An ecological landscape water purification device

Through the coordination of the atomization pipe and the H-shaped nozzle, the anti-flow and pollution-proof device, the problem of nozzle blockage is solved, and the stable operation and efficient purification effect of the ecological landscape water quality purification device is achieved.

CN120025014BActive Publication Date: 2025-08-12HEFEI INST OF TECH INNOVATION ENG CHINESE ACAD OF SCI
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Patent Information

Application Number
CN202510502886.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2025-08-12
Estimated Expiration
2045-04-22

AI Technical Summary

Technical Problem

When existing ecological landscape water quality purification devices are used in lakes or rivers, the nozzles are easily blocked by microorganisms and impurities, resulting in a decrease in water spray, equipment damage and a decrease in purification effect.

Method used

The atomization tube is used to cooperate with the H-shaped nozzle, and the inner wall of the atomization tube is scraped through the electric rotary rod driving cover plate and semi-circular arc block, combining the water guide frame and anti-flow device to prevent the nozzle from being blocked; the activated carbon plate mechanism in the anti-pollution device is used to purify the water quality and prevent the influence of microorganisms and pollutants.

Benefits of technology

Effectively prevent spout blockage, maintain the amount of water spray, avoid equipment damage, improve the water quality purification effect, prevent microbial reproduction and influence of pollutants, and maintain the stability of the ecological environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an ecological landscape water purification device, which relates to the field of water purification technology. The present invention includes a device body, a landscape frame is provided inside the device body, a number of floating block assemblies are equidistantly provided inside the landscape frame, a water pump is provided at the center of the bottom of the inner wall of the device body, an atomizing pipe is fixedly installed on the top of the output end of the water pump, and an electric rotating rod is rotatably installed at the bottom of the inner wall of the device body. The present invention relies on the atomizing pipe and the H-shaped nozzle to achieve full coverage of plants, and the water quality of the water with improved oxygen content by bubbling complements the plants, and the vegetation thrives while purifying the water quality. At the same time, the cover plate and the semicircular arc block are used to improve the coverage effect of the water source on the vegetation, while reducing the adhesion of impurities in the water to the inner wall of the atomizing pipe nozzle, avoiding nozzle blockage, thereby reducing the water spray volume or difficulty in water discharge, and preventing equipment damage and poor water purification effect.
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Description

Technical Field

[0001] The present invention relates to the technical field of water purification, in particular to an ecological landscape water purification device. Background Art

[0002] In recent years, the overall surface water environmental quality has been good and the water quality has remained generally stable. However, in order to solve the problem of substandard water quality in lakes and rivers, the main measures are to control the discharge volume, allow the water body to recover by self-purification, and at the same time use plant communities to biologically adsorb and absorb total phosphorus, nitrogen, chemical oxygen demand and five-day biochemical oxygen demand in the water body.

[0003] Patent announcement number CN222331705U discloses an ecological landscape water purification device, in which a float assembly, a microbubble generator, a spray pipe and a water pump are installed on the top of the box. The float assembly is arranged on the top of the box for planting aquatic plants, and the root groups of the aquatic plants pass through the float assembly into the box; the microbubble generator is installed at the top center of the box for increasing the oxygen concentration of the water quality; the spray pipe is installed at the top of the box for spraying water onto the aquatic plants; the water pump is installed in the box and the output end is connected to the spray pipe for providing power for spraying water from the spray pipe, and the ecological landscape water is oxygenated by the microbubble generator, so that the purification effect of the purification device on the ecological landscape water quality is better.

[0004] However, the device still has shortcomings: the device uses a microbubble generator to oxygenate the water, but when the nozzle is sprayed with water from lakes or rivers for a long time, due to the high microbial content and impurities in the water quality of lakes and rivers, the nozzle nozzle is easily clogged during long-term spraying without cleaning, thereby reducing the water spray volume or making it difficult to discharge water. This can easily cause equipment damage and reduce the water purification effect in the long run. Summary of the Invention

[0005] In view of the deficiencies in the prior art, the present invention provides an ecological landscape water purification device, which solves the problems raised in the above background technology.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: an ecological landscape water purification device, comprising a device body, a landscape frame is provided inside the device body, a plurality of floating block assemblies are equidistantly provided inside the landscape frame, a water pump is provided at the center of the bottom inner wall of the device body, an atomizing pipe is fixedly installed on the top of the output end of the water pump, an electric rotating rod is rotatably installed on the bottom inner wall of the device body, a transmission mechanism is movably installed on the outer wall of the reciprocating spiral groove of the electric rotating rod, two vertical rods are symmetrically and fixedly installed on the top of the transmission mechanism, a cover plate is fixedly installed on the top of the vertical rod, a semicircular arc block is fixedly installed on the bottom of the cover plate, a cam is fixedly installed on the outer wall of the bottom end of the electric rotating rod, a water guide frame is slidably installed on the inner walls of the front and back sides of the device body through a spring, an anti-flow device is provided below the water guide frame to prevent water from accumulating in the gap, an anti-pollution device for secondary purification of the water source in the gap is provided around the anti-flow device, a T-shaped plate is fixedly installed inside the right end of the water guide frame, and a resistance frame is fixedly installed on the bottom right end of the landscape frame.

