Irrigation structure for garden landscape construction

By using multiple irrigation mechanisms and climbing robots in the artificial mountain irrigation system, combined with petal-shaped nozzles and damping components, the issues of flexibility and safety in artificial mountain irrigation were solved, achieving precise and economical irrigation results.

CN120858840AInactive Publication Date: 2025-10-31ZHEJIANG JIEHAO CULTURE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510993121.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-18
Publication Date
2025-10-31
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional irrigation systems are difficult to adapt to irregular terrains such as artificial hills. The position and angle of the sprinklers are inconvenient to adjust, making it impossible to achieve precise irrigation. Furthermore, they cannot automatically adjust the water volume in severe weather, resulting in water waste and safety hazards.

Method used

The system employs multiple irrigation mechanisms consisting of telescopic and rigid pipes, combined with a climbing robot, to achieve complete coverage of the artificial mountain. The sprinklers feature a petal-shaped design and automatically adjust the water volume according to humidity. Damping components are installed to protect the sprinklers, and an emergency shut-off mechanism is provided to deal with unexpected situations.

Benefits of technology

It achieves comprehensive and precise irrigation throughout the artificial hill, saving water resources, improving irrigation efficiency, protecting sprinklers, and ensuring the safe and stable operation of the system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The irrigation structure comprises a base, a water tank is fixedly arranged at the top of the base, a water pump is fixedly arranged at the top of the water tank, a water conveying pipe is fixedly arranged at the output end of the water pump, and a connecting pipe is fixedly arranged at one end of the water conveying pipe; a plurality of irrigation mechanisms used for irrigating all points of the rockery are fixedly arranged at the water conveying end of the connecting pipe, the irrigation mechanisms are fixedly connected, a climbing robot is fixedly arranged on the irrigation mechanism at the farthest end, and a supporting frame is fixedly arranged at the top of the water conveying pipe; a placing assembly for bearing the climbing robot is fixedly arranged at the top of the supporting frame, a cut-off assembly for cutting off the connecting pipe and the water conveying pipe in emergency is fixedly arranged at the joint of the connecting pipe and the irrigation mechanism, the telescopic irrigation mechanism is driven by the climbing robot to wind the rockery, and multi-angle comprehensive irrigation is achieved; by combining intelligent adjustment, protection and emergency cut-off mechanisms, the irrigation requirements of complex terrains such as rockery and the like are met.
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Description

Technical Field

[0001] This invention relates to the field of garden irrigation, and more particularly to an irrigation structure for garden landscape construction. Background Technology

[0002] In landscape construction, irrigation systems are crucial for maintaining the healthy growth of plants. This is especially true in landscapes with complex terrain, such as artificial hills, where ensuring adequate irrigation for plants in high and rugged locations is a significant challenge. Traditional irrigation systems are mostly designed for flat ground or low-growing plants, making it difficult to effectively cover higher areas like artificial hills. Common fixed-pipe irrigation systems, due to their fixed pipe locations, cannot flexibly adapt to the irregular shapes of artificial hills, resulting in inadequate irrigation in some areas. Mobile irrigation equipment, such as handheld sprayers or simple mobile sprinkler trucks, not only requires a large amount of manpower for irrigating higher areas of artificial hills but also struggles to guarantee even and comprehensive irrigation, resulting in extremely low efficiency. Furthermore, in irrigation of special terrains such as artificial hills, existing technologies lack effective means to adjust the position and angle of the sprinklers. When it is necessary to irrigate plants at different locations and heights on the artificial hill, it is not convenient to adjust the position of the sprinklers to achieve precise irrigation.

[0003] Furthermore, most existing sprinklers lack the ability to automatically adjust the water volume based on environmental factors, failing to adapt to changes in plant water requirements under varying weather conditions. In severe weather such as strong winds, ordinary sprinklers cannot proactively take protective measures, easily leading to sprinkler damage or significant water loss due to being blown away, resulting in water waste.

