A waterfall landscape construction structure

CN224752182UActive Publication Date: 2026-09-15CHONGQING WEITU LANDSCAPE DESIGN CO LTD
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Patent Information

Application Number
CN202522087086.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-28
Publication Date
2026-09-15
Estimated Expiration
2035-09-28

AI Technical Summary

Technical Problem

[0003]现有的庭院山水造景中通常会将水池分为深水区和浅水区,浅水区作为镜面水池用以倒映院内景色,深水区用以回流跌水、回流浅水区的水流以及作为养鱼的生态鱼池,但是,水流从假山上跌落时,跌落的水流与深水区的积水接触后会导致水花溅射,溅射的水花容易导致周遭路段被打湿或是破坏浅水区镜面水池的镜面效果,从而降低院内山水景色的美观性

Benefits of technology

1. 通过在隔离带本体内设置有种植槽,进而可以在种植槽内种植一些浅水且高度较低的绿植,通过绿植的设置,可以对深水池本体因跌水而飞溅的水花进行遮挡,从而避免水花破坏浅水池的镜面效果或是打湿路面。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to water-drop landscape structure field discloses a water-drop landscape structure, including deep pool body, one side is provided with mountain body, is provided with water-drop subassembly in mountain body, deep pool body still is connected with water supplement pipe isolation zone body, sets up in deep pool body outside, and the isolation zone top is provided with planting groove, shallow pool body, sets up in the isolation zone body far from deep pool body one side, shallow pool body installs the water pumping unit in, and the outside cover of water pumping unit is equipped with slow flow subassembly, and the planting groove is linked together with shallow pool body and deep pool body. This scheme is provided with planting groove in the isolation zone body, and then can plant some shallow water and low height green plants in the planting groove, through the setting of green plants, can shield the water splash that deep pool body splashes because of water-drop, thereby avoids the mirror effect of water splash destruction shallow pool or is wet road surface.
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Description

Technical Field

[0001] This utility model belongs to the technical field of waterfall landscape structure, specifically relating to a waterfall landscape construction structure. Background Technology

[0002] As people's living standards improve, existing courtyard buildings and villas often incorporate landscape features in their yards. By combining artificial mountains and ponds, the yards can be designed to resemble natural landscapes. Additionally, the use of a pumping mechanism to pump water from the ponds to the top of the artificial mountains and create a cascading waterfall effect adds vibrancy to the landscape and makes the courtyards more beautiful.

[0003] In existing courtyard landscape designs, ponds are usually divided into deep and shallow areas. The shallow area serves as a mirror pond to reflect the scenery of the courtyard, while the deep area is used for the backflow of water from the waterfall and the shallow area, as well as as an ecological fish pond. However, when water flows down from the artificial hill, the falling water comes into contact with the water in the deep area, causing splashing. The splashing water can easily wet the surrounding roads or damage the mirror effect of the shallow pond, thus reducing the aesthetic appeal of the courtyard landscape. Utility Model Content

[0004] The present invention aims to provide a cascading water feature structure that can reduce or overcome the impact of water splashes generated by the cascading water on the mirror pool and the road surface.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a cascading water feature structure, comprising... The deep pool is surrounded by a mountain-like structure on one side, with a waterfall system installed within the mountain. The deep pool is also connected to a water supply pipe. The isolation zone body is set on the outside of the deep water pool body, and a planting trough is set on the top of the isolation zone; The shallow pool body is located on the side of the isolation zone away from the deep pool body. A water pumping component is installed inside the shallow pool body, and a flow slowing component is installed on the outside of the water pumping component. The planting trough is connected to both the shallow pool body and the deep pool body.

[0006] The principle and effects of this technical solution: 1. By setting up planting troughs within the isolation zone, some shallow and low-height green plants can be planted in the planting troughs. The green plants can shield the water splashing from the deep pool due to the cascading water, thereby preventing the water from damaging the mirror effect of the shallow pool or wetting the road surface.