[0007] According to the above technical solution, a water inlet pipe and a drain pipe are respectively provided at the left and right ends of the device body, a transverse groove is provided at the bottom of the float block assembly, a micro-bubble generator is provided inside the atomizing pipe, a drainage mechanism is fixedly installed at the left end of the drain pipe, an H-shaped nozzle is provided between adjacent float block assemblies, the bottom of the H-shaped nozzle is connected to the top of the water inlet pipe through a telescopic pipe, a reciprocating spiral groove is provided at the top of the outer wall of the electric rotating rod, the left end of the transmission mechanism passes through and is slidably installed on the outer wall of the atomizing pipe, the outer wall of the semicircular arc block is in contact with the inner wall of the atomizing pipe, the outer wall of the bottom end of the T-shaped plate is in contact with the outer wall of the cam, and the bottom position of the resistance frame On the movement track at the top of the T-shaped plate, the roots of the landscape aquatic plants pass through the horizontal groove at the bottom of the float block assembly and through the landscape frame into the interior of the device body. Then the water pump is started, and the water pump pumps water from the river through the water inlet pipe. The water inlet pipe transmits part of the pumped water to the H-shaped nozzle through the telescopic pipe. The H-shaped nozzle sprays the water transported by the telescopic pipe upward through its own nozzle. After the water flows down, it contacts the plants to purify the water quality. At the same time, the electric rotating rod is started, and the electric rotating rod rotates along the bottom of the inner wall of the device body. The electric rotating rod drives the threaded transmission mechanism through the reciprocating spiral groove on the outer wall to slide back and forth upward along the outer wall of the atomizing tube and reset. The structure drives the vertical rod to move synchronously, and the vertical rod drives the cover to move synchronously. The cover indirectly blocks the water source flowing inside the atomizing tube to enhance the water pressure. Then the cover drives the semi-circular arc block to move upward from the inside of the atomizing tube and in the process of resetting, the semi-circular arc block scrapes the inner wall of the atomizing tube, and in the process of gradually rising, the semi-circular arc block guides the upward spraying water source to the surrounding areas in a fountain-like manner through its own arc surface, that is, the coverage range of the green plants in the surrounding floating block components by the water source is from far to near, and the micro-bubble generator inside the atomizing tube prompts the water source transported inside itself to generate tiny bubbles to improve the oxygen concentration of the water quality, optimize the water purification effect, and then fall The water flowing down falls into the interior of the device body through the horizontal groove and is discharged through the drainage mechanism and the drainage pipe; the electric rotating rod drives the cam to rotate when it rotates, and the outer wall of the cam contacts the circular surface of the bottom end of the T-shaped plate when it rotates. As the cam contacts, the T-shaped plate drives the water guide frame to slide horizontally along the inner wall of the device body, and the water guide frame guides the falling water to the center of the device body through the arc surface. Then the water guide frame is reset by the spring, and at the same time, the top of the T-shaped plate will contact the resistance frame during the horizontal movement. At this time, the resistance frame drives the landscape frame to move upward with the help of the resistance force, and the landscape frame drives the floating block assembly to move synchronously. Then the landscape frame and the floating block assembly are reset by self-reset, and so on.

[0008] According to the above technical solution, the anti-flow device includes two friction wheels, the tops of the two friction wheels are symmetrical and rotatably installed at the bottom edge of the water guide frame, a round rod is fixedly installed at the bottom of the friction wheel, and an L-shaped push plate is passed through and spirally connected to the outer wall of the spiral groove of the round rod, and an inclined block plate is fixedly installed on the side of the bottom of the L-shaped push plate close to the axis of the device body.

