Quantitative tree maintenance infusion device
By designing a quantitative tree maintenance infusion device, and utilizing the cooperation of fixed and auxiliary components, the device achieves precise needle insertion and stable fixation, thus solving the problems of inaccurate infusion volume control and easy needle detachment in infusion devices, and improving the stability and infusion effect of the device.
Patent Information
- Application Number
- CN202411934097.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2044-12-26
AI Technical Summary
In existing technologies, tree maintenance equipment has difficulty in accurately controlling the infusion volume for different trees during the infusion process, and the needle fixation effect is not good, making it easy to detach in strong winds, which affects the stability of the infusion equipment.
By designing a quantitative tree maintenance infusion device, the device utilizes the cooperation of fixed and auxiliary components to achieve precise needle insertion and fixation. Combined with the use of a floating component and a sealing head, it achieves quantitative infusion and stable fixation under strong wind conditions.
It achieves precise needle insertion and stable fixation, ensuring quantitative infusion process and equipment stability under strong wind conditions, thus improving the effectiveness of infusion equipment.
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Figure CN119422694B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of tree maintenance technology, and in particular to a quantitative tree maintenance infusion device. Background Technology
[0002] During their growth, garden trees require maintenance, often involving the use of infusion equipment to deliver nutrients such as beneficial microorganisms, organic peptides, and trace elements into the tree. This nutrient infusion activates cell activity, promotes tree growth, and provides essential nutrients and water to the tree through infusion. This enhances the tree's immunity and disease resistance, maintaining its health. Through infusion, trees can absorb more nutrients and water, improving their immunity and disease resistance. Infusion equipment can also inject insecticides and fungicides to protect trees from pests and pathogens. After the infusion is completed, the infusion set needs to be removed, a small wooden stick inserted into the hole in the tree trunk is used to spray fungicide, and then mud mixed with fungicide is applied to the hole to prevent bacterial infection. However, in the process of infusion equipment commonly available on the market, the infusion volume needs to be controlled according to the specific condition of some trees, and the quantitative infusion effect is limited. In addition, after the needle is inserted into the device, the fixation effect of the needle is limited. Strong winds can easily cause the needle to fall off, and strong winds can easily cause the infusion equipment to shake, affecting the fixation effect and stability. Summary of the Invention
[0003] This disclosure relates to a quantitative tree maintenance infusion device. When it is necessary to fix the needle, the device controls the fixing component to drive the auxiliary component to install, so that the plug is inserted into the tree. Then, the needle is controlled to be inserted into the inside of the catheter. The insertion depth of the needle is precisely controlled. After the needle is inserted, both sides of the needle contact the fixing block. The positioning plate component uses its own clamping force and the elasticity of the fixing block to clamp and fix the needle, thereby improving the fixing effect of the needle, preventing the needle from falling off due to strong wind, and improving the fixing strength.
[0004] In a first aspect, this disclosure provides a quantitative tree maintenance infusion device, specifically comprising: a storage component; the storage component is a circular hollow structure, with an air inlet valve on the bottom side of the storage component, a control lever inserted and installed inside the storage component, a float component fixed to the top of the freely retractable control lever, the float component being made of high-strength foam material with an annular groove at its bottom, and a positioning rod assembly fixed to the top side of the control lever, the control lever driving the positioning rod assembly to rotate together; the bottom end of the storage component is connected to a catheter and auxiliary components via a needle tube and a needle tip; the outer side of the auxiliary components is fixed... A guide tube is positioned at a 45-degree angle, with auxiliary components running through its interior. A fixing block is fixed to the side of the guide tube via a positioning plate component. The fixing block, with an inclined structure at the top, is made of rubber and holds a needle inside. A connecting rod structure is also included. This connecting rod structure is fixed to the top of the storage component and is a round rod-shaped structure that is thick at both ends and thin in the middle. A movable plate structure that can move freely up and down is fitted around the connecting rod structure. The outer side of the movable plate structure is connected to a flip plate via a rotating shaft and a coil spring. The coil spring controls the flip plate to continuously flip outward, and the outer end of the flip plate has an arc-shaped structure.
[0005] In at least some embodiments, the storage component has a liquid outlet at its bottom, a sealing plug installed at the bottom end of the liquid outlet, and a T-shaped guide head assembly fixed at the top of the storage component; the guide head assembly is slidably connected to an L-shaped moving rod, the outer end of the moving rod is arc-shaped, and a uniformly arranged positioning groove is opened at the outer end of the moving rod, the positioning rod assembly is inserted into the positioning groove; a sealing head assembly is fixed at the bottom end of the moving rod, the sealing head assembly with a conical bottom end is made of rubber, the bottom end of the control rod is circular, and a wing plate is fixed on each side of the bottom of the control rod.
[0006] In at least some embodiments, a connector is fixed to each side of the auxiliary component. The arc-shaped connector is made of flexible rubber, and a fixing component is fixed to the outer end of the connector. A uniformly arranged plug is fixed to the inner side of the fixing component. The plug is tapered, and a gripping component is fixed to the outer side of the fixing component. Long grooves are provided on both sides of the guide tube. The positioning plate component is made of elastic plastic, and the needle penetrates the auxiliary component.
[0007] In at least some embodiments, the connecting rod structure has a guide groove on its side, a spring is fitted on the outside of the connecting rod structure, the top of the spring contacts the bottom of the movable plate structure and continuously pushes the movable plate structure upward, and a hook is fixed to the top of the connecting rod structure; a positioning block is fixed to the inside of the movable plate structure, the positioning block is inserted into the groove and slides freely up and down, a stop bar structure is fixed to each side of the movable plate structure, and the flipping plate contacts the stop bar structure after flipping; an inclined limiting structure is fixed above the outer end of the movable plate structure, the T-shaped limiting structure is inserted into the inside of the flipping plate and restricts the flipping plate from over-flipping, and a rotating shaft is provided at the outer end of the movable plate structure.
[0008] This invention provides a quantitative tree maintenance infusion device, which has the following beneficial effects:
[0009] When infusion is needed on trees, after the needle is connected to the tree, the moving rod causes the sealing head assembly to fall under gravity. If quantitative infusion is required, the control rod can be used to pull the floating assembly and positioning rod assembly downwards, causing the positioning rod assembly to move downwards inside the medication. After moving to the target position, the control rod is rotated to embed the positioning rod assembly into the positioning groove, connecting the control rod and the moving rod. At this time, the buoyancy force causes the floating assembly, control rod, moving rod, and sealing head assembly to rise, allowing the medication to be continuously discharged. When the medication reaches the target position, it causes the floating assembly and sealing head assembly to move downwards together, causing the sealing head assembly to re-insert into the dispensing head, sealing the bottom of the storage assembly, stopping the infusion, and achieving quantitative infusion.
[0010] When it is necessary to fix the needle, the fixing component is controlled in advance to drive the auxiliary component to install, so that the plug is inserted into the tree. Then, the needle is controlled to be inserted into the inside of the tube. The insertion depth of the needle is precisely controlled. After the needle is inserted, the two sides of the needle contact the fixing block, so that the positioning plate component uses its own clamping force and the elasticity of the fixing block to clamp and fix the needle, improve the fixing effect of the needle, prevent the needle from falling off due to strong wind, and improve the fixing strength.
[0011] When it is necessary to fix the storage component for infusion, the flip plate can be pressed directly to flip it over, compressing the coil spring. Then, continue pressing to make the flip plate move downwards along with the moving plate structure. As the moving plate structure moves downwards, it compresses the spring, allowing the hook to easily hook and fix the storage component to the tree branch. This allows the connecting rod structure to easily fix the storage component. Then, stop pressing the flip plate, and the spring will push the moving plate structure upwards. The coil spring will then control the flip plate to automatically flip over, clamping the tree branch and further improving the fixation effect of the storage component. This will prevent the storage component from shaking excessively when exposed to strong winds, improving the fixation effect and stability of the storage component. Attached Figure Description
[0012] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.
[0013] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.
[0014] In the attached diagram:
[0015] Figure 1 A three-dimensional structural schematic diagram of this application is shown;
[0016] Figure 2 A bottom view of the structure of this application is shown;
[0017] Figure 3 An exploded three-dimensional structural diagram of this application is shown;
[0018] Figure 4 This is a schematic diagram of the exploded bottom view of the structure of this application;
[0019] Figure 5 A partial cross-sectional three-dimensional structural diagram of the storage component of this application is shown;
[0020] Figure 6 This paper shows a partial cross-sectional exploded three-dimensional structural diagram of the storage component of this application;
[0021] Figure 7 An exploded three-dimensional structural diagram of the auxiliary component of this application is shown;
[0022] Figure 8 An exploded three-dimensional structural diagram of the connecting rod structure of this application is shown.
[0023] List of reference numerals
[0024] 1. Storage component; 101. Dispensing head; 102. Guide head assembly; 103. Moving rod; 104. Positioning groove; 105. Sealing head assembly; 106. Control lever; 107. Floating assembly; 108. Positioning rod assembly;
[0025] 2. Auxiliary components; 201. Connector; 202. Fixing component; 203. Insert; 204. Grip component; 205. Guide tube; 206. Needle; 207. Positioning plate component; 208. Fixing block;
[0026] 3. Connecting rod structure; 301. Slide groove; 302. Hook; 303. Moving plate structure; 304. Positioning block; 305. Stop bar structure; 306. Limiting structure; 307. Rotating shaft; 308. Flip plate. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the described embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0028] Example 1: Please refer to Figures 1 to 8 :
[0029] This invention proposes a quantitative tree maintenance infusion device, comprising: a storage component 1; the storage component 1 is a circular hollow structure, with an air inlet valve on the bottom side of the storage component 1, and a control lever 106 inserted and installed inside the storage component 1; a floatation component 107 is fixed to the top of the freely retractable control lever 106; the floatation component 107, made of high-strength foam material, has an annular groove at its bottom, allowing air to be stored inside the annular groove, so that the floatation component 107 moves up and down together with the buoyancy of the medicine; a positioning rod assembly is fixed to the top side of the control lever 106. 108. The control lever 106 drives the positioning lever assembly 108 to rotate together. After rotation, the positioning lever assembly 108 inserts into the positioning groove 104, causing the liquid level to move downward. This causes the floating assembly 107 and the sealing head assembly 105 to move downward together, so that the sealing head assembly 105 blocks the liquid outlet 101, stopping the liquid supply and realizing quantitative liquid supply. The bottom end of the storage component 1 is connected to the conduit 205 and the auxiliary component 2 through the needle tube and needle 206. The auxiliary component 2 has a conduit 205 fixed at a 45-degree angle on its outer side. The internal auxiliary component 2 passes through the conduit 205. A fixing block 208 is fixed to the side of the conduit 205 via a positioning plate component 207. The fixing block 208, with an inclined top, is made of rubber. A needle 206 is clamped and fixed inside the fixing block 208, allowing the fixing block 208 to assist in clamping the needle 206, improving the fixing effect and preventing the needle 206 from detaching due to strong winds. A connecting rod structure 3 is fixed to the top of the storage component 1. The connecting rod structure 3 is a round rod-shaped structure that is thicker at both ends and thinner in the middle, connecting... The rod structure 3 is externally fitted with a movable plate structure 303 that can move freely up and down. The outer side of the movable plate structure 303 is connected to the flip plate 308 via a pivot 307 and a coil spring. The coil spring controls the flip plate 308 to continuously flip outward. The outer end of the flip plate 308 has an arc-shaped structure. After the hook 302 is connected to the tree branch, the spring pushes the movable plate structure 303 to rise. The coil spring controls the flip plate 308 to flip, clamping the tree branch, improving the fixing effect on the storage component 1, improving stability, and preventing the storage component 1 from detaching or shaking excessively after encountering strong winds.
[0030] In this embodiment of the disclosure, such as Figure 5 and Figure 6 As shown, the storage component 1 has a liquid outlet head 101 at its bottom, with a sealing plug installed at the bottom of the outlet head 101 for easy insertion of the infusion head. The needle continuously outputs the liquid medicine. A T-shaped guide head assembly 102 is fixed to the top of the storage component 1 to control the vertical displacement of the moving rod 103. The guide head assembly 102 is slidably connected to the L-shaped moving rod 103. The outer end of the moving rod 103 has an arc-shaped structure, and evenly arranged positioning grooves 104 are provided on the outer end of the moving rod 103. The positioning rod assembly 108 is inserted into the positioning grooves 104, allowing the moving rod 103 to move vertically. 3 is connected to the control lever 106 to achieve joint up-and-down movement; the bottom end of the moving lever 103 is fixed with a sealing head assembly 105, which is made of rubber and has a conical structure at the bottom. After the sealing head assembly 105 moves downward, it is inserted into the inside of the liquid outlet 101 to seal and stop the liquid supply, thus achieving quantitative liquid supply. The bottom end of the control lever 106 has a circular structure, and a wing plate is fixed on each side of the bottom of the control lever 106, so that the floating assembly 107 and the positioning rod assembly 108 can move up and down and rotate freely together through the control lever 106.
[0031] In this embodiment of the disclosure, such as Figure 3 and Figure 7 As shown, a connector 201 is fixed on each side of the auxiliary component 2. The arc-shaped connector 201 is made of flexible rubber, which allows the fixing component 202 to be freely adjusted and fixed. The fixing component 202 is fixed to the outer end of the connector 201. The inner side of the fixing component 202 is fixed with evenly arranged inserts 203. The inserts 203 are conical and are inserted into the tree to improve the fixing effect. The outer side of the fixing component 202 is fixed with a gripping component 204 to facilitate the operation of the auxiliary component 2 and the installation and use of the fixing component 202. The guide tube 205 has long grooves on both sides. The positioning plate component 207 is made of elastic plastic. With the help of elasticity, it continuously squeezes the fixing block 208 to limit and fix it. The needle 206 penetrates the auxiliary component 2.
[0032] In this embodiment of the disclosure, such as Figure 4 and Figure 8As shown, the side of the connecting rod structure 3 is provided with a guide groove 301 for embedding the positioning block 304, so that the movable plate structure 303 slides vertically up and down without rotating. A spring is fitted on the outside of the connecting rod structure 3, and the top of the spring contacts the bottom of the movable plate structure 303, continuously pushing the movable plate structure 303 upward, so that the movable plate structure 303 drives the flipping plate 308 to rise together. A hook 302 is fixed to the top of the connecting rod structure 3 for connecting and fixing to the tree branch. A positioning block 304 is fixed to the inside of the movable plate structure 303, and the positioning block 304 is inserted into the groove. The interior of 301 can slide freely up and down. A stop bar structure 305 is fixed on each side of the movable plate structure 303. After the flip plate 308 flips, it contacts the stop bar structure 305 to prevent the flip plate 308 from flipping excessively. An inclined limiting structure 306 is fixed above the outer end of the movable plate structure 303 to limit and fix the flip plate 308. The T-shaped limiting structure 306 is inserted into the interior of the flip plate 308 and limits the flip plate 308 from flipping excessively. The outer end of the movable plate structure 303 is provided with a rotating shaft 307 to control the flip plate 308 to flip through a coil spring.
[0033] The working principle of this embodiment is as follows: When trees need intravenous infusion for maintenance, the medication is injected into the storage component 1 in advance. Then, the storage component 1 is moved to the position requiring maintenance, and the flipping plate 308 is flipped to compress the coil spring. Then, the flipping plate 308 is pressed down to move it, causing the moving plate structure 303 to move downward and compress the spring. Then, the hook 302 is connected to the branch. After connection, the pressing of the flipping plate 308 is stopped, and the spring pushes the moving plate structure 303 upward. The coil spring then pushes the flipping plate 308 to flip, so that the flipping plate 308, with the help of the coil spring, clamps and fixes the branch, improving the fixing effect of the storage component 1. This prevents the storage component 1 from shaking excessively and coming off when encountering strong winds. Then, the syringe is connected to the storage component 1, and the auxiliary component 2 is installed on the main infusion line. The liquid position is adjusted so that the insert 203 is inserted into the tree, and then the needle 206 is inserted into the inside of the conduit 205. The positioning plate component 207 and the fixing block 208 use elasticity to clamp and fix the needle 206, preventing the needle 206 from detaching. Then, the control lever 106 is moved downward to the target position. The control lever 106 drives the positioning rod assembly 108 to rotate, and the positioning rod assembly 108 is inserted into the positioning groove 104, so that the control lever 106 and the moving rod 103 are connected together. When the liquid is continuously output and the liquid moves to the target position, it drives the floating component 107 and the sealing head assembly 105 to move downward together, so that the sealing head assembly 105 is re-inserted into the inside of the liquid outlet head 101, sealing the bottom of the storage component 1, stopping the infusion, and realizing quantitative infusion.
[0034] The following points should be noted in this article:
[0035] 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in general design.
[0036] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0037] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A quantitative tree maintenance infusion device, characterized in that, include: Storage component (1); The storage component (1) is a circular hollow structure. An air inlet valve is provided on the bottom side of the storage component (1). A control lever (106) is inserted and installed on the inner side of the storage component (1). A float component (107) is fixed at the top of the freely retractable control lever (106). The float component (107) made of high-strength foam material has an annular groove at the bottom. A positioning rod component (108) is fixed on the top side of the control lever (106). The control lever (106) drives the positioning rod component (108) to rotate together. The bottom end of the storage component (1) is connected to the conduit (205) and auxiliary component (2) through a needle tube and a needle tip (206). The auxiliary component A guide tube (205) set at a 45-degree angle is fixed to the outside of component (2). The auxiliary component (2) passes through the inside of the guide tube (205). A fixing block (208) is fixed to the side of the guide tube (205) through the positioning plate component (207). The fixing block (208) with an inclined structure at the top is made of rubber. A needle (206) is clamped and fixed inside the fixing block (208). Connecting rod structure (3); The connecting rod structure (3) is fixed to the top of the storage component (1). The connecting rod structure (3) is a round rod structure that is thick at both ends and thin in the middle. A movable plate structure (303) that can move freely up and down is fitted on the outside of the connecting rod structure (3). The movable plate structure (303) is fitted on the outside of the movable plate structure (303). The side is connected to the flip plate (308) via a rotating shaft (307) and a coil spring. The coil spring controls the flip plate (308) to continuously flip outward. The outer end of the flip plate (308) is an arc-shaped structure. The bottom of the storage component (1) is provided with a liquid outlet head (101). The top of the storage component (1) is fixed with a T-shaped guide head assembly (102). The guide head assembly (102) is slidably connected to an L-shaped moving rod (103). The bottom end of the moving rod (103) is fixed with a sealing head assembly (105). The sealing head assembly (105) with a conical bottom end is made of rubber. The bottom end of the control lever (106) is a circular structure. The bottom two of the control lever (106) are... A wing plate is fixed on each side; the side of the connecting rod structure (3) is provided with a guide groove (301), the outside of the connecting rod structure (3) is fitted with a spring, the top of the spring contacts the bottom of the moving plate structure (303) and continuously pushes the moving plate structure (303) to rise, and the top of the connecting rod structure (3) is fixed with a hook (302); the inside of the moving plate structure (303) is fixed with a positioning block (304), the positioning block (304) is inserted into the inside of the groove (301) and slides freely up and down, and a stop bar structure (305) is fixed on each side of the moving plate structure (303), and the flip plate (308) contacts the stop bar structure (305) after flipping.
2. The quantitative tree maintenance infusion device according to claim 1, characterized in that, A sealing plug is installed at the bottom of the liquid outlet head (101).
3. The quantitative tree maintenance infusion device according to claim 2, characterized in that, The outer end of the moving rod (103) is an arc-shaped structure, and the outer end of the moving rod (103) is provided with evenly arranged positioning grooves (104), and the positioning rod assembly (108) is inserted into the positioning groove (104).
4. The quantitative tree maintenance infusion device according to claim 1, characterized in that, A connector (201) is fixed on each side of the auxiliary component (2). The arc-shaped connector (201) is made of flexible rubber, and a fixing component (202) is fixed to the outer end of the connector (201).
5. The quantitative tree maintenance infusion device according to claim 4, characterized in that, The inner side of the fixing component (202) is fixed with evenly arranged plugs (203), the plugs (203) are conical structures, and the outer side of the fixing component (202) is fixed with a gripping component (204).
6. The quantitative tree maintenance infusion device according to claim 5, characterized in that, The catheter (205) has long grooves on both sides, the positioning plate component (207) is made of elastic plastic, and the needle (206) passes through the auxiliary component (2).
7. The quantitative tree maintenance infusion device according to claim 1, characterized in that, The upper part of the outer end of the movable plate structure (303) is fixed with an inclined limiting structure (306). The T-shaped limiting structure (306) is inserted into the interior of the flip plate (308) and restricts the flip plate (308) from over-flipping. The outer end of the movable plate structure (303) is provided with a rotating shaft (307).
Citation Information
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