[0007] 2. By using the waterfall components in conjunction with the mountain structure, a waterfall landscape is created. The installation of pumping and slow-flow components allows the shallow pool to be maintained by pumping water from the deep pool. The slow-flow components reduce the impact of the pumping components on the mirror effect, and the water supply pipe replenishes the water consumed in the deep pool.

[0008] The present invention is further configured such that: the water pumping assembly includes a first water pump, a first input pipe and a first output pipe, the first water pump is installed on the shallow water pool body, the first water pump is connected to the first input pipe and the first output pipe, the end of the first input pipe extends into the deep water pool body, the end of the first output pipe is connected to a horizontal pipe, and multiple water outlets are arranged at intervals on the outer wall of the horizontal pipe.

[0009] The principle and effect of this technical solution: The first water pump pumps water from the deep water area to the shallow water pool to replenish the shallow water pool. The horizontal pipe and water outlet allow the water to flow out through multiple holes, thereby expanding the water flow into the shallow water pool and reducing local impact. At the same time, the addition of a slow-flow component minimizes the impact of the water replenishment process on the mirror surface of the shallow water pool.

[0010] The present invention is further configured such that: the slow-flow component includes a cover, a first vertical plate, a second vertical plate, a first diverter plate, and a second diverter plate. The cover is fixed to the body of the shallow water pool. The first water pump and the water outlet are located inside the cover. A water passage hole is opened at the bottom of one side wall of the cover. The first vertical plate and the second vertical plate are fixed on both sides of one side wall of the cover, respectively. The cross-section of the first vertical plate and the second vertical plate are both "U" shaped. Multiple first diverter plates are arranged at intervals on the inner side of the first vertical plate, and multiple second diverter plates are arranged at intervals on the inner side of the second vertical plate.

[0011] The principle and effect of this technical solution: By setting up the cover, the water pumped into the shallow pool body by the first water pump can be prevented from being directly discharged into the shallow pool body. The stress that can be released is confined within the cover body through the sealed environment. The flow rate of the water after the pressure is released is slowed down, and then it is diverted by the first and second diversion plates, and then enters the shallow pool body at a uniform and slow speed, so as to reduce the impact of the water pumping component on the water replenishment in the shallow pool body on the mirror effect.

[0012] The present invention is further configured such that: the first diverter plate is in the shape of an isosceles trapezoid, and the top surface area of ​​the first diverter plate is larger than the bottom surface area of ​​the first diverter plate.

[0013] The principle and effect of this technical solution: By making the size of the top surface larger than the size of the bottom surface, the pressure of the water is released after it flows from the small gap to the wider part of the space, thereby reducing the flow rate.

[0014] The present invention is further configured to include a filter assembly, which includes a housing, a top cover, and a filter cylinder. The housing is installed on the upper part of the inner side of the shallow pool body. A water inlet is provided on the top of one side of the housing, and a drain hole connected to the planting trough is provided on the bottom of the other side of the housing. The filter cylinder is slidably installed in the housing, and the top edge of the filter cylinder is not higher than the bottom edge of the water inlet. The top cover is installed on the top of the housing.

[0015] The principle and effect of this technical solution: By controlling the height of the inlet and outlet holes relative to the filter cylinder, the water in the shallow pool can enter the filter cylinder through the inlet hole and exit through the outlet hole. As a result, impurities on the surface of the water in the shallow pool can be filtered by the filter cylinder during the flow, thus achieving the effect of water purification. The detachable top cover facilitates the cleaning of the filter cylinder. At the same time, the design of the inlet and outlet holes conceals the water flow from the shallow pool to the planting trough and the deep pool, resulting in a better tranquility.

[0016] The present invention is further configured such that: an overflow hole connected to the deep water pool body is provided on one side of the planting trough, the overflow hole is arranged at an angle, and the end of the overflow hole near the planting trough is higher than the end of the overflow hole near the deep water pool body, the top edge of the overflow hole is lower than the bottom edge of the drainage hole and higher than the bottom edge of the planting trough.

