A process for cultivating young branches and grafted seedlings of macadamia nuts

Through the design of the drive unit and pruning assembly, the electric drive grafting shear is aligned vertically with the branches and clamped and fixed, solving the problem that grafting shears is difficult to align vertically, and improving the grafting success rate and operation efficiency.

CN119699062BActive Publication Date: 2025-08-15YUNXIAN ZHENGCHENG AGRI DEV CO LTD
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Patent Information

Application Number
CN202510169264.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-08-15
Estimated Expiration
2045-02-17

AI Technical Summary

Technical Problem

The existing grafting shears are difficult to ensure perpendicular to the branches when pruning branches, resulting in a low grafting success rate and increasing the difficulty of operation.

Method used

The drive unit and pruning assembly are used to replace hand pressing by electric drive, combining the adjustable design of U- and V-shaped blades to ensure that the grafted shear is aligned perpendicularly with the branches and clamping and fixing during the pruning process.

Benefits of technology

It improves the efficiency and success rate of grafting shears, has a wide range of application and strong operating stability, reduces the need for replacement of blades, and improves the convenience of grafting shears.

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Abstract

The present invention provides a process for cultivating young shoot grafted seedlings of macadamia nuts, which belongs to the technical field of cultivating young shoot grafted seedlings. It comprises a main handle, the top of the main handle is fixedly connected to an outer shell, the outer wall of the outer shell is fixedly connected to a sheet metal, and the sheet metal is rotatably connected to a rotating plate; a driving unit is used to drive the rotating plate to rotate on the sheet metal, and the driving unit is connected to the main handle; a pruning unit is used to prune the branches, and the pruning unit is respectively connected to the sheet metal and the rotating plate. By setting a driving unit, the present invention uses electric drive instead of manual pressure to prune the branches, thereby effectively improving the efficiency of the operator in pruning the branches and the success rate of branch pruning; by setting a pruning component, it can not only assist the operator in aligning the grafting shears vertically with the branches, but also clamp and fix the branches during the pruning process, thereby preventing the branches from being misplaced during the pruning process and improving the success rate of branch pruning.
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Description

Technical Field

[0001] The invention relates to the technical field of cultivating young shoot grafted seedlings, and in particular to a process for cultivating young shoot grafted seedlings of macadamia nuts. Background Art

[0002] When grafting fruit trees, special grafting shears need to be used to prune branches. At present, grafting shears are generally manually operated. When using them, the operator needs to hold the grafting shears and move them to the branches to be grafted, and then let the blades of the grafting shears cut the branches vertically. During the pruning process, it is necessary to ensure that the grafting shears and the branches are perpendicular to each other, otherwise the pruned branches cannot be accurately aligned and grafted together, affecting the normal growth of the plants in the later stage. However, the existing grafting shears do not have the function of assisting the operator to vertically align the plants, which increases the difficulty of the plant grafting operation and reduces the probability of successful plant grafting. Therefore, in order to improve the efficiency and success rate of the operator's grafting of plants, the present invention provides a macadamia nut sapling grafting seedling process to meet the needs. Summary of the Invention

[0003] The technical problem to be solved by the present invention is to provide a process for cultivating young branches and grafting seedlings of macadamia nuts. By setting a driving unit, electric drive is used instead of manual pressure to prune the branches, thereby effectively improving the efficiency of the operator in pruning the branches and the success rate of branch pruning; by setting a pruning component, not only can the operator be assisted to align the grafting shears vertically with the branches, but the branches can also be clamped and fixed during the pruning process, thereby preventing the branches from being misplaced during the pruning process and improving the success rate of branch pruning. The above settings can solve the problems of low efficiency and low success rate in pruning branches during the use of grafting shears at this stage.

[0004] In order to solve the above technical problems, the present invention provides the following technical solutions:

[0005] A process for cultivating young shoots and grafted seedlings of macadamia nuts comprises the following steps:

[0006] Step 1. Spike preparation: Spikes should be collected from scion orchards certified at the provincial level or above, or from orchards with clear variety sources, high purity, and no quarantine pests. Select thick, full-tissue, full-bud, fresh and clean branches that are one to three years old as scion cuttings. Spike cuttings should be grafted as soon as they are picked. After cutting the scion cuttings, immediately use pruning shears to remove leaves, retain petioles, and place them in a cool place for temporary storage and moisture retention. If the scion cuttings are not used up on the same day or the scion cuttings are not in the same place as the rootstock tree, they should be wrapped with sterilized towels, blankets, sacks, etc. to keep them moisturized and stored in a cool place for a short period of time.

[0007] Step 2: High grafting position: It depends on the age of the rootstock and the size of the crown. For young trees or small crowns, the high grafting position should be low, and the height of the high grafting should be selected at a height of 0.8m to 2m from the ground. For rootstocks under 10 years old, it is appropriate to high graft on the main branch, secondary main branch or main trunk. For rootstocks between 10 and 20 years old, it is appropriate to high graft on the secondary main branch, main branch and side branch.

[0008] Step 3. Number of grafting branches: Determine the number of high-grafting branches based on the age of the tree and the transformation of the tree shape. For trees ≤ 10 years old, graft 5 to 10 branches; for trees > 10 years old, graft 10 to 20 branches.

[0009] Step 4. High grafting and replacement method: For trees with a tree age of ≤10 years and a cut diameter of ≤5cm, and strong growth, use grafting shears to prune the branches and then use joint grafting, cleft grafting or cut grafting. For trees with a tree age of >10 years and a cut diameter of >5cm, use grafting shears to prune the branches and then use cleft grafting or cut grafting. For sprouting branches with a base stem thickness greater than 0.7cm growing near the large cut, use grafting shears to prune the branches and then use joint grafting. The scion grafted by cleft grafting or cut grafting needs to be exposed to 2cm of white. After high grafting, the grafting site with larger wounds should be coated with sealing agent. The trunk, main branches and secondary main branches should be painted white or wrapped with straw mats or straw ropes for sun protection and moisturizing.

[0010] Step 5. Management after high grafting: Re-grafting: Check 30-40 days after grafting. If the scion is found to be dead, re-graft it in time. Untying: If the cut is small, untie it when the first new shoot of the scion is stable. If the cut is large, untie it when the wound is basically healed and the scion has not formed a ring.

