A vegetable food processing dehydrating mechanism
Patent Information
- Application Number
- CN202522252199.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-24
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-10-24
AI Technical Summary
[0003]现有技术中大部分离心脱水和热风烘干结构的脱水结构,主要采用自外而内向离心筒内输送热风的方式对蔬菜食品进行二次脱水,这一方式虽然可以加快蔬菜食品脱水效率,但热风自外而内向离心筒输送,容易出现边缘处蔬菜食品烘干而内部蔬菜食品未烘干,或内部蔬菜食品烘干而外侧蔬菜食品烘干过火的情况,使得位于离心筒边缘处蔬菜食品和内部蔬菜食品烘干速率相差较大,使得对蔬菜食品进行烘干的均匀性较差
[0020] Compared with the prior art, the dehydration mechanism for vegetable food processing disclosed in this utility model adopts centrifugal dehydration and hot air drying to dehydrate vegetable food, thereby improving the dehydration efficiency of vegetable food.
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Figure CN224757436U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of vegetable food dehydration processing technology, specifically relating to a dehydration mechanism for vegetable food processing. Background Technology
[0002] Vegetable dehydration equipment is a type of device used to remove moisture from vegetables. Common methods of vegetable dehydration include centrifugal dehydration and hot air drying. In order to improve the efficiency of vegetable dehydration, there are also dehydration equipment for vegetable processing that combine centrifugal dehydration and hot air drying. In actual application, centrifugal dehydration is mainly used to initially remove the moisture contained in the outside and inside of vegetables. Then, hot air is conveyed to perform secondary dehydration on the vegetables.
[0003] In most existing centrifugal dehydration and hot air drying structures, the dehydration structure mainly uses the method of conveying hot air from the outside to the inside of the centrifuge drum to perform secondary dehydration on vegetables and food. Although this method can speed up the dehydration efficiency of vegetables and food, the hot air is conveyed from the outside to the inside of the centrifuge drum, which can easily lead to the situation where vegetables and food at the edge are dried while those inside are not, or vegetables and food inside are dried while those on the outside are over-dried. This results in a large difference in the drying rate between vegetables and food at the edge of the centrifuge drum and those inside, resulting in poor uniformity in the drying of vegetables and food.
[0004] Therefore, in view of the above-mentioned technical problems, it is necessary to provide a dehydration mechanism for vegetable food processing.
[0005] The information disclosed in this background section is intended only to enhance the understanding of the overall background of this utility model and should not be construed as an admission or in any way implying that the information constitutes prior art known to those skilled in the art. Utility Model Content
[0006] The purpose of this invention is to provide a dehydration mechanism for vegetable food processing, which can improve the uniformity of dehydration processing of vegetable food.
[0007] To achieve the above objectives, the technical solution provided by a specific embodiment of this utility model is as follows:
[0008] A dehydration mechanism for vegetable food processing includes: a dehydration cylinder, a centrifugal dehydration mechanism, and a multi-directional hot air dehydration mechanism.
[0009] The centrifugal dehydration mechanism is installed inside the dehydration cylinder and is used to carry and centrifuge the vegetable food. The centrifugal dehydration mechanism includes a centrifugal mesh cylinder and a centrifugal drive assembly. The centrifugal mesh cylinder is rotatably installed inside the dehydration cylinder, and the centrifugal drive assembly is installed at the bottom of the centrifugal mesh cylinder and is used to drive the centrifugal mesh cylinder to perform centrifugal dehydration.
[0010] The multi-directional hot air dehydration mechanism is installed inside the centrifugal mesh cylinder and is used to dehydrate the vegetables and food inside the centrifugal mesh cylinder with hot air. The multi-directional hot air dehydration mechanism includes a separator and an internal ventilation component. The separator is fixedly installed inside the centrifugal mesh cylinder and is used to separate and limit the vegetables and food inside the centrifugal mesh cylinder. The internal ventilation component is lifted and installed above the separator and is used to deliver hot air into the centrifugal mesh cylinder from the inside to the outside.
[0011] In one or more embodiments of this utility model, multiple sets of external ventilation plates and multiple sets of external nozzles are further included. The multiple sets of external ventilation plates are fixedly mounted on the side wall of the dehydration cylinder, and the multiple sets of external nozzles are assembled, fixed, and ventilated via the multiple sets of external ventilation plates. The multiple sets of external nozzles are fixedly connected to the external ventilation plates on one side of the dehydration cylinder, and are used to deliver hot air from the outside to the inside of the centrifugal mesh cylinder. By delivering hot air from the outside to the inside of the centrifugal mesh cylinder, the vegetables and food inside the centrifugal mesh cylinder can achieve an auxiliary hot air dehydration effect.
[0012] In one or more embodiments of this utility model, an annular cover is fixedly provided on the top of the dewatering cylinder, and the annular cover is used to support and limit the centrifugal mesh cylinder. Multiple sets of evenly distributed support feet are fixedly connected to the bottom of the dewatering cylinder. The dewatering cylinder is supported and fixed by the multiple sets of support feet.
[0013] In one or more embodiments of this utility model, the centrifugal drive assembly includes a rotary drive rod, a linkage block, a driven pulley, a synchronous belt, a driving pulley, a bracket, and a centrifugal motor. The rotary drive rod is rotatably disposed at the bottom of the dewatering cylinder, and the linkage block is inserted into the top of the rotary drive rod. The cooperation between the rotary drive rod and the linkage block allows the centrifugal mesh cylinder to rotate synchronously with the rotation of the rotary drive rod. The driven pulley is fixedly connected to one end of the rotary drive rod located outside the dewatering cylinder, and the driven pulley provides rotational drive for the rotary drive rod. The synchronous belt is sleeved on the outside of the driven pulley, and the synchronous belt provides a transmission connection between the driven pulley and the driving pulley.
[0014] In one or more embodiments of this utility model, the driving pulley is located on the side of the synchronous belt away from the driven pulley, and the driving pulley provides active drive and control for the synchronous belt. The bracket is fixedly connected to the bottom of the dewatering cylinder, and the bracket supports and fixes the centrifugal motor. The centrifugal motor is fixedly mounted on one side of the bracket, and the output shaft of the centrifugal motor is fixedly connected to the driving pulley. The centrifugal motor provides power, and the driving pulley is rotated by controlling the operation of the centrifugal motor.
[0015] In one or more embodiments of this utility model, a water collection box is further included. The water collection box is disposed below the centrifugal screen cylinder and fixedly connected to the bottom of the dewatering cylinder. The water collection box collects and guides the water ejected by the centrifugal screen cylinder during rotation. A drain pipe is fixedly connected to one side of the water collection box. The drain pipe passes through the dewatering cylinder and drains the water collected in the water collection box.
[0016] In one or more embodiments of this utility model, the separator includes a fixed cylinder and multiple sets of separator mesh plates. The fixed cylinder is fixedly disposed at the center of the centrifugal mesh cylinder, and the multiple sets of separator mesh plates are evenly disposed on the outer side of the fixed cylinder. The multiple sets of separator mesh plates are all hollow and have multiple evenly distributed through holes on their side walls.
[0017] In one or more embodiments of this utility model, multiple sets of the separating mesh plates divide the centrifugal mesh cylinder into multiple dehydration cavities, and multiple sets of the external nozzles are respectively arranged corresponding to the multiple dehydration cavities.
[0018] In one or more embodiments of this utility model, the internal ventilation assembly includes a lifting ventilation plate, multiple sets of internal exhaust pipes, multiple sets of internal nozzles, an air supply pipe, a fixed bracket, and a winding roller. The lifting ventilation plate is positioned above the centrifugal mesh cylinder, and serves to assemble, fix, and conduct hot air through the multiple sets of internal exhaust pipes. The multiple sets of internal exhaust pipes are fixedly positioned below the lifting ventilation plate and correspond to multiple dehydration cavities. The multiple sets of internal nozzles are fixedly positioned on the outside of the multiple sets of internal exhaust pipes. Hot air is discharged through the multiple sets of internal exhaust pipes and internal nozzles.
