Transplanting device for landscaping
The landscaping transplanting device with multi-component collaborative operation solves the problems of inflexible operation and unstable soil ball of existing devices, realizes an efficient and reliable seedling transplanting process, and improves the survival rate and growth condition of seedlings.
Patent Information
- Application Number
- CN202511193571.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-25
- Publication Date
- 2025-10-10
AI Technical Summary
Existing seedling transplanting devices are not flexible enough to operate and are difficult to adapt to seedlings of different sizes and shapes. In addition, it is difficult to ensure the stability of the soil ball and effective support of the trunk when transplanting large seedlings, which affects the survival rate and growth of the seedlings.
The landscaping transplanting device adopts the collaborative operation of multiple components, including a lifting and angle adjustment component, a circular movement component, a transmission control component and a trunk support component. By adjusting the height and angle of the shell, the excavator blade is driven to move in the opposite direction to ensure the integrity of the soil ball and provide auxiliary support for the trunk.
It realizes the integrated transplanting of seedlings with efficient soil digging, stable soil ball, flexible operation and reliable support of the trunk, which significantly improves the transplanting efficiency and seedling survival rate.
Smart Images

Figure CN120753164A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of horticultural tools, and particularly relates to a transplanting device for landscaping. BACKGROUND
[0002] In the process of landscaping and forestry management, seedling transplanting is a crucial but complex task. Traditional seedling transplanting methods usually rely on manual excavation or simple mechanical equipment, which not only have high labor intensity and low efficiency, but also are difficult to ensure the integrity of the root ball, thereby affecting the survival rate and growth of seedlings. Especially in the face of large-scale transplanting tasks, traditional methods often cannot meet the requirements of high efficiency and precision, leading to resource waste and cost increase. In addition, special attention should be paid to protecting the trunk and root system of seedlings during the transplanting process to reduce damage to seedlings and promote their rapid recovery growth.
[0003] In order to solve the above problems, various types of seedling transplanting equipment have appeared in the market, which have improved the work efficiency and seedling survival rate to some extent. However, the existing transplanting devices still have some deficiencies, such as insufficient flexibility in operation, difficulty in adapting to seedlings of different sizes and shapes, and insufficient support for the trunk, etc. Especially in large-scale seedling transplanting, how to ensure the stability of the soil ball during the excavation process and the effective support of the trunk has become a technical problem to be solved.
[0004] Therefore, in view of the above status, it is urgent to develop a transplanting device for landscaping to overcome the deficiencies in current practical applications. SUMMARY
[0005] The purpose of the present application is to provide a transplanting device for landscaping, which aims to solve the problems mentioned in the background.
[0006] The present application is implemented as follows: a transplanting device for landscaping, comprising a fixedly connected assembly base plate and an anchor plate, further comprising: a sleeve, the sleeve is connected with the assembly base plate through a lifting angle adjusting assembly, the lifting angle adjusting assembly is used for adjusting the height and angle of the sleeve; an arc-shaped cross beam, the arc-shaped cross beam is slidably arranged on the inner side of the sleeve, and a circumferential movement assembly for driving the arc-shaped cross beam to move relative to the sleeve is installed on the sleeve; a first angle bracket, the first angle bracket is fixed at the two ends of the arc-shaped cross beam, a transmission control assembly is arranged on the first angle bracket, and a first digging knife and a second digging knife are fixed at the output ends of the two transmission control assemblies, and the two transmission control assemblies are used for driving the first digging knife and the second digging knife to move in opposite directions; a trunk support assembly, the trunk support assembly is fixedly connected with the arc-shaped cross beam and is used for assisting in supporting the trunk of the seedling to be transplanted.
[0007] Further technical solutions, the lifting angle adjusting assembly includes a vertical slide rail plate fixed to the lower side of the assembly substrate, a second corner frame is hingedly connected to the outside of the shell, and the vertical part of the second corner frame is slidingly connected with the vertical slide rail plate; a second push-pull cylinder is fixed to the lower side of the assembly substrate, and the telescopic shaft of the second push-pull cylinder is fixedly connected with the vertical part of the second corner frame; a first push-pull cylinder is hingedly connected to the vertical part of the second corner frame, and the telescopic shaft of the first push-pull cylinder is hingedly connected with the top of the shell.