[0004] In addition, when the water source equipment of the irrigation system (such as water tank) is accidentally overturned, the existing technology lacks an effective emergency shut-off mechanism, which may cause a series of safety problems and equipment damage. Summary of the Invention

[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing an irrigation structure for garden landscape construction.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: An irrigation structure for garden landscape construction includes a base, a water tank fixedly mounted on the top of the base, a water pump fixedly mounted on the top of the water tank, a water delivery pipe fixedly mounted at the output end of the water pump, a connecting pipe fixedly mounted at one end of the water delivery pipe, an irrigation mechanism for irrigating various points of a rockery fixedly mounted at the water delivery end of the connecting pipe, multiple sets of irrigation mechanisms fixedly connected to each other, a climbing robot fixedly mounted on the furthest irrigation mechanism, a support frame fixedly mounted on the top of the water delivery pipe, a placement component for supporting the climbing robot fixedly mounted on the top of the support frame, and a cutting component for cutting off the connection between the connecting pipe and the irrigation mechanism in an emergency.

[0007] Preferably, the irrigation mechanism includes a hard water pipe, a telescopic pipe, a first sleeve plate, a first latch, a second latch, a positioning rod, a second sleeve plate, a damping component for damping the sprinkler head, a patterned sprinkler head component for handling different scenarios, an adjusting component for adjusting the damping force, and a protective mechanism for actively retracting the patterned sprinkler head in an emergency. Two telescopic pipes are provided and fixedly connected to both ends of the hard water pipe. The first sleeve plate has a hole for the hard water pipe to pass through and is rotatably connected to the hard water pipe via a bearing. The first latch is fixedly connected to the first sleeve plate, and the second latch is fixedly connected to the positioning rod. The first latch and the second latch are detachably connected. The second sleeve plate has a hole for the first sleeve plate to pass through and is rotatably connected to the first sleeve plate via a bearing. Water passage holes are provided at the connection points of the hard water pipe, the first sleeve plate, and the second sleeve plate, and waterproofing is achieved through sealing rings.

[0008] Preferably, the damping assembly includes a fixed cylinder, a telescopic water pipe, a sliding water pipe, and a waterproof motor. The fixed cylinder is fixedly connected to the second sleeve plate. One end of the telescopic water pipe is connected to the water outlet of the second sleeve plate, and the other end is connected to the sliding water pipe. The sliding water pipe is slidably connected to the inside of the fixed cylinder. The waterproof motor is fixedly connected to the inside of the sliding water pipe. The flower-shaped nozzle assembly is fixedly connected to one side wall of the sliding water pipe and to the output end of the waterproof motor.

[0009] Preferably, the flower-shaped nozzle assembly includes: A water supply main pipe, which is used to connect to an external water source; The petal assembly has at least two layers of petal units arranged sequentially from the inside to the outside along the axial direction of the water supply main pipe. Each layer of the petal unit includes multiple petal pieces, and the petal pieces of each layer of the petal unit are evenly distributed along the circumference of the water supply main pipe. The diversion structure is located between the water supply main pipe and the petal assembly, and is used to distribute the water flow in the water supply main pipe to the petals of each petal unit. In this structure, the petals of each petal unit, from the inside out, extend outward in the radial direction, and the petals of adjacent petal units are staggered in the circumferential direction, forming a flower-like unfolding structure.

[0010] Preferably, the petal assembly is made of a material that can change shape with changes in ambient humidity, and the material of the petal assembly is selected from at least one of the following: A double-layer composite material, comprising an inner layer and a hydrophilic layer, wherein the inner layer is a hydrophilic material and the outer layer is a hydrophobic material, wherein the hydrophilic material expands more than the hydrophobic material after absorbing moisture, causing the blade body to bend towards the outer layer; The hygroscopic swelling material includes modified cellulose or agar-based gel. The hygroscopic swelling material expands when the humidity increases and contracts when the humidity decreases, thereby causing the blade body to change its shape.

[0011] Preferably, the adjustment assembly includes a support rod, a motor, an opening and closing plate, and an air inlet and outlet. The air inlet and outlet are fixedly connected to the fixed cylinder, the support rod is fixedly connected to the top of the fixed cylinder, the motor is fixedly connected to the top of the support rod and its output end is fixedly connected to the opening and closing plate, and the opening and closing plate abuts against the top of the air inlet and outlet.

[0012] Preferably, the protective mechanism includes a limiting plate, a connecting rod, an electric push rod, and a closing plate. The limiting plate is fixedly connected to the outer ring of the fixed cylinder, and the connecting rod is fixedly connected to one side of the outer wall of the limiting plate. The connecting rods are provided in multiple quantities and are evenly arranged along the circumference of the limiting plate. The electric push rod is fixedly connected to the connecting rod, and the output end of the electric push rod is fixedly connected to the closing plate.

[0013] Preferably, the placement assembly includes an insert plate and a mounting plate. The insert plate is fixedly connected to the support frame, and the mounting plate has a slot inside for the support frame to be inserted. The mounting plate is also fixedly connected to the climbing robot.

[0014] Preferably, the cutting assembly includes a fixed plate, an extension plate, a monitoring plate, a pressure head, a monitoring switch, and a cutting clamp. The fixed plate is fixedly connected to the connecting pipe, the extension plate is fixedly connected to one side wall of the fixed plate, the monitoring plate is rotatably connected to the bottom of the extension plate via a rotating shaft and a torsion spring, the pressure head is fixedly connected to the top of the monitoring plate, the monitoring switch is fixedly connected to the bottom of the extension plate, and the cutting clamp is sleeved on the connecting pipe.

[0015] The present invention has the following beneficial effects: 1. This device employs multiple irrigation mechanisms, consisting of two telescopic pipes and one rigid pipe. These mechanisms are connected via the telescopic pipes, and a climbing robot drives the pipes to wrap around the artificial rockery. This unique design achieves comprehensive coverage of the rockery from all angles and at all heights, effectively solving the problem of irrigation difficulties in high and rugged areas. It ensures that the plants on the rockery receive sufficient water, promoting healthy growth and maintaining the overall aesthetics and ecological balance of the landscape.

[0016] 2. Each irrigation mechanism in this device is equipped with a plug and a locking mechanism to ensure precise fixing of the sprinkler points. During irrigation, the sprinkler position can be flexibly adjusted according to actual needs to ensure irrigation accuracy. Simultaneously, a petal-shaped sprinkler is used, which automatically opens and closes to adjust the water volume based on factors such as humidity. When the ambient humidity is low and the plant's water requirement is high, the petals automatically open, increasing the water volume; conversely, when the humidity is high, the petals partially close, reducing the water volume. This intelligent adjustment function not only meets the plant's water needs under different environments but also effectively conserves water resources and improves irrigation efficiency.

[0017] 3. This device protects the sprinkler heads by incorporating damping components, and the damping effect can be further adjusted by changing the size of the air vents. During normal irrigation, appropriate damping can buffer the impact of water flow on the sprinkler heads, reduce wear, and extend their service life. In case of unexpected situations such as strong winds, the damping components can be adjusted to enhance sprinkler head protection. Simultaneously, the system can trigger an emergency mechanism to automatically close the opened petal-shaped sprinkler heads, preventing damage from strong winds and avoiding the excessive dispersion of irrigation water, ensuring the irrigation system can continue to operate normally even in harsh environments. 4. When this device detects that a standing water tank or other object connected to the telescopic pipe wrapped around the artificial rockery has tipped over due to a sudden incident, it can trigger the cut-off component to actively disconnect the connection between the water tank and the telescopic pipe. This emergency protection mechanism can effectively prevent water loss due to the water tank tipping over, prevent damage to the irrigation system and the surrounding environment, ensure the safe and stable operation of the irrigation system, and reduce losses caused by accidents. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the left side view of the overall device proposed in this invention; Figure 2 This is a schematic diagram of the overall device proposed in this invention from the right side. Figure 3 This is a schematic diagram of the connection structure of the irrigation mechanism proposed in this invention; Figure 4 This is an enlarged structural schematic diagram of the irrigation mechanism proposed in this invention; Figure 5 This is a schematic diagram of a partial connection structure of the irrigation mechanism proposed in this invention; Figure 6 The present invention proposes Figure 5 Enlarged structural diagram at point A in the middle; Figure 7 This is an enlarged structural schematic diagram of the flower-shaped nozzle assembly proposed in this invention; Figure 8 This is a schematic diagram of the internal cross-sectional structure of the damping component proposed in this invention; Figure 9 This is a schematic diagram of the enlarged structure of the placement component proposed in this invention; Figure 10 This is an enlarged structural schematic diagram of the cutting component proposed in this invention.

[0019] In the diagram: 1. Base; 2. Water tank; 3. Water pump; 4. Water supply pipe; 5. Connecting pipe; 6. Irrigation mechanism; 61. Hard water pipe; 62. Telescopic pipe; 63. First sleeve plate; 64. First latch; 65. Second latch; 66. Second sleeve plate; 67. Damping assembly; 671. Fixed cylinder; 672. Telescopic water pipe; 673. Sliding water pipe; 674. Waterproof motor; 68. Floral nozzle assembly; 681. Main water supply pipe; 682. Petal assembly; 683. Diverting structure; 69. Adjustment. Components; 691, Support rod; 692, Motor; 693, Opening / closing plate; 694, Air inlet / outlet; 7, Protective mechanism; 71, Limiting plate; 72, Connecting rod; 73, Electric push rod; 74, Closing plate; 8, Climbing robot; 9, Support frame; 10, Placement component; 101, Insert plate; 102, Mounting plate; 11, Cutting component; 111, Fixing plate; 112, Extension plate; 113, Monitoring plate; 114, Pressing head; 115, Monitoring switch; 116, Cutting clamp. Detailed Implementation

[0020] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0021] Example 1: Refer to Figure 1 - Figure 9 The system includes a base 1, a water tank 2 fixedly mounted on the top of the base 1, a water pump 3 fixedly mounted on the top of the water tank 2, a water supply pipe 4 fixedly mounted on the output end of the water pump 3, a connecting pipe 5 fixedly mounted on one end of the water supply pipe 4, an irrigation mechanism 6 fixedly mounted on the water supply end of the connecting pipe 5 for irrigating various points of the artificial hill, multiple sets of irrigation mechanisms 6 are fixedly connected to each other, a climbing robot 8 is fixedly mounted on the farthest irrigation mechanism 6, a support frame 9 is fixedly mounted on the top of the water supply pipe 4, and a placement component 10 for supporting the climbing robot 8 is fixedly mounted on the top of the support frame 9.

[0022] The irrigation mechanism 6 includes a hard water pipe 61, a telescopic pipe 62, a first sleeve plate 63, a first latch 64, a second latch 65, a positioning rod, a second sleeve plate 66, a damping assembly 67 for damping the sprinkler head, a patterned sprinkler head assembly 68 for handling different scenarios, an adjusting assembly 69 for adjusting the damping force, and a protective mechanism 7 for actively retracting the patterned sprinkler head in an emergency. Two telescopic pipes 62 are provided and fixedly connected to both ends of the hard water pipe 61. The first sleeve plate 63 has an opening inside for supplying hard water... The water pipe 61 has a through hole and is rotatably connected to the hard water pipe 61 via a bearing. The first latch 64 is fixedly connected to the first sleeve plate 63, and the second latch 65 is fixedly connected to the positioning rod. The first latch 64 and the second latch 65 are detachably connected. The second sleeve plate 66 has a through hole for the first sleeve plate 63 to pass through and is rotatably connected to the first sleeve plate 63 via a bearing. Water passage holes are provided at the connection points of the hard water pipe 61, the first sleeve plate 63, and the second sleeve plate 66, and waterproofing is achieved through sealing rings.

[0023] The damping assembly 67 includes a fixed cylinder 671, a telescopic water pipe 672, a sliding water pipe 673, and a waterproof motor 674. The fixed cylinder 671 is fixedly connected to the second sleeve plate 66. One end of the telescopic water pipe 672 is connected to the water outlet of the second sleeve plate 66, and the other end is connected to the sliding water pipe 673. The sliding water pipe 673 is slidably connected to the inside of the fixed cylinder 671. The waterproof motor 674 is fixedly connected to the inside of the sliding water pipe 673. The flower-shaped nozzle assembly 68 is fixedly connected to one side wall of the sliding water pipe 673 and to the output end of the waterproof motor 674.

[0024] The floral nozzle assembly 68 includes: Water supply main pipe 681 is used to connect to an external water source; The petal assembly 682 has at least two layers of petal units arranged sequentially from the inside to the outside along the axial direction of the water supply main pipe 681. Each petal unit includes multiple petal pieces, and the petal pieces of each petal unit are evenly distributed along the circumference of the water supply main pipe 681. The diversion structure 683 is located between the water supply main pipe 681 and the petal assembly 682, and is used to distribute the water flow in the water supply main pipe 681 to the petals of each petal unit. In this structure, the petals of each petal unit, from the inside out, extend outward in the radial direction, and the petals of adjacent petal units are staggered in the circumferential direction, forming a flower-like unfolding structure.

[0025] The petal component 682 is made of a material that can change shape with changes in ambient humidity. The material of the petal component 682 is selected from at least one of the following: The double-layer composite material consists of an inner layer and a hydrophilic layer. The inner layer is a hydrophilic material and the outer layer is a hydrophobic material. The hydrophilic material expands more after absorbing moisture than the hydrophobic material, causing the blade body to bend towards the outer layer. Hygroscopic swelling materials include modified cellulose or agar-based gels. These materials expand when humidity increases and contract when humidity decreases, causing the blade body to change its shape.

[0026] The adjustment assembly 69 includes a support rod 691, a motor 692, an opening and closing plate 693, and an air inlet and outlet 694. The air inlet and outlet 694 is fixedly connected to the fixed cylinder 671. The support rod 691 is fixedly connected to the top of the fixed cylinder 671. The motor 692 is fixedly connected to the top of the support rod 691, and its output end is fixedly connected to the opening and closing plate 693. The opening and closing plate 693 abuts against the top of the air inlet and outlet 694.

[0027] The protective mechanism 7 includes a limiting plate 71, a connecting rod 72, an electric push rod 73, and a closing plate 74. The limiting plate 71 is fixedly connected to the outer ring of the fixed cylinder 671, and the connecting rod 72 is fixedly connected to one side of the outer wall of the limiting plate 71. There are multiple connecting rods 72, which are evenly arranged along the circumference of the limiting plate 71. The electric push rod 73 is fixedly connected to the connecting rod 72, and the output end of the electric push rod 73 is fixedly connected to the closing plate 74.

[0028] Preferably, the placement component 10 includes an insert plate 101 and a mounting plate 102. The insert plate 101 is fixedly connected to the support frame 9, and the mounting plate 102 has a slot for the support frame 9 to be inserted into. The mounting plate 102 is also fixedly connected to the climbing robot 8.

[0029] In this embodiment: First, the entire device uses the water tank 2 on the base 1 as the core water source. After the water pump 3 starts, the water in the water tank 2 is transported to multiple irrigation mechanisms 6 through the water delivery pipe 4 and the connecting pipe 5. Before irrigation begins, the placement component 10 provides initial support for the climbing robot 8. The insertion plate 101 is fixed to the support frame 9, and the mounting plate 102 is connected to the climbing robot 8, facilitating the placement and activation of the climbing robot 8. After activation, the climbing robot 8 drives the multiple irrigation mechanisms 6 to move along the surface of the artificial mountain. Since the irrigation mechanism 6 consists of two telescopic pipes 62 and one rigid pipe, and the multiple irrigation mechanisms 6 are connected through the telescopic pipes 62, the telescopic characteristics of the telescopic pipes 62, combined with the movement of the climbing robot 8, can flexibly adapt to the rugged contours of the artificial mountain, achieving wrapping and coverage of the artificial mountain at various heights and angles. This solves the problem that traditional irrigation is difficult to cover high places and complex terrain, laying the foundation for comprehensive irrigation. Regarding the fixing of the irrigation mechanism 6, after each set of irrigation mechanisms 6 is moved to the target position, the positioning rod is inserted into the gap of the artificial hill or the soil by using the detachable connection between the first locking buckle 64 and the second locking buckle 65 to complete the fixing of the sprinkler point. At the same time, the first set plate 63 and the hard water pipe 61, and the second set plate 66 and the first set plate 63 are all rotatably connected by bearings, which can flexibly adjust the angle of the hard water pipe 61 and the sprinkler head to ensure that the petal-shaped sprinkler head is accurately aligned with the irrigation target and to ensure the accuracy of irrigation. During irrigation, water in tank 2 flows sequentially through water pipe 4 and connecting pipe 5 into the hard water pipe 61 of irrigation mechanism 6, then flows through water inlet into telescopic water pipe 672 and sliding water pipe 673, and is finally sprayed out by flower-shaped sprinkler assembly 68. The flower-shaped sprinkler assembly 68 adopts a multi-layer petal unit design, with adjacent petal layers circumferentially staggered to form a flower-like unfolding structure, which expands the irrigation range and improves irrigation uniformity. More importantly, the petal assembly 682 uses hygroscopic expansion material or double-layer composite material, and can automatically open and close according to ambient humidity: when humidity is low, the petals unfold to increase the spray volume; when humidity is high, the petals contract to reduce the spray volume, achieving on-demand water supply and saving water resources. The damping component 67 plays a protective role during this process. The sliding water pipe 673 inside the fixed cylinder 671 can move slightly with the impact of water flow or external force, and the deformation of the telescopic water pipe 672 buffers the impact force. The adjusting component 69 can further optimize the protective effect. The motor 692 drives the opening and closing plate 693 to rotate, changing the size of the air holes in the air inlet and outlet 694, thereby adjusting the air pressure inside the fixed cylinder 671, realizing the adjustment of the damping force, and preventing the nozzle from being damaged by excessive vibration. When encountering unexpected situations such as strong winds, the damping component 67 can provide better protection, and the protective mechanism 7 responds quickly. The electric push rod 73 drives the closing plate 74 to approach and wrap around the petal nozzle, actively closing the opened petal nozzle to prevent the nozzle from being damaged by strong winds, and at the same time preventing water from being blown away and wasted. Example 2:

[0030] Reference Figure 10 The difference from Embodiment 1 is that a cutting component 11 is fixedly provided at the connection between the connecting pipe 5 and the irrigation mechanism 6 for cutting off the connection between the connecting pipe 5 and the water supply pipe 4 in an emergency.

[0031] The cutting assembly 11 includes a fixed plate 111, an extension plate 112, a monitoring plate 113, a pressure head 114, a monitoring switch 115, and a cutting clamp 116. The fixed plate 111 is fixedly connected to the connecting pipe 5. The extension plate 112 is fixedly connected to one side wall of the fixed plate 111. The monitoring plate 113 is rotatably connected to the bottom of the extension plate 112 via a rotating shaft and a torsion spring. The pressure head is fixedly connected to the top of the monitoring plate 113. The monitoring switch 115 is fixedly connected to the bottom of the extension plate 112. The cutting clamp 116 is sleeved on the connecting pipe 5.

[0032] In this embodiment: In terms of safety assurance, the cut-off component 11 constantly monitors the system status. When equipment such as water tank 2 tip over due to an emergency, the monitoring plate 113 loses its support and rotates around the pivot. The pressure head 114 disengages from the monitoring switch 115, and the monitoring switch 115 triggers the cut-off clamp 116 to quickly cut off the connection between the connecting pipe 5 and the water supply pipe 4, preventing water loss and further damage to the equipment, thus improving the emergency safety of the system. After the cut-off, only the connecting pipe 5 needs to be replaced.

[0033] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. An irrigation structure for garden landscape construction, comprising a base (1), characterized in that: A water tank (2) is fixedly installed on the top of the base (1), a water pump (3) is fixedly installed on the top of the water tank (2), a water delivery pipe (4) is fixedly installed at the output end of the water pump (3), a connecting pipe (5) is fixedly installed at one end of the water delivery pipe (4), an irrigation mechanism (6) for irrigating various points of the artificial mountain is fixedly installed at the water delivery end of the connecting pipe (5), multiple sets of irrigation mechanisms (6) are fixedly connected to each other, a climbing robot (8) is fixedly installed on the farthest irrigation mechanism (6), a support frame (9) is fixedly installed on the top of the water delivery pipe (4), a placement component (10) for supporting the climbing robot (8) is fixedly installed on the top of the support frame (9), and a cutting component (11) for cutting off the connection between the connecting pipe (5) and the irrigation mechanism (6) in an emergency is fixedly installed at the connection point of the connecting pipe (5) and the irrigation mechanism (6).

2. The irrigation structure for garden landscape construction according to claim 1, characterized in that: The irrigation mechanism (6) includes a hard water pipe (61), a telescopic pipe (62), a first sleeve plate (63), a first latch (64), a second latch (65), a positioning rod, a second sleeve plate (66), a damping assembly (67) for damping the nozzles, a patterned nozzle assembly (68) for handling different scenarios, an adjusting assembly (69) for adjusting the damping force, and a protective mechanism (7) for actively retracting the patterned nozzles in emergency situations. Two telescopic pipes (62) are provided and are fixedly connected to both ends of the hard water pipe (61). The first sleeve plate (63) has an opening inside for supplying hard water. The water pipe (61) has a through hole and is rotatably connected to the hard water pipe (61) via a bearing. The first latch (64) is fixedly connected to the first sleeve plate (63), and the second latch (65) is fixedly connected to the positioning rod. The first latch (64) and the second latch (65) are detachably connected. The second sleeve plate (66) has a through hole for the first sleeve plate (63) to pass through and is rotatably connected to the first sleeve plate (63) via a bearing. The hard water pipe (61), the first sleeve plate (63), and the second sleeve plate (66) are all provided with water passage holes and are waterproofed by sealing rings.

3. The irrigation structure for garden landscape construction according to claim 2, characterized in that: The damping assembly (67) includes a fixed cylinder (671), a telescopic water pipe (672), a sliding water pipe (673), and a waterproof motor (674). The fixed cylinder (671) is fixedly connected to the second sleeve plate (66). One end of the telescopic water pipe (672) is connected to the water outlet of the second sleeve plate (66), and the other end is connected to the sliding water pipe (673). The sliding water pipe (673) is slidably connected to the inside of the fixed cylinder (671). The waterproof motor (674) is fixedly connected to the inside of the sliding water pipe (673). The flower-shaped nozzle assembly (68) is fixedly connected to one side wall of the sliding water pipe (673) and fixedly connected to the output end of the waterproof motor (674).

4. The irrigation structure for garden landscape construction according to claim 1, characterized in that: The floral nozzle assembly (68) includes: Water supply main pipe (681), the water supply main pipe (681) is used to connect to an external water source; The petal assembly (682) has at least two layers of petal units arranged sequentially from the inside to the outside along the axial direction of the water supply main pipe (681). Each layer of the petal unit includes multiple petal pieces, and the petal pieces of each layer of the petal unit are evenly distributed along the circumference of the water supply main pipe (681). The diversion structure (683) is located between the water supply main pipe (681) and the petal assembly (682) for distributing the water flow in the water supply main pipe (681) to the petals of each petal unit. In this structure, the petals of each petal unit, from the inside out, extend outward in the radial direction, and the petals of adjacent petal units are staggered in the circumferential direction, forming a flower-like unfolding structure.

5. The irrigation structure for garden landscape construction according to claim 4, characterized in that: The petal component (682) is made of a material that can change shape with changes in ambient humidity, and the material of the petal component (682) is selected from at least one of the following: A double-layer composite material, comprising an inner layer and a hydrophilic layer, wherein the inner layer is a hydrophilic material and the outer layer is a hydrophobic material, wherein the hydrophilic material expands more than the hydrophobic material after absorbing moisture, causing the blade body to bend towards the outer layer; The hygroscopic swelling material includes modified cellulose or agar-based gel. The hygroscopic swelling material expands when the humidity increases and contracts when the humidity decreases, thereby causing the blade body to change its shape.

6. The irrigation structure for garden landscape construction according to claim 3, characterized in that: The adjustment assembly (69) includes a support rod (691), a motor (692), an opening and closing plate (693), and an air inlet and outlet (694). The air inlet and outlet (694) is fixedly connected to the fixed cylinder (671). The support rod (691) is fixedly connected to the top of the fixed cylinder (671). The motor (692) is fixedly connected to the top of the support rod (691), and its output end is fixedly connected to the opening and closing plate (693). The opening and closing plate (693) abuts against the top of the air inlet and outlet (694).

7. The irrigation structure for garden landscape construction according to claim 1, characterized in that: The protective mechanism (7) includes a limiting plate (71), a connecting rod (72), an electric push rod (73), and a closing plate (74). The limiting plate (71) is fixedly connected to the outer ring of the fixed cylinder (671), and the connecting rod (72) is fixedly connected to one side of the outer wall of the limiting plate (71). There are multiple connecting rods (72) and they are evenly arranged along the circumference of the limiting plate (71). The electric push rod (73) is fixedly connected to the connecting rod (72), and the output end of the electric push rod (73) is fixedly connected to the closing plate (74).

8. The irrigation structure for garden landscape construction according to claim 1, characterized in that: The placement component (10) includes a insert plate (101) and a mounting plate (102). The insert plate (101) is fixedly connected to the support frame (9). The mounting plate (102) has a slot for the support frame (9) to be inserted into, and the mounting plate (102) is fixedly connected to the climbing robot (8).

9. The irrigation structure for garden landscape construction according to claim 1, characterized in that: The cutting assembly (11) includes a fixed plate (111), an extension plate (112), a monitoring plate (113), a pressure head (114), a monitoring switch (115), and a cutting clamp (116). The fixed plate (111) is fixedly connected to the connecting pipe (5). The extension plate (112) is fixedly connected to one side wall of the fixed plate (111). The monitoring plate (113) is rotatably connected to the bottom of the extension plate (112) via a rotating shaft and a torsion spring. The pressure head is fixedly connected to the top of the monitoring plate (113). The monitoring switch (115) is fixedly connected to the bottom of the extension plate (112). The cutting clamp (116) is sleeved on the connecting pipe (5).