[0017] The principle and effect of this technical solution: By using the inclined overflow hole, some water can be accumulated in the planting trough, which can prevent the plants in the planting trough from drying out quickly due to the cessation of the water drop and pump components. In addition, the inclined setting can prevent backflow, thus making it difficult for unfiltered pool water in the deep pool to enter the planting trough.

[0018] The present invention is further configured such that: the waterfall component includes a second water pump, a second input pipe and a second output pipe, the upper end of the mountain body has a water storage tank and a waterfall hole, the second water pump is installed in the water storage tank, the second input pipe and the second output pipe are respectively connected to the second water pump, and the end of the second input pipe extends into the body of the deep pool.

[0019] The principle and effect of this technical solution: The second water pump draws the accumulated water in the deep pool into the storage tank through the second input pipe, and then discharges it through overflow to form a waterfall, thus creating a waterfall landscape. The storage tank ensures the continuity of the waterfall and avoids intermittent waterfalls.

[0020] The present invention is further configured such that a water level sensor is installed inside the deep water pool.

[0021] The principle and effect of this technical solution: By setting up a water level sensor, the water level in the deep water area can be monitored to avoid the situation where the water drop components, pumping components, or water supply pipes malfunction, causing excessive water replenishment or the water level to be too low inside the deep water pool. This avoids the situation where water overflows from the deep water pool or the water drop components and pumping components run dry and are damaged due to lack of water accumulation. Attached Figure Description

[0022] Figure 1 This is the front view of the present invention; Figure 2 for Figure 1 Enlarged view of point A in the image; Figure 3 for Figure 1 Enlarged view of point B in the image; Figure 4 for Figure 3 Enlarged view of point C in the image; Figure 5 for Figure 4 Axonometric structural diagram of the first and second splitter plates. Detailed Implementation

[0023] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments: The reference numerals in the accompanying drawings include: 110. Deep water tank body; 120. Water level sensor.

[0024] 210. Isolation strip body; 211. Planting trough; 212. Overflow hole; 310. The body of the shallow pool; 320. Pumping assembly; 321. First water pump; 322. First input pipe; 323. First output pipe; 324. Horizontal pipe; 325. Water outlet; 330. Flow control component; 331. Cover; 332. Water passage hole; 333. First vertical plate; 334. Second vertical plate; 335. First diverter plate; 336. Second diverter plate; 340. Filter assembly; 341. Housing; 342. Top cover; 343. Filter cartridge; 344. Water inlet; 345. Drain. 410. Mountain body; 420. Waterfall assembly; 421. Second water pump; 422. Second input pipe; 423. Second output pipe; 424. Water storage tank; 425. Waterfall hole.

[0025] Example: As attached Figure 1-5 As shown, this utility model discloses... A cascading water feature structure includes a deep pool body 110, a buffer zone body 210, a filter assembly 340, and a shallow pool body 310. A hillside body 410 is provided on one side of the deep pool body 110, and a cascading water assembly 420 is installed inside the hillside body 410. The deep pool body 110 is also connected to a water supply pipe, which is connected to a water source and a controller. The controller is used to control the water supply status of the water supply pipe. At least two water level sensors 120 are installed inside the deep pool body 110. One sensor is used to detect the maximum water level to prevent the water supply pipe from over-filling, and the other sensor is used to detect the minimum water level to prevent the pumping assembly 320 and the cascading water assembly 420 from running dry and being damaged due to excessively low water levels.

[0026] The waterfall assembly 420 includes a second water pump 421, a second input pipe 422, and a second output pipe 423. The upper end of the mountain body 410 has a water storage tank 424 and a waterfall hole 425. The second water pump 421 is installed in the water storage tank 424. The second input pipe 422 and the second output pipe 423 are respectively connected to the second water pump 421, and the end of the second input pipe 422 extends into the deep pool body 110.