[0008] Further technical solutions, the circumferential movement assembly includes a second power member fixed to the top of the shell, an accommodating groove is formed in the top of the arc-shaped cross beam, a gear rack is fixed to one side of the accommodating groove, and the output end of the second power member extends into the accommodating groove and is fixedly connected with a gear wheel meshing with the gear rack.
[0009] Further technical solutions, the transmission control assembly includes a rotating bearing shaft rotatably installed on the first corner frame, a sleeve is rotatably installed on the rotating bearing shaft, and a first bevel gear and a second bevel gear are fixed opposite to each other on the rotating bearing shaft and the sleeve; one end of the sleeve is fixedly connected with the end part of the first earth digging knife through a first end seat, and one end of the rotating bearing shaft is fixedly connected with the end part of the second earth digging knife through a second end seat; a first power member is fixed to the top of the first corner frame, and the output end of the first power member is fixedly connected with a third bevel gear meshing with the first bevel gear and the second bevel gear.
[0010] Further technical solutions, the first earth digging knife and the second earth digging knife are both in a circular arc structure, the end part of the arc-shaped cross beam is fixedly connected with the side surface of the horizontal part of the first corner frame, the first power member is fixed to the top of the horizontal part of the first corner frame, and the two rotating bearing shafts are coaxially arranged and rotatably connected with the vertical part of the first corner frame.
[0011] Further technical solutions, the main stem supporting assembly includes a fourth corner frame fixedly connected with the arc-shaped cross beam, a fifth push-pull cylinder is fixed to the fourth corner frame, and the telescopic shaft of the fifth push-pull cylinder is fixedly connected with the bridge plate through a third corner frame; a fourth push-pull cylinder is fixed to the bridge plate, and the telescopic shaft of the fourth push-pull cylinder is fixedly connected with a supporting frame, the two ends of the supporting frame are respectively fixedly connected with third push-pull cylinders, the telescopic shaft of each third push-pull cylinder is fixedly connected with an end support plate slidingly connected with the supporting frame, and arc-shaped clamping plates are fixed opposite to each other on the two end support plates, and a buffer pad is fixed to the inner side of each arc-shaped clamping plate.
[0012] Further technical solutions, the fifth push-pull cylinder is vertically fixed to the horizontal part of the fourth corner frame, the upper end of the vertical part of the fourth corner frame is fixedly connected with the middle position of the lower side of the arc-shaped cross beam, and a bottom opening is formed in the bottom of the shell for avoiding the fourth corner frame.
[0013] Further technical solutions, the horizontal part of the third angle frame is fixedly connected with the telescopic shaft end of the fifth push-pull cylinder, the vertical part of the third angle frame is fixedly connected with the middle of the top of the bridge plate, and the two ends of the bridge plate are respectively fixed with the fourth push-pull cylinder perpendicular to the fifth push-pull cylinder.
[0014] Further technical solutions, the assembly substrate is horizontally arranged, the anchor plate is vertically arranged, and a fixing hole is formed in the outer side of the anchor plate; the assembly substrate and the vertical slide rail plate are fixed with a reinforcing plate, and the vertical part of the second angle frame is provided with a notch avoiding the reinforcing plate.
[0015] Further technical solutions, the arc-shaped cross beam adopts a circular arc structure, the first push-pull cylinder is provided with two, the end support plate is branch slidingly connected away from one side of the supporting frame far from the fourth push-pull cylinder, and the third push-pull cylinder is vertically arranged with the fifth push-pull cylinder and the fourth push-pull cylinder.
[0016] The transplanting device for landscaping provided by the present application has the following beneficial effects: When transplanting, the height and angle of the sleeve are adjusted through the lifting angle adjusting assembly, so that the root digging of the first digging knife and the second digging knife and the lifting of the seedling are controlled.
