the limiting shaft, and a first slot is provided at one end of the first fixed block and the second fixed block.

[0023] Further preferably, an electric heating tube and a temperature sensor are installed at the bottom of the box cover, and the temperature sensor and the electric heating tube are electrically connected.

[0024] Further preferably, the fourth motor and the connecting rod constitute a rotating structure, and second notches consistent with the external dimension structure of the first limit block are provided at both ends of the sliding frame, and second grooves consistent with the external dimension structure of the second limit block are provided on both sides of the inner wall of the drying box.

[0025] Further preferably, a linkage structure is formed between the sliding frame and the leveling rake through the cooperation of the fourth motor, the connecting rod, the first limit block, the second notch, the second limit block and the second groove.

[0026] Further preferably, the spring and the third limit block form an elastic structure, and the second connecting block and the lower part of one side of the pressing rod are both provided with slots consistent with the external dimension structure of the third limit block, and third grooves consistent with the external dimension structure of the first limit rod are provided on both sides of the bottom of the waste trough.

[0027] Further preferably, one side of the limiting plate is configured to be arc-shaped, and an elastic gasket is installed at one end of the limiting plate.

[0028] The present invention provides a high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control, which has the following beneficial effects:

[0029] The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control is equipped with a dehydration component, so that the material can be effectively dehydrated by centrifugal force before being hot-dried. After dehydration is completed, the sealing cover can be raised to unload the dehydrated material, so that subsequent drying work can be carried out, thereby improving the production quality of the material, making the dehydration and drying efficiency of the material higher and the time cost required to complete the drying lower.

[0030] This high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control is equipped with a flattening component, so that the flattening rake can reciprocate to flatten the material accordingly, so that the material can be dispersed, and the surface area of the material in contact with the hot air is increased, thereby effectively preventing the material from piling up and causing a decrease in drying efficiency, thereby increasing the drying efficiency and drying quality of the material.

[0031] This high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control is equipped with a transmission component, so that the material can be transferred to the drying area for drying after the dehydration work is completed. In this way, the material can be continuously transferred after the dehydration and drying work is completed, and there is no need for manual handling work by the staff, thereby reducing the labor of the staff and saving time costs, further increasing production efficiency.

[0032] This high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control is equipped with a filtering component, so that the water generated by the material during the dehydration process can be effectively collected, and after double filtration through the filter layer and the activated carbon filter layer, it becomes clean water, and then the water can be effectively recycled, reducing the waste of water resources and saving water consumption.

[0033] The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control cooperates with the mesh conveyor belt and the flattening component, so that when the material is flattened, waste materials such as debris can be discharged into the waste trough through the mesh conveyor belt, and the waste can be collected. The quick-release component can be used to prevent the waste trough from falling due to accidental impact or shaking during the waste collection process. After the waste collection is completed, the quick-release component can be used to cancel the limit of the waste trough, thereby facilitating the cleaning work of the staff, thereby effectively preventing the waste from mixing with good materials, resulting in a decrease in the quality of subsequent processing. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 It is a main schematic diagram of the invention;

[0035] Figure 2 This is a schematic diagram of the explosion of the transmission component in the invention;

[0036] Figure 3 This is a schematic diagram of the exploded cross-section of the device body in the invention;

[0037] Figure 4 This is a schematic cross-sectional view of the explosion of the dehydration component in the invention;

[0038] Figure 5 This is a schematic diagram of the explosion of the filter assembly in the invention;

[0039] Figure 6 This is a schematic diagram of the explosion of the drying component in the invention;

[0040] Figure 7 This is an exploded schematic diagram of the flattened components in the invention;

[0041] Figure 8 This is a schematic diagram of the explosion of the quick-release assembly in the invention;

[0042] Figure 9 Schematic diagram of the limiting component in the invention.

[0043] In the figure: 1. Support base; 2. Transmission assembly; 201. Frame; 202. First motor; 203. Main rotating shaft; 204. Secondary rotating shaft; 205. Mesh conveyor belt; 206. First limiting rod; 207. Waste chute; 3. Device body; 301. Bracket; 302. Cylinder; 303. Feed hopper; 304. Fixing collar; 4. Dehydration assembly; 401. Fixing frame; 402. Second motor; 403, main gear; 404, sub-gear; 405, sleeve; 406, dehydration barrel; 407, telescopic rod; 408, sealing cover; 409, discharge pipe; 5, filter assembly; 501, water inlet pipe; 502, water pump; 503, water inlet pipe; 504, box; 505, water outlet pipe; 506, first frame; 507, second frame; 508, filter layer; 509, activated carbon filter layer; 6, drying Drying assembly; 601, first fixed block; 602, second fixed block; 603, third motor; 604, threaded rod; 605, threaded sleeve; 606, drying box; 607, linkage sleeve; 608, limit shaft; 609, box cover; 6010, fan; 7, flattening assembly; 701, fourth motor; 702, sliding frame; 703, connecting rod; 704, first connecting shaft; 705, sliding block; 70 6. First limit block; 707. Second limit block; 708. Leveling rake; 8. Quick-release assembly; 801. First connecting block; 802. Second connecting block; 803. Second connecting shaft; 804. Pressing rod; 805. Mounting bracket; 806. Pull rod; 807. Spring; 808. Third limit block; 9. Limit assembly; 901. Mounting block; 902. Fixing rod; 903. Mounting sleeve; 904. Limit plate. DETAILED DESCRIPTION

[0044] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0045] In the description of the present invention, unless otherwise specified, "plurality" means two or more; terms such as "upper," "lower," "left," "right," "inner," "outer," "front end," "rear end," "head," and "tail" indicate positions or relationships based on those shown in the accompanying drawings. These terms are intended solely to facilitate the description of the present invention and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limiting the present invention. Furthermore, terms such as "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0046] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "connected" and "connection" should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integral connection; mechanical connection, electrical connection; direct connection, or indirect connection through an intermediary. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.

[0047] See also Figures 1 to 9 The present invention provides a technical solution: a high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control, comprising a support base 1, a transmission component 2 is installed on the top of the support base 1, a device body 3 is installed on one side of both ends of the transmission component 2, a dehydration component 4 is installed on the top of the device body 3, a filtering component 5 is installed on the outer side of the device body 3, a drying component 6 is installed in the middle of both ends of the transmission component 2, a flattening component 7 is installed on the top of the drying component 6, a quick-release component 8 is installed on both sides of the middle of one end of the transmission component 2 below the drying component 6, and a limit component 9 is installed on one side of the top of the transmission component 2;

[0048] The transmission assembly 2 includes a frame 201 mounted on the top of the support base 1. A first motor 202 is mounted on one end of the frame 201. The output shaft of the first motor 202 is connected to the main rotating shaft 203. Auxiliary rotating shafts 204 are evenly mounted on the inner side of the frame 201. A mesh transmission belt 205 is mounted on the outside of the main rotating shaft 203 and the auxiliary rotating shaft 204. First limiting rods 206 are mounted on both sides of the middle part of the inner lower surface of the frame 201. A waste trough 207 is mounted on the inner side of the frame 201.

[0049] The device body 3 includes brackets 301 installed at both ends of the frame 201. A cylinder 302 is installed on the inner side of the bracket 301. A feed hopper 303 is installed on the top side of the cylinder 302. A fixing ring 304 is installed on the inner lower part of the cylinder 302.

[0050] The dehydration assembly 4 includes a fixing frame 401 mounted on the top of the cylinder 302, a second motor 402 is mounted on one side of the top of the fixing frame 401, an output shaft of the second motor 402 is connected to a main gear 403, an outer side of the main gear 403 is connected to a sub-gear 404, a sleeve 405 is mounted on the bottom of the sub-gear 404, a dehydration bucket 406 is mounted on the bottom of the sleeve 405, a telescopic rod 407 is mounted on the inner side of the sleeve 405, a sealing cover 408 is mounted on the bottom of the telescopic rod 407, and a discharge pipe 409 is mounted on the bottom of the dehydration bucket 406;

[0051] The filter assembly 5 includes a water inlet pipe 501 installed at the lower portion of one side outside the cylinder 302, a water pump 502 installed on one side of the water inlet pipe 501, a water inlet pipe 503 installed at the bottom of the water pump 502, a box 504 installed at the bottom of the water inlet pipe 503, a water outlet pipe 505 installed at the lower portion of one side of the box 504, a first frame 506 and a second frame 507 installed inside the box 504, and a filter layer 508 and an activated carbon filter layer 509 installed on the top of the first frame 506 and the second frame 507 respectively;

[0052] The drying assembly 6 includes a first fixed block 601 and a second fixed block 602 installed in the middle of both ends of the frame 201. A third motor 603 is installed on the top of the first fixed block 601. The output shaft of the third motor 603 is connected to the threaded rod 604. A threaded sleeve 605 is installed on the outside of the threaded rod 604. A drying box 606 is installed at one end of the threaded sleeve 605. A linkage sleeve 607 is installed at one end of the drying box 606. A limit shaft 608 is installed on the inner side of the linkage sleeve 607. A box cover 609 is installed on the top of the drying box 606. A fan 6010 is evenly installed on the top of the box cover 609.

[0053] The flattening assembly 7 includes a fourth motor 701 mounted at the top center of the box cover 609 and a sliding frame 702 mounted inside the drying box 606. The output shaft of the fourth motor 701 is connected to a connecting rod 703. A sliding block 705 is mounted on the lower portion of one side of the connecting rod 703 via a first connecting shaft 704. First limit blocks 706 are mounted on both ends of the sliding block 705. Second limit blocks 707 are mounted on both sides of the sliding frame 702. A flattening rake 708 is mounted on the bottom of the sliding frame 702.

[0054] The quick-release assembly 8 includes a first connecting block 801 and a second connecting block 802 mounted on both sides of the middle portion of one end of the frame 201, above and below the waste trough 207. A pressing rod 804 is mounted on the inner side of the first connecting block 801 via a second connecting shaft 803. A mounting bracket 805 is mounted on one side of the second connecting block 802. A pull rod 806 is mounted horizontally through one side of the mounting bracket 805. One end of the pull rod 806 horizontally extends through the inner side of the spring 807 and is connected to a third limit block 808.

[0055] The limiting assembly 9 includes mounting blocks 901 installed at both ends of one side of the top of the frame 201, a fixing rod 902 is installed between the mounting blocks 901, mounting sleeves 903 are installed at both ends of the outer side of the fixing rod 902, and a limiting plate 904 is installed on the lower outer side of the mounting sleeve 903.

[0056] In this embodiment, Figure 1 and Figure 2As shown, the first motor 202 and the main rotating shaft 203 form a rotating structure, and the main rotating shaft 203 and the auxiliary rotating shaft 204 form a linkage structure through the mesh transmission belt 205.

[0057] In this embodiment, Figure 1 and Figure 4 As shown, the second motor 402 and the main gear 403 constitute a rotating structure, and the main gear 403 and the sub-gear 404 constitute an engaging transmission structure, and the telescopic rod 407 and the sealing cover 408 constitute a telescopic structure. At the same time, sealing gaskets are installed around the sealing cover 408, the inner lower surface of the dehydration barrel 406 is set to be inclined, and the top of the telescopic rod 407 is installed on the inner upper surface of the fixed frame 401.

[0058] In this embodiment, Figure 1 and Figure 5 As shown, second limiting rods are installed on both sides of the bottom of the filter layer 508 and the activated carbon filter layer 509, and first grooves consistent with the external size structure of the second limiting rods are opened on both sides of the top of the first frame 506 and the second frame 507.

[0059] In this embodiment, Figure 1 and Figure 6 As shown, the third motor 603 and the threaded rod 604 form a rotating structure, and the threaded rod 604 and the threaded sleeve 605 form a linkage structure through the cooperation of the drying box 606, the linkage sleeve 607 and the limiting shaft 608, and a first slot is provided at one end of the first fixed block 601 and the second fixed block 602.

[0060] In this embodiment, Figure 1 and Figure 6 As shown, an electric heating tube and a temperature sensor are installed at the bottom of the box cover 609, and the temperature sensor and the electric heating tube are electrically connected.

[0061] In this embodiment, Figure 1 、 Figure 6 and Figure 7 As shown, the fourth motor 701 and the connecting rod 703 constitute a rotating structure, and second slots consistent with the external dimension structure of the first limit block 706 are provided at both ends of the sliding frame 702, and second grooves consistent with the external dimension structure of the second limit block 707 are provided on both sides of the inner wall of the drying box 606.

[0062] In this embodiment, Figure 1 and Figure 7 As shown, the sliding frame 702 and the leveling rake 708 form a linkage structure through the cooperation of the fourth motor 701, the connecting rod 703, the first limit block 706, the second notch, the second limit block 707 and the second groove.

[0063] In this embodiment, Figure 1 、 Figure 2 and Figure 8 As shown, the spring 807 and the third limit block 808 form an elastic structure, and the lower part of one side of the second connecting block 802 and the pressing rod 804 are provided with slots consistent with the external dimension structure of the third limit block 808, and third grooves consistent with the external dimension structure of the first limit rod 206 are provided on both sides of the bottom of the waste trough 207.

[0064] In this embodiment, Figure 1 and Figure 9 As shown, one side of the limiting plate 904 is configured to be arc-shaped, and an elastic gasket is installed at one end of the limiting plate 904 .

[0065] The efficient and energy-saving French fry dehydration and drying device based on intelligent temperature control works as follows:

[0066] First, put the material into the dewatering barrel 406 through the feed hopper 303. At this time, the second motor 402 can be turned on. The output shaft of the second motor 402 will drive the main gear 403 to rotate, and the main gear 403 will drive the sub-gear 404 to rotate, thereby driving the dewatering barrel 406 to rotate through the sleeve 405, so that the water of the material is discharged through the dewatering barrel 406 by centrifugal force. While the sub-gear 404 is rotating, the telescopic rod 407 will remain stationary. At this time, turn on the water pump 502, and the water pump 502 will suck the water on the top of the fixed ring 304 out through the water inlet pipe 501, and then The water enters the box 504 through the water inlet pipe 503, and then passes through the filter layer 508 for preliminary filtration. The filtered water passes through the activated carbon filter layer 509 for a second step of filtration, thereby filtering into clean water, which can be discharged through the water outlet pipe 505. When the material is dehydrated, the telescopic rod 407 can be extended and retracted to allow the sealing cover 408 to be separated from the inner bottom discharge port of the dehydration barrel 406. At this time, the material will be discharged into the discharge pipe 409 through the inclined bottom design, and then discharged into the bottom of the mesh conveyor belt 205 through the discharge pipe 409. At this time, subsequent transmission work can be carried out;

[0067] Then, when the material falls onto the top of the mesh conveyor belt 205, the first motor 202 can be turned on at this time, and the output shaft of the first motor 202 will drive the main rotating shaft 203 to rotate, thereby driving the mesh conveyor belt 205 to rotate, and the mesh conveyor belt 205 will drive the secondary rotating shaft 204 to rotate, thereby transmitting the material while also performing supporting work. At this time, the material can be transmitted, and when the material is transmitted to the bottom of the drying box 606, the first motor 202 is turned off, and then the third motor 603 is turned on. The output shaft of the third motor 603 will drive the screw The threaded rod 604 rotates, so that the threaded sleeve 605 drives the drying box 606 to move in the vertical direction under the limiting action of the linkage sleeve 607 and the limiting shaft 608, so that the threaded sleeve 605 and the linkage sleeve 607 slide inside the first notch defined by the first fixed block 601 and the second fixed block 602. When the bottom of the drying box 606 is in contact with the mesh conveyor belt 205, it stops and the drying work can be carried out. The fan 6010 and the electric heating tube are started. At this time, the electric heating tube heats the blown air and thus dries the material.

[0068] Secondly, the fourth motor 701 is started while the material is being dried, and the output shaft of the fourth motor 701 drives the connecting rod 703 to rotate, so that the sliding block 705 slides inside the second notch under the limiting action of the first limit block 706 and the second notch, and at the same time, the sliding frame 702 moves horizontally through the sliding block 705 under the limiting action of the second limit block 707 and the second groove, so that the second limit blocks 707 on both sides of the sliding frame 702 slide inside the second groove. Since the connecting rod 703 always performs a circular motion, it can drive the sliding frame 702 to move back and forth in the horizontal direction, thereby driving the leveling rake 708 to move back and forth in the horizontal direction. Thereby, the material is flattened, thereby making the drying efficiency of the material higher. When the internal temperature is higher than the set value of the temperature sensor, the electric heating tube will stop heating, thereby completing the drying of the material. At this time, the height of the drying box 606 is adjusted, and then the first motor 202 is turned on to make the mesh conveyor belt 205 continue to convey the material. At this time, the material will be conveyed through the limit of the limit plate 904, and due to the arc-shaped design and the installation of the elastic gasket, it can effectively avoid damage to the material. During the flattening process, debris and other waste materials will fall into the waste trough 207 through the mesh conveyor belt 205, and then the waste materials can be collected to ensure the subsequent processing quality of the material.