[0027] The isolation strip body 210 is set outside the deep pool body 110. A planting trough 211 is set on the top of the isolation strip. The planting trough 211 is planted with low-height aquatic plants or hydroponic plants. The greening of the isolation strip can not only prevent water splashing, but also enhance the sense of layering between the shallow pool body 310 and the deep pool body 110. The layering is stronger through the transition.

[0028] The shallow pool body 310 is located on the side of the isolation zone body 210 away from the deep pool body 110. A water pumping assembly 320 is installed inside the shallow pool body 310, and a flow slowing assembly 330 is installed on the outside of the water pumping assembly 320.

[0029] The pumping assembly 320 includes a first water pump 321, a first input pipe 322, and a first output pipe 323. The first water pump 321 is installed on the shallow water tank body 310. The first water pump 321 is connected to the first input pipe 322 and the first output pipe 323. The end of the first input pipe 322 extends into the deep water tank body 110. The end of the first output pipe 323 is connected to a horizontal pipe 324. Multiple water outlets 325 are arranged at intervals on the outer wall of the horizontal pipe 324.

[0030] The flow-slowing component 330 includes a cover 331, a first vertical plate 333, a second vertical plate 334, a first diverter plate 335, and a second diverter plate 336. The cover 331 is fixed to the shallow water tank body 310. The first water pump 321 and the water outlet 325 are both located inside the cover 331. A water passage hole 332 is provided at the bottom of one side wall of the cover 331. The first vertical plate 333 and the second vertical plate 334 are fixed on both sides of the side wall of the cover 331 with the water passage hole 332. The cross-section of the first vertical plate 333 and the second vertical plate 334 are both "U" shaped. Multiple first diverter plates 335 are arranged at intervals on the inner side of the first vertical plate 333. Multiple second diverter plates 336 are arranged at intervals on the inner side of the second vertical plate 334. The shape of the first diverter plate 335 is an isosceles trapezoid, and the top surface area of ​​the first diverter plate 335 is larger than the bottom surface area of ​​the first diverter plate 335.

[0031] The filter assembly 340 includes a housing 341, a top cover 342, and a filter cylinder 343. The housing 341 is installed on the upper part of the inner side of the shallow pool body 310 and is fixed above the cover 331 to reduce the unevenness of the edge of the shallow pool, that is, to reduce the impact of the water pumping assembly 320 and the slow flow assembly 330 on the edge of the shallow pool. A water inlet hole 344 is provided on the top of one side of the housing 341, and a drain hole 345 connected to the planting trough 211 is provided on the bottom of the other side of the housing 341. The filter cylinder 343 is slidably installed in the housing 341, and the top edge of the filter cylinder 343 is not higher than the bottom edge of the water inlet hole 344. The top cover 342 is detachably installed on the top of the housing 341.

[0032] An overflow hole 212 connected to the deep water pool body 110 is provided on one side of the planting trough 211. The overflow hole 212 is arranged at an angle, and the end of the overflow hole 212 near the planting trough 211 is higher than the end of the overflow hole 212 near the deep water pool body 110. The top edge of the overflow hole 212 is lower than the bottom edge of the drainage hole 345 and higher than the bottom edge of the planting trough 211.

[0033] The deep pool body 110, the isolation zone body 210, the shallow pool body 310, and the mountain body 410 are all equipped with anti-alkali-reflective panels. Inside the shallow pool body 310, stone slabs are installed using universal supports, creating a mirror effect by lowering the height of the top surface of the stone slabs above the water surface. Furthermore, the first water pump 321 and the second water pump 421 can automatically stop based on the monitoring results of the two water level monitors 120 to prevent idling.

[0034] The parts of the device not involved are the same as or can be implemented using existing technologies.