[0017] When digging, the arc-shaped cross beam is driven to move relative to the sleeve by the circumferential moving assembly, which is beneficial to efficient digging of the seedling by the first digging knife and the second digging knife, and makes the root soil pile reliable and reduces falling.
[0018] By limiting two transmission control assemblies, the first digging knife and the second digging knife are reversely driven, the first digging knife and the second digging knife are opened during transplanting, the device can be inserted from the head of the crown, and then the first digging knife and the second digging knife are reversely driven for digging and transplanting, which is more efficient.
[0019] Finally, by limiting the trunk supporting assembly, the trunk of the seedling to be transplanted can be supported at any position, further improving the reliability of digging and transplanting.
[0020] In summary, the present application realizes integrated transplanting of efficient seedling digging, stable soil ball, flexible operation and reliable trunk support through the cooperation of multiple assemblies, and significantly improves the transplanting efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 The overall structure schematic diagram of the transplanting device for landscaping provided by the present application embodiment is shown in the figure. Figure 2 The Figure 1 The enlarged structure schematic diagram of part A is shown in the figure. Figure 3 The Figure 1Another perspective structural diagram; Figure 4 A schematic diagram of the overall structure of the trunk support assembly in the landscaping transplanting device provided in an embodiment of the present invention; Figure 5 This is a schematic diagram of the main cross-sectional structure of the shell portion of the landscaping transplanting device provided by an embodiment of the present invention.
[0022] In the figure: 1-first angle bracket, 2-first power member, 3-arc-shaped crossbeam, 4-second power member, 5-first push-pull cylinder, 6-second push-pull cylinder, 7-assembly base plate, 8-anchor plate, 9-vertical slide plate, 10-second angle bracket, 11-housing, 12-accommodating groove, 13-rack, 14-first excavating blade, 15-second excavating blade, 16-trunk support assembly, 17-rotating bearing shaft, 18-first bevel gear Wheel, 19-second bevel gear, 20-third bevel gear, 21-first end seat, 22-second end seat, 23-sleeve, 24-reinforcement plate, 25-third push-pull cylinder, 26-support frame, 27-arc splint, 28-buffer pad, 29-end support plate, 30-fourth push-pull cylinder, 31-bridging plate, 32-third angle bracket, 33-fourth angle bracket, 34-fifth push-pull cylinder, 35-gear, 36-bottom opening. DETAILED DESCRIPTION
[0023] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0024] The specific implementation of the present invention is described in detail below with reference to specific embodiments.
[0025] like Figures 1-3 As shown, a landscaping transplanting device provided by one embodiment of the present invention includes an assembly base plate 7 and an anchor plate 8 that are fixedly connected, and further includes: The housing 11 is connected to the mounting base 7 via a lifting and angle adjustment assembly, and the lifting and angle adjustment assembly is used to adjust the height and angle of the housing 11; The arc-shaped crossbeam 3 is slidably provided on the inner side of the casing 11, and a circular moving component for driving the arc-shaped crossbeam 3 to move relative to the casing 11 is also installed on the casing 11; A first angle frame 1, with a first angle frame 1 fixed to each end of the arc-shaped crossbeam 3. A transmission control assembly is mounted on the first angle frame 1. A first excavating blade 14 and a second excavating blade 15 are fixed to the output ends of the two transmission control assemblies, respectively. The two transmission control assemblies are used to cooperate and drive the first excavating blade 14 and the second excavating blade 15 to move in opposite directions. A trunk support assembly 16 is fixedly connected with the arc-shaped crossbeam 3, and is used for auxiliary supporting the trunk of the seedling to be transplanted at any position.
[0026] In the embodiment of the present application, when transplanting, the height and angle of the sleeve 11 are adjusted by the lifting and angle adjusting assembly, so as to control the root digging and lifting of the seedling by the first and second digging knives 14 and 15. When digging, the arc-shaped crossbeam 3 is driven to move relative to the sleeve 11 by the circumferential movement assembly, which is beneficial to the efficient digging of the seedling by the first and second digging knives 14 and 15, and makes the root soil pile reliable and reduces the falling. By limiting two transmission control assemblies, the first and second digging knives 14 and 15 are driven to move reversely, and the first and second digging knives 14 and 15 are opened when transplanting. The device can be inserted from the head of the crown, and then the digging and transplanting are performed by the reverse movement of the first and second digging knives 14 and 15, which is high in efficiency. Finally, by the trunk support assembly 16, the trunk of the seedling to be transplanted can be auxiliary supported at any position, which further improves the reliability of the digging and transplanting.