[0009] According to the above technical solution, the outer wall of the friction wheel contacts the inner wall of the device body, and a non-self-locking spiral groove is provided at the bottom end of the round rod. When the water guide frame moves horizontally, it drives the friction wheel to move synchronously along the inner wall of the device body to generate friction. The friction wheel drives the round rod to rotate when it rotates by friction. When the round rod rotates, it drives the L-shaped push plate to slide downward along the inner wall of the device body through the spiral groove and wipes the angle gap of the inner wall of the device body. After that, when the water guide frame is reset, it drives the friction wheel to reset. At this time, the round rod reverses and drives the L-shaped push plate to reset and repeat this process. When the water guide frame moves horizontally, it drives the L-shaped push plate to move synchronously. At this time, the L-shaped push plate drives the inclined block plate to move synchronously. The inclined block plate uses the inclined surface to guide the water source remaining in the gap of the device body toward the center of the device body while dredging, so as to facilitate discharge by the drainage mechanism.

[0010] The L-shaped plate is fixed on the bottom of the water pipe, and the L-shaped plate is fixed on the bottom of the water pipe.

[0011] According to the above technical solution, the anti-pollution device includes a U-shaped frame, the outer wall of the U-shaped frame is fixedly installed on the side of the L-shaped plate away from the inclined block plate, a transmission wheel is rotatably installed on the side of the U-shaped frame away from the absorbent cotton, a reciprocating screw is fixedly installed on the side of the transmission wheel close to the absorbent cotton, and an activated carbon plate mechanism is penetrated and movably installed on the outer wall of the reciprocating screw.

[0012] According to the above technical solution, the outer wall of the transmission wheel contacts the bottom of the inner wall of the device body, the outer wall of the activated carbon plate mechanism is slidably installed on the inner wall of the U-shaped frame, and the bottom of the activated carbon plate mechanism is a symmetrical hollow design. When the L-shaped plate moves horizontally, it drives the U-shaped frame to move synchronously, and the U-shaped frame drives the transmission wheel to slide and rub along the bottom of the inner wall of the device body. At the same time, the transmission wheel starts to rotate with the help of friction and drives the reciprocating screw to rotate. When the reciprocating screw rotates, it drives the threaded activated carbon plate mechanism through the non-self-locking reciprocating spiral groove on its own outer wall, and moves along the inner wall of the U-shaped frame toward the absorbent cotton and resets, and repeats this process.

[0013] The U-shaped frame has a plurality of L-shaped friction plates fixedly installed on its inner wall at one end thereof close to the absorbent cotton, and a sliding block is slidably installed on the top of the inner wall of the activated carbon plate mechanism. The sliding block is located on the movement track of the L-shaped friction plate, and the outer wall of the sliding block is symmetrically and hingedly connected to a plurality of inclined plates by a torsion spring. The inclined plate is hingedly connected to a telescopic trapezoidal block on the side away from the absorbent cotton. The outer wall of the telescopic trapezoidal block contacts the inner wall of the activated carbon plate mechanism, and the U-shaped frame limits the L-shaped friction plate, and drives the sliding block to move synchronously during the movement of the activated carbon plate mechanism toward the absorbent cotton. At this time, the sliding block is resisted by the L-shaped resistance plate. As the activated carbon plate mechanism continues to move horizontally, the sliding block is prompted to slide along the top of the inner wall of the activated carbon plate mechanism away from the absorbent cotton. At this time, the sliding block drives the inclined plate to move synchronously. The inclined plate is limited by the telescopic trapezoidal block and its own hinge axis starts to rotate. At this time, the inclined plate starts to rotate with the hinge axis as the axis, pushing the telescopic end of the telescopic trapezoidal block to retract inward from its fixed end. At this time, an angle is formed between the inclined plate and the inclined surface of the telescopic trapezoidal block. At this time, the water source entering the activated carbon plate mechanism is dispersed and fully contacts the inside of the activated carbon plate mechanism.

[0014] The present invention provides an ecological landscape water purification device. It has the following beneficial effects:

[0015] (1) The present invention cooperates with an H-shaped nozzle, an electric rotating rod, a transmission mechanism, a vertical rod, a cover plate, a semicircular block, a cam, a water guide frame, a T-shaped plate and a resistance frame to achieve full coverage of plants by relying on the atomizing pipe and the H-shaped nozzle, and the water quality with improved oxygen content by bubbling is complementary to the plants, and the vegetation grows vigorously while purifying the water quality. At the same time, the cover plate and the semicircular block are used to improve the coverage effect of the water source on the vegetation, while reducing the adhesion of impurities in the water to the inner wall of the atomizing pipe nozzle, avoiding clogging of the nozzle, thereby reducing the water spray volume or making it difficult to discharge water, preventing damage to the equipment and poor water purification effect; at the same time, the reciprocating up and down movement of the landscape frame causes the excess water inside the landscape frame and on the surface of the plants to fall quickly, providing a suitable environment for the growth of plants, avoiding excessive humidity causing plant decay, and at the same time, the water guide frame guides the falling water flow in the center direction, preventing the water source from flowing to the edge gap of the device body and being difficult to discharge, thereby breeding mold and moss and eroding the roots of plants.

