Matrix treatment device for coastal salt-tolerant tree species cultivation
By designing a hybrid production structure and a secondary processing structure, the problem of compaction in the substrate treatment device for cultivating salt-tolerant tree species along the coast was solved, realizing automated production and multi-layer loose material spreading, thus improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-06
- Publication Date
- 2026-03-17
AI Technical Summary
Existing substrate treatment devices for cultivating salt-tolerant coastal tree species are not efficient and prone to compaction, which affects large-scale production.
The system employs a hybrid production structure and a secondary processing structure. The hybrid production structure is used for mixing, conveying, and spraying water, while the secondary processing structure is used for secondary material spreading. Visual sensors, motor drives, and heating processes are used to prevent caking and achieve automated production.
It achieves automated introduction, transfer and multi-layer loose spreading of the cultivation substrate, prevents clumping, improves production efficiency, and is suitable for large-scale planting.
Smart Images

Figure CN121667072A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of substrate treatment technology, specifically a substrate treatment device for cultivating salt-tolerant coastal tree species. Background Technology
[0002] Seedling substrate is crucial for plant growth, providing essential support and nutrients for seeds. Common seedling substrates include vermiculite, perlite, carbonized rice husks, peat moss, sawdust, cottonseed hulls, gravel, and slag. When preparing seedling substrate, we usually mix peat moss, perlite, and horticultural vermiculite in a 1:1:1 volume ratio, or choose a mixture of 7 parts peat moss and 3 parts vermiculite. This method produces a substrate that is both breathable and moisture-retentive, making it ideal for seed growth.
[0003] The cultivation of salt-tolerant tree species along the coast also requires adjustments to the seedling substrate according to different climatic environments, so as to suit the growth of salt-tolerant tree species along the coast and provide a better growing environment.
[0004] Currently, existing substrate treatment devices for cultivating salt-tolerant tree species along the coast cannot operate efficiently and are prone to compaction, requiring additional breaking up work during subsequent planting, which is not conducive to large-scale production. Summary of the Invention
[0005] To address the problems in the prior art, the present invention provides a substrate treatment device for cultivating salt-tolerant tree species along the coast.
[0006] The technical solution adopted by the present invention to solve its technical problem is: a substrate treatment device for cultivating salt-tolerant coastal tree species, comprising a mixed production structure and a secondary treatment structure, wherein the secondary treatment structure is connected to the side end of the mixed production structure, and the mixed production structure and the secondary treatment structure are fixedly arranged. The mixed production structure is used for mixing and conveying materials, and spraying water at the same time. The first material guiding and processing component mixes the matrix, and the lower end of the first material guiding and processing component is connected to the conveyor belt. A storage box is slidably provided on the conveyor belt for storage, and water supply pipes and spray pipes spray water. The secondary processing structure is used for secondary processing, secondary material spreading, and the secondary mixing component performs secondary mixing within the storage box.
[0007] Specifically, the mixed production structure includes a first material guiding and processing component and a conveying and pouring component. The first material guiding and processing component is fixedly connected to the conveying and pouring component. The first material guiding and processing component includes a support base frame. A support plate is fixedly connected to the support base frame. The support base frame is also connected to the support plate through a buffer frame. A mixing mechanism is fixedly connected to the support plate. A mounting frame is fixedly connected to the lower end of the support base frame. A vision sensor is fixedly installed on the mounting frame. The bottom of the mixing mechanism is connected to the vision sensor.
[0008] Specifically, the mixing mechanism includes a storage seat, an insulation sleeve is fitted on the outer side of the storage seat, a heating seat is installed on the insulation sleeve, the lower end of the storage seat is connected to a conical guide seat, a solenoid valve is installed at the bottom of the conical guide seat, and the top of the storage seat is fixedly connected to a mounting top seat.
[0009] Specifically, an electric motor is fixedly installed on the mounting base, and the electric motor drives a drive rod to rotate. A mixing and processing disc is fixedly connected to the drive rod. The drive rod and the mixing and processing disc rotate inside the storage seat. A first guide pipe is connected to one side of the upper end of the storage seat, and a third guide pipe is installed on the other side of the upper end of the storage seat.
[0010] Specifically, the storage seat is also connected to a guide docking platform, and a second guide pipe is connected to the guide docking platform. A motor is fixedly installed on the side of the guide docking platform. The motor drives the material on the guide docking platform to be guided into the storage seat through the drive wheel.
[0011] Specifically, the conveying and irrigation component includes a conveyor belt, on which a storage box is conveyed. A water supply pipe is fixedly connected to the upper side of the conveyor belt, and a spray pipe is connected to the water supply pipe. A water supply seat is fixedly connected to the side end of the conveyor belt, and the lower end of the water supply seat is connected to a water collection plate. Through the configuration of the mixing production structure, material guiding and water spraying are performed. The first, second, and third material guide pipes in the mixing mechanism can introduce different materials, thereby mixing them in the storage seat. The materials are efficiently mixed through a drive rod and a mixing processing disc, and heated by a heating seat to achieve the processing purpose. After a specified time, the solenoid valve opens, and the material can be introduced into the storage box through the conical guide seat. At this time, water is introduced through the water supply pipe and the spray pipe, which can spray water onto the storage box. At the same time, the conveyor belt drives the storage box to move, thereby performing the boxing work, so that the cultivation substrate can be automatically introduced and conveyed, achieving the purpose of automated production.
[0012] Specifically, the secondary processing structure includes a second material guiding component, a secondary mixing component, and a transmission seat. The secondary mixing component is fixedly installed on one side of the transmission seat, and the second material guiding component is fixedly installed on the other side of the transmission seat.
[0013] Specifically, the secondary mixing component includes a mounting plate, a limiting sleeve fixedly connected to the mounting plate, a stepper motor slidably connected to the limiting sleeve, the top of the stepper motor fixedly connected to a fixed sleeve, an electrically controlled telescopic rod installed on the side of the fixed sleeve, the electrically controlled telescopic rod fixedly connected to the mounting plate, and a rotating disk driven by the lower end of the stepper motor, on which mixing teeth are fixedly connected. Through the secondary processing structure, the storage box guided by the mixing production structure first reaches the lower end of the secondary mixing component. At this time, the stepper motor controls the rotating disk and mixing teeth to rotate. Then, the electrically controlled telescopic rod controls the stepper motor, rotating disk, and mixing teeth to descend, causing the rotating disk and mixing teeth to efficiently mix the substrate in the storage box, preventing clumping. Afterward, it reaches the second material guiding and processing component for secondary material spreading, facilitating multi-layer spreading and making the material more loose and easier to plant.
[0014] Specifically, the electrically controlled telescopic rod extends and retracts, driving the fixed sleeve and stepper motor to extend and retract, changing the position of the stepper motor on the limit sleeve, thereby allowing the rotating disk and mixing teeth to reach the storage box on the transmission seat.
[0015] Specifically, the second material guiding component has the same structure as the first material guiding component. The bottom of the supporting base is fixed to the conveyor belt. The side end of the conveyor belt is connected to the transmission seat through the water supply seat. The second material guiding pipe, motor, and guide docking platform are symmetrically arranged about the storage seat sleeve. The electrically controlled telescopic rod is provided with a driven telescopic rod at a position symmetrical about the stepper motor.
[0016] The beneficial effects of this invention are: First, this invention utilizes a mixed production structure for material guiding and water spraying. The first, second, and third guide pipes within the mixing mechanism introduce different materials, which are then mixed within the storage housing. The mixing is achieved through a drive rod and a mixing disc, with a heating seat providing heating to achieve the desired processing. After a specified time, the solenoid valve opens, allowing the material to be guided into the storage box via a conical guide. Water is then introduced through the water supply pipe and spray pipe, spraying water onto the storage box. Simultaneously, a conveyor belt moves the storage box, facilitating the filling process. This automated introduction and transfer of the cultivation substrate achieves automated production.
[0017] Second, through the setting of the secondary processing structure, the storage box guided by the mixing production structure first reaches the lower end of the secondary mixing component. At this time, the stepper motor controls the rotating disk and mixing teeth to rotate. Then, the electric control telescopic rod controls the stepper motor, rotating disk and mixing teeth to descend, so that the rotating disk and mixing teeth drive the substrate in the storage box to mix efficiently and prevent clumping. Then it reaches the second material guiding and processing component for secondary material spreading, which facilitates multi-layer material spreading and makes the material more loose and easier to plant. Attached Figure Description
[0018] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0019] Figure 1 This is a three-dimensional structural diagram of the main body from a frontal perspective in this invention; Figure 2 This is a side view three-dimensional structural diagram of the main body in this invention; Figure 3 This is a perspective view of the hybrid production structure in this invention; Figure 4 This is a perspective view of the first material guiding and processing component in this invention; Figure 5 This is a perspective view of the mixing mechanism in this invention; Figure 6 This is a three-dimensional exploded view of the mixing mechanism in this invention; Figure 7 This is a three-dimensional structural diagram of the water-transfer and pouring component in this invention; Figure 8 This is a perspective view of the secondary processing structure in this invention; Figure 9 This is a three-dimensional exploded view of the secondary mixing component in this invention.
[0020] In the diagram: 1-Mixed production structure, 2-Secondary processing structure, 3-First material guiding component, 4-Transfer and pouring component, 5-Mixing mechanism, 6-Support plate, 7-Buffer frame, 8-Support base frame, 9-Mounting frame, 10-Vision sensor, 11-Motor, 12-Mounting top seat, 13-First material guide pipe, 14-Second material guide pipe, 15-Motor, 16-Guiding docking platform, 17-Third material guide pipe, 18-Drive rod, 19-Mixed processing tray, 20-Storage 21-Heating seat, 22-Insulation sleeve, 23-Conical guide seat, 24-Solenoid valve, 25-Water supply pipe, 26-Spray pipe, 27-Storage box, 28-Transmission belt, 29-Water collection plate, 30-Water supply seat, 31-Second material handling component, 32-Secondary mixing component, 33-Conduction seat, 34-Fixed sleeve, 35-Electrically controlled telescopic rod, 36-Stepper motor, 37-Limit sleeve, 38-Rotating disc, 39-Mixing teeth, 40-Mounting tray. Detailed Implementation
[0021] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.
[0022] The invention will be further described below with reference to the accompanying drawings. Example
[0023] like Figure 1-9 As shown, a substrate treatment device for cultivating salt-tolerant coastal tree species according to the present invention includes a mixed production structure 1 and a secondary treatment structure 2. The secondary treatment structure 2 is connected to the side end of the mixed production structure 1, and the mixed production structure 1 and the secondary treatment structure 2 are fixedly arranged. The mixed production structure 1 is used for mixing and conveying materials, and spraying water at the same time. The first material guiding and processing component 3 mixes the matrix, and the lower end of the first material guiding and processing component 3 is connected to the conveyor belt 28. The storage box 27 is slidably provided on the conveyor belt 28 for storage, and the water supply pipe 25 and the spray pipe 26 perform spraying treatment. The secondary processing structure 2 is used for secondary processing, including secondary material spreading, and the secondary mixing component 32 performs secondary mixing within the storage box 27.
[0024] The mixed production structure 1 includes a first material guiding and processing component 3 and a conveying and pouring component 4. The first material guiding and processing component 3 is fixedly connected to the conveying and pouring component 4. The first material guiding and processing component 3 includes a support base frame 8. A support plate 6 is fixedly connected to the support base frame 8, and the support base frame 8 is also connected to the support plate 6 through a buffer frame 7. A mixing mechanism 5 is fixedly connected to the support plate 6. A mounting frame 9 is fixedly connected to the lower end of the support base frame 8. A vision sensor 10 is fixedly installed on the mounting frame 9, and the bottom of the mixing mechanism 5 is connected to the vision sensor 10.
[0025] The mixing mechanism 5 includes a storage seat 20, an insulation sleeve 22 is sleeved on the outside of the storage seat 20, a heating seat 21 is installed on the insulation sleeve 22, the lower end of the storage seat 20 is connected to a conical guide seat 23, a solenoid valve 24 is installed at the bottom of the conical guide seat 23, and the top of the storage seat 20 is fixedly connected to the mounting top seat 12.
[0026] A motor 11 is fixedly mounted on the mounting base 12. The motor 11 drives the drive rod 18 to rotate. A mixing processing disc 19 is fixedly connected to the drive rod 18. The drive rod 18 and the mixing processing disc 19 rotate within the storage seat 20. A first guide pipe 13 is connected to one side of the upper end of the storage seat 20, and a third guide pipe 17 is installed on the other side of the upper end of the storage seat 20. The mixing mechanism 5 is fixedly supported by the support plate 6, the buffer frame 7, and the support base 8. A vision sensor 10 is mounted on the mounting frame 9 to detect the position of the storage box 27. During the testing process, the material can be introduced into the storage sleeve 20 through the first guide pipe 13, the second guide pipe 14, and the third guide pipe 17. The lower end of the second guide pipe 14 is connected to a guide docking platform 16, on which a motor 15 is installed. When the motor 15 starts, it can drive the wheel inside the guide docking platform 16 to rotate, so that the material reaches the storage sleeve 20. At this time, the motor 11 works, driving the drive rod 18 and the mixing processing disc 19 to rotate, and performing the mixing processing. At the same time, the heating seat 21 inside the heat insulation sleeve 22 also heats up, thereby achieving the purpose of disinfection.
[0027] The storage seat 20 is also connected to a guide docking platform 16, and a second guide pipe 14 is connected to the guide docking platform 16. A motor 15 is fixedly installed on the side of the guide docking platform 16. The motor 15 drives the material on the guide docking platform 16 to be guided into the storage seat 20 through the drive wheel.
[0028] The conveying and irrigation component 4 includes a conveyor belt 28, on which a storage box 27 is conveyed. A water supply pipe 25 is fixedly connected to the upper side of the conveyor belt 28, and a spray pipe 26 is connected to the water supply pipe 25. A water supply seat 30 is fixedly connected to the side end of the conveyor belt 28, and the lower end of the water supply seat 30 is connected to a water collection plate 29. Through the arrangement of the mixing production structure 1, material guiding and water spraying are performed. The first guide pipe 13, the second guide pipe 14, and the third guide pipe 17 in the mixing mechanism 5 can introduce different materials, thereby storing... The mixture is mixed within the seat 20 and efficiently mixed via the drive rod 18 and mixing plate 19. The heating seat 21 performs heating treatment to achieve the processing purpose. After a specified time, the solenoid valve 24 opens, and the material is introduced into the storage box 27 through the conical guide seat 23. At this time, the water supply pipe 25 and spray pipe 26 introduce water, which can be sprayed onto the storage box 27. Simultaneously, the conveyor belt 28 drives the storage box 27 to move, thereby performing the boxing work. This allows the cultivation substrate to be automatically introduced and transported, achieving the purpose of automated production.
[0029] The secondary processing structure 2 includes a second material guiding component 31, a secondary mixing component 32, and a transmission seat 33. The secondary mixing component 32 is fixedly installed on one side of the transmission seat 33, and the second material guiding component 31 is fixedly installed on the other side of the transmission seat 33. With the setting of the secondary processing structure 2, the storage box 27 guided by the mixing production structure 1 first reaches the lower end of the secondary mixing component 32. At this time, the stepper motor 36 controls the rotating disk 38 and the mixing teeth 39 to rotate. Then, the electric control telescopic rod 35 controls the stepper motor 36, the rotating disk 38, and the mixing teeth 39 to descend, so that the rotating disk 38 and the mixing teeth 39 drive the substrate in the storage box 27 to mix efficiently and prevent clumping. Then, it reaches the second material guiding component 31 for secondary material spreading, which facilitates multi-layer material spreading and makes the material looser and easier to plant.
[0030] The secondary mixing component 32 includes a mounting plate 40, on which a limiting sleeve 37 is fixedly connected. A stepper motor 36 is slidably connected to the limiting sleeve 37. The top of the stepper motor 36 is fixedly connected to a fixed sleeve 34. An electrically controlled telescopic rod 35 is installed on the side of the fixed sleeve 34 and is fixedly connected to the mounting plate 40. The lower end of the stepper motor 36 drives a rotating disk 38, on which mixing teeth 39 are fixedly connected. After the substrate reaches the storage box 27, water is introduced through the water pipe 25 and then through the spray pipe 26 into the storage box 27, achieving humidification of the substrate inside the storage box 27. The conveyor belt 28 continues to drive the storage box 27 to move, and then reaches the secondary mixing component 32. The transmission seat 33 drives the storage box 27 to continue moving. At this time, the stepper motor 36 controls the rotating disk 38 and the mixing teeth 39 to rotate. At the same time, the electrically controlled telescopic rod 35 retracts, driving the fixed sleeve 34 and the stepper motor 36 to descend, so that the limit sleeve 37 and the rotating disk 38 reach the storage box 27 to mix the contents of the storage box 27 and prevent the storage box 27 from caking. Then the storage box 27 continues to reach the second material guiding and processing component 31 for further material laying. At this time, the permeable material can be laid, thus completing the production of the substrate.
[0031] The electric telescopic rod 35 extends and retracts, which drives the fixed sleeve 34 and the stepper motor 36 to extend and retract, changing the position of the stepper motor 36 on the limit sleeve 37, so that the rotating disk 38 and the mixing tooth 39 reach the storage box 27 on the transmission seat 33.
[0032] The second material guiding component 31 has the same structure as the first material guiding component 3. The bottom of the support base 8 is fixed to the conveyor belt 28. The side end of the conveyor belt 28 is connected to the transmission seat 33 through the water supply seat 30. The second material guiding pipe 14, the motor 15, and the guide docking platform 16 are symmetrically arranged about the storage seat 20. The electrically controlled telescopic rod 35 is provided with a driven telescopic rod at a position symmetrical about the stepper motor 36.
[0033] The working principle is as follows: When in use, the storage box 27 is transported on the conveyor belt 28. When it reaches the lower end of the first material guiding and processing component 3, the solenoid valve 24 is opened, so that the substrate is introduced into the storage box 27 through the conical guide seat 23 for boxing processing. The mixing mechanism 5 is fixedly supported by the support plate 6, buffer frame 7, and support base 8. The mounting frame 9 is equipped with a vision sensor 10 to detect the position of the storage box 27. The material can be introduced into the storage seat 20 through the first guide pipe 13, the second guide pipe 14, and the third guide pipe 17. The lower end of the second guide pipe 14 is connected to a guide docking platform 16, on which a motor 15 is installed. When the motor 15 starts, it can drive the wheel inside the guide docking platform 16 to rotate, so that the material reaches the storage seat 20. At this time, the motor 11 works, driving the drive rod 18 and the mixing processing disc 19 to rotate for mixing. At the same time, the heating seat 21 inside the heat insulation sleeve 22 also heats up, thereby achieving the purpose of disinfection. After the substrate reaches the storage box 27, water is introduced through the water pipe 25 and then through the spray pipe 26 into the storage box 27 to humidify the substrate inside the storage box 27. After that, the conveyor belt 28 continues to drive the storage box 27 to move. After reaching the secondary mixing component 32, the transmission seat 33 drives the storage box 27 to continue moving. At this time, the stepper motor 36 controls the rotating disk 38 and mixing teeth 39 to rotate, while the electrically controlled telescopic rod 35 retracts, driving the fixed sleeve 34 and the stepper motor 36 to descend, so that the limiting sleeve 37 and the rotating disk 38 reach the storage box 27 to mix the contents of the storage box 27 and prevent caking. Then, the storage box 27 continues to the second material guiding and processing component 31 for re-laying. At this time, the breathable material can be laid, thus completing the production of the substrate and finishing the work.
[0034] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A substrate treatment device for cultivating a salt-tolerant coastal tree species, characterized by: Including mixed production structure (1) and secondary processing structure (2), the side end of mixed production structure (1) is communicated with secondary processing structure (2), and mixed production structure (1) and secondary processing structure (2) are fixedly arranged; The mixed production structure (1) is used for mixing and conveying, and spraying water is carried out simultaneously, the first material guiding and processing component (3) is used for mixing the substrate, the lower end of the first material guiding and processing component (3) is communicated with the conveying belt (28), the conveying belt (28) is slidably provided with the storage box (27), so that storage is carried out, and the water supply pipe (25) and the spraying pipe (26) are used for spraying treatment, the secondary processing structure (2) is used for secondary processing, and secondary material laying is carried out, and the secondary mixing component (32) is used for secondary mixing in the storage box (27).
2. The substrate treatment device for coastal salt-tolerant tree species cultivation according to claim 1, characterized in that: The mixed production structure (1) includes the first material guiding and processing component (3) and the conveying and irrigation component (4), the first material guiding and processing component (3) is fixedly connected with the conveying and irrigation component (4), the first material guiding and processing component (3) includes the support base (8), the support base (8) is fixedly connected with the support plate (6), and the support base (8) is further connected with the support plate (6) through the buffer frame (7), the support plate (6) is fixedly connected with the mixing mechanism (5), the lower end of the support base (8) is fixedly connected with the mounting frame (9), the visual sensor (10) is fixedly installed on the mounting frame (9), and the bottom of the mixing mechanism (5) is penetratingly arranged with the visual sensor (10).