[0027] In summary, by the cooperation of multiple assemblies, the present application realizes the integrated transplanting of the seedling with efficient digging, stable soil ball, flexible operation and reliable trunk support, and significantly improves the transplanting efficiency.
[0028] As shown in FIGS. Figures 1-3 , 5, as a preferred embodiment of the present application, the assembly substrate 7 is horizontally arranged, and the anchor plate 8 is vertically arranged. The outer side of the anchor plate 8 is provided with a fixing hole, which is convenient for installation and fixation.
[0029] The lifting and angle adjusting assembly comprises a vertical sliding rail plate 9 fixed to the lower side of the assembly substrate 7. The outer side of the sleeve 11 is hingedly connected with a second angle bracket 10. The vertical part of the second angle bracket 10 is further slidably connected with the vertical sliding rail plate 9. The lower side of the assembly substrate 7 is fixed with a second push-pull cylinder 6. The end of the telescopic shaft of the second push-pull cylinder 6 is fixedly connected with the vertical part of the second angle bracket 10. The vertical part of the second angle bracket 10 is further hingedly connected with a first push-pull cylinder 5. The end of the telescopic shaft of the first push-pull cylinder 5 is hingedly connected with the top of the sleeve 11.
[0030] Preferably, in order to improve the stability of the vertical sliding rail plate 9, a reinforcing plate 24 is further fixed between the assembly substrate 7 and the vertical sliding rail plate 9. Correspondingly, a notch is provided in the vertical part of the second angle bracket 10 to avoid the reinforcing plate 24, which meets the requirement of lifting drive.
[0031] Preferably, two first push-pull cylinders 5 are provided, which improves the reliability of angle adjustment.
[0032] For the lifting and angle adjusting assembly, the lifting action can be driven by the second push-pull cylinder 6, and the angle adjusting action can be driven by the first push-pull cylinder 5, which is stable and reliable.
[0033] The circumferential movement assembly comprises a second power member 4 fixed to the top of the sleeve 11. The arc-shaped cross beam 3 has a circular arc structure. The top of the arc-shaped cross beam 3 is provided with a receiving groove 12. One side of the receiving groove 12 is fixed with a rack 13. The output end of the second power member 4 extends into the receiving groove 12 and is fixed with a gear 35. The gear 35 is in meshing connection with the rack 13.
[0034] For the circumferential movement assembly, the gear 35 is driven to rotate by the second power member 4. The arc-shaped cross beam 3 is driven to move by the transmission of the gear 35 and the rack 13. Thus, the first digging blade 14 and the second digging blade 15 are adjusted in position, which improves the reliability and efficiency of digging.
[0035] The transmission control assembly comprises a rotating bearing shaft 17 rotatably installed on the first angle bracket 1. A sleeve 23 is rotatably installed on the rotating bearing shaft 17. A first bevel gear 18 and a second bevel gear 3519 are fixed to the rotating bearing shaft 17 and the sleeve 23. One end of the sleeve 23 is fixedly connected with the end of the first digging blade 14 through a first end seat 21. One end of the rotating bearing shaft 17 is fixedly connected with the end of the second digging blade 15 through a second end seat 22. The top of the first angle bracket 1 is fixed with a first power member 2. The output end of the first power member 2 is fixed with a third bevel gear 20 which is in meshing connection with the first bevel gear 18 and the second bevel gear 3519.
[0036] Preferably, the first digging blade 14 and the second digging blade 15 both have a circular arc structure, which can better dig and take earth. The end of the arc-shaped cross beam 3 is fixedly connected with the side surface of the horizontal part of the first angle bracket 1. The first power member 2 is fixed to the top of the horizontal part of the first angle bracket 1. The two rotating bearing shafts 17 are coaxially arranged. The rotating bearing shaft 17 is rotatably connected with the vertical part of the first angle bracket 1.
[0037] Preferably, the first end seat 21 and the second end seat 22 are adaptively arranged. Avoidance grooves are arranged to meet the movement requirements of the first digging blade 14 and the second digging blade 15. No limitation and elaboration are made.
[0038] For the transmission control assembly, the third bevel gear 20 is driven to rotate by starting the first power member 2. The first bevel gear 18 and the second bevel gear 3519 are driven by the third bevel gear 20, so that the rotating bearing shaft 17 and the sleeve 23 are rotated, and the first digging blade 14 and the second digging blade 15 are driven to rotate. Specifically, when the two third bevel gears 20 are driven to rotate in opposite directions by the two first power members 2, the first digging blade 14 and the second digging blade 15 can move in opposite directions, so as to realize the opening and closing action.
[0039] As Figure 1 、 4 and 5, as a preferred embodiment of the present application, the trunk support assembly 16 comprises a fourth corner frame 33 fixedly connected with the arc-shaped cross beam 3, a fifth push-pull cylinder 34 is fixed on the fourth corner frame 33, the telescopic shaft end of the fifth push-pull cylinder 34 is fixedly connected with the bridging plate 31 through the third corner frame 32, the fourth push-pull cylinder 30 is fixed on the bridging plate 31, the telescopic shaft end of the fourth push-pull cylinder 30 is fixed with a support frame 26, and the two ends of the support frame 26 are respectively fixed with a third push-pull cylinder 25, the telescopic shaft end of the third push-pull cylinder 25 is fixed with an end support plate 29 which is slidingly connected with the support frame 26, and the two end support plates 29 are oppositely fixed with arc-shaped clamping plates 27, and the inner side of the arc-shaped clamping plates 27 is further fixed with a buffer pad 28.
[0040] Preferably, the fifth push-pull cylinder 34 is vertically fixed on the horizontal part of the fourth corner frame 33, the upper end of the vertical part of the fourth corner frame 33 is fixedly connected with the middle position of the lower side of the arc-shaped cross beam 3, and the bottom of the sleeve 11 is provided with a bottom opening 36 for avoiding the fourth corner frame 33.
[0041] Preferably, the horizontal part of the third corner frame 32 is fixedly connected with the telescopic shaft end of the fifth push-pull cylinder 34, the vertical part of the third corner frame 32 is fixedly connected with the middle of the top of the bridging plate 31, and the two ends of the bridging plate 31 are respectively fixed with a fourth push-pull cylinder 30 which is perpendicular to the fifth push-pull cylinder 34.
[0042] Preferably, the end support plate 29 is slidingly connected with the side branch of the support frame 26 which is away from the fourth push-pull cylinder 30, and the third push-pull cylinder 25 is vertically arranged with the fifth push-pull cylinder 34 and the fourth push-pull cylinder 30. The arc-shaped clamping plates 27 and the buffer pad 28 can be adaptively arranged to meet the reliable clamping requirement.
[0043] For the trunk support assembly 16, no matter how the arc-shaped cross beam 3 moves, the trunk support assembly 16 moves therewith, and the consistency is good, and through the cooperation of the fifth push-pull cylinder 34 and the fourth push-pull cylinder 30, the position of the support frame 26 in the XY direction can be changed, the two third push-pull cylinders 25 can be differentially matched and controlled, not only the trunk can be reliably clamped, but also the clamping position in the Z direction can be changed, so that the auxiliary clamping and supporting of the trunk at any position is realized, which is flexible and reliable.
[0044] In the above embodiment of the present application, a transplanting device for landscaping is provided, and the working principle is as follows: The device adjusts the height and angle of the sleeve 11 through the lifting and angle adjusting assembly, so that the first digging knife 14 and the second digging knife 15 installed on both sides thereof can accurately cut into the root of the seedling; meanwhile, the circumferential movement assembly drives the arc-shaped crossbeam 3 to move around the sleeve 11, drives the two digging knives to adjust the circumferential direction, and realizes omnidirectional and efficient digging. The two transmission control assemblies work cooperatively, drive the first digging knife 14 and the second digging knife 15 to move reversely, form an opening and closing type digging action, facilitate insertion from the direction of the tree crown and then expand the digging operation, improve the efficiency and ensure the integrity of the soil ball. Meanwhile, the main stem supporting assembly 16 synchronously operates with the digging action, through the multi-degree-of-freedom linkage of the fifth push-pull cylinder 34, the fourth push-pull cylinder 30 and the third push-pull cylinder 25, drives the arc-shaped clamping plate 27 to flexibly clamp and support the main stem of the seedling at any position, and prevents the main stem from tilting or being damaged in the digging process.
[0045] In summary, the overall structure of the present application realizes integrated transplanting operation with efficient digging, stable soil ball, flexible operation and reliable support of the main stem through the coordinated operation of multiple assemblies.
[0046] The control, model and circuit connection of each component are not specifically limited, and can be flexibly set in actual application. The first power member 2 and the second power member 3 can be power motors equipped with reducers, which meet the working requirements; the first push-pull cylinder 5, the second push-pull cylinder 6, the third push-pull cylinder 25, the fourth push-pull cylinder 30 and the fifth push-pull cylinder 34 can be hydraulic cylinders. The circuits, electronic components and modules involved are prior art, and those skilled in the art can realize them without further description, and the content protected by the present application does not involve improvement of software and methods.
[0047] Each technical feature of the above-described embodiments can be combined arbitrarily, and in order to make the description simple, each technical feature in the above-described embodiments is not described in all possible combinations, however, as long as the combination of the technical features does not exist contradictory, it should be considered as the scope of the present application.
[0048] The above-described embodiments only express several implementation manners of the present application, the description is more specific and detailed, but it should not be understood as a limitation on the patent scope of the present application. It should be pointed out that, for those skilled in the art, without departing from the concept of the present application, a number of modifications and improvements can be made, which all belong to the protection scope of the present application. Therefore, the protection scope of the present application patent should be subject to the appended claims.
Claims
1. A transplanting device for landscaping, comprising an assembly base plate (7) and an anchor plate (8) fixedly connected, characterized in that: Also includes: A casing (11), the casing (11) being connected to the assembly base (7) via a lifting and angle adjustment component, the lifting and angle adjustment component being used to adjust the height and angle of the casing (11); An arc-shaped crossbeam (3), wherein the arc-shaped crossbeam (3) is slidably provided inside the casing (11), and a circumferential movement component for driving the arc-shaped crossbeam (3) to move relative to the casing (11) is installed on the casing (11); A first angle frame (1), wherein the first angle frames (1) are fixed to both ends of the arc-shaped crossbeam (3), and a transmission control assembly is provided on the first angle frame (1), and the output ends of the two transmission control assemblies are correspondingly fixed with a first digging knife (14) and a second digging knife (15), and the two transmission control assemblies are used to cooperate and drive the first digging knife (14) and the second digging knife (15) to move in opposite directions; A trunk support assembly (16) is fixedly connected to the arc-shaped crossbeam (3) and is used to provide auxiliary support for the trunk of the seedling to be transplanted.
2. The landscaping transplanting device according to claim 1, characterized in that: The lifting and angle adjustment assembly comprises a vertical slide plate (9) fixed to the lower side of the assembly base plate (7), a second angle frame (10) is hingedly connected to the outer side of the housing (11), and a vertical portion of the second angle frame (10) is slidably connected to the vertical slide plate (9); A second push-pull cylinder (6) is fixed on the lower side of the assembly base plate (7), and its telescopic core shaft is fixedly connected to the vertical portion of the second angle frame (10); A first push-pull cylinder (5) is hingedly connected to the vertical portion of the second angle frame (10), and its telescopic core shaft is hingedly connected to the top of the sleeve (11).