[0016] (2) The present invention further avoids residual water accumulation at the edge of the device body through the arrangement of the anti-flow device, through the coordination of the water guide frame, friction wheel, round rod, L-shaped push plate, inclined block plate, limit plate, absorbent cotton and L-shaped plate, thus preventing water from accumulating for a long time and causing the spread of mold, preventing the internal environment of the device body from being poor, and preventing the long-term erosion of plant roots by bacteria causing some plants to wither, thereby reducing the overall purification quality of the equipment; and relying on absorbent cotton to absorb microorganisms, preventing microorganisms from being discharged to the water source with the water flow for a second time, thereby making it difficult to effectively reduce the content of microorganisms in the water source, resulting in reduced water quality. At the same time, with the help of the L-shaped plate, the accumulation of water inside the device body is effectively avoided while the equipment is running.

[0017] (3) The present invention adopts the setting of anti-pollution device, and cooperates with L-shaped plate, U-shaped frame, transmission wheel, reciprocating screw, activated carbon plate mechanism, L-shaped resistance plate, sliding block, inclined plate and telescopic trapezoidal block, and relies on the activated carbon plate mechanism to uniformly contact and filter the water source pushed by the inclined plate and L-shaped plate, and uses activated carbon to purify metal pollutants or other harmful substances in the water, so as to avoid pollutants aggravating the deterioration of water quality and affecting the reproduction of aquatic organisms, and prevent the imbalance of the ecological environment in the water; at the same time, the inclined plate and telescopic trapezoidal block enable the water source to be diverted and purified, so as to avoid the accumulation of water source and difficulty in dispersion, thereby reducing the purification effect of harmful components, and at the same time, the telescopic trapezoidal block blocks the inner edge of the activated carbon plate mechanism to prevent water flow from entering the inner part of the activated carbon plate mechanism and causing pollution to it, thereby shortening its service life. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 A schematic diagram of the present invention as a whole;

[0019] Figure 2 A schematic cross-sectional view of the present invention as a whole;

[0020] Figure 3 This is a schematic diagram of the peripheral structure of the electric rotating rod of the present invention;

[0021] Figure 4 This is a bottom perspective diagram of the peripheral structure of the electric rotating rod of the present invention;

[0022] Figure 5 Schematic diagram of the anti-flow accumulation device of the present invention;

[0023] Figure 6 This is a schematic diagram of the anti-flow accumulation device from the left side of the present invention;

[0024] Figure 7 Schematic diagram of the anti-pollution device of the present invention;

[0025] Figure 8 For the present invention Figure 7 A schematic diagram of the structure at center A;

[0026] Figure 9 This is a schematic diagram of the anti-pollution device from the bottom perspective of the present invention.

[0027] In the figure: 1. Device body; 2. Landscape frame; 3. Floating block assembly; 4. Water pump; 5. Atomizing pipe; 6. Drainage mechanism; 7. H-shaped nozzle; 8. Electric rotating rod; 9. Transmission mechanism; 10. Vertical rod; 11. Cover plate; 12. Semicircular arc block; 13. Cam; 14. Water guide frame; 15. T-shaped plate; 16. Interference frame; 17. Anti-flow device; 171. Friction wheel; 172. Round rod; 173. L-shaped push plate; 174. Inclined block; 175. Limiting plate; 176. Water-absorbing cotton; 177. L-shaped plate; 18. Anti-pollution device; 181. U-shaped frame; 182. Transmission wheel; 183. Reciprocating screw; 184. Activated carbon plate mechanism; 185. L-shaped interference plate; 186. Sliding block; 187. Inclined plate; 188. Telescopic trapezoidal block. DETAILED DESCRIPTION

[0028] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0029] See also Figures 1-9 One embodiment of the present invention is: an ecological landscape water purification device, including a device body 1, a landscape frame 2 is provided inside the device body 1, a plurality of floating block assemblies 3 are equidistantly provided inside the landscape frame 2, a water pump 4 is provided at the center of the bottom inner wall of the device body 1, an atomizing pipe 5 is fixedly installed on the top of the output end of the water pump 4, an electric rotating rod 8 is rotatably installed on the bottom inner wall of the device body 1, a reciprocating spiral groove of the electric rotating rod 8 passