Device and method for processing feed by using Korean pine cones
By employing an adaptive feeding structure, a follow-up vibration structure, and a liquefaction collection structure, the problems of wear and energy waste in the processing of red pine towers have been solved, achieving efficient crushing and water vapor recovery and utilization, thus improving the equipment's operating efficiency and environmental friendliness.
Patent Information
- Application Number
- CN202511858428.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-10
- Publication Date
- 2026-02-06
AI Technical Summary
Existing technologies are ineffective in processing red pine cones, leading to increased wear, energy waste, and environmental stress, and they cannot achieve the recovery and reuse of water vapor.
It adopts an adaptive feeding structure, a following vibration structure, and a liquefaction collection structure. The adaptive feeding structure reduces the wear of parts, the following vibration structure adjusts the vibration frequency, and the liquefaction collection structure recovers water vapor, thereby achieving efficient crushing and water resource reuse.
It improves crushing efficiency, reduces equipment wear, saves energy, reduces environmental burden, and enables the recovery and reuse of water vapor.
Smart Images

Figure CN121467142A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of Korean pine cone, and particularly relates to a device and method for processing feed from Korean pine cone. BACKGROUND
[0002] As a main by-product in the process of Korean pine seed collection, Korean pine cone is a kind of biomass resource with abundant reserves but has not been fully developed and utilized. After the Korean pine fruits are collected in autumn every year, a large number of pine cone shells are discarded as waste, which not only causes resource waste but also brings environmental pressure. Korean pine cone contains various structural carbohydrates such as cellulose, hemicellulose and lignin, as well as residual proteins, minerals and bioactive substances, which makes it have the potential to be converted into feed raw materials.
[0003] However, due to its hard shell and special structure, the traditional feed processing equipment cannot effectively protect the crushing roller when processing Korean pine cone, which increases wear and tear and processing cost. At the same time, it cannot automatically adjust the vibration intensity according to the material accumulation amount, causing energy waste, and a large amount of water vapor generated during the processing process is usually directly discharged, which not only wastes water resources but also increases environmental burden.
[0004] Therefore, we propose a device and method for processing feed from Korean pine cone to solve this problem. SUMMARY
[0005] The present application aims to provide a device and method for processing feed from Korean pine cone to solve the problems raised in the background.
[0006] In order to achieve the above-mentioned purpose, the present application adopts the following technical solutions: A device and method for processing feed from Korean pine cone, comprising: an adaptive feeding structure for reducing part wear and improving crushing efficiency, the adaptive feeding structure comprising two trapezoidal plates, a crushing chamber, two crushing rollers and a feed hopper, the two trapezoidal plates being slidingly connected on both sides of the same crushing chamber, the two crushing rollers being rotatably connected inside the same crushing chamber, and the feed hopper being fixedly connected to the top of the crushing chamber; A following type vibration structure can automatically adjust the vibration frequency according to the amount of material inside the crushing chamber, the following type vibration structure comprising a filter plate, a spherical column, a cylindrical frame, four connecting columns, two recessed plates and sliding plates, the filter plate being slidingly connected outside the four connecting columns, the two recessed plates being fixedly connected on both sides of the same filter plate, the inside of each of the two recessed plates being fixedly connected with an adjusting plate, and the two sliding plates being slidingly connected inside the corresponding adjusting plates; The liquefaction collection structure collects liquefied water for secondary use, and comprises a water storage bin, a cross pipe and a top aluminum liquefaction tank. The two sides of the crushing bin are fixedly connected with the top aluminum liquefaction tank. The bottoms of the two top aluminum liquefaction tanks are communicated with a bottom aluminum liquefaction tank. The inner walls of the crushing bin are provided with side wall grooves. The two water storage bins are slidingly connected in the corresponding side wall grooves. The crushing bin is fixedly connected with two cross pipes. The distal ends of the two cross pipes are communicated with the sides of the corresponding top aluminum liquefaction tanks.
[0007] Preferably, the support structure comprises a degradation bin, a control panel and an octagonal plate. The degradation bin is fixedly connected with a buffer layer at the top. The octagonal plate is fixedly connected at the top of the buffer layer. Four connection columns are fixedly connected at the top of the same octagonal plate. The crushing bin is fixedly connected at the top end of the four connection columns. The control panel is fixedly connected at the front side of the degradation bin. The two sides of the crushing bin are provided with right-angle grooves. The top of the two right-angle grooves is fixedly connected with a first limiting plate. Two trapezoidal plates are slidingly connected at the top of the corresponding first limiting plate. The two trapezoidal plates are provided with an inclined groove at the inside. The two sides of the crushing bin are slidingly connected with a C-shaped frame. The cylindrical frame is fixedly connected at the top of the two C-shaped frames. The two cylindrical frames are slidingly connected at the inside of the corresponding inclined groove. The side of the two C-shaped frames close to each other is fixedly connected with two long plates. The two crushing rollers are rotatably connected at the side of the two long plates close to each other. The outside of the crushing bin is provided with two vertical grooves. The two crushing rollers are slidingly connected at the inside of the corresponding vertical grooves. The front end of the two crushing rollers is fixedly connected with a belt wheel. The two belt wheels are rotatably connected at the front side of the long plate at the front side. The outside of the two belt wheels is drivingly connected with the same synchronous belt. The front side of the long plate at the front side is fixedly connected with a first motor. The output end of the first motor is fixedly connected with the front end of the crushing roller at the left side.
[0008] Preferably, both sides of the crushing bin are fixedly connected with side frames, the top of the two side frames is fixedly connected with a plurality of vertical columns, the two C-shaped frames are slidingly connected outside the corresponding plurality of vertical columns, the bottom of the two C-shaped frames is fixedly connected with a plurality of first springs, the bottom end of the plurality of first springs is fixedly connected with the top of the corresponding side frame, the side away from each other of the two C-shaped frames is fixedly connected with a back-shaped frame, the inside of the two back-shaped frames is fixedly connected with a thin plate, the inside of the two thin plates is slidingly connected with a touch block, the side close to each other of the two touch blocks is fixedly connected with a second spring, the side close to each other of the two second springs is fixedly connected with one side of the corresponding thin plate, the side away from each other of the two side frames is fixedly connected with an extension plate, the top of the two extension plates is fixedly connected with a third touch plate, one side of the two third touch plates is provided with a multi-stage touch button, the multi-stage touch button includes a low touch button, a middle touch button and a high touch button, and the side away from each other of the two touch blocks is sequentially and movably abutted against the low, middle and high touch buttons on one side of the corresponding third touch plate.
[0009] Preferably, the top of the octagonal plate is fixedly connected with two guide columns, the two recessed plate are slidingly connected outside the corresponding guide columns, the top of the two guide columns is fixedly connected with a rectangular plate, the bottom of the two rectangular plates is rotatably connected with a disc, the inside of the two adjusting plates is rotatably connected with a screw rod, the two sliding plates are threadedly sleeved outside the corresponding screw rods, the top of the two sliding plates is fixedly connected with a square plate, the top of the two square plates is provided with a spherical column, the top end of the two spherical columns is arranged at the bottom of the corresponding disc, the side away from each other of the two adjusting plates is fixedly connected with a second motor, the output end of the two second motors is fixedly connected with one end of the corresponding screw rod, the second motor, the third touch plate and the control panel are signal connected, the top of the two rectangular plates is fixedly connected with a third motor, and the output end of the two third motors is fixedly connected with the top of the corresponding disc.