[0011] Step 6. Remove sprouts and prune auxiliary branches: When the rootstock near the surviving scion has stable sprouts, remove the sprouts until there are no more sprouts. Leave a small number of sprouts in the inner part where the branches are missing or where the scion has not survived, so as to prepare for grafting the following year. When the orchard is too sunny and prone to sunburn, leave a few sprouts to provide shade. When the growth of the high-grafted surviving branches is affected by the auxiliary branches, gradually prune the auxiliary branches to eventually form a crown composed of high-grafted varieties.

[0012] It also includes grafting shears, which include a main handle, a battery fixedly connected to the bottom of the main handle, a shell fixedly connected to the top of the main handle, a sheet metal fixedly connected to the outer wall of the shell, and a rotating plate rotatably connected to the sheet metal; a driving unit, which is used to drive the rotating plate to rotate on the sheet metal, and the driving unit is connected to the main handle; and a pruning unit, which is used to prune branches, and the pruning unit is respectively connected to the sheet metal and the rotating plate.

[0013] Optionally, the drive unit includes a motor fixedly connected to the inner wall of the main body handle, the power supply end of the motor is connected to the battery, the output end of the motor is fixedly connected to a screw rod, a lifting seat is screwed on the top outer wall of the screw rod, the top of the lifting seat is rotatably connected to a tactile paddle and a connecting rod, the tactile paddle and the connecting rod are connected to the lifting seat through the same rotating shaft, a micro switch is fixedly connected to the side of the lifting seat close to the tactile paddle, and the end of the connecting rod away from the lifting seat is rotatably connected to the rotating plate.

[0014] Optionally, the trimming unit includes a positioning plate fixedly connected to the sheet metal by screws, the contour of the positioning plate is adapted to the contour of the sheet metal, an arc plate is fixedly connected to the positioning plate, a fixed clamping plate is fixedly connected to the positioning plate, the fixed clamping plate is fixed to the positioning plate and the sheet metal by screws, a U-shaped groove is provided on the side of the sheet metal close to the fixed clamping plate, and a first arc groove, a second arc groove and a third arc groove are provided on the side of the sheet metal away from the U-shaped groove from top to bottom, a slide plate, a U-shaped blade and a V-shaped blade are slidably connected between the sheet metal and the positioning plate, wherein the slide plate is close to the sheet metal, the V-shaped blade is close to the positioning plate, and the U-shaped blade is located in the middle, and an adjustment rod is slidably connected to the slide plate.

[0015] Optionally, an adjustment slot is provided at one end of the rotating plate, and a circular slider is slidably connected in the adjustment slot. The circular slider has a hollow profile, and the size of the inner circumference of the circular slider is larger than the size of the adjusting rod. The adjusting rod and the slide plate are slidably connected via the circular slider, and the circular slider and the adjusting rod are fixedly connected via a reset spring. The reset spring is a conical structure, and the sizes of the two ends of the reset spring are respectively adapted to the sizes of the outer wall of the adjusting rod and the sizes of the inner circumference of the circular slider.

[0016] Optionally, a straight sliding groove is formed at one end of the first arc-shaped groove, the second arc-shaped groove and the third arc-shaped groove away from the U-shaped groove, and the positions of the rotating plate and the straight sliding groove correspond to each other.

[0017] Optionally, the side of the fixed clamping plate close to the U-shaped groove has an arc-shaped contour, and the side of the skateboard close to the U-shaped groove is fixedly connected to a movable clamping plate, the contour of the movable clamping plate is adapted to the arc-shaped contour of the fixed clamping plate, and the skateboard is provided with a groove body adapted to the positions of the first arc-shaped groove, the second arc-shaped groove and the third arc-shaped groove, and an elastic sheet is fixedly connected to the groove body at the position of the first arc-shaped groove on the skateboard, and the elastic sheet is a curved elastic structure.

[0018] Optionally, a rectangular groove is provided on the top of the sheet metal, and a clamping block is fixedly connected to one end of the rectangular groove away from the U-shaped groove, and a baffle with an L-shaped profile is fixedly connected to the side of the slide close to the rectangular groove, a limit plate is inserted into the clamping block, and one end of the limit plate close to the clamping block is fixedly connected to the plugging plate, and the clamping block and the limit plate are fixed by plugging the plugging plate, and a bending portion is installed on the side of the limit plate close to the plugging plate, and the bending portion has an outwardly protruding arc profile, and the other end of the limit plate is fixedly connected to the outward pulling portion, and a plurality of elastic portions are fixedly connected to the limit plate in a linear arrangement, and the elastic portion is located between the outward pulling portion and the bending portion, and a reset spring is fixedly connected to the outer wall of the plugging plate, and both ends of the reset spring are respectively fixed to the plugging plate and the baffle.

[0019] Optionally, the U-shaped blade is provided with a groove body that is adapted to the position and size of the first arc-shaped groove and the third arc-shaped groove, and the U-shaped blade is provided with a hole body that corresponds to the position of the second arc-shaped groove and is adapted to the size of the adjustment rod.

[0020] Optionally, the V-shaped blade is provided with a groove body that is adapted to the position and size of the first arc groove and the second arc groove, and the V-shaped blade is provided with a hole body that corresponds to the position of the third arc groove and is adapted to the size of the adjustment rod.

[0021] Optionally, a partition is fixedly connected to the inner wall of the positioning plate, and the partition is arranged between the U-shaped blade, the V-shaped blade and the slide plate.

[0022] Compared with the prior art, the present invention has at least the following beneficial effects:

[0023] In the above scheme, by setting a drive unit, electric drive is used instead of manual pressure to prune the branches, thereby effectively improving the efficiency of the operator in pruning the branches, and the electric drive operation is more convenient for the operator to manually hold the grafting shears, further ensuring the stability of the grafting shears during branch pruning, and improving the success rate of branch pruning; by setting a pruning component, not only can the operator be assisted to align the grafting shears vertically with the branches, but the branches can be clamped and fixed during the pruning process, thereby preventing the branches from being misplaced during the pruning process, and improving the success rate of branch pruning. In addition, for different types of branches, the operator can manually change the blade shape of the grafting shears without disassembling the grafting shears to replace the blade. Such a setting greatly improves the scope of application and convenience of use of the grafting shears.

[0024] By setting the U-shaped blade and the V-shaped blade, the operator can selectively slide the adjustment rod according to the type and size of the branch, and insert the adjustment rod into any one of the second arc groove and the third arc groove. When the rotating plate rotates, the adjustment rod will drive the corresponding blade to move toward the U-shaped groove and prune the branch. Since the shapes of the U-shaped blade and the V-shaped blade are different, the outlines left by pruning are also different, and thus they are suitable for branches of different types and sizes. There is no need for the operator to carry multiple grafting shears of different specifications, nor is there any need for the operator to temporarily disassemble the grafting shears to replace the blades, thereby improving the efficiency of branch pruning and grafting.

[0025] By setting a movable splint, when the operator inserts the adjusting rod into the first arc groove, the adjusting rod will drive the slide plate to move toward the U-shaped groove during the rotation of the rotating plate. At this time, the movable splint will cooperate with the fixed splint to clamp and fix the branch, thereby achieving the positioning effect of the branch, ensuring that the grafting shears and the branch are perpendicular to each other, and improving the success rate of branch pruning. During the process of clamping the branch by the movable splint, the operator can change the position of the adjusting rod and select different blades to prune the branch. Moreover, the blade will not cause any impact on the movable splint during the process of cutting the branch, thereby further improving the efficiency of branch pruning. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] The accompanying drawings, which are incorporated herein and constitute a part of the specification, illustrate embodiments of the invention and, together with the description, further serve to explain the principles of the invention and to enable one skilled in the art to make and use the invention.

[0027] Figure 1 Schematic diagram of the three-dimensional structure of the process for cultivating young branches and grafting seedlings for macadamia nuts;

[0028] Figure 2 A schematic diagram of the cross-sectional structure of the macadamia nut grafting process;

[0029] Figure 3 It is a schematic diagram of the enlarged three-dimensional structure of the drive unit;

[0030] Figure 4 This is a schematic diagram of the first-person perspective stereoscopic structure of the trimming unit;

[0031] Figure 5 This is a schematic diagram of the trimming unit's second-view stereoscopic structure;

[0032] Figure 6 It is a schematic diagram of the trimming unit and the exploded three-dimensional structure;

[0033] Figure 7 An enlarged schematic diagram of the three-dimensional structure of the sheet metal and the rotating plate;

[0034] Figure 8 It is a schematic diagram of the sheet metal structure from a top view;

[0035] Figure 9 It is a schematic diagram of the enlarged three-dimensional structure of the rotating plate;

[0036] Figure 10 An enlarged schematic diagram of the three-dimensional structure of the sheet metal, rotating plate, positioning plate and fixed clamping plate;

[0037] Figure 11 It is a schematic diagram of the sectional three-dimensional structure of the trimming unit;

[0038] Figure 12 for Figure 11 A in the middle is an enlarged schematic diagram of the three-dimensional structure;

[0039] Figure 13 This is a schematic diagram of the top view of the structure of the skateboard and sheet metal;

[0040] Figure 14 for Figure 13 The enlarged three-dimensional structure diagram at B in the middle;

[0041] Figure 15 This is a schematic diagram of the first-person perspective structure of the skateboard and sheet metal;

[0042] Figure 16 This is a schematic diagram of the structure of the skateboard and sheet metal from the second perspective;

[0043] Figure 17 for Figure 16 A in the middle is an enlarged schematic diagram of the three-dimensional structure;

[0044] Figure 18 It is a schematic diagram of the enlarged three-dimensional structure of the skateboard;

[0045] Figure 19 This is an enlarged three-dimensional structural diagram of the U-shaped blade;

[0046] Figure 20 This is an enlarged three-dimensional structural diagram of the V-shaped blade.

[0047] Reference numerals:

[0048] 1. Main handle; 101. Battery; 102. Housing; 103. Motor; 104. Screw; 105. Lifting seat; 106. Micro switch; 107. Touch paddle; 108. Connecting rod; 2. Sheet metal; 201. U-shaped groove; 202. Rectangular groove; 203. Clamping block; 204. First curved groove; 205. Second curved groove; 206. Third curved groove; 207. Straight groove; 3. Turn plate; 301. Adjustment Sectional slide; 302, round slider; 303, adjusting rod; 304, reset spring; 4, positioning plate; 401, arc plate; 402, partition; 5, fixed splint; 6, slide plate; 601, movable splint; 602, elastic sheet; 603, baffle; 7, U-shaped blade; 8, V-shaped blade; 9, limit plate; 901, plug-in plate; 902, bending part; 903, elastic part; 904, outward pulling part; 905, reset spring.

[0049] As shown in the figure, in order to clearly implement the structure of the embodiment of the present invention, specific structures and devices are marked in the figure, but this is only for illustrative purposes and is not intended to limit the present invention to the specific structure, device and environment. According to specific needs, ordinary technicians in this field can adjust or modify these devices and environments. DETAILED DESCRIPTION

[0050] The following describes in detail a process for cultivating macadamia nut seedlings and grafting them with shoots, provided by the present invention, with reference to the accompanying drawings and specific examples. It should also be noted that, for the sake of completeness, the following examples are best and preferred embodiments, and those skilled in the art may employ alternative methods for implementing known techniques. Furthermore, the accompanying drawings are intended only to provide a more detailed description of the embodiments and are not intended to limit the present invention.

[0051] It should be noted that references in the specification to "one embodiment," "an embodiment," "an exemplary embodiment," "some embodiments," etc. indicate that the described embodiments may include specific features, structures, or characteristics, but not every embodiment necessarily includes such specific features, structures, or characteristics. In addition, when specific features, structures, or characteristics are described in conjunction with an embodiment, it is within the knowledge of persons skilled in the relevant art to implement such features, structures, or characteristics in conjunction with other embodiments (whether or not explicitly described).

[0052] In general, terms can be understood, at least in part, from their use in context. For example, depending at least in part on the context, the term "one or more" as used herein can be used to describe any feature, structure, or characteristic in the singular sense, or can be used to describe a combination of features, structures, or characteristics in the plural sense. Additionally, the term "based on" can be understood as not necessarily intended to convey an exclusive set of factors, but can instead, depending at least in part on the context, allow for the presence of other factors that are not necessarily explicitly described.

[0053] It will be understood that the meanings of “on,” “over,” and “above” in the present invention should be interpreted in the broadest manner, so that “on” means not only “directly on” something but also includes the meaning of being “on” something with intervening features or layers, and “on” or “above” means not only “on” or “above” something but also includes the meaning of being “on” or “above” something with no intervening features or layers.

[0054] Additionally, spatially relative terms such as "below," "beneath," "lower," "above," and "upper" may be used herein for descriptive convenience to describe the relationship of one element or feature to another element or features, as illustrated in the accompanying drawings. Spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the accompanying drawings. The device may be oriented in other ways, and the spatially relative descriptors used herein should be similarly interpreted accordingly.

[0055] like Figure 1 and Figure 2 As shown, an embodiment of the present invention provides a process for cultivating young shoots and grafted seedlings of macadamia nuts, comprising the following steps:

[0056] Step 1. Spike preparation: Spikes should be collected from scion orchards certified at the provincial level or above, or from orchards with clear variety sources, high purity, and no quarantine pests. Select thick, full-tissue, full-bud, fresh and clean branches that are one to three years old as scion cuttings. Spike cuttings should be grafted as soon as they are picked. After cutting the scion cuttings, immediately use pruning shears to remove leaves, retain petioles, and place them in a cool place for temporary storage and moisture retention. If the scion cuttings are not used up on the same day or the scion cuttings are not in the same place as the rootstock tree, they should be wrapped with sterilized towels, blankets, sacks, etc. to keep them moisturized and stored in a cool place for a short period of time.

[0057] Step 2: High grafting position: It depends on the age of the rootstock and the size of the crown. For young trees or small crowns, the high grafting position should be low, and the height of the high grafting should be selected at a height of 0.8m to 2m from the ground. For rootstocks under 10 years old, it is appropriate to high graft on the main branch, secondary main branch or main trunk. For rootstocks between 10 and 20 years old, it is appropriate to high graft on the secondary main branch, main branch and side branch.

[0058] Step 3. Number of grafting branches: Determine the number of high-grafting branches based on the age of the tree and the transformation of the tree shape. For trees ≤ 10 years old, graft 5 to 10 branches; for trees > 10 years old, graft 10 to 20 branches.

[0059] Step 4. High grafting and replacement method: For trees with a tree age of ≤10 years and a cut diameter of ≤5cm, and strong growth, use grafting shears to prune the branches and then use joint grafting, cleft grafting or cut grafting. For trees with a tree age of >10 years and a cut diameter of >5cm, use grafting shears to prune the branches and then use cleft grafting or cut grafting. For sprouting branches with a base stem thickness greater than 0.7cm growing near the large cut, use grafting shears to prune the branches and then use joint grafting. The scion grafted by cleft grafting or cut grafting needs to be exposed to 2cm of white. After high grafting, the grafting site with larger wounds should be coated with sealing agent. The trunk, main branches and secondary main branches should be painted white or wrapped with straw mats or straw ropes for sun protection and moisturizing.

[0060] Step 5. Management after high grafting: Re-grafting: Check 30-40 days after grafting. If the scion is found to be dead, re-graft it in time. Untying: If the cut is small, untie it when the first new shoot of the scion is stable. If the cut is large, untie it when the wound is basically healed and the scion has not formed a ring.

[0061] Step 6. Remove sprouts and prune auxiliary branches: When the rootstock near the surviving scion has stable sprouts, remove the sprouts until there are no more sprouts. Leave a small number of sprouts in the inner part where the branches are missing or where the scion has not survived, so as to prepare for grafting the following year. When the orchard is too sunny and prone to sunburn, leave a few sprouts to provide shade. When the growth of the high-grafted surviving branches is affected by the auxiliary branches, gradually prune the auxiliary branches to eventually form a crown composed of high-grafted varieties.

[0062] The invention also includes grafting shears, which include a main handle 1, a battery 101 fixedly connected to the bottom of the main handle 1, a shell 102 fixedly connected to the top of the main handle 1, a sheet metal 2 fixedly connected to the outer wall of the shell 102, and a rotating plate 3 rotatably connected to the sheet metal 2; a driving unit, which is used to drive the rotating plate 3 to rotate on the sheet metal 2, and the driving unit is connected to the main handle 1; a pruning unit, which is used to prune branches, and the pruning unit is respectively connected to the sheet metal 2 and the rotating plate 3. The grafting shears provided by the present application are provided with a driving unit, and an electric drive is used instead of manual pressure to prune branches, thereby effectively improving the operator's pruning efficiency. The electric drive operation makes it more convenient for the operator to manually hold the grafting shears, which further ensures the stability of the grafting shears during branch pruning and improves the success rate of branch pruning. By setting the pruning component, it can not only assist the operator to align the grafting shears vertically with the branches, but also clamp and fix the branches during the pruning process, thereby preventing the branches from being misplaced during the pruning process and improving the success rate of branch pruning. In addition, for different types of branches, the operator can manually change the blade shape of the grafting shears without disassembling the grafting shears to replace the blade. This setting greatly improves the scope of application and convenience of use of the grafting shears.

[0063] As an implementation method in this embodiment, Figures 1 to 5As shown, the driving unit includes a motor 103 fixedly connected to the inner wall of the main handle 1, the power supply end of the motor 103 is connected to the battery 101, the output end of the motor 103 is fixedly connected to the screw rod 104, the top outer wall of the screw rod 104 is screwed with a lifting seat 105, the top of the lifting seat 105 is rotatably connected to a touch paddle 107 and a connecting rod 108, the touch paddle 107 and the connecting rod 108 are connected to the lifting seat 105 through the same rotating shaft, the lifting seat 105 is fixedly connected to a micro switch 106 on the side close to the touch paddle 107, and the connecting rod 108 is fixedly connected to the lifting seat 105. The end of 108 away from the lifting seat 105 is rotatably connected to the rotating plate 3. The motor 103 is installed in the main handle 1 and is powered by the battery 101. When the operator presses the touch paddle 107, the pressure on the touch paddle 107 will be transmitted to the micro switch 106 to turn it on. After the micro switch 106 is turned on, the battery 101 will power the motor 103. After the motor 103 is energized, it will drive the screw rod 104 to rotate. During the rotation of the screw rod 104, under the action of the thread drive, the lifting seat 105 will move downward on the screw rod 104 toward the position of the motor 103. The top of the lifting seat 105 is connected to the touch-sensitive paddle 107 and the connecting rod 108 by rotation, and the touch-sensitive paddle 107 and the connecting rod 108 are connected to the lifting seat 105 through the same rotating shaft. Therefore, the lifting seat 105 will simultaneously drive the touch-sensitive paddle 107 and the connecting rod 108 to move downward during its movement. Since the rotating plate 3 and the sheet metal 2 are rotationally connected together, and the end of the connecting rod 108 away from the lifting seat 105 is rotationally connected to the rotating plate 3, the rotating plate 3 will be driven to rotate on the sheet metal 2 during the downward movement of the connecting rod 108. During the rotation process, the pruning assembly will be driven to prune the branches, thereby replacing manual pressure on the grafting shears, reducing the difficulty of operating the grafting shears and improving the stability of the operator holding the grafting shears. When the lifting seat 105 moves to the end of the screw rod 104, the motor 103 will automatically reverse, and the screw rod 104 will drive the lifting seat 105 to reset upward. When the lifting seat 105 is fully reset, the motor 103 stops rotating. When the operator presses the touch paddle 107 again, the motor 103 will repeat the above work, thereby achieving the effect of repeatedly pruning the branches.

[0064] As an implementation method in this embodiment, Figures 4 to 10 and Figures 18 to 20As shown, the pruning unit includes a positioning plate 4 fixedly connected to the sheet metal 2 by screws, the contour of the positioning plate 4 is adapted to the contour of the sheet metal 2, an arc plate 401 is fixedly connected to the positioning plate 4, a fixed splint 5 is fixedly connected to the positioning plate 4, the fixed splint 5 and the positioning plate 4 and the sheet metal 2 are all fixed by screws, a U-shaped groove 201 is provided on the side of the sheet metal 2 close to the fixed splint 5, a slide plate 6, a U-shaped blade 7 and a V-shaped blade 8 are slidably connected between the sheet metal 2 and the positioning plate 4, wherein the slide plate 6 is close to the sheet metal 2, the V-shaped blade 8 is close to the positioning plate 4, and the U-shaped blade 7 is located in the middle. When the operator needs to prune branches, he puts the branches It can be placed in the U-shaped groove 201, and a positioning plate 4 made of plastic is installed on the sheet metal 2 by screws. There is a certain gap between the positioning plate 4 and the sheet metal 2, and the slide plate 6, U-shaped blade 7 and V-shaped blade 8 are slidably connected in this gap. It is worth mentioning that the size of the gap between the positioning plate 4 and the sheet metal 2 is larger than the size of the slide plate 6, U-shaped blade 7 and V-shaped blade 8. This setting is to avoid the movement trajectory of the slide plate 6, U-shaped blade 7 and V-shaped blade 8, and ensure that the slide plate 6, U-shaped blade 7 and V-shaped blade 8 can smoothly pass through the positioning plate 4 and enter the U-shaped groove 201 under the driving action of the rotating plate 3.

[0065] In this embodiment, if Figures 1 to 12As shown, the sheet metal 2 is provided with a first arc groove 204, a second arc groove 205 and a third arc groove 206 in sequence from top to bottom on the side away from the U-shaped groove 201. The first arc groove 204, the second arc groove 205 and the third arc groove 206 are connected to each other at one end away from the U-shaped groove 201 and a straight slide groove 207 is provided. The position of the rotating plate 3 corresponds to the position of the straight slide groove 207. An adjusting rod 303 is slidably connected to the slide plate 6. An adjusting slide groove 301 is provided at one end of the rotating plate 3. A round slider 302 is slidably connected in the adjusting slide groove 301. The round slider 302 has a hollow profile and The size of the inner circumference of the slider 302 is larger than the size of the adjusting rod 303. The adjusting rod 303 and the slide plate 6 are slidably connected by the slider 302. The slider 302 and the adjusting rod 303 are fixedly connected by a reset spring 304. The reset spring 304 is a conical structure, wherein the sizes of the two ends of the reset spring 304 are respectively adapted to the size of the outer wall of the adjusting rod 303 and the size of the inner circumference of the slider 302. The operator can slide the adjusting rod 303 to change the position of the adjusting rod 303. Since the slider 302 and the adjusting rod 303 are fixed by the reset spring 304 When the adjusting rod 303 is in the desired position, the operator stops pulling the adjusting rod 303 outward, and the adjusting rod 303 is automatically reset under the tension of the reset spring 304 and is re-inserted into the groove of the sheet metal 2. The above-mentioned structure allows the operator to selectively slide the adjusting rod 303 and insert the adjusting rod 303 into any one of the positions of the first arc groove 204, the second arc groove 205 and the third arc groove 206. In the groove body, since the first arc groove 204, the second arc groove 205 and the third arc groove 206 are all arc-shaped contours, and the centers of the three are the axis of the rotating shaft between the rotating plate 3 and the sheet metal 2, when the rotating plate 3 rotates, the movement trajectory of the adjusting rod 303 is adapted to the contours of the first arc groove 204, the second arc groove 205 and the third arc groove 206. This arrangement enables the adjusting rod 303 to have three different movement trajectories when the rotating plate 3 rotates, and these three movement rules are consistent with the positions of the first arc groove 204, the second arc groove 205 and the third arc groove 206.

[0066] In this embodiment, if Figures 11 to 20As shown, the slide plate 6 is provided with a groove body that is adapted to the position of the first arc groove 204, the second arc groove 205 and the third arc groove 206. The slide plate 6 is fixedly connected to the groove body at the position of the first arc groove 204. The elastic sheet 602 is a curved elastic structure. The U-shaped blade 7 is provided with a groove body that is adapted to the position and size of the first arc groove 204 and the third arc groove 206. The U-shaped blade 7 is provided with a hole body that corresponds to the position of the second arc groove 205 and is adapted to the size of the adjusting rod 303. The V-shaped blade 8 is provided with a groove body that is adapted to the position and size of the first arc groove 204 and the second arc groove 205. The V-shaped blade 8 is provided with a hole body that corresponds to the position of the third arc groove 206 and is adapted to the size of the adjusting rod 303, a hole body of suitable size, a partition 402 is fixedly connected to the inner wall of the positioning plate 4, the partition 402 is spaced between the U-shaped blade 7, the V-shaped blade 8 and the slide plate 6, the slide plate 6, the U-shaped blade 7 and the V-shaped blade 8 are stacked in the gap between the sheet metal 2 and the positioning plate 4, and by providing grooves and holes in different positions on the slide plate 6, the U-shaped blade 7 and the V-shaped blade 8, the operator can drive the corresponding plate body to move separately when inserting the adjusting rod 303 into the hole body at different positions; specifically, when the operator inserts the adjusting rod 303 into the first arc groove 204, since the U-shaped blade 7 and the V-shaped blade 8 are provided with grooves that are suitable for the position and size of the first arc groove 204, and the slide plate 6 is located at the first arc groove An elastic sheet 602 is installed in the groove body at the position of the groove 204, and the elastic sheet 602 can block and limit the adjusting rod 303. Therefore, when the rotating plate 3 rotates, under the blocking and limiting effect of the elastic sheet 602, the adjusting rod 303 will drive the slide plate 6 to move toward the U-shaped groove 201; when the operator inserts the adjusting rod 303 into the second arc groove 205, since the slide plate 6 and the V-shaped blade 8 are both provided with grooves that are adapted to the position and size of the second arc groove 205, and the U-shaped blade 7 is located at the position of the second arc groove 205. Only a hole body that is adapted to the size of the adjusting rod 303 is provided, the adjusting rod 303 can be inserted into the hole body on the U-shaped blade 7. When the rotating plate 3 rotates, the blocking and limiting effect of the hole body on the U-shaped blade 7 When the operator inserts the adjusting rod 303 into the third arc groove 206, since the slide plate 6 and the U-shaped blade 7 are both provided with grooves that are adapted to the position and size of the third arc groove 206, and the V-shaped blade 8 is located at the position of the third arc groove 206. Only a hole that is adapted to the size of the adjusting rod 303 is provided, the adjusting rod 303 can be inserted into the hole on the V-shaped blade 8. When the rotating plate 3 rotates, under the blocking and limiting action of the hole on the V-shaped blade 8, the adjusting rod 303 will drive the V-shaped blade 8 to move toward the U-shaped groove 201 and prune the branches in the U-shaped groove 201.In summary, the operator can selectively slide the adjustment rod 303 according to the type and size of the branch and insert the adjustment rod 303 into either the second arcuate groove 205 or the third arcuate groove 206. When the rotating plate 3 rotates, the adjustment rod 303 drives the corresponding blade to move toward the U-shaped groove 201 and prune the branch. Due to the different shapes of the U-shaped blade 7 and the V-shaped blade 8, the trimming profile is also different, thereby adapting to branches of different types and sizes. The operator does not need to carry multiple grafting shears of different specifications, nor does the operator need to temporarily disassemble the grafting shears to replace blades, thereby improving the efficiency of branch pruning and grafting.

[0067] In this embodiment, if Figures 11 to 20As shown, the side of the fixed splint 5 close to the U-shaped groove 201 is an arc-shaped profile, and the side of the slide plate 6 close to the U-shaped groove 201 is fixedly connected to the movable splint 601, and the profile of the movable splint 601 is adapted to the arc-shaped profile of the fixed splint 5. A rectangular groove 202 is provided on the top of the sheet metal 2, and a clamping block 203 is fixedly connected to the end of the rectangular groove 202 away from the U-shaped groove 201. A baffle 603 with an L-shaped profile is fixedly connected to the side of the slide plate 6 close to the rectangular groove 202, and a limiting plate 9 is inserted into the clamping block 203. An end of the limiting plate 9 close to the clamping block 203 is fixedly connected to an inserting plate 901, and the clamping block 203 and the limiting plate 9 are fixed by inserting and fixing the inserting plate 901. A bending portion 902 is installed on the side of the limiting plate 9 close to the inserting plate 901, and the bending portion 902 has The arc-shaped contour protrudes outward, and the other end of the limit plate 9 is fixedly connected to the outer pulling portion 904. The limit plate 9 is fixedly connected to a plurality of elastic portions 903 distributed in a linear arrangement. The elastic portion 903 is located between the outer pulling portion 904 and the bending portion 902. A return spring 905 is fixedly connected to the outer wall of the inserting plate 901. The two ends of the return spring 905 are respectively fixed to the inserting plate 901 and the baffle 603. As mentioned above, when the operator inserts the adjusting rod 303 into the first arc groove 204 and the rotating plate 3 rotates, under the blocking and limiting action of the elastic piece 602, the adjusting rod 303 will drive the slide plate 6 to move toward the U-shaped groove 201. Furthermore, since the two ends of the return spring 905 are respectively fixed to the inserting plate 901 and the baffle 603, when the slide When the plate 6 moves toward the position of the U-shaped groove 201, the return spring 905 is stretched and deformed, and exerts a reverse pulling force on the slide plate 6. At the same time, since the slide plate 6 is fixedly connected to the side of the U-shaped groove 201, and the contour of the movable clamping plate 601 is adapted to the arc-shaped contour of the fixed clamping plate 5, when the movable clamping plate 601 hits the branch, the adjusting rod 303 will increase the squeezing force on the elastic sheet 602 under the blocking action of the branch. In the process of continuous increase in the squeezing force, the elastic sheet 602 will be forced to avoid deformation. After the deformation, the elastic sheet 602 can no longer block the adjusting rod 303. At this time, the adjusting rod 303 will pass through the elastic sheet 602 and continue to slide in the groove body on the surface of the slide plate 6. The baffle 603 has an opposite profile, so when the slide plate 6 moves toward the U-shaped groove 201, the baffle 603 will squeeze the elastic part 903. During the squeezing process, the elastic part 903 is deformed toward the limit plate 9 and elastically avoids the baffle 603. When the movable clamping plate 601 hits the branch, the adjusting rod 303 will pass through the elastic sheet 602 under the action of pressure. At this time, the adjusting rod 303 can no longer drive the slide plate 6 to move toward the U-shaped groove 201. Under the pulling force of the return spring 905, the slide plate 6 will move in the opposite direction. When the slide plate 6 slides in the opposite direction, the baffle 603 will be clamped together with the elastic part 903. At this time, the elastic part 903 will block and limit the baffle 603, so that the slide plate 6 cannot continue to slide in the opposite direction, thereby achieving the clamping and fixing effect of the branch.

[0068] The adjusting rod 303 will automatically reset under the driving action of the rotating plate 3. During the resetting process, the adjusting rod 303 will squeeze the elastic sheet 602 again. Since one end of the elastic sheet 602 is fixed on the slide plate 6 and the other end is an open structure, and the elastic sheet 602 has an inwardly inclined arc, when the adjusting rod 303 reversely squeezes the elastic sheet 602, the elastic sheet 602 will automatically make elastic avoidance, so that the adjusting rod 303 will smoothly pass through the elastic sheet 602. This arrangement ensures that the adjusting rod 303 can be smoothly reset to the initial position, and the slide plate 6 will continue to clamp the branch, thereby achieving the positioning effect of the branch, ensuring that the grafting shears and the branch are perpendicular to each other, and improving the success rate of branch pruning. During the branch clamping process, the operator can change the position of the adjusting rod 303 and select different blades to prune the branches. Moreover, the blade will not have any impact on the movable clamping plate 601 during the process of cutting the branches. When it is necessary to reset the slide plate 6, the outer pulling part 904 is pulled outward. Under the pulling action, the lower limit plate 9 will be deformed at the position of the bending part 902 and drive the elastic part 903 away from the baffle 603 until the elastic part 903 is separated from the baffle 603. Under the action of the reset spring 905, the slide plate 6 automatically resets. Optionally, the size and length of the groove body at the position of the first arc groove 204 on the slide plate 6 are reserved to be larger, so that when the adjusting rod 303 is reset, it will not be blocked by the structure of the slide plate 6.

[0069] The working principle of the technical solution provided by the present invention is as follows:

[0070] When in use, first place the branch in the U-shaped groove 201, then insert the adjusting rod 303 into the first arc groove 204, and then press the touch-sensitive paddle 107. The pressure on the touch-sensitive paddle 107 will be transmitted to the micro switch 106 to turn it on. After the micro switch 106 is turned on, the battery 101 will power the motor 103. After the motor 103 is powered, it will drive the screw rod 104 to rotate. During the rotation of the screw rod 104, under the action of the thread drive, the lifting seat 105 will move downward on the screw rod 104 toward the position of the motor 103. Since the top of the lifting seat 105 is connected to the touch-sensitive paddle 107 and the connecting rod 108, and the touch The sensing paddle 107 and the connecting rod 108 are connected to the lifting seat 105 through the same rotating shaft. Therefore, the lifting seat 105 will simultaneously drive the sensing paddle 107 and the connecting rod 108 to move downward together during its movement. Since the rotating plate 3 and the sheet metal 2 are rotationally connected together, and the end of the connecting rod 108 away from the lifting seat 105 is rotationally connected to the rotating plate 3, the connecting rod 108 will drive the rotating plate 3 to rotate on the sheet metal 2 during its downward movement. During the rotation of the rotating plate 3, since the U-shaped blade 7 and the V-shaped blade 8 are both provided with grooves that are adapted to the position and size of the first arc groove 204, and the slide plate 6 is located in the first arc groove An elastic piece 602 is installed in the groove body at the position 204, and the elastic piece 602 can block and limit the adjusting rod 303. Therefore, when the rotating plate 3 rotates, under the blocking and limiting action of the elastic piece 602, the adjusting rod 303 will drive the slide plate 6 to move toward the U-shaped groove 201. Since the slide plate 6 is fixedly connected to the side close to the U-shaped groove 201, and the contour of the movable clamping plate 601 is adapted to the arc-shaped contour of the fixed clamping plate 5, the clamping and fixing effect of the branch can be achieved. During the process of the movable clamping plate 601 clamping the branch, the operator can change the position of the adjusting rod 303 and select different blades to clamp the branch. Pruning process, specifically, when the operator inserts the adjusting rod 303 into the second arc-shaped groove 205, since the slide plate 6 and the V-shaped blade 8 are both provided with grooves that are adapted to the position and size of the second arc-shaped groove 205, and the U-shaped blade 7 is located at the position of the second arc-shaped groove 205. Only a hole body that is adapted to the size of the adjusting rod 303 is provided, so the adjusting rod 303 can be inserted into the hole body on the U-shaped blade 7. When the rotating plate 3 rotates, under the blocking and limiting action of the hole body on the U-shaped blade 7, the adjusting rod 303 will drive the U-shaped blade 7 to move toward the U-shaped groove 201, and prune the branches in the U-shaped groove 201;When the operator inserts the adjustment rod 303 into the third arc groove 206, since the slide plate 6 and the U-shaped blade 7 are both provided with grooves that are adapted to the position and size of the third arc groove 206, and the V-shaped blade 8 is only provided with a hole that is adapted to the size of the adjustment rod 303 at the position of the third arc groove 206, the adjustment rod 303 can be inserted into the hole on the V-shaped blade 8. When the rotating plate 3 rotates, under the blocking and limiting action of the hole on the V-shaped blade 8, the adjustment rod 303 will drive the V-shaped blade 8 to move toward the U-shaped groove 201 and prune the branches in the U-shaped groove 201. When it is necessary to reset the slide plate 6, the outer pulling portion 904 is pulled outward. Under the pulling action, the limit plate 9 will deform at the position of the bent portion 902 and drive the elastic portion 903 away from the baffle 603 until the elastic portion 903 is separated from the baffle 603. Under the action of the reset spring 905, the slide plate 6 automatically resets.

[0071] The present invention encompasses any alternatives, modifications, equivalents, and solutions that fall within the spirit and scope of the present invention. To provide a thorough understanding of the present invention, specific details are described in detail below in connection with the preferred embodiments of the present invention, but those skilled in the art will be able to fully understand the present invention without these detailed descriptions. Furthermore, to avoid unnecessary confusion regarding the essence of the present invention, well-known methods, processes, procedures, components, and circuits have not been described in detail.

[0072] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as within the scope of protection of the present invention.

Claims

1. A grafting shear suitable for cultivating young shoots and grafted seedlings of macadamia nuts, characterized in that: The grafting shears include a main handle, a battery is fixedly connected to the bottom of the main handle, a shell is fixedly connected to the top of the main handle, a sheet metal is fixedly connected to the outer wall of the shell, and a rotating plate is rotatably connected to the sheet metal; A driving unit, the driving unit being used to drive the rotating plate to rotate on the sheet metal, the driving unit being connected to the main body handle; A pruning unit, the pruning unit is used to prune branches, and the pruning unit is respectively connected to the sheet metal and the rotating plate; The trimming unit includes a positioning plate fixedly connected to the sheet metal by screws, the contour of the positioning plate is adapted to the contour of the sheet metal, the positioning plate is fixedly connected to the positioning plate, the fixed clamping plate is fixedly connected to the positioning plate, the fixed clamping plate, the positioning plate and the sheet metal are all fixed by screws, the sheet metal is provided with a U-shaped groove on one side close to the fixed clamping plate, and the sheet metal is provided with a first curved groove, a second curved groove and a third curved groove in sequence from top to bottom on the side away from the U-shaped groove, a slide plate, a U-shaped blade and a V-shaped blade are slidably connected between the sheet metal and the positioning plate, wherein the slide plate is close to the sheet metal, the V-shaped blade is close to the positioning plate, and the U-shaped blade is located in the middle, and an adjusting rod is slidably connected to the slide plate; The side of the fixed clamping plate close to the U-shaped groove is an arc-shaped profile, and the side of the slide plate close to the U-shaped groove is fixedly connected to a movable clamping plate, the profile of the movable clamping plate is adapted to the arc-shaped profile of the fixed clamping plate, the slide plate is provided with a groove body adapted to the positions of the first arc-shaped groove, the second arc-shaped groove and the third arc-shaped groove, and an elastic sheet is fixedly connected to the groove body at the position of the first arc-shaped groove on the slide plate, and the elastic sheet is a curved elastic structure; The top of the sheet metal is provided with a rectangular groove, and one end of the rectangular groove away from the U-shaped groove is fixedly connected to a clamping block, and the side of the slide close to the rectangular groove is fixedly connected to a baffle with an L-shaped profile, and a limit plate is inserted into the clamping block, and one end of the limit plate close to the clamping block is fixedly connected to the plugging plate, and the clamping block and the limit plate are fixed by plugging the plugging plate, and a bending portion is installed on the side of the limit plate close to the plugging plate, and the bending portion has an outwardly protruding arc profile, and the other end of the limit plate is fixedly connected to the outward pulling portion, and a plurality of elastic portions distributed in a linear arrangement are fixedly connected to the limit plate, and the elastic portion is located between the outward pulling portion and the bending portion, and a return spring is fixedly connected to the outer wall of the plugging plate, and the two ends of the return spring are respectively fixed to the plugging plate and the baffle.

2. The grafting shears suitable for cultivating young shoots and grafted seedlings of macadamia nuts according to claim 1, characterized in that: The drive unit includes a motor fixedly connected to the inner wall of the main body handle, the power supply end of the motor is connected to the battery, the output end of the motor is fixedly connected to a screw rod, a lifting seat is screwed on the top outer wall of the screw rod, the top of the lifting seat is rotatably connected to a tactile paddle and a connecting rod, the tactile paddle and the connecting rod are connected to the lifting seat through the same rotating shaft, a micro switch is fixedly connected to the side of the lifting seat close to the tactile paddle, and the end of the connecting rod away from the lifting seat is rotatably connected to the rotating plate.

3. The grafting shears suitable for cultivating young shoots and grafted seedlings of macadamia nuts according to claim 1, characterized in that: An adjusting slot is provided at one end of the rotating plate, and a circular slider is slidably connected in the adjusting slot. The circular slider has a hollow profile, and the size of the inner circumference of the circular slider is larger than the size of the adjusting rod. The adjusting rod and the slide plate are slidably connected via the circular slider, and the circular slider and the adjusting rod are fixedly connected via a reset spring. The reset spring has a conical structure, and the sizes of the two ends of the reset spring are respectively adapted to the sizes of the outer wall of the adjusting rod and the size of the inner circumference of the circular slider.

4. The grafting shears suitable for cultivating young shoots and grafted seedlings of macadamia nuts according to claim 1, characterized in that: The first arc groove, the second arc groove and the third arc groove are connected to each other at one end away from the U-shaped groove and are provided with a straight sliding groove, and the positions of the rotating plate and the straight sliding groove correspond to each other.

5. The grafting shears suitable for cultivating young shoots and grafted seedlings of macadamia nuts according to claim 1, characterized in that: The U-shaped blade is provided with a groove body that is adapted to the position and size of the first arc groove and the third arc groove, and the U-shaped blade is provided with a hole body that corresponds to the position of the second arc groove and is adapted to the size of the adjustment rod.

6. The grafting shears suitable for cultivating young shoots and grafted seedlings of macadamia nuts according to claim 1, characterized in that: The V-shaped blade is provided with a groove body that is adapted to the position and size of the first arc groove and the second arc groove, and the V-shaped blade is provided with a hole body that corresponds to the position of the third arc groove and is adapted to the size of the adjustment rod.

7. The grafting shears suitable for cultivating young shoots and grafted seedlings of macadamia nuts according to claim 1, characterized in that: A partition is fixedly connected to the inner wall of the positioning plate, and the partition is arranged between the U-shaped blade, the V-shaped blade and the slide plate.

Citation Information

Patent Citations

  • Method for improving top-grafting variety-change survival rate of macadamia ternifolia

    CN111328569A

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