[0035] Among them, insert and sliding insert are mating bodies with holes, the cross section of the shaft or rod matches the hole, and the shaft or rod can slide relative to the hole. Threaded insert is a hole with threads, the shaft or rod is threaded, and the shaft or rod is connected to the mating body by screwing. Detachable installation can be by bolt thread connection or bolt and nut connection, etc., depending on what can be actually achieved.

[0036] The above descriptions are merely embodiments of this utility model. Commonly known technical solutions or characteristics are not described in detail here. It should be noted that those skilled in the art can make various modifications and improvements without departing from the technical solution of this utility model. These modifications and improvements should also be considered within the scope of protection of this utility model, and will not affect the effectiveness of the implementation of this utility model or the practicality of the patent. The scope of protection claimed in this application should be determined by the content of its claims, and the specific embodiments described in the specification can be used to interpret the content of the claims.

Claims

1. A cascading water feature structure, characterized in that: include The deep water pool body has a mountain body on one side, and a waterfall component is installed inside the mountain body. The deep water pool body is also connected to a water supply pipe. The isolation strip body is set on the outside of the deep water pool body, and a planting trough is set on the top of the isolation strip; The shallow pool body is located on the side of the isolation zone body away from the deep pool body. A water pumping assembly is installed inside the shallow pool body, and a flow slowing assembly is installed on the outside of the water pumping assembly. The planting trough is connected to both the shallow pool body and the deep pool body.

2. The cascading water feature structure as described in claim 1, characterized in that: The pumping assembly includes a first water pump, a first input pipe, and a first output pipe. The first water pump is installed on the shallow pool body and is connected to the first input pipe and the first output pipe. The end of the first input pipe extends into the deep pool body, and the end of the first output pipe is connected to a horizontal pipe. Multiple water outlets are arranged at intervals on the outer wall of the horizontal pipe.

3. The cascading water feature structure as described in claim 2, characterized in that: The flow-slowing component includes a cover, a first vertical plate, a second vertical plate, a first diverter plate, and a second diverter plate. The cover is fixed to the shallow water tank body. The first water pump and the water outlet are located inside the cover. A water passage hole is opened at the bottom of one side wall of the cover. The first vertical plate and the second vertical plate are fixed on both sides of the one side wall of the cover, respectively. The cross-section of the first vertical plate and the second vertical plate are both "U" shaped. Multiple first diverter plates are arranged at intervals on the inner side of the first vertical plate, and multiple second diverter plates are arranged at intervals on the inner side of the second vertical plate.

4. The cascading water feature structure as described in claim 3, characterized in that: The first diverter plate is in the shape of an isosceles trapezoid, and the top surface area of ​​the first diverter plate is larger than the bottom surface area of ​​the first diverter plate.

5. The cascading water feature structure as described in claim 1, characterized in that: It also includes a filter assembly, which includes a housing, a top cover, and a filter cylinder. The housing is installed on the upper part of the inner side of the shallow pool body. A water inlet is provided on the top of one side of the housing, and a drain hole connected to the planting trough is provided on the bottom of the other side of the housing. The filter cylinder is slidably installed in the housing, and the top edge of the filter cylinder is not higher than the bottom edge of the water inlet. The top cover is installed on the top of the housing.

6. The cascading water feature structure as described in claim 5, characterized in that: An overflow hole connected to the deep water pool body is provided on one side of the planting trough. The overflow hole is arranged at an angle, and the end of the overflow hole near the planting trough is higher than the end of the overflow hole near the deep water pool body. The top edge of the overflow hole is lower than the bottom edge of the drainage hole and higher than the bottom edge of the planting trough.

7. The cascading water feature structure as described in claim 1, characterized in that: The waterfall assembly includes a second water pump, a second input pipe, and a second output pipe. The upper end of the mountain body has a water storage tank and a waterfall hole. The second water pump is installed in the water storage tank. The second input pipe and the second output pipe are respectively connected to the second water pump, and the end of the second input pipe extends into the deep water pool body.

8. The cascading water feature structure as described in claim 1, characterized in that: A water level sensor is installed inside the deep pool.