3. The landscaping transplanting device according to claim 2, characterized in that: The circular moving assembly includes a second power member (4) fixed to the top of the housing (11); the arc-shaped crossbeam (3) adopts an arc-shaped structure; a receiving groove (12) is provided on the top of the arc-shaped crossbeam (3); and a rack (13) is fixed to one side of the receiving groove (12); The output end of the second power member (4) extends into the accommodating groove (12) and is fixed with a gear (35) that meshes with the rack (13).
4. The landscaping transplanting device according to claim 3, characterized in that: The transmission control assembly comprises a rotating bearing shaft (17) rotatably mounted on the first angle frame (1), a sleeve (23) rotatably mounted on the rotating bearing shaft (17), and a first bevel gear (18) and a second bevel gear (19) relatively fixed on the rotating bearing shaft (17) and the sleeve (23); One end of the sleeve (23) is fixedly connected to the end of the first digging blade (14) through the first end seat (21), and one end of the rotating bearing shaft (17) is fixedly connected to the end of the second digging blade (15) through the second end seat (22); A first power member (2) is fixed to the top of the first angle frame (1), and a third bevel gear (20) meshing with both the first bevel gear (18) and the second bevel gear (19) is fixed to the output end of the first power member (2).
5. The landscaping transplanting device according to claim 4, characterized in that: The first digging blade (14) and the second digging blade (15) are both arc-shaped structures. The end of the arc-shaped crossbeam (3) is fixedly connected to the side of the horizontal part of the first angle frame (1). The first power member (2) is fixed to the top of the horizontal part of the first angle frame (1). The two rotating bearing shafts (17) are coaxially arranged and rotatably connected to the vertical part of the first angle frame (1).
6. The landscaping transplanting device according to claim 1, characterized in that: The trunk support assembly (16) includes a fourth angle frame (33) fixedly connected to the arc-shaped crossbeam (3), a fifth push-pull cylinder (34) fixed on the fourth angle frame (33), and a telescopic core shaft of the fifth push-pull cylinder (34) fixedly connected to the bridge plate (31) via the third angle frame (32); A fourth push-pull cylinder (30) is fixed on the bridge plate (31), and a support frame (26) is fixed to the telescopic core shaft thereof. Third push-pull cylinders (25) are fixed to both ends of the support frame (26), and an end support plate (29) slidably connected to the support frame (26) is fixed to the telescopic core shaft thereof. Arc-shaped clamping plates (27) are relatively fixed on the two end support plates (29), and a buffer pad (28) is fixed on the inner side of the arc-shaped clamping plates (27).
7. The landscaping transplanting device according to claim 6, characterized in that: The fifth push-pull cylinder (34) is vertically fixed to the horizontal portion of the fourth corner frame (33), the upper end of the vertical portion of the fourth corner frame (33) is fixedly connected to the middle position of the lower side of the arc-shaped crossbeam (3), and the bottom of the housing (11) is provided with a bottom opening (36) for avoiding the fourth corner frame (33).
8. The landscaping transplanting device according to claim 7, characterized in that: The horizontal portion of the third angle frame (32) is fixedly connected to the end of the telescopic core shaft of the fifth push-pull cylinder (34), and the vertical portion of the third angle frame (32) is fixedly connected to the middle of the top of the bridge plate (31). The two ends of the bridge plate (31) are respectively fixed with fourth push-pull cylinders (30) perpendicular to the fifth push-pull cylinder (34).
9. The landscaping transplanting device according to claim 2, characterized in that: The assembly base plate (7) is arranged horizontally, the anchor plate (8) is arranged vertically, and a fixing hole is provided on the outer side of the anchor plate (8); A reinforcement plate (24) is fixed between the assembly base plate (7) and the vertical slide rail plate (9), and a notch is provided in the vertical portion of the second angle frame (10) to avoid the reinforcement plate (24).
10. The landscaping transplanting device according to claim 8, characterized in that: The end support plate (29) is slidably connected to a branch of the support frame (26) away from the fourth push-pull cylinder (30); The third push-pull cylinder (25), the fifth push-pull cylinder (34), and the fourth push-pull cylinder (30) are all arranged vertically.
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