[0010] Preferably, the interior of the buffer layer is fixedly connected with two first triangular plates, the interior of the two first triangular plates is provided with an adaptive slot, the interior of the two adaptive slots is slidably connected with a slot block, the bottom of the two slot blocks is fixedly connected with a same second triangular plate, the bottom of the two slot blocks is fixedly connected with two third springs, the bottom end of the two third springs located on the same side is fixedly connected with the inner wall bottom of the corresponding adaptive slot, the inner wall of the degradation bin is fixedly connected with a third triangular plate on both sides, the two ends of the second triangular plate are movably abutted on the top of the corresponding third triangular plate, the interior of the two third triangular plates is provided with a water guide groove, the inner wall of the crushing bin is provided with an inclined through groove on both sides, the side of the two inclined through grooves close to each other is communicated with the side of the corresponding water guide groove away from each other, the side of the two inclined through grooves away from each other is communicated to the inner wall side of the corresponding side wall groove, the top of the two water storage bins is fixedly connected with a partition plate, the two partition plates are movably abutted in the interior of the corresponding horizontal pipe, the top of the two water storage bins is fixedly connected with a plurality of fourth springs, the top end of the plurality of fourth springs on the same side is fixedly connected with the inner wall top of the corresponding side wall groove.
[0011] Preferably, the inner wall bottom of each of the two side wall grooves is fixedly connected with a collection bin, the inner wall bottom of each of the two side wall grooves is fixedly connected with a longitudinal plate, the top of each of the two longitudinal plates is fixedly connected with an induction electromagnetic block, the bottom of each of the two water storage bins is movably abutted against the top of the corresponding induction electromagnetic block, one side of the inner wall of each of the two water storage bins is provided with a side groove, the inside of each of the two side grooves is fixedly connected with a vertical circle, the outside of each of the two vertical circles is slidably connected with a floating plate, the inner wall bottom of each of the two water storage bins is slidably connected with a sealing plate, the top of each of the two collection bins is movably abutted against the bottom of the corresponding sealing plate, the bottom of each of the two floating plates is movably abutted against the top of the corresponding sealing plate, the inside of each of the two longitudinal plates is fixedly connected with a second power supply, the two second power supplies are electrically connected with the corresponding induction electromagnetic blocks, the two floating plates are electrically connected with the corresponding second power supplies through a control panel, the inside of each of the two water storage bins is provided with two inverted trapezoidal grooves, the bottom of each of the two sealing plates is fixedly connected with two inverted trapezoidal plates, the two inverted trapezoidal plates on the same side are slidably connected in the inside of the corresponding inverted trapezoidal groove on the same side, the bottom of each of the two inverted trapezoidal plates on the same side is fixedly connected with a fifth spring, the bottom end of each of the two fifth springs on the same side is fixedly connected with the inner wall bottom of the corresponding inverted trapezoidal groove, the inside of the degradation bin is fixedly connected with two water guide pipes, the rear end of each of the two water guide pipes is communicated with the front side of the corresponding collection bin, the front end of each of the two water guide pipes is provided with a drain cover, the top of each of the two top aluminum material liquefaction boxes is fixedly connected with a top cross frame, the bottom of each of the two top cross frames is rotatably connected with an air inlet fan blade, the top of each of the two top cross frames is fixedly connected with a fourth motor, the output end of each of the two fourth motors is fixedly connected with the top end of the corresponding air inlet fan blade, the inner wall bottom of each of the two top aluminum material liquefaction boxes is fixedly connected with a middle cross frame, the bottom of each of the two middle cross frames is rotatably connected with a conveying fan blade, the top of each of the two middle cross frames is fixedly connected with a fifth motor, the output end of each of the two fifth motors is fixedly connected with the top end of the corresponding conveying fan blade, the bottom of each of the two bottom aluminum material liquefaction boxes is provided with a drain port.
[0012] Preferably, the inner wall bottom of the degradation bin is fixedly connected with two pressure sensing plates, the inside of the degradation bin is provided with a curved groove, the inside of the degradation bin is rotatably connected with a rotating shaft, the bottom end of the rotating shaft is fixedly connected with a second bevel gear, the second bevel gear is rotatably connected to the top of the inner wall of the curved groove, the inside of the curved groove is fixedly connected with two second limit plates, the inside of the two second limit plates is rotatably connected with a cylinder, the end of the two cylinders close to each other is fixedly connected with a first bevel gear, the two first bevel gears are rotatably connected to the bottom of the same second bevel gear, the end of the two cylinders away from each other is fixedly connected with a hollow plate, the inside of the two hollow plates is slidably connected with two connecting rods, the side of the two connecting rods away from each other is fixedly connected with an inner disc, the end of the two connecting rods close to each other is fixedly connected with a sixth spring, the end of the two sixth springs away from each other is fixedly connected to the inner wall side of the corresponding hollow plate, the inside of the degradation bin is fixedly connected with two first power supplies, the side of the two first power supplies close to each other is electrically connected with a heating plate, the two heating plates are fixedly connected to the inner wall of the same degradation bin, the bottom of the two first power supplies is electrically connected with a resistor, the bottom of the two resistors is provided with a sliding groove, the bottom of the two sliding grooves is slidably connected with a sliding block, the bottom of the two sliding blocks is fixedly connected with a connecting plate, the bottom of the two connecting plates is fixedly connected with an outer disc, the inside of the two outer discs is provided with a ring groove, the outside of the two inner discs is fixedly connected with a ring plate, the two ring plates are rotatably connected in the inside of the corresponding ring groove, the side of the two inner discs away from each other is fixedly connected with a fan blade, the inside of the degradation bin is fixedly connected with a horizontal column on both sides, the two connecting plates are slidably connected outside the corresponding horizontal column, the inside of the degradation bin is fixedly connected with a ventilation plate on both sides, the bottom of the curved groove is fixedly connected with a sixth motor, the output end of the sixth motor is fixedly connected to the bottom of the second bevel gear, the side of the two hollow plates away from each other is fixedly connected with a telescopic rod, the end of the two telescopic rods away from each other is fixedly connected to the side of the corresponding inner disc close to each other.
[0013] Preferably, the outside of the rotating shaft is fixedly connected with a plurality of fish tail stirring rods, the plurality of fish tail stirring rods are fixedly connected with a tail wing plate, a rotating frame and a cross, and the front side of the degradation bin is provided with a front door plate.
[0014] The beneficial effects of the present application are: I、In the present application, the device and method for processing feed of Korean pine cone, in use, firstly, the clean Korean pine cone without drying treatment is put into the feeding hopper, and falls into the crushing bin. Then the first motor is started, and the two pulleys are driven to rotate synchronously through the synchronous belt. Unlike the conventional crushing roller, the two crushing rollers in the present device are designed with special shape. When the Korean pine cone is not effectively crushed by the first crushing roller, it can be lifted by the adjacent crushing roller for secondary crushing, thereby improving the crushing effect. With the increase of the number of Korean pine cone in the crushing bin, the total weight gradually increases, driving the two crushing rollers, the long plate and the C-shaped frame to move downward as a whole. The two cylindrical frames fixed on the top of the C-shaped frame are lowered, and slide downward along the corresponding chute, finally pushing the two trapezoidal plates to move towards each other and gradually close at the bottom of the feeding hopper. Thus, the opening degree of the discharge port is self-adaptively adjusted with the downward distance of the crushing roller: the greater the downward distance, the smaller the discharge space of the feeding hopper, thereby effectively improving the crushing efficiency. II、In the present application, the device and method for processing feed of Korean pine cone, the crushed Korean pine cone then falls onto the filter plate. At this time, the third motor is started to drive the disc to rotate, and the ball column eccentrically arranged at the bottom of the disc drives the square plate and the adjusting plate to reciprocate up and down, finally driving the filter plate to vibrate and filter. When the C-shaped frame moves downward, the two side-shaped frames move downward synchronously, pushing the contact blocks to contact the low, medium and high touch buttons on one side of the low, medium and high touch plates. When the contact block touches the low touch button, the two second motors are started and rotate for a certain number of turns, driving the sliding plate and the square plate to move horizontally, thereby increasing the eccentric distance between the disc and the ball column. With the continuous downward movement of the C-shaped frame, the contact block will trigger the "medium" and "high" touch buttons in turn, so that the rotation speed of the second motor increases correspondingly, further increasing the eccentric distance, and finally realizing the adjustment that the vibration amplitude of the adjusting plate increases with the increase of the material quantity, so as to achieve the filtering effect of self-adaptive adjustment of vibration frequency. III、In the present application, the device and method for processing feed of Korean pine cone, the filtered Korean pine cone is conveyed to the top of the second triangular plate through the buffer layer and the two first triangular plates. At this time, the two first power sources are started to drive the heating plates to heat the degradation bin. When the material on the second triangular plate accumulates to a certain weight, the third spring is compressed, and the Korean pine cone slides along the two sides of the second triangular plate to the degradation bin. At the same time, the sixth motor is started to drive the second bevel gear and the rotating shaft to rotate. The Korean pine cone at the edge of the degradation bin is pushed to the center through the tail wing plate, and combined with the cooperative action of the rotating frame and the cross frame, the Korean pine cone is fully turned around the rotating shaft, so as to increase the heating area and improve the degradation efficiency. Fourth, in the present application, the device and method for processing feed of Korean pine cone, when the material in the degradation bin increases, the bottom pressure sensing plate detects the pressure change, the control panel increases the rotating speed of the sixth motor, and then the rotating speed of the rotating shaft, the cylinder and the hollow plate is increased. Under the action of centrifugal force, the two side connecting rods move away from each other, driving the whole of the ring plate, the outer disc, the adapter plate and the sliding block to move outward, so that the resistance value of the resistor is reduced, the power of the first power supply is increased, and rapid heating is realized. At the same time, the rotating speed of the fan blade on the inner disc is increased, and the heat dissipation of the first power supply is strengthened through the ventilation plate, so that the equipment can run stably; Fourth, in the present application, the device and method for processing feed of Korean pine cone, when the material in the degradation bin increases, the bottom pressure sensing plate detects the pressure change, the control panel increases the rotating speed of the sixth motor, and then the rotating speed of the rotating shaft, the cylinder and the hollow plate is increased. Under the action of centrifugal force, the two side connecting rods move away from each other, driving the whole of the ring plate, the outer disc, the adapter plate and the sliding block to move outward, so that the resistance value of the resistor is reduced, the power of the first power supply is increased, and rapid heating is realized. At the same time, the rotating speed of the fan blade on the inner disc is increased, and the heat dissipation of the first power supply is strengthened through the ventilation plate, so that the equipment can run stably; Fifth, in the present application, the device and method for processing feed of Korean pine cone, through the self-adaptive feeding structure, the intelligent adjustment of the feeding amount is realized, the wear of the crushing roller is reduced while the crushing efficiency is ensured; through the linkage of the following type vibration structure and the feeding structure, the vibration amplitude of the filter plate is self-adaptively adjusted according to the material amount; through the automatic starting of the liquefaction collection structure when the temperature is too high, the recycling of water vapor is realized; through the cooperation of the second bevel gear, the first bevel gear, the hollow plate, the pressure sensing plate and the fan blade, the synchronous increase of the heating power and the heat dissipation efficiency is realized. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is a perspective structural schematic diagram of the device and method for processing feed of Korean pine cone proposed in the present application; Figure 2 It is a sectional view structural schematic diagram of the device and method for processing feed of Korean pine cone proposed in the present application; Figure 3A hopcone processing feed device and method of the present application and the hopper, crushing bin and vertical chute three-dimensional structure schematic diagram; Figure 4 A hopcone processing feed device and method of the present application and the C-shaped frame, long plate and octagonal plate three-dimensional structure schematic diagram; Figure 5 A hopcone processing feed device and method of the present application and the vertical column, three-stage touch plate and sheet three-dimensional structure schematic diagram; Figure 6 A hopcone processing feed device and method of the present application and the buffer layer, the first triangular plate and the second triangular plate three-dimensional structure schematic diagram; Figure 7 A hopcone processing feed device and method of the present application and the horizontal pipe, the third triangular plate and the floating plate three-dimensional structure schematic diagram; Figure 8 A hopcone processing feed device and method of the present application and the shaft, the limiting plate and the cylinder three-dimensional structure schematic diagram; Figure 9 A hopcone processing feed device and method of the present application and the first conical plate, the cylinder and the limiting plate three-dimensional structure schematic diagram; Figure 10 A hopcone processing feed device and method of the present application and the sealing plate, the inverted trapezoid and the fifth spring three-dimensional structure schematic diagram; Figure 11 A hopcone processing feed device and method of the present application and the back-shaped frame, the sheet and the touch plate three-dimensional structure schematic diagram; Figure 12 A hopcone processing feed device and method of the present application and the degradation bin, the curved groove and the ventilation plate three-dimensional structure schematic diagram; Figure 13 A hopcone processing feed device and method of the present application and the pulley, the synchronous belt and the crushing roller three-dimensional structure schematic diagram; Figure 14 A hopcone processing feed device and method of the present application and the disc, the rectangular plate and the sliding plate three-dimensional structure schematic diagram; Figure 15 A hopcone processing feed device and method of the present application and the top aluminum material liquefaction tank, the bottom aluminum material liquefaction tank and the top cross frame three-dimensional structure schematic diagram; Figure 16 A hopcone processing feed device and method of the present application and the heating plate, the first power supply and the fan three-dimensional structure schematic diagram; Figure 17 A hopcone processing feed device and method of the present application and the heating plate, the first power supply and the fan three-dimensional structure schematic diagram; Figure 2 A partial enlarged view of part A; Figure 18 is Figure 2 a close-up view of section B; Figure 19 is Figure 9 a close-up view of section C; Figure 20 is Figure 6 a close-up view of section D; Figure 21 is Figure 2 a close-up view of section E.
[0016] In the figure: 1, crushing bin; 11, feeding hopper; 12, trapezoidal plate; 121, chute; 13, first limiting plate; 14, C-shaped frame; 141, cylindrical frame; 15, crushing roller; 151, long plate; 16, pulley; 161, first motor; 17, synchronous belt; 18, vertical groove; 19, right-angle groove; 2, octagonal plate; 21, connecting column; 22, filter plate; 23, recessed plate; 231, adjusting plate; 2311, sliding plate; 2312, screw rod; 2313, square plate; 2314, second motor; 2315, spherical column; 24, rectangular plate; 241, third motor; 242, disc; 243, guide column; 3, side frame; 31, vertical column; 311, first spring; 32, extension plate; 321, three-stage touch plate; 33, meander frame; 331, thin plate; 332, touch block; 333, second spring; 4, buffer layer; 41, first triangular plate; 411, matching groove; 42, second triangular plate; 43, groove block; 431, third spring; 5, degradation bin; 51, front door plate; 52, control panel; 53, drain cover; 54, top aluminum material liquefaction tank; 541, top cross frame; 542, fourth motor; 543, air inlet fan blade; 544, middle cross frame; 545, fifth motor; 546, conveying fan blade; 55, bottom aluminum material liquefaction tank; 56, cross pipe; 6, heating plate; 61, first power supply; 62, resistor; 621, sliding groove; 7, water storage bin; 71, collection bin; 711, water guide pipe; 72, third triangular plate; 721, water guide groove; 73, partition plate; 74, fourth spring; 75, floating plate; 76, side groove; 761, vertical circle; 77, sealing plate; 771, inverted trapezoidal plate; 772, fifth spring; 78, longitudinal plate; 781, inductive electromagnetic block; 782, second power supply; 8, side wall groove; 81, inclined through groove; 82, curved groove; 821, second limiting plate; 83, pressure sensing plate; 84, ventilation plate; 9, rotating shaft; 91, cylinder; 92, first bevel gear; 93, hollow plate; 931, sixth spring; 932, connecting rod; 933, telescopic rod; 94, inner disc; 941, ring plate; 942, fan blade; 95, outer disc; 951, connecting plate; 952, sliding block; 953, ring groove; 96, cross column; 97, second bevel gear; 98, fish tail stirring rod; 981, tail wing plate; 982, rotating frame; 983, cross frame; 99, sixth motor. DETAILED DESCRIPTION
[0017] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all embodiments of the present application.
[0018] REFERENCE Figures 1-21The application discloses a device and a method for processing feed of Korean pine tower, which comprises an adaptive discharging structure, two trapezoidal plates 12, a crushing bin 1, two crushing rollers 15 and a feeding hopper 11, the two trapezoidal plates 12 are slidingly connected to the two sides of the same crushing bin 1, the two crushing rollers 15 are rotationally connected to the inside of the same crushing bin 1, and the feeding hopper 11 is fixedly connected to the top of the crushing bin 1. The device further comprises a following type vibration structure, which can automatically adjust the vibration frequency according to the amount of materials in the crushing bin 1, and the following type vibration structure comprises a filter plate 22, a spherical column 2315, a cylindrical frame 141, four connecting columns 21, two recessed plates 23 and two sliding plates 2311, the filter plate 22 is slidingly connected to the outside of the four connecting columns 21, the two recessed plates 23 are fixedly connected to the two sides of the same filter plate 22, the inside of each of the two recessed plates 23 is fixedly connected with an adjusting plate 231, and the two sliding plates 2311 are slidingly connected to the inside of the corresponding adjusting plate 231. The device further comprises a liquefaction collecting structure, which collects liquefied water for secondary use, and the liquefaction collecting structure comprises a water storage bin 7, a cross pipe 56 and a top aluminum liquefaction box 54, the two sides of the crushing bin 1 are fixedly connected with the top aluminum liquefaction boxes 54, the bottom of each of the two top aluminum liquefaction boxes 54 is communicated with a bottom aluminum liquefaction box 55, the two sides of the inner wall of the crushing bin 1 are provided with side wall grooves 8, the two water storage bins 7 are slidingly connected to the inside of the corresponding side wall grooves 8, the inside of the crushing bin 1 is fixedly connected with the two cross pipes 56, and the ends of the two cross pipes 56, which are away from each other, are communicated with the sides, which are close to each other, of the corresponding top aluminum liquefaction boxes 54.
[0019] In this embodiment, the support structure includes the degradation bin 5, the control panel 52 and the octagonal plate 2, the top of the degradation bin 5 is fixedly connected with the buffer layer 4, the octagonal plate 2 is fixedly connected to the top of the buffer layer 4, the four connecting columns 21 are fixedly connected to the top of the same octagonal plate 2, the crushing bin 1 is fixedly connected to the top end of the four connecting columns 21, and the control panel 52 is fixedly connected to the front side of the degradation bin 5; both sides of the crushing bin 1 are provided with the right-angle groove 19, the top of each of the two right-angle grooves 19 is fixedly connected with the first limiting plate 13, both of the trapezoidal plates 12 are slidingly connected to the top of the corresponding first limiting plate 13, the inside of each of the two trapezoidal plates 12 is provided with the inclined groove 121, both sides of the crushing bin 1 are slidingly connected with the C-shaped frame 14, the cylindrical frame 141 is fixedly connected to the top of the two C-shaped frames 14, both of the cylindrical frames 141 are slidingly connected to the inside of the corresponding inclined groove 121, one side of each of the two C-shaped frames 14 that are close to each other is fixedly connected with the long plate 151, both of the crushing rollers 15 are rotatably connected to one side of the long plate 151 that are close to each other, the outside of the crushing bin 1 is provided with the vertical groove 18, both of the crushing rollers 15 are slidingly connected to the inside of the corresponding vertical groove 18, the front end of each of the two crushing rollers 15 is fixedly connected with the belt wheel 16, both of the belt wheels 16 are rotatably connected to the front side of the front side long plate 151, the outside of each of the two belt wheels 16 is drivingly connected with the same synchronous belt 17, the front side of the front side long plate 151 is fixedly connected with the first motor 161, and the output end of the first motor 161 is fixedly connected to the front end of the left crushing roller 15.
[0020] In this embodiment, both sides of the crushing bin 1 are fixedly connected with the side frame 3, the top of each of the two side frames 3 is fixedly connected with the vertical column 31, both of the C-shaped frames 14 are slidingly connected to the outside of the corresponding vertical column 31, the bottom of each of the two C-shaped frames 14 is fixedly connected with the first spring 311, the bottom end of each of the first springs 311 is fixedly connected to the top of the corresponding side frame 3, one side of each of the two C-shaped frames 14 that are away from each other is fixedly connected with the back-shaped frame 33, the inside of each of the two back-shaped frames 33 is fixedly connected with the thin plate 331, the inside of each of the two thin plates 331 is slidingly connected with the touch block 332, one side of each of the two touch blocks 332 that are close to each other is fixedly connected with the second spring 333, one side of each of the two second springs 333 that are close to each other is fixedly connected to one side of the corresponding thin plate 331, one side of each of the two side frames 3 that are away from each other is fixedly connected with the extension plate 32, the top of each of the two extension plates 32 is fixedly connected with the third touch plate 321, one side of each of the two third touch plates 321 is provided with the multi-stage touch button, the multi-stage touch button includes the low touch button, the middle touch button and the high touch button, and one side of each of the two touch blocks 332 that are away from each other is sequentially and movably abutted against the low, middle and high touch buttons on one side of the corresponding third touch plate 321.
[0021] In the embodiment, the top of the octagonal plate 2 is fixedly connected with two guide columns 243, both of the groove plates 23 are slidingly connected outside the corresponding guide columns 243, the top of both of the guide columns 243 is fixedly connected with a rectangular plate 24, the bottom of both of the rectangular plates 24 is rotatably connected with a disc 242, the inside of both of the adjusting plates 231 is rotatably connected with a lead screw 2312, both of the sliding plates 2311 are threadedly sleeved outside the corresponding lead screws 2312, the top of both of the sliding plates 2311 is fixedly connected with a square plate 2313, the top of both of the square plates 2313 is provided with a spherical column 2315, the top end of both of the spherical columns 2315 is arranged at the bottom of the corresponding disc 242, both of the adjusting plates 231 is fixedly connected with a second motor 2314 away from each other, the output end of both of the second motors 2314 is fixedly connected at one end of the corresponding lead screw 2312, the second motor 2314, the third touch plate 321 and the control panel 52 are signal connected, the top of both of the rectangular plates 24 is fixedly connected with a third motor 241, the output end of both of the third motors 241 is fixedly connected at the top of the corresponding disc 242.
[0022] In the embodiment, the inside of the buffer layer 4 is fixedly connected with two first triangular plates 41, the inside of both of the first triangular plates 41 is provided with an adaptive groove 411, both of the adaptive grooves 411 is slidingly connected with a groove block 43, the bottom of both of the groove blocks 43 is fixedly connected with a same second triangular plate 42, the bottom of both of the groove blocks 43 is fixedly connected with two third springs 431, the bottom end of both of the third springs 431 on the same side is fixedly connected at the inner wall bottom of the corresponding adaptive groove 411, the inner wall sides of the degradation bin 5 is fixedly connected with a third triangular plate 72, both ends of the second triangular plate 42 is movably abutted at the top of the corresponding third triangular plate 72, the inside of both of the third triangular plates 72 is provided with a water guide groove 721, the inner wall sides of the crushing bin 1 is provided with an inclined through groove 81, the side of both of the inclined through grooves 81 away from each other is communicated at the side of the corresponding water guide groove 721 away from each other, the side of both of the inclined through grooves 81 away from each other is communicated to the inner wall side of the corresponding side wall groove 8, the top of both of the water storage bins 7 is fixedly connected with a partition plate 73, both of the partition plates 73 is movably abutbed inside the corresponding horizontal pipe 56, the top of both of the water storage bins 7 is fixedly connected with a plurality of fourth springs 74, the top end of the plurality of fourth springs 74 on the same side is fixedly connected at the inner wall top of the corresponding side wall groove 8.
[0023] The inner wall bottom of the two side wall grooves 8 is fixedly connected with a collection bin 71, the inner wall bottom of the two side wall grooves 8 is fixedly connected with a longitudinal plate 78, the top of the two longitudinal plates 78 is fixedly connected with an induction electromagnetic block 781, the bottom of the two water storage bins 7 is movably abutted on the top of the corresponding induction electromagnetic block 781, one side of the inner wall of the two water storage bins 7 is provided with a side groove 76, the inside of the two side grooves 76 is fixedly connected with a vertical circle 761, the outside of the two vertical circles 761 is movably connected with a floating plate 75, the inner wall bottom of the two water storage bins 7 is movably connected with a sealing plate 77, the top of the two collection bins 71 is movably abutted on the bottom of the corresponding sealing plate 77, the bottom of the two floating plates 75 is movably abutted on the top of the corresponding sealing plate 77, the inside of the two longitudinal plates 78 is fixedly connected with a second power supply 782, the two second power supplies 782 are electrically connected with the corresponding induction electromagnetic block 781, the two floating plates 75 are electrically connected with the corresponding second power supply 782 through the control panel 52, the inside of the two water storage bins 7 is provided with two inverted trapezoidal grooves, the bottom of the two sealing plates 77 is fixedly connected with two inverted trapezoidal plates 771, the two inverted trapezoidal plates 771 located on the same side are movably connected in the inside of the corresponding inverted trapezoidal groove located on the same side, the bottom of the two inverted trapezoidal plates 771 located on the same side is fixedly connected with a fifth spring 772, the bottom of the two fifth springs 772 located on the same side is fixedly connected with the inner wall bottom of the corresponding inverted trapezoidal groove, the inside of the degradation bin 5 is fixedly connected with two water guide pipes 711, the rear end of the two water guide pipes 711 is communicated with the front side of the corresponding collection bin 71, the front end of the two water guide pipes 711 is provided with a drain cover 53, the top of the two top aluminum material liquefaction boxes 54 is fixedly connected with a top cross frame 541, the bottom of the two top cross frames 541 is rotatably connected with an air inlet fan blade 543, the top of the two top cross frames 541 is fixedly connected with a fourth motor 542, the output end of the two fourth motors 542 is fixedly connected with the top end of the corresponding air inlet fan blade 543, the inner wall bottom of the two top aluminum material liquefaction boxes 54 is fixedly connected with a middle cross frame 544, the bottom of the two middle cross frames 544 is rotatably connected with a conveying fan blade 546, the top of the two middle cross frames 544 is fixedly connected with a fifth motor 545, the output end of the two fifth motors 545 is fixedly connected with the top end of the corresponding conveying fan blade 546, the bottom of the two bottom aluminum material liquefaction boxes 55 is provided with a drain.
[0024] In the embodiment, the inner wall bottom of the degradation bin 5 is fixedly connected with two pressure sensing plates 83, the inside of the degradation bin 5 is provided with a curved groove 82, the inside of the degradation bin 5 is rotatably connected with a rotating shaft 9, the bottom end of the rotating shaft 9 is fixedly connected with a second bevel gear 97, the second bevel gear 97 is rotatably connected to the top of the inner wall of the curved groove 82, the inside of the curved groove 82 is fixedly connected with two second limiting plates 821, the inside of the two second limiting plates 821 is rotatably connected with a cylinder 91, one end of the two cylinders 91 close to each other is fixedly connected with a first bevel gear 92, the two first bevel gears 92 are meshedly connected to the bottom of the same second bevel gear 97, the other end of the two cylinders 91 away from each other is fixedly connected with a hollow plate 93, the inside of the two hollow plates 93 is slidably connected with two connecting rods 932, the side of the two connecting rods 932 away from each other is fixedly connected with an inner disc 94, the end of the two connecting rods 932 close to each other is fixedly connected with a sixth spring 931, the end of the two sixth springs 931 away from each other is fixedly connected to the inner wall side of the corresponding hollow plate 93, the inside of the degradation bin 5 is fixedly connected with two first power supplies 61, the side of the two first power supplies 61 close to each other is electrically connected with a heating plate 6, the two heating plates 6 are fixedly connected to the inner wall sides of the same degradation bin 5, the bottom of the two first power supplies 61 is electrically connected with a resistor 62, the bottom of the two resistors 62 is provided with a sliding groove 621, the bottom of the two sliding grooves 621 is slidably connected with a sliding block 952, the bottom of the two sliding blocks 952 is fixedly connected with a connecting plate 951, the bottom of the two connecting plates 951 is fixedly connected with an outer disc 95, the inside of the two outer discs 95 is provided with a ring groove 953, the outside of the two inner discs 94 is fixedly connected with a ring plate 941, the two ring plates 941 are rotatably connected in the inside of the corresponding ring groove 953, the side of the two inner discs 94 away from each other is fixedly connected with a fan blade 942, the inside of the degradation bin 5 is fixedly connected with a horizontal column 96, the two connecting plates 951 are slidably connected to the outside of the corresponding horizontal column 96, the inside of the degradation bin 5 is fixedly connected with a ventilation plate 84, the inner wall bottom of the curved groove 82 is fixedly connected with a sixth motor 99, the output end of the sixth motor 99 is fixedly connected to the bottom of the second bevel gear 97, the side of the two hollow plates 93 away from each other is fixedly connected with a telescopic rod 933, the end of the two telescopic rods 933 away from each other is fixedly connected to the side of the corresponding inner disc 94 close to each other.
[0025] In the embodiment, the outside of the rotating shaft 9 is fixedly connected with a plurality of fish tail stirring rods 98, the plurality of fish tail stirring rods 98 are fixedly connected with a tail wing plate 981, a rotating frame 982 and a cross 983, the front side of the degradation bin 5 is provided with a front door plate 51.
[0026] In use, the red pine cones are first put into the feeding hopper 11, and then the first motor 161 is started to drive the two pulleys 16 to rotate synchronously. Different from the conventional crushing rollers 15, the two crushing rollers 15 in the device are specially shaped, so that when the red pine cones are not effectively crushed by the first crushing roller 15, they can be lifted by the adjacent crushing roller 15 for secondary crushing, thereby improving the crushing effect. As the number of red pine cones in the crushing chamber 1 increases, the total weight gradually increases, driving the two crushing rollers 15, the long plate 151 and the C-shaped frame 14 to move downward as a whole. The two cylindrical frames 141 fixed on the top of the C-shaped frame 14 also descend and slide downward along the corresponding inclined grooves 121, finally pushing the two trapezoidal plates 12 to move towards each other and gradually close at the bottom of the feeding hopper 11. In this way, the opening degree of the discharge port is self-adaptively adjusted according to the downward distance of the crushing roller 15: the greater the downward distance, the smaller the discharge space of the feeding hopper 11, thereby effectively improving the crushing efficiency; the crushed red pine cones then fall onto the filter plate 22. At this time, the third motor 241 is started to drive the disc 242 to rotate, and the ball column 2315 eccentrically arranged at the bottom of the disc 242 drives the square plate 2313 and the adjusting plate 231 to move up and down reciprocally, finally driving the filter plate 22 to vibrate and filter. When the C-shaped frame 14 moves downward, the two sides of the back-shaped frame 33 also move downward, pushing the contact block 332 to contact the low, medium and high touch buttons on one side of the low, medium and high touch plates 321. When the contact block 332 touches the low touch button, the two sides of the second motor 2314 are started and rotated for a certain number of turns, driving the sliding plate 2311 and the square plate 2313 to move horizontally, thereby increasing the eccentric distance between the disc 242 and the ball column 2315. As the C-shaped frame 14 continues to move downward, the contact block 332 will trigger the "medium" and "high" touch buttons in turn, so that the rotation speed of the second motor 2314 increases correspondingly, further increasing the eccentric distance, and finally realizing the vibration amplitude of the adjusting plate 231 increasing with the increase of the material quantity, thereby achieving the self-adaptive adjustment of the vibration frequency and the filtering effect; the filtered red pine cones are conveyed to the top of the second triangular plate 42 through the buffer layer 4 and the two sides of the first triangular plate 41. At this time, the two sides of the first power supply 61 are started to drive the heating plate 6 to heat the degradation chamber 5. When the material on the second triangular plate 42 accumulates to a certain weight, the third spring 431 is compressed, and the red pine cones slide down along the two sides of the second triangular plate 42 into the degradation chamber 5. At the same time, the sixth motor 99 is started to drive the second bevel gear 97 and the rotating shaft 9 to rotate. The red pine cones at the edge of the degradation chamber 5 are pushed to the center by the tail wing plate 981, and combined with the cooperative action of the rotating frame 982 and the cross frame 983, the red pine cones are fully turned around the rotating shaft 9, thereby increasing the heating area and improving the degradation efficiency; when the material in the degradation chamber 5 increases, the pressure sensing plate 83 at the bottom detects the pressure change, and the rotation speed of the sixth motor 99 is increased through the control panel 52, thereby increasing the rotation speed of the rotating shaft 9, the cylinder 91 and the hollow plate 93.Under the action of centrifugal force, the two side connecting rods 932 move away from each other, driving the whole of the ring plate 941, the outer disc 95, the adapter plate 951 and the slider 952 to move outward, so that the resistance of the resistor 62 decreases, the power of the first power supply 61 increases, and the rapid heating is realized. At the same time, the rotating speed of the fan blade 942 on the inner disc 94 is also increased, and the heat dissipation of the first power supply 61 is enhanced through the ventilation plate 84, so as to ensure the stable operation of the equipment; when the power of the first power supply 61 increases, the temperature in the degradation bin 5 rises, and the generated water vapor condenses on the surface of the bin wall and the second triangular plate 42. The condensed liquid flows down the second triangular plate 42 to the water guide groove 721, and is collected to the water storage bin 7 through the inclined channel 81. In the initial state, the bottom of the water storage bin 7 does not contact the sealing plate 77 under the action of the fourth spring 74, the partition plate 73 blocks the horizontal pipe 56, and the water vapor leakage is prevented. With the continuous increase of the condensed liquid, the floating plate 75 rises with the liquid level. When the liquid in the water storage bin 7 reaches a certain amount, its gravity overcomes the elastic force of the fourth spring 74 to make the water storage bin 7 move downward, and the partition plate 73 also descends, at the same time, the fourth motor 542 and the fifth motor 545 are triggered to start, driving the air inlet fan blade 543 and the conveying fan blade 546 to operate, and the excess water vapor is guided into the top aluminum liquidization box 54 and the bottom aluminum liquidization box 55 for liquidization collection. When the bottom of the water storage bin 7 contacts the induction electromagnetic block 781, the second power supply 782 starts to generate magnetic force to attract the water storage bin 7. At this time, the sealing plate 77 of the collection bin 71 is lifted, and the liquid in the water storage bin 7 flows into the collection bin 71. With the decrease of the liquid level, the floating plate 75 moves downward, and when it contacts the sealing plate 77, the second power supply 782 is turned off through the control panel 52, and the magnetic force disappears. The water storage bin 7 is reset under the action of the fourth spring 74, and the partition plate 73 blocks the horizontal pipe 56 again. Finally, the collected liquid is discharged through the drain cover 53 and the drain port of the bottom aluminum liquidization box 55 for reuse; the self-adaptive discharging structure realizes the intelligent adjustment of the discharging amount, reduces the wear of the crushing roller 15 while ensuring the crushing efficiency; through the linkage of the following vibration structure and the discharging structure, the vibration amplitude of the filter plate 22 is adjusted adaptively with the material amount; through the liquidization collection structure, the water vapor is automatically started to realize the recycling when the temperature is too high; through the cooperation of the second bevel gear 97, the first bevel gear 92, the hollow plate 93, the pressure sensitive plate 83 and the fan blade 942, the synchronous improvement of the heating power and the heat dissipation efficiency is realized.
[0027] The device and method for processing the red pine cone into feed provided by the present application are described in detail above. The principles and implementation methods of the present application are described by applying specific examples in this paper. The above examples are only used to help understand the method and core idea of the present application. It should be pointed out that, for ordinary skilled persons in the technical field, some improvements and modifications can be made to the present application without departing from the principles of the present application, and these improvements and modifications also fall within the protection scope of the claims of the present application.
Claims
1. An apparatus and method for processing red pine cones into feed, characterized in that, include: An adaptive feeding structure is used to reduce wear on parts and improve crushing efficiency. The adaptive feeding structure includes two trapezoidal plates, a crushing chamber, two crushing rollers, and a feed hopper. The two trapezoidal plates are slidably connected to both sides of the same crushing chamber, and the two crushing rollers are rotatably connected to the inside of the same crushing chamber. The feed hopper is fixedly connected to the top of the crushing chamber. The following vibration structure can automatically adjust the vibration frequency according to the amount of material inside the crushing chamber. The following vibration structure includes a filter plate, a spherical column, a cylindrical frame, four connecting columns, two grooved plates, and a sliding plate. The filter plate is slidably connected to the outside of the four connecting columns. The two grooved plates are fixedly connected to both sides of the same filter plate. An adjustment plate is fixedly connected inside each of the two grooved plates. The two sliding plates are slidably connected inside the corresponding adjustment plates. A liquefaction collection structure is provided for collecting liquefied water for secondary use. The liquefaction collection structure includes a water storage tank, horizontal pipes, and a top aluminum liquefaction tank. The top aluminum liquefaction tanks are fixedly connected to both sides of the crushing chamber. The bottoms of the two top aluminum liquefaction tanks are connected to a bottom aluminum liquefaction tank. Side wall grooves are provided on both sides of the inner wall of the crushing chamber. The two water storage tanks are slidably connected to the interior of the corresponding side wall grooves. Two horizontal pipes are fixedly connected to the interior of the crushing chamber. The ends of the two horizontal pipes that are far apart from each other are connected to the sides of the corresponding top aluminum liquefaction tanks that are close to each other.
2. The apparatus and method for processing red pine cones into feed according to claim 1, characterized in that, It also includes a support structure, which comprises a degradation chamber, a control panel, and an octagonal plate. A buffer layer is fixedly connected to the top of the degradation chamber, and the octagonal plate is fixedly connected to the top of the buffer layer. Four connecting columns are fixedly connected to the top of the same octagonal plate. The crushing chamber is fixedly connected to the top of the four connecting columns, and the control panel is fixedly connected to the front side of the degradation chamber. Right-angled grooves are provided on both sides of the crushing chamber. First limiting plates are fixedly connected to the top of two right-angled grooves. Two trapezoidal plates are slidably connected to the top of the corresponding first limiting plates. Inclined grooves are provided inside the two trapezoidal plates. C-shaped frames are slidably connected to both sides of the crushing chamber, and the cylindrical frame is fixedly connected to... At the top of the two C-shaped frames, the two cylindrical frames are slidably connected to the interior of the corresponding inclined grooves. Two long plates are fixedly connected to the side of the two C-shaped frames that are close to each other. The two crushing rollers are rotatably connected to the side of the two long plates that are close to each other. Two vertical grooves are provided on the outside of the crushing chamber. The two crushing rollers are slidably connected to the interior of the corresponding vertical grooves. The front end of each of the two crushing rollers is fixedly connected to a pulley. The two pulleys are rotatably connected to the front side of the front long plate. The outside of the two pulleys is connected to the same synchronous belt. A first motor is fixedly connected to the front side of the front long plate. The output end of the first motor is fixedly connected to the front end of the left crushing roller.
3. The apparatus and method for processing red pine cones into feed according to claim 1, characterized in that, Both sides of the crushing chamber are fixedly connected to side frames. Multiple vertical columns are fixedly connected to the top of each side frame. Two C-shaped frames are slidably connected to the outside of the corresponding vertical columns. Multiple first springs are fixedly connected to the bottom of each C-shaped frame, and the bottom ends of the first springs are fixedly connected to the top of the corresponding side frame. A U-shaped frame is fixedly connected to the side of each C-shaped frame that is furthest from each other. A thin plate is fixedly connected inside each U-shaped frame, and a contact block is slidably connected inside each thin plate. The two contact blocks interact with each other. A second spring is fixedly connected to each side of the two adjacent sides. The two second springs are fixedly connected to the side of the corresponding thin plate on the side of the two side frames that are far apart from each other. An extension plate is fixedly connected to the top of each of the two extension plates. A three-level touch plate is fixedly connected to each of the two three-level touch plates. A multi-level touch button is provided on one side of each of the two three-level touch plates. The multi-level touch button includes a low touch button, a medium touch button, and a high touch button. The two touch blocks are moved to abut against the low, medium, and high touch buttons on the side of the corresponding three-level touch plate in sequence on the side of the two far apart from each other.
4. The apparatus and method for processing red pine cones into feed according to claim 2, characterized in that, Two guide posts are fixedly connected to the top of the octagonal plate. Two grooved plates are slidably connected to the outside of the corresponding guide posts. Rectangular plates are fixedly connected to the top of the two guide posts. Disks are rotatably connected to the bottom of the two rectangular plates. Lead screws are rotatably connected to the inside of the two adjusting plates. Two sliding plates are threaded onto the outside of the corresponding lead screws. Square plates are fixedly connected to the top of the two sliding plates. Spherical columns are provided on the top of the two square plates. The tops of the two spherical columns are located at the bottom of the corresponding disks. Second motors are fixedly connected to the opposite sides of the two adjusting plates. The output ends of the two second motors are fixedly connected to one end of the corresponding lead screw. The second motors, the three-stage touch plate, and the control panel are signal connected. Third motors are fixedly connected to the top of the two rectangular plates. The output ends of the two third motors are fixedly connected to the top of the corresponding disks.
5. The apparatus and method for processing red pine cones into feed according to claim 2, characterized in that, The buffer layer has two first triangular plates fixedly connected inside. Each of the two first triangular plates has an adapter groove inside. Each of the two adapter grooves has a slidably connected slot block inside. The bottom of each of the two slot blocks is fixedly connected to the same second triangular plate. The bottom of each of the two slot blocks is fixedly connected to two third springs. The bottom ends of the two third springs on the same side are fixedly connected to the bottom of the inner wall of the corresponding adapter groove. The inner walls of the degradation chamber are fixedly connected to third triangular plates on both sides. The two ends of the second triangular plates movably abut against the top of the corresponding third triangular plates. The interior of each of the third triangular plates is provided with a water guide groove. Both sides of the inner wall of the crushing chamber are provided with inclined through grooves. The side of the two inclined through grooves that are close to each other is connected to the side of the corresponding water guide groove that is far away from each other. The side of the two inclined through grooves that are far away from each other is connected to the inner wall of the corresponding side wall groove. The top of each of the two water storage chambers is fixedly connected with a partition plate. The two partition plates are interactively abutted against the interior of the corresponding horizontal pipe. The top of each of the two water storage chambers is fixedly connected with a plurality of fourth springs. The top of the plurality of fourth springs on the same side is fixedly connected to the top of the inner wall of the corresponding side wall groove.
6. The apparatus and method for processing red pine cones into feed according to claim 2, characterized in that, Each of the two sidewall grooves has a collection chamber fixedly connected to its inner bottom. Each of the two sidewall grooves has a longitudinal plate fixedly connected to its inner bottom. Each of the two longitudinal plates has an induction electromagnetic block fixedly connected to its top. The bottoms of each of the two water storage tanks are movably abutted against the tops of the corresponding induction electromagnetic blocks. Each of the two water storage tanks has a side groove on one side of its inner wall. Each of the two side grooves has a vertical circle fixedly connected inside. Each of the two vertical circles has a floating plate slidably connected to its outer surface. Each of the two water storage tanks has a sealing plate slidably connected to its inner bottom. The tops of each of the two collection tanks are movably abutted against the bottoms of the corresponding sealing plates. The bottoms of each of the two floating plates are movably abutted against the tops of the corresponding sealing plates. Each of the two longitudinal plates has a second power supply fixedly connected inside. The two second power supplies are electrically connected to the corresponding induction electromagnetic blocks. The two floating plates are electrically connected to the corresponding second power supplies via a control panel. Each of the two water storage tanks has two inverted ladder grooves inside. Each of the two sealing plates has two inverted ladder plates fixedly connected to its bottom. The two inverted ladder plates are located on the same side. Both are slidably connected inside the corresponding inverted ladder grooves on the same side. A fifth spring is fixedly connected to the bottom of each of the two inverted ladder plates on the same side. The bottom ends of the two fifth springs on the same side are fixedly connected to the bottom of the inner wall of the corresponding inverted ladder groove. Two water pipes are fixedly connected inside the degradation chamber. The rear ends of the two water pipes are connected to the front of the corresponding collection chamber. A drain cover is provided at the front end of each of the two water pipes. A top crossbar is fixedly connected to the top of each of the two top aluminum liquefaction tanks. The bottom of each top crossbar is rotatably connected... Each of the two top crossbeams is equipped with an intake fan blade. A fourth motor is fixedly connected to the top of each of the two top crossbeams, and the output ends of each of the two fourth motors are fixedly connected to the top of the corresponding intake fan blade. A middle crossbeam is fixedly connected to the bottom of each of the two top aluminum liquefaction tanks. A conveying fan blade is rotatably connected to the bottom of each of the two middle crossbeams. A fifth motor is fixedly connected to the top of each of the two middle crossbeams, and the output ends of each of the two fifth motors are fixedly connected to the top of the corresponding conveying fan blade. A drain outlet is provided at the bottom of each of the two bottom aluminum liquefaction tanks.
7. The apparatus and method for processing red pine cones into feed according to claim 2, characterized in that, Two pressure-sensing plates are fixedly connected to the bottom of the inner wall of the degradation chamber. A bending groove is provided inside the degradation chamber. A rotating shaft is rotatably connected inside the degradation chamber. A second bevel gear is fixedly connected to the bottom end of the rotating shaft. The second bevel gear is rotatably connected to the top of the inner wall of the bending groove. Two second limiting plates are fixedly connected inside the bending groove. A cylinder is rotatably connected inside each of the two second limiting plates. A first bevel gear is fixedly connected to the end of each cylinder that is close to each other. Both first bevel gears are meshed with the bottom of the same second bevel gear. A perforated plate is fixedly connected to the end of each cylinder that is far from each other. Two connecting rods are slidably connected inside each of the two perforated plates. An inner plate is fixedly connected to the side of each connecting rod that is far from each other on the same side. A sixth spring is fixedly connected to the end of each connecting rod that is close to each other on the same side. The ends of each sixth spring that are far from each other on the same side are fixedly connected to the inner wall of the corresponding perforated plate. Two first power supplies are fixedly connected inside the degradation chamber. The sides of the two first power supplies that are close to each other are electrically connected... There are heating plates, two of which are fixedly connected to the inner walls of the same degradation chamber. Resistors are electrically connected to the bottom of each of the two first power supplies. Sliding grooves are provided at the bottom of each of the two resistors. Sliding blocks are slidably connected to the bottom of each of the two sliding grooves. Connecting plates are fixedly connected to the bottom of each of the two sliding blocks. Outer discs are fixedly connected to the bottom of each of the two connecting plates. Ring grooves are provided inside each of the two outer discs. Ring plates are fixedly connected to the outside of each of the two inner discs. Ring plates are rotatably connected to the inside of the corresponding ring grooves. Fan blades are fixedly connected to the sides of each of the two inner discs that are far apart from each other. Horizontal columns are fixedly connected to the inside of the degradation chamber on both sides. Two connecting plates are slidably connected to the outside of the corresponding horizontal columns. Ventilation plates are fixedly connected to the inside of the degradation chamber on both sides. A sixth motor is fixedly connected to the bottom of the inner wall of the curved groove. The output end of the sixth motor is fixedly connected to the bottom of the second bevel gear. Telescopic rods are fixedly connected to the sides of each of the two hollow plates that are far apart from each other. The ends of the two telescopic rods located on the same side that are far apart from each other are fixedly connected to the sides of the corresponding inner discs that are close to each other.
8. The apparatus and method for processing red pine cones into feed according to claim 7, characterized in that, Multiple fish-tail stirring rods are fixedly connected to the outside of the rotating shaft. Each of the multiple fish-tail stirring rods is fixedly connected to a tail fin plate, a rotating frame, and a cross. A front door panel is provided on the front side of the degradation chamber.