3. The substrate treatment device for cultivating a salt-tolerant coastal tree species according to claim 2, characterized in that: The mixing mechanism (5) includes the storage seat sleeve (20), the outer side of the storage seat sleeve (20) is sleeved with the heat insulation sleeve (22), the heat insulation sleeve (22) is installed with the heating seat (21), the lower end of the storage seat sleeve (20) is communicated with the conical guide base (23), the bottom of the conical guide base (23) is installed with the electromagnetic valve (24), and the top of the storage seat sleeve (20) is fixedly connected with the mounting top base (12).
4. The substrate treatment device for cultivating a salt-tolerant coastal tree species according to claim 3, characterized in that: The mounting top base (12) is fixedly installed with the motor (11), the motor (11) drives the driving rod (18) to rotate, the driving rod (18) is fixedly connected with the mixing processing disc (19), and the driving rod (18) and the mixing processing disc (19) rotate in the storage seat sleeve (20), one side of the upper end of the storage seat sleeve (20) is communicated with the first material guiding pipe (13), and the other side of the upper end of the storage seat sleeve (20) is installed with the third material guiding pipe (17).
5. A substrate treatment apparatus for cultivating a salt-tolerant coastal tree species according to claim 4, characterized in that: The storage seat sleeve (20) is further communicated with the guide docking table (16), the guide docking table (16) is communicated with the second material guiding pipe (14), and the motor (15) is fixedly installed on the side end of the guide docking table (16), the motor (15) drives the material in the guide docking table (16) to be guided into the storage seat sleeve (20) through the driving wheel piece.
6. A substrate treatment apparatus for cultivating a salt-tolerant coastal tree species according to claim 5, characterized in that: The conveying and irrigation component (4) includes the conveying belt (28), the conveying belt (28) is provided with the storage box (27), the upper end side of the conveying belt (28) is fixedly connected with the water supply pipe (25), the water supply pipe (25) is communicated with the spraying pipe (26), the side end of the conveying belt (28) is fixedly connected with the water supply base (30), and the lower end of the water supply base (30) is communicated with the water collecting plate (29).
7. A substrate treatment apparatus for cultivating a salt-tolerant coastal tree species according to claim 6, characterized in that: The secondary processing structure (2) comprises a second material guiding processing component (31), a secondary mixing component (32) and a conducting base (33), the conducting base (33) is fixedly installed with the secondary mixing component (32) on one side, and the conducting base (33) is fixedly installed with the second material guiding processing component (31) on the other side.
8. A substrate treatment apparatus for cultivating a salt-tolerant coastal tree species according to claim 7, characterized in that: The secondary mixing component (32) comprises a mounting plate (40), the mounting plate (40) is fixedly connected with a limiting sleeve (37), the limiting sleeve (37) is slidingly connected with a stepping motor (36), the top of the stepping motor (36) is fixedly connected with a fixed sleeve base (34), the side end of the fixed sleeve base (34) is installed with an electric control telescopic rod (35), the electric control telescopic rod (35) is fixedly connected with the mounting plate (40), the lower end of the stepping motor (36) is drivingly connected with a rotating disc (38), and the rotating disc (38) is fixedly connected with mixing teeth (39).
9. The substrate treatment device for cultivating a salt-tolerant coastal tree species according to claim 8, characterized by: The electric control telescopic rod (35) is telescopic, drives the fixed sleeve base (34) and the stepping motor (36) to be telescopic and adjusted, changes the position of the stepping motor (36) on the limiting sleeve (37), so that the rotating disc (38) and the mixing teeth (39) reach the storage box (27) on the conducting base (33).
10. A substrate treatment device for cultivating a salt-tolerant coastal tree species according to claim 9, characterized in that: The second material guiding processing component (31) is the same as the first material guiding processing component (3) in structure, the bottom of the supporting base frame (8) is fixed with a conveying belt (28), the conveying belt (28) is communicated with the conducting base (33) through a water conveying base (30), the second material guiding pipe (14), the motor (15) and the guiding docking table (16) are symmetrically arranged about the storage base sleeve (20), and the electric control telescopic rod (35) is provided with a driven telescopic rod at the symmetric position of the stepping motor (36).