[0019] In one or more embodiments of this utility model, the air supply pipe is fixedly installed above the lifting ventilation plate, and hot air is supplied to the lifting ventilation plate through the air supply pipe. The fixed bracket is fixedly installed above the dehydration cylinder, and the fixed bracket serves to assemble and fix the winding roller. The winding roller is rotatably assembled in the fixed bracket, and a lifting rope is wound around the outside of the winding roller. The other end of the lifting rope is fixedly connected to the lifting ventilation plate. The winding state of the lifting rope can be controlled by rotating the winding roller, and the lifting ventilation plate can be raised and lowered by winding the lifting rope. A drive motor is fixedly installed on one side of the fixed bracket, and the output shaft of the drive motor is fixedly connected to the winding roller. The winding roller can be rotated by controlling the operation of the drive motor.
[0020] Compared with the prior art, the dehydration mechanism for vegetable food processing disclosed in this utility model adopts centrifugal dehydration and hot air drying to dehydrate vegetable food, thereby improving the dehydration efficiency of vegetable food.
[0021] At the same time, by combining internal and external methods to deliver hot air to vegetables and food products, the uniformity of hot air drying of vegetables and food products is improved, ensuring the quality of dehydration processing of vegetables and food products. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 This is a perspective view of a dehydration mechanism for vegetable food processing in one embodiment of the present invention;
[0024] Figure 2 This is a partial structural schematic diagram of a dehydration mechanism for vegetable food processing in one embodiment of the present invention;
[0025] Figure 3 for Figure 2 Schematic diagram of the structure at point A in the middle;
[0026] Figure 4 This is a front sectional view of a dehydration mechanism for vegetable food processing in one embodiment of the present invention;
[0027] Figure 5 for Figure 4 Schematic diagram of the structure at point B;
[0028] Figure 6 This is a perspective view of the centrifugal dehydration mechanism and the multi-directional hot air dehydration mechanism in one embodiment of the present invention;
[0029] Figure 7 This is a perspective view of the centrifugal dehydration mechanism and the multi-directional hot air dehydration mechanism in one embodiment of the present invention.
[0030] Explanation of key figure labels:
[0031] 1-Dehydration cylinder, 101-Annular cylinder cover, 102-Supporting foot, 2-Centrifugal dehydration mechanism, 201-Centrifugal screen cylinder, 202-Rotation drive rod, 203-Linkage block, 204-Driven pulley, 205-Synchronous belt, 206-Drive pulley, 207-Bracket, 208-Centrifugal motor, 3-Multi-directional hot air dehydration mechanism, 301-Separator, 3011-Fixed cylinder, 3012-Separator screen, 302-Lifting ventilation plate, 303-Internal exhaust pipe, 304-Internal nozzle, 305-Air supply pipe, 306-Fixed bracket, 307-Retracting roller, 308-Lifting pull rope, 309-Drive motor, 4-External ventilation plate, 5-External nozzle, 6-Water collection box, 7-Drain pipe. Detailed Implementation
[0032] To enable those skilled in the art to better understand the technical solutions in this disclosure, the technical solutions in the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this disclosure, and not all embodiments. Based on the embodiments in this disclosure, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this disclosure.
[0033] like Figures 1 to 7 As shown, a dehydration mechanism for vegetable food processing in one embodiment of this utility model includes: a dehydration cylinder 1, a centrifugal dehydration mechanism 2, and a multi-directional hot air dehydration mechanism 3. In practical applications, the centrifugal dehydration mechanism 2 carries and centrifugally dehydrates the vegetables. Simultaneously, the multi-directional hot air dehydration mechanism 3 delivers hot air from the inside out, thereby improving the uniformity of hot air drying of the vegetables.
[0034] like Figure 1 As shown, an annular cover 101 is fixedly installed on the top of the dewatering cylinder 1, which is used to support and limit the centrifugal mesh cylinder 201. Multiple sets of evenly distributed support feet 102 are fixedly connected to the bottom of the dewatering cylinder 1. The dewatering cylinder 1 is supported and fixed by the multiple sets of support feet 102.
[0035] like Figures 2 to 3 As shown, the system includes multiple sets of external ventilation plates 4 and multiple sets of external nozzles 5. The external ventilation plates 4 are all fixedly installed on the side wall of the dehydration cylinder 1, and the external nozzles 5 are assembled, fixed, and ventilated via the external ventilation plates 4. The external nozzles 5 are fixedly connected to the external ventilation plates 4 on one side inside the dehydration cylinder 1, and are used to deliver hot air from the outside to the inside of the centrifugal mesh cylinder 201. By delivering hot air from the outside to the inside of the centrifugal mesh cylinder 201, the vegetables and food inside the centrifugal mesh cylinder 201 can achieve an auxiliary hot air dehydration effect.
[0036] Specifically, each of the multiple sets of external ventilation plates 4 is fixedly connected to an air inlet on one side outside the dehydration cylinder 1. In actual application, the multiple sets of air inlets are connected to the hot air delivery pipe, so that hot air can be delivered to the external ventilation plate 4 along the air inlet.
[0037] like Figures 4 to 5 As shown, the system includes a water collection box 6, which is located below the centrifugal screen cylinder 201 and is fixedly connected to the bottom of the dewatering cylinder 1. The water collection box 6 collects and guides the water that is spun out by the centrifugal screen cylinder 201. A drain pipe 7 is fixedly connected to one side of the water collection box 6, and the drain pipe 7 passes through the dewatering cylinder 1 to drain the water collected in the water collection box 6.
[0038] It is worth noting that the inner bottom surface of the water collection box 6 is inclined, and the horizontal height of the inner bottom surface located in the center is higher than that of the outer inner bottom surface, which ensures the smoothness of water discharge from the water collection box 6.
[0039] like Figures 4 to 6 As shown, the centrifugal dehydration mechanism 2 is disposed inside the dehydration cylinder 1 and is used to carry and centrifuge the vegetable food. The centrifugal dehydration mechanism 2 includes a centrifugal mesh cylinder 201 and a centrifugal drive assembly. The centrifugal mesh cylinder 201 is rotatably disposed inside the dehydration cylinder 1, and the centrifugal drive assembly is disposed at the bottom of the centrifugal mesh cylinder 201 and is used to drive the centrifugal mesh cylinder 201 to perform centrifugal dehydration.
[0040] like Figures 4 to 7 As shown, the centrifugal drive assembly includes a rotary drive rod 202, a linkage block 203, a driven pulley 204, a synchronous belt 205, a driving pulley 206, a support 207, and a centrifugal motor 208. The rotary drive rod 202 is rotatably mounted at the bottom of the dewatering cylinder 1, and the linkage block 203 is inserted into the top of the rotary drive rod 202. Through the cooperation of the rotary drive rod 202 and the linkage block 203, the centrifugal screen cylinder 201 can rotate synchronously with the rotation of the rotary drive rod 202.
[0041] It is worth noting that the top of the rotary drive rod 202 is integrally formed with a cross drive key, and the bottom of the linkage block 203 is provided with a cross keyway. The linkage block 203 can rotate synchronously with the rotation of the rotary drive rod 202 through the cooperation of the cross drive key and the cross keyway.
[0042] like Figures 6 to 7 As shown, the driven pulley 204 is fixedly connected to one end of the rotary drive rod 202 located outside the dewatering cylinder 1, and the driven pulley 204 drives the rotary drive rod 202 to rotate. The synchronous belt 205 is sleeved on the outside of the driven pulley 204, and the synchronous belt 205 provides a transmission connection between the driven pulley 204 and the driving pulley 206.
[0043] like Figures 6 to 7As shown, the driving pulley 206 is located on the side of the synchronous belt 205 away from the driven pulley 204, and the driving pulley 206 provides active drive control for the synchronous belt 205. The bracket 207 is fixedly connected to the bottom of the dewatering cylinder 1, and the bracket 207 supports and fixes the centrifugal motor 208. The centrifugal motor 208 is fixedly mounted on one side of the bracket 207, and its output shaft is fixedly connected to the driving pulley 206. The centrifugal motor 208 provides power, and its operation drives the rotation of the driving pulley 206.
[0044] Preferably, the centrifugal motor 208 is a Midea motor with model number YXTK-500-4-6L.
[0045] like Figures 4 to 6 As shown, the multi-directional hot air dehydration mechanism 3 is disposed inside the centrifugal mesh cylinder 201 and is used to dehydrate the vegetables and food inside the centrifugal mesh cylinder 201 using hot air. The multi-directional hot air dehydration mechanism 3 includes a separator 301 and an internal ventilation assembly. The separator 301 is fixedly disposed inside the centrifugal mesh cylinder 201 and is used to separate and limit the vegetables and food inside the centrifugal mesh cylinder 201.
[0046] like Figures 4 to 6 As shown, the separator 301 includes a fixed cylinder 3011 and multiple sets of separator mesh plates 3012. The fixed cylinder 3011 is fixedly disposed at the center of the centrifugal mesh cylinder 201, and the multiple sets of separator mesh plates 3012 are evenly disposed on the outer side of the fixed cylinder 3011. The multiple sets of separator mesh plates 3012 are all hollow and have multiple evenly distributed through holes on their side walls.
[0047] Specifically, the number of multiple sets of separating mesh panels 3012 can be adjusted adaptively according to the different types of vegetables and foods.
[0048] Among them, multiple sets of dividing screen plates 3012 divide the centrifugal screen cylinder 201 into multiple dewatering cavities, and multiple sets of external nozzles 5 are respectively set to correspond to multiple dewatering cavities.
[0049] like Figures 6 to 7 As shown, the internal ventilation assembly is vertically mounted above the partition 301 and is used to deliver hot air into the centrifugal mesh cylinder 201 from the inside out. The internal ventilation assembly includes a lifting ventilation plate 302, multiple sets of internal exhaust pipes 303, multiple sets of internal nozzles 304, an air supply pipe 305, a fixed bracket 306, a winding roller 307, a lifting rope 308, and a drive motor 309.
[0050] like Figures 6 to 7As shown, the lifting ventilation plate 302 is positioned above the centrifugal mesh cylinder 201. The lifting ventilation plate 302 serves to assemble and fix multiple sets of internal exhaust pipes 303 and to conduct and transport hot air. Multiple sets of internal exhaust pipes 303 are all fixedly positioned below the lifting ventilation plate 302 and correspond to multiple dehydration cavities. Multiple sets of internal nozzles 304 are fixedly positioned on the outside of the multiple sets of internal exhaust pipes 303. Hot air is discharged through the multiple sets of internal exhaust pipes 303 and internal nozzles 304.
[0051] like Figures 6 to 7 As shown, the air supply pipe 305 is fixedly installed above the lifting ventilation plate 302, and hot air is supplied into the lifting ventilation plate 302 through the air supply pipe 305. The fixed bracket 306 is fixedly installed above the dewatering cylinder 1, and the fixed bracket 306 serves to assemble and fix the winding roller 307.
[0052] like Figures 6 to 7 As shown, the take-up roller 307 is rotatably mounted in the fixed bracket 306. A lifting rope 308 is wound around the outside of the take-up roller 307. The other end of the lifting rope 308 is fixedly connected to the lifting ventilation plate 302. The winding state of the lifting rope 308 can be controlled by rotating the take-up roller 307. The lifting ventilation plate 302 can be lifted and lowered by winding the lifting rope 308.
[0053] like Figures 6 to 7 As shown, a drive motor 309 is fixedly mounted on one side of the fixed bracket 306, and the output shaft of the drive motor 309 is fixedly connected to the take-up roller 307. The take-up roller 307 can be rotated by controlling the operation of the drive motor 309.
[0054] Preferably, the drive motor 309 is a geared motor of model DYG with a power of 120W.
[0055] In practical use, vegetables are placed in multiple dehydration chambers. The centrifugal motor 208 drives the drive pulley 206 to rotate. The centrifugal screen 201 rotates synchronously under the combined action of the drive rod 202, linkage block 203, driven pulley 204, synchronous belt 205, and drive pulley 206. The rotation of the centrifugal screen 201 centrifuges and dehydrates the vegetables in the dehydration chambers. Water ejected from the centrifugal screen 201 is collected in the water collection box 6 by the guide action of the dehydration cylinder 1, and the collected water is discharged along the drain pipe 7.
[0056] Subsequently, multiple sets of external ventilation panels 4 and air supply pipes 305 are connected to the hot air delivery pipe, and hot air is delivered into the centrifugal mesh cylinder 201 from the outside through the multiple sets of external ventilation panels 4 and external nozzles 5. Furthermore, by controlling the release of the lifting rope 308, multiple sets of internal exhaust pipes 303 are inserted into multiple sets of separating mesh plates 3012, and hot air is delivered into the centrifugal mesh cylinder 201 from the inside through the cooperation of the multiple sets of internal exhaust pipes 303 and internal nozzles 304. This multi-directional delivery of hot air ensures the uniformity of hot air drying of the vegetables and food within the centrifugal mesh cylinder 201.
[0057] After dehydration, the lifting ventilation plate 302 is raised by controlling the rewinding of the lifting rope 308. Then, the centrifugal mesh cylinder 201 can be manually lifted to empty the dehydrated vegetables and food inside.
[0058] It will be apparent to those skilled in the art that this disclosure is not limited to the details of the exemplary embodiments described above, and that this disclosure can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of this disclosure is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this disclosure. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0059] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A dehydration mechanism for vegetable food processing, characterized in that, include: Dehydration cylinder (1); Centrifugal dehydration mechanism (2) is set inside the dehydration cylinder (1) and is used to carry and centrifuge the vegetable food. The centrifugal dehydration mechanism (2) includes a centrifugal mesh cylinder (201) and a centrifugal drive assembly. The centrifugal mesh cylinder (201) is rotatably set inside the dehydration cylinder (1). The centrifugal drive assembly is set at the bottom of the centrifugal mesh cylinder (201) and is used to drive the centrifugal mesh cylinder (201) to perform centrifugal dehydration. A multi-directional hot air dehydration mechanism (3) is installed inside the centrifugal mesh cylinder (201) for hot air dehydration of vegetables and food products inside the centrifugal mesh cylinder (201). The multi-directional hot air dehydration mechanism (3) includes a separator (301) and an internal ventilation component. The separator (301) is fixedly installed inside the centrifugal mesh cylinder (201) for separating and limiting the vegetables and food products inside the centrifugal mesh cylinder (201). The internal ventilation component is lifted and installed above the separator (301) for conveying hot air into the centrifugal mesh cylinder (201) from the inside out.
2. The dehydration mechanism for vegetable food processing according to claim 1, characterized in that, Also includes: Multiple sets of external ventilation plates (4) and multiple sets of external nozzles (5) are provided. The multiple sets of external ventilation plates (4) are fixedly installed on the side wall of the dehydration cylinder (1). The multiple sets of external nozzles (5) are fixedly connected to the side of the external ventilation plates (4) located inside the dehydration cylinder (1) for conveying hot air to the centrifugal mesh cylinder (201) from the outside to the inside.
3. The dehydration mechanism for vegetable food processing according to claim 1, characterized in that, An annular cover (101) is fixedly installed on the top of the dehydration cylinder (1). The annular cover (101) is used to support and limit the centrifugal mesh cylinder (201). Multiple sets of evenly distributed support feet (102) are fixedly connected to the bottom of the dehydration cylinder (1).
4. The dehydration mechanism for vegetable food processing according to claim 1, characterized in that, The centrifugal drive assembly includes a rotary drive rod (202), a linkage block (203), a driven pulley (204), a synchronous belt (205), a driving pulley (206), a bracket (207), and a centrifugal motor (208). The rotary drive rod (202) is rotatably disposed at the bottom of the dewatering cylinder (1). The linkage block (203) is inserted into the top of the rotary drive rod (202). The driven pulley (204) is fixedly connected to one end of the rotary drive rod (202) located outside the dewatering cylinder (1). The synchronous belt (205) is sleeved on the outside of the driven pulley (204).
5. The dehydration mechanism for vegetable food processing according to claim 4, characterized in that, The driving pulley (206) is located on the side of the synchronous belt (205) away from the driven pulley (204). The bracket (207) is fixedly connected to the bottom of the dewatering cylinder (1). The centrifugal motor (208) is fixedly located on one side of the bracket (207). The output shaft of the centrifugal motor (208) is fixedly connected to the driving pulley (206).
6. The dehydration mechanism for vegetable food processing according to claim 1, characterized in that, It also includes a water collection box (6), which is located below the centrifugal mesh cylinder (201) and is fixedly connected to the bottom of the dewatering cylinder (1). A drain pipe (7) is fixedly connected to one side of the water collection box (6), and the drain pipe (7) is installed through the dewatering cylinder (1).
7. The dehydration mechanism for vegetable food processing according to claim 2, characterized in that, The separator (301) includes a fixed cylinder (3011) and multiple sets of separator mesh plates (3012). The fixed cylinder (3011) is fixedly disposed at the center of the centrifugal mesh cylinder (201). The multiple sets of separator mesh plates (3012) are evenly disposed on the outside of the fixed cylinder (3011). The multiple sets of separator mesh plates (3012) are all hollow and have multiple evenly distributed through holes on their side walls.
8. The dehydration mechanism for vegetable food processing according to claim 7, characterized in that, Multiple sets of the separating mesh plates (3012) divide the centrifugal mesh cylinder (201) into multiple dehydration cavities, and multiple sets of the external nozzles (5) are respectively set to correspond to the multiple dehydration cavities.
9. The dehydration mechanism for vegetable food processing according to claim 8, characterized in that, The internal ventilation assembly includes a lifting ventilation plate (302), multiple sets of internal exhaust pipes (303), multiple sets of internal nozzles (304), an air supply pipe (305), a fixed bracket (306), a winding roller (307), a lifting rope (308), and a drive motor (309). The lifting ventilation plate (302) is located above the centrifugal mesh cylinder (201). The multiple sets of internal exhaust pipes (303) are all fixedly located below the lifting ventilation plate (302) and are corresponding to multiple dehydration cavities. The multiple sets of internal nozzles (304) are fixedly located on the outside of the multiple sets of internal exhaust pipes (303).
10. The dehydration mechanism for vegetable food processing according to claim 9, characterized in that, The gas filling pipe (305) is fixedly installed above the lifting ventilation plate (302), the fixed bracket (306) is fixedly installed above the dehydration cylinder (1), the take-up roller (307) is rotatably assembled inside the fixed bracket (306), the outer side of the take-up roller (307) is wound with a lifting pull rope (308), the other end of the lifting pull rope (308) is fixedly connected to the lifting ventilation plate (302), a drive motor (309) is fixedly installed on one side of the fixed bracket (306), and the output shaft of the drive motor (309) is fixedly connected to the take-up roller (307).