Directional motile dehydration process for mycelium leather tanning
By employing a directional dehydration process, layered dehydration, and multiple extrusion leveling treatments, the problem of deformation and damage to mycelial leather during high-pressure extrusion dehydration was solved, achieving an efficient and smooth dehydration process and collection of tanning liquor.
Patent Information
- Application Number
- CN202311061588.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-22
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2043-08-22
AI Technical Summary
In existing technologies, directly using strong extrusion to dehydrate tanned mycelial leather can easily lead to deformation or damage of the mycelial leather.
The directional dehydration process employs a combination of a first conveying component, a synchronous steering component, and a second conveying component to achieve layered dehydration of mycelial leather. During the intervals between adjacent dehydrations, a leveling process is performed. Multiple compressions are applied using primary, secondary, and tertiary dehydration components, and the observation window is cleaned in conjunction with a reciprocating drive component and a cleaning component.
It achieves directional dehydration of mycelial leather, ensuring dehydration quality. It also avoids deformation through multiple squeezing and leveling processes, cleans the observation window and squeezing sleeve, ensures the smooth progress of the dehydration process, and collects and discharges the tanning liquid.
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Figure CN116987828B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of leather tanning and dehydration, in particular to a directional movement dehydration process for mycelium leather tanning. BACKGROUND
[0002] Mycelium leather is a leather substitute that does not use plastic as a core component. It is made from three organic materials, namely water, wood chips and mycelium, so the carbon emissions during production are very low. Through cultivation, the mycelium grows into a large brick, and the top layer looks like an animal leather. When it is peeled off, it can be tanned or colored like leather.
[0003] After the mycelium leather tanning is completed, dehydration is often needed. For example, a leather tanning rotating cage with a dehydration device described in application No. 201611188091.1 simply uses single extrusion cooperation of the extrusion driving roller and the extrusion driven roller to extrude and dehydrate the leather.
[0004] Based on the above-mentioned search, it can be seen that the mycelium leather just after tanning cannot guarantee the regular shape. Directly using strong extrusion to dehydrate the tanned mycelium leather can easily cause the mycelium leather to be extruded and deformed, or even damaged. Therefore, the directional movement dehydration process for mycelium leather tanning is proposed. SUMMARY
[0005] (I) Technical problems solved
[0006] In view of the deficiencies of the prior art, the present application provides a directional movement dehydration process for mycelium leather tanning, which solves the problem that directly using strong extrusion to dehydrate the tanned mycelium leather can easily cause the mycelium leather to be extruded and deformed, or even damaged.
[0007] (II) Technical solutions
[0008] To achieve the above purpose, the present application is implemented by the following technical solutions: a directional movement dehydration process for mycelium leather tanning, specifically comprising the following steps:
[0009] Step 1, feeding: put the tanned mycelium leather into the dehydration tank and fall on the second conveying assembly. Start the driving motor, and the driving motor drives the first conveying assembly to run. The first conveying assembly drives the synchronous steering assembly to run through the first belt pulley assembly, and the synchronous steering assembly drives the second conveying assembly to run;
[0010] Step 2, preliminary dehydration: the running second conveying assembly drives the mycelium leather to move to the primary dehydration assembly. In the process of running the second conveying assembly, the synchronous steering assembly drives the primary dehydration assembly to rotate, and the primary dehydration assembly performs preliminary dehydration on the mycelium leather;
[0011] Step three, preliminary arrangement: the preliminary dewatered mycelium leather falls on the first conveying assembly, and the first conveying assembly drives the preliminary dewatered mycelium leather to the secondary dewatering assembly, in the process, the artificial manually arranges the preliminary dewatered mycelium leather through the observation window on the dewatering box;
[0012] Step four, secondary dewatering: in the process of the synchronous turning assembly in step two, the secondary dewatering assembly is driven to run through the second belt pulley assembly, after the preliminary arranged mycelium leather moves to the secondary dewatering assembly, the secondary dewatering assembly performs secondary dewatering treatment on the preliminary arranged mycelium leather;
[0013] Step five, secondary arrangement: in the process of the secondary dewatered mycelium leather moving to the tertiary dewatering assembly, the artificial manually arranges the preliminary dewatered mycelium leather through the observation window on the dewatering box;
[0014] Step six, final dewatering and discharging: in the process of the secondary dewatering assembly in step four, the tertiary dewatering assembly is driven to run through the third belt pulley assembly, after the secondary arranged mycelium leather moves to the tertiary dewatering assembly, the tertiary dewatering assembly performs final dewatering treatment on the secondary arranged mycelium leather, and then the mycelium leather after the final dewatering is removed from the dewatering box;
[0015] Step seven, cleaning: in the process of the first conveying assembly in step one, the reciprocating driving assembly is driven to run, and the reciprocating driving assembly drives the cleaning assembly to wipe the observation window, the secondary dewatering assembly and the tertiary dewatering assembly.
[0016] The application is further provided that: the first conveying assembly comprises an inclined conveying belt, a driving roller, a driven roller, a first auxiliary roller and a second auxiliary roller, the left side of the inclined conveying belt is downwardly inclined, the driving roller and the driven roller are transmissionally connected through the inclined conveying belt, the first auxiliary roller and the second auxiliary roller are sequentially arranged in the inside of the inclined conveying belt from left to right and are used in cooperation with the inclined conveying belt, and the driving roller, the driven roller, the first auxiliary roller and the second auxiliary roller are all rotationally installed in the inside of the dewatering box;
[0017] The driving motor is fixedly installed on the front face of the dewatering box, and the output end of the driving motor penetrates through the dewatering box and is fixedly connected with the front end of the rotating shaft of the driving roller.
[0018] The application is further provided that: the second conveying assembly comprises a conveying mesh belt, a first transmission roller and a second transmission roller, the first transmission roller and the second transmission roller are transmissionally connected through the conveying mesh belt, and the first transmission roller and the second transmission roller are both rotationally installed in the inside of the dewatering box;
[0019] The conveying mesh belt is arranged above the left side of the top of the inclined conveying belt;
[0020] The top of the dehydration tank is communicated with the feeding hopper.
[0021] The first extrusion sleeve is sleeved and fixedly installed on the surface of the first driving rod, one end of the first driving rod is rotationally connected with the rear side of the inner cavity of the dehydration tank, and the other end of the first driving rod penetrates the dehydration tank.
[0022] The synchronous steering assembly comprises two cooperating gears, one of which is sleeved and fixedly installed on the outer periphery of the first driving rod, and the other is fixedly connected with the front surface of the first transmission roller through a rotating shaft, and the rotating shaft of the other cooperating gear and the rotating shaft of the driven roller are drivingly connected through a first belt pulley assembly.
[0023] The second extrusion sleeve is sleeved and fixedly installed on the outer periphery of the second driving rod, one end of the second driving rod is rotationally connected with the rear side of the inner cavity of the dehydration tank, and the other end of the second driving rod penetrates the dehydration tank.
[0024] The second driving rod and the first driving rod are drivingly connected through a second belt pulley assembly.
[0025] The second extrusion sleeve is used in cooperation with the inclined conveying belt.
[0026] The third extrusion sleeve is sleeved and fixedly installed on the outer periphery of the third driving rod, one end of the third driving rod is rotationally connected with the rear side of the inner cavity of the dehydration tank, and the other end of the third driving rod penetrates the dehydration tank.
[0027] The third driving rod and the second driving rod are drivingly connected through a third belt pulley assembly.
[0028] The third extrusion sleeve is used in cooperation with the inclined conveying belt.
[0029] The back of the dehydration tank is provided with four operation openings, and waterproof gloves are fixedly installed on the inner side of the dehydration tank and located outside the operation openings.
[0030] The four operation openings are arranged above the inclined conveying belt, two of the operation openings are arranged on the left side of the second extrusion sleeve, and the remaining two operation openings are arranged between the second extrusion sleeve and the first extrusion sleeve.
[0031] The application is further provided that the observation window is inlaid on the right side of the top of the dehydration tank, the reciprocating driving assembly comprises an isolation cover fixedly installed on the front of the dehydration tank, a linkage shaft rotatably installed in the isolation cover, linkage bevel gears fixedly installed on both ends of the linkage shaft, a driving roller shaft, an active bevel gear matched with one of the linkage bevel gears, and a reciprocating lead screw rotatably installed through the front of the dehydration tank, a driven bevel gear matched with the other linkage bevel gear fixedly installed on one end of the reciprocating lead screw, and the other end of the reciprocating lead screw rotatably installed at the back of the inner cavity of the dehydration tank.
[0032] The cleaning assembly comprises a cleaning plate and two slotted clamping plates fixedly installed on the bottom of the cleaning plate, the cleaning plate is sleeved on the outer periphery of the reciprocating lead screw and used in cooperation with the reciprocating lead screw, the top of the cleaning plate is in contact with the bottom of the observation window, the two slotted clamping plates are used in cooperation with the second extrusion sleeve and the third extrusion sleeve respectively, and the left and right sides of the front of the cleaning plate are both provided with auxiliary rods fixedly connected with the front and back of the inner cavity of the dehydration tank.
[0033] The application is further provided that the dehydration tank is provided with a discharge port on the right side.
[0034] The application is further provided that a flange pipeline is communicated with the bottom of the left side of the dehydration tank.
[0035] (Three) beneficial effects
[0036] The application provides a directional movement dehydration process for mycelium leather tanning.
[0037] (1) The first conveying assembly, the synchronous steering assembly and the second conveying assembly are provided, so that the automatic conveying of the tanned mycelium leather is facilitated, the layered dehydration of the mycelium leather is realized under the cooperation of the primary dehydration assembly, the secondary dehydration assembly and the tertiary dehydration assembly, the directional movement dehydration of the mycelium leather is achieved, and the quality of the dehydrated mycelium leather is ensured through the flattening treatment of the mycelium leather during the interval between the adjacent two dehydrations.
[0038] (2) The reciprocating driving assembly, the cleaning assembly and the first conveying assembly are cooperatively provided, so that the forward and backward movement of the cleaning assembly is ensured during the conveying and dehydration of the mycelium leather, the water mist on the observation window is cleaned, the effective observation of the mycelium leather in the dehydration tank by workers is ensured, and the second extrusion sleeve and the third extrusion sleeve can also be rubbed and cleaned, so that the secondary dehydration and the final dehydration are smoothly performed.
[0039] (3) The present application can effectively collect the tanning liquid squeezed from the mycelium leather through the setting of the dehydration tank and the flange pipe, and discharge through the flange pipe. BRIEF DESCRIPTION OF DRAWINGS
[0040] Figure 1 It is a flowchart of the present application;
[0041] Figure 2 It is a front view of the dehydration tank structure of the present application;
[0042] Figure 3 It is a schematic view of the internal structure of the dehydration tank of the present application;
[0043] Figure 4 It is a top view of the dehydration tank structure of the present application;
[0044] Figure 5 It is a rear view of the dehydration tank structure of the present application;
[0045] Figure 6 It is a schematic view of the connection of the dehydration tank, reciprocating drive assembly and cleaning assembly structure of the present application;
[0046] In the figure, 1, dehydration tank; 2, first conveying assembly; 3, inclined conveying belt; 4, driving roller; 5, driven roller; 6, first auxiliary roller; 7, second auxiliary roller; 8, driving motor; 9, second conveying assembly; 10, conveying mesh belt; 11, first transmission roller; 12, second transmission roller; 13, feeding hopper; 14, primary dehydration assembly; 15, first extrusion sleeve; 16, first driving rod; 17, synchronous steering assembly; 18, cooperating gear; 19, secondary dehydration assembly; 20, second extrusion sleeve; 21, second driving rod; 22, second pulley assembly; 23, tertiary dehydration assembly; 24, third extrusion sleeve; 25, third driving rod; 26, third pulley assembly; 27, operation port; 28, waterproof glove; 29, observation window; 30, reciprocating drive assembly; 31, isolation cover; 32, linkage shaft; 33, linkage bevel gear; 34, driving bevel gear; 35, reciprocating lead screw; 36, driven bevel gear; 37, cleaning assembly; 38, cleaning plate; 39, slotted clamping plate; 40, auxiliary rod; 41, discharge port; 42, flange pipe; 43, first pulley assembly. DETAILED DESCRIPTION
[0047] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application.
[0048] Please refer to Figures 1-6 The present application provides the following technical solutions: a directional movement dehydration process for mycelium leather tanning, specifically including the following steps:
[0049] Step one, feeding: the tanned mycelium leather is put into the dehydration tank 1 from the feeding hopper 13 and falls on the conveying mesh belt 10, and the tanned mycelium leather is drained, the driving motor 8 is started, the driving motor 8 drives the driving roller 4 to rotate, the driving roller 4 drives the driven roller 5 to rotate through the inclined conveying belt 3, the inclined conveying belt 3 drives the first auxiliary roller 6 and the second auxiliary roller 7 to rotate in the rotating process, the driven roller 5 drives a cooperative gear 18 to rotate through the first belt pulley assembly 43, and the cooperative gear 18 drives the first transmission roller 11 to rotate;
[0050] As a detailed description, the first belt pulley assembly 43 includes two first belt pulleys and a first belt, the two first belt pulleys are connected through the first belt, and the two first belt pulleys are respectively sleeved and fixedly installed on the outer periphery of the driven roller 5 shaft and the outer periphery of the first transmission roller 11 shaft;
[0051] Step two, preliminary dehydration: in the rotating process of the first transmission roller 11, the second transmission roller 12 is driven to rotate through the conveying mesh belt 10, the conveying mesh belt 10 drives the mycelium leather to move to the first extrusion sleeve 15, in the rotating process of one of the cooperative gears 18 in step one, the other cooperative gear 18 is driven to rotate, the other cooperative gear 18 drives the first driving rod 16 to rotate, and the first driving rod 16 drives the first extrusion sleeve 15 to rotate, at this time, the rotating direction of the first extrusion sleeve 15 is opposite to the rotating direction of the conveying mesh belt 10, and the first extrusion sleeve 15 extrudes the mycelium leather conveyed on the conveying mesh belt 10 to complete preliminary dehydration;
[0052] Step three, preliminary arrangement: the mycelium leather after preliminary dehydration falls on the inclined conveying belt 3, and the inclined conveying belt 3 drives the mycelium leather after preliminary dehydration to run to the second extrusion sleeve 20, in the process, the worker's hands pass through the operation port 27, and the waterproof glove 28 controls the mycelium leather after preliminary dehydration to be arranged for the first time, and in the process, the worker observes the state of the mycelium leather through the observation window 29;
[0053] Step four, secondary dehydration: in the rotating process of the other cooperative gear 18 in step two, the second driving rod 21 is driven to rotate through the second belt pulley assembly 22, and when the mycelium leather after preliminary arrangement moves to the second extrusion sleeve 20, the second driving rod 21 drives the second extrusion sleeve 20 to perform secondary dehydration treatment on the mycelium leather after preliminary arrangement;
[0054] As a detailed description, the second belt pulley assembly 22 includes two second belt pulleys and a second belt, the two second belt pulleys are connected through the second belt, and the two second belt pulleys are respectively sleeved and fixedly installed on the outer periphery of the first driving rod 16 and the outer periphery of the second driving rod 21 shaft;
[0055] Step five, secondary arrangement: during the movement of the mycelium leather after secondary dehydration to the third extrusion sleeve 24, the worker's hands pass through the operation port 27, and controls the waterproof gloves 28 to perform secondary arrangement on the mycelium leather after preliminary dehydration, during which the worker observes the state of the mycelium leather through the observation window 29;
[0056] Step six, final dehydration and unloading: during the rotation of the second driving rod 21 in step four, the third driving rod 25 is rotated by the third belt pulley assembly 26, and the third extrusion sleeve 24 is rotated by the third driving rod 25. After the mycelium leather after secondary arrangement moves to the third extrusion sleeve 24, the rotating third extrusion sleeve 24 performs final dehydration on the mycelium leather after secondary arrangement, and then the mycelium leather after final dehydration is removed from the dehydration tank 1 through the discharge port 41;
[0057] As a detailed description, the third belt pulley assembly 26 includes two third belt pulleys and a third belt, the two third belt pulleys are connected by the third belt, and the two third belt pulleys are respectively sleeved and fixedly installed on the outer periphery of the third driving rod 25 and the outer periphery of the second driving rod 21 rotation shaft;
[0058] Step seven, cleaning: during the rotation of the first auxiliary roller 6 in step one, the driving bevel gear 34 is rotated, the driving bevel gear 34 drives a linkage bevel gear 33 to rotate the linkage shaft 32, the linkage shaft 32 drives another linkage bevel gear 33 to rotate the driven bevel gear 36, the driven bevel gear 36 drives the reciprocating screw 35 to rotate, during the rotation of the reciprocating screw 35, the cleaning plate 38 moves back and forth, during which the cleaning plate 38 wipes the water mist avoided by the observation window 29, and at the same time, the two slotted clamping plates 39 move back and forth on the top of the outer surface of the second extrusion sleeve 20 and the third extrusion sleeve 24, respectively, to wipe the surface of the second extrusion sleeve 20 and the third extrusion sleeve 24.
Claims
1. A directional dehydration process for tanning mycelial leather, characterized in that: Specifically, the following steps are included: Step 1, feeding: Put the tanned mycelium leather into the dehydration tank (1) and let it fall onto the second conveying component (9). Start the drive motor (8), and the drive motor (8) drives the first conveying component (2) to run. The first conveying component (2) drives the synchronous steering component (17) to run through the first pulley component (43). The synchronous steering component (17) drives the second conveying component (9) to run. Step 2, Preliminary Dehydration: The second conveying component (9) moves the mycelial leather to the primary dehydration component (14). During the operation of the second conveying component (9), the synchronous turning component (17) drives the primary dehydration component (14) to rotate. The primary dehydration component (14) performs preliminary dehydration on the mycelial leather. Step 3, preliminary sorting: The mycelial leather that has undergone preliminary dehydration falls onto the first conveying component (2). The running first conveying component (2) drives the mycelial leather that has undergone preliminary dehydration to the secondary dehydration component (19). During the process, the person manually operates the waterproof gloves (28) through the observation window (29) on the dehydration box (1) to perform the initial smoothing treatment on the mycelial leather that has undergone preliminary dehydration. Step 4, Secondary Dehydration: During the operation of the synchronous steering component (17) in Step 2, the secondary dehydration component (19) is driven by the second pulley component (22). After the mycelial leather that has been initially leveled moves to the secondary dehydration component (19), the secondary dehydration component (19) performs secondary dehydration on the mycelial leather that has been initially leveled. Step 5, Secondary finishing: During the process of moving the mycelial leather after secondary dehydration to the tertiary dehydration unit (23), the person manually operates the waterproof gloves (28) through the observation window (29) on the dehydration box (1) to perform secondary finishing on the mycelial leather after the initial dehydration. Step 6, final dehydration and feeding: During the operation of the secondary dehydration component (19) in step 4, the tertiary dehydration component (23) is driven by the third belt pulley component (26). After the mycelial leather after the secondary leveling is moved to the tertiary dehydration component (23), the tertiary dehydration component (23) performs the final dehydration treatment on the mycelial leather after the secondary leveling, and then removes the mycelial leather after the final dehydration from the dehydration box (1). Step 7, Cleaning: During the operation of the first conveying component (2) in step 1, the reciprocating drive component (30) is driven to run. The reciprocating drive component (30) drives the cleaning component (37) to wipe the observation window (29), the secondary dehydration component (19) and the tertiary dehydration component (23). The primary dehydration assembly (14) includes a first compression sleeve (15) and a first drive rod (16). The secondary dehydration assembly (19) includes a second extrusion sleeve (20) and a second drive rod (21). The three-stage dehydration assembly (23) includes a third extrusion sleeve (24) and a third drive rod (25). The second conveying assembly (9) includes a conveyor belt (10), a first drive roller (11), and a second drive roller (12). The dehydration box (1) has four operating ports (27) on its back. Waterproof gloves (28) are fixedly installed inside the dehydration box (1) and on the outer periphery of the operating ports (27). All four operation ports (27) are located above the inclined conveyor belt (3), two operation ports (27) are located on the right side of the second extrusion sleeve (20), and the remaining two operation ports (27) are located between the second extrusion sleeve (20) and the first extrusion sleeve (15). The observation window (29) is embedded on the right side of the top of the dehydration tank (1). The reciprocating drive assembly (30) includes an isolation cover (31). The isolation cover (31) is fixedly installed on the front of the dehydration tank (1). A linkage shaft (32) is rotatably installed inside the isolation cover (31). Both ends of the linkage shaft (32) are fixedly installed with linkage bevel gears (33). The front end of the first transmission roller (11) shaft passes through the dehydration tank (1) and extends into the interior of the isolation cover (31). The outer surface of the first transmission roller (11) shaft is fitted with an active bevel gear (34) that matches one linkage bevel gear (33). A reciprocating screw (35) is also rotatably installed through the front of the dehydration tank (1). One end of the reciprocating screw (35) is fixedly installed with a driven bevel gear (36) that matches another linkage bevel gear (33). The other end of the reciprocating screw (35) is rotatably installed on the back of the inner cavity of the dehydration tank (1). The cleaning assembly (37) includes a cleaning plate (38) and two slotted clamping plates (39). The two slotted clamping plates (39) are fixedly installed at the bottom of the cleaning plate (38). The cleaning plate (38) is sleeved on the outer periphery of the reciprocating screw (35) and works in conjunction with the reciprocating screw (35). The top of the cleaning plate (38) is in contact with the bottom of the observation window (29). The two slotted clamping plates (39) are respectively used in conjunction with the second compression sleeve (20) and the third compression sleeve (24). Auxiliary rods (40) are provided through the left and right sides of the front of the cleaning plate (38), and the two ends of the auxiliary rods (40) are respectively fixedly connected to the front and rear sides of the inner cavity of the dehydration tank (1).
2. The directional dehydration process for mycelial leather tanning according to claim 1, characterized in that: The first conveying assembly (2) includes an inclined conveyor belt (3), a drive roller (4), a driven roller (5), a first auxiliary roller (6), and a second auxiliary roller (7). The inclined conveyor belt (3) is inclined downward on the left side. The drive roller (4) and the driven roller (5) are connected by the inclined conveyor belt (3). The first auxiliary roller (6) and the second auxiliary roller (7) are arranged from left to right inside the inclined conveyor belt (3) and are used in conjunction with the inclined conveyor belt (3). The drive roller (4), the driven roller (5), the first auxiliary roller (6), and the second auxiliary roller (7) are all rotatably installed inside the dehydration tank (1). The drive motor (8) is fixedly installed on the front of the dehydration tank (1), and the output end of the drive motor (8) passes through the dehydration tank (1) and is fixedly connected to the front end of the rotating shaft of the drive roller (4).
3. The directional dehydration process for mycelial leather tanning according to claim 2, characterized in that: The first drive roller (11) and the second drive roller (12) are connected by a conveyor belt (10), and both the first drive roller (11) and the second drive roller (12) are rotatably installed inside the dehydration tank (1). The conveyor belt (10) is positioned above the top left side of the inclined conveyor belt (3); The dehydration tank (1) is located at the top and directly above the conveyor belt (10), and is connected to and fixed with a feeding hopper (13).
4. The directional dehydration process for mycelial leather tanning according to claim 3, characterized in that: The first extrusion sleeve (15) is sleeved and fixedly installed on the surface of the first drive rod (16). One end of the first drive rod (16) is rotatably connected to the rear side of the inner cavity of the dehydration tank (1). The other end of the first drive rod (16) is set through the dehydration tank (1). The first extrusion sleeve (15) is used in conjunction with the conveyor belt (10). The synchronous steering assembly (17) includes two cooperating gears (18). One cooperating gear (18) is sleeved and fixedly installed on the outer periphery of the first drive rod (16). The other cooperating gear (18) is fixedly connected to the front of the first transmission roller (11) through a rotating shaft. The rotating shaft of the other cooperating gear (18) and the rotating shaft of the driven roller (5) are connected by a first pulley assembly (43). The outer surfaces of the two cooperating gears (18) mesh with each other.
5. The directional dehydration process for mycelial leather tanning according to claim 4, characterized in that: The second extrusion sleeve (20) is sleeved and fixedly installed on the outer periphery of the second drive rod (21). One end of the second drive rod (21) is rotatably connected to the rear side of the inner cavity of the dehydration tank (1), and the other end of the second drive rod (21) is set through the dehydration tank (1). The second drive rod (21) and the first drive rod (16) are connected by a second pulley assembly (22); The second extrusion sleeve (20) is used in conjunction with the inclined conveyor belt (3).
6. The directional dehydration process for mycelial leather tanning according to claim 5, characterized in that: The third extrusion sleeve (24) is sleeved and fixedly installed on the outer periphery of the third drive rod (25). One end of the third drive rod (25) is rotatably connected to the rear side of the inner cavity of the dehydration box (1), and the other end of the third drive rod (25) is set through the dehydration box (1). The third drive rod (25) and the second drive rod (21) are connected by a third pulley assembly (26); The third extrusion sleeve (24) is used in conjunction with the inclined conveyor belt (3).
7. The directional dehydration process for mycelial leather tanning according to claim 1, characterized in that: The dehydration tank (1) has a discharge port (41) on its right side.
8. The directional dehydration process for mycelial leather tanning according to claim 1, characterized in that: The bottom left side of the dehydration tank (1) is connected to a flanged pipe (42).
Citation Information
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