[0069] When it is necessary to clean the filter layer 508 and the activated carbon filter layer 509, the filter layer 508 and the activated carbon filter layer 509 can be pulled out. At this time, the second limiting rods on both sides of the bottom of the filter layer 508 and the activated carbon filter layer 509 will slowly disengage from the first groove, so that the filter layer 508 and the activated carbon filter layer 509 can be pulled out for cleaning. When it is necessary to clean the waste trough 207, the pull rod 806 can be pulled at this time, and the spring 807 will elastically deform, so that the third limiting block 808 can be disengaged from the slot hole. At this time, the pressing rod 804 can be rotated to cancel the limit on the waste trough 207, and then the waste trough 207 can be pulled out. The third grooves on both sides of the bottom of the waste trough 207 will disengage from the first limiting rod 206, and then the waste trough 207 can be pulled out, so that the collected waste can be processed.

[0070] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. An energy-efficient French fry dehydration and drying device based on intelligent temperature control, comprising a support base (1), characterized in that: A transmission component (2) is installed on the top of the support base (1), a device body (3) is installed on one side of both ends of the transmission component (2), a dehydration component (4) is installed on the top of the device body (3), a filtering component (5) is installed on the outer side of the device body (3), a drying component (6) is installed in the middle of both ends of the transmission component (2), a flattening component (7) is installed on the top of the drying component (6), a quick-release component (8) is installed on both sides of the middle of one end of the transmission component (2) below the drying component (6), and a limiting component (9) is installed on one side of the top of the transmission component (2); The transmission assembly (2) comprises a frame (201) mounted on the top of the support base (1); a first motor (202) is mounted on one end of the frame (201); an output shaft of the first motor (202) is connected to a main rotating shaft (203); secondary rotating shafts (204) are evenly mounted on the inner side of the frame (201); a mesh transmission belt (205) is mounted on the outside of the main rotating shaft (203) and the secondary rotating shaft (204); first limiting rods (206) are mounted on both sides of the middle portion of the inner lower surface of the frame (201); and a waste trough (207) is mounted on the inner side of the frame (201); The device body (3) comprises brackets (301) mounted on both ends of the frame (201), a cylinder (302) is mounted on the inner side of the brackets (301), a feed hopper (303) is mounted on one side of the top of the cylinder (302), and a fixing ring (304) is mounted on the lower inner side of the cylinder (302); The dehydration assembly (4) comprises a fixing frame (401) installed on the top of the cylinder (302), a second motor (402) is installed on one side of the top of the fixing frame (401), an output shaft of the second motor (402) is connected to a main gear (403), an outer side of the main gear (403) is connected to a sub-gear (404), a sleeve (405) is installed at the bottom of the sub-gear (404), a dehydration bucket (406) is installed at the bottom of the sleeve (405), a telescopic rod (407) is installed on the inner side of the sleeve (405), a sealing cover (408) is installed at the bottom of the telescopic rod (407), and a discharge pipe (409) is installed at the bottom of the dehydration bucket (406); The filter assembly (5) comprises a water inlet pipe (501) installed at the lower portion of one side of the exterior of the cylinder (302); a water pump (502) is installed on one side of the water inlet pipe (501); a water inlet pipe (503) is installed at the bottom of the water pump (502); a box (504) is installed at the bottom of the water inlet pipe (503); a water outlet pipe (505) is installed at the lower portion of one side of the box (504); a first frame (506) and a second frame (507) are installed on the inside of the box (504); a filter screen filtration layer (508) and an activated carbon filtration layer (509) are installed on the top of the first frame (506) and the second frame (507), respectively; The drying assembly (6) comprises a first fixed block (601) and a second fixed block (602) installed in the middle of both ends of the frame (201); a third motor (603) is installed on the top of the first fixed block (601); an output shaft of the third motor (603) is connected to a threaded rod (604); a threaded sleeve (605) is installed on the outside of the threaded rod (604); a drying box (606) is installed on one end of the threaded sleeve (605); a linkage sleeve (607) is installed on one end of the drying box (606); a limiting shaft (608) is installed on the inner side of the linkage sleeve (607); a box cover (609) is installed on the top of the drying box (606); and a fan (6010) is evenly installed on the top of the box cover (609); The flattening assembly (7) comprises a fourth motor (701) mounted at the top center of the box cover (609) and a sliding frame (702) mounted on the inner side of the drying box (606); the output shaft of the fourth motor (701) is connected to a connecting rod (703); a sliding block (705) is mounted on the lower part of one side of the connecting rod (703) via a first connecting shaft (704); first limiting blocks (706) are mounted on both ends of the sliding block (705); second limiting blocks (707) are mounted on both sides of the sliding frame (702); and a flattening rake (708) is mounted on the bottom of the sliding frame (702); The quick-release assembly (8) comprises a first connecting block (801) and a second connecting block (802) mounted on both sides of the middle of one end of the frame (201) and located above and below the waste trough (207); a pressing rod (804) is mounted on the inner side of the first connecting block (801) via a second connecting shaft (803); a mounting frame (805) is mounted on one side of the second connecting block (802); a pull rod (806) is mounted horizontally through one side of the mounting frame (805); one end of the pull rod (806) is horizontally mounted through the inner side of the spring (807) and connected to the third limit block (808); The limiting assembly (9) comprises mounting blocks (901) mounted on both ends of one side of the top of the frame (201), a fixing rod (902) being mounted between the mounting blocks (901), mounting sleeves (903) being mounted on both ends of the outside of the fixing rod (902), and a limiting plate (904) being mounted on the lower outer portion of the mounting sleeve (903).

2. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 1 is characterized in that: The first motor (202) and the main rotating shaft (203) form a rotating structure, and the main rotating shaft (203) and the auxiliary rotating shaft (204) form a linkage structure via a mesh transmission belt (205).

3. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 1 is characterized in that: The second motor (402) and the main gear (403) form a rotating structure, and the main gear (403) and the sub-gear (404) form an engaged transmission structure, and the telescopic rod (407) and the sealing cover (408) form a telescopic structure, and sealing gaskets are installed around the sealing cover (408). The inner lower surface of the dehydration barrel (406) is set to be inclined, and the top of the telescopic rod (407) is installed on the inner upper surface of the fixed frame (401).

4. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 1 is characterized in that: Second limiting rods are installed on both sides of the bottom of the filter screen filter layer (508) and the activated carbon filter layer (509), and first grooves consistent with the external size structure of the second limiting rods are opened on both sides of the top of the first frame (506) and the second frame (507).

5. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 1 is characterized in that: The third motor (603) and the threaded rod (604) form a rotating structure, and the threaded rod (604) and the threaded sleeve (605) form a linkage structure through the cooperation of the drying box (606), the linkage sleeve (607) and the limiting shaft (608), and a first notch is formed at one end of the first fixed block (601) and the second fixed block (602).

6. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 1 is characterized in that: An electric heating tube and a temperature sensor are installed at the bottom of the box cover (609), and the temperature sensor and the electric heating tube are electrically connected.

7. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 1 is characterized in that: The fourth motor (701) and the connecting rod (703) form a rotating structure, and second notches consistent with the external dimension structure of the first limit block (706) are provided at both ends of the sliding frame (702), and second grooves consistent with the external dimension structure of the second limit block (707) are provided on both sides of the inner wall of the drying box (606).

8. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 7, characterized in that: The sliding frame (702) and the leveling rake (708) form a linkage structure through the cooperation of the fourth motor (701), the connecting rod (703), the first limit block (706), the second notch, the second limit block (707) and the second groove.

9. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 1, characterized in that: The spring (807) and the third limiting block (808) form an elastic structure, and the second connecting block (802) and the lower part of one side of the pressing rod (804) are both provided with slots that are consistent with the external size structure of the third limiting block (808), and third grooves that are consistent with the external size structure of the first limiting rod (206) are provided on both sides of the bottom of the waste trough (207).

10. The high-efficiency and energy-saving French fry dehydration and drying device based on intelligent temperature control according to claim 1, characterized in that: One side of the limiting plate (904) is configured to be in an arc shape, and an elastic gasket is installed at one end of the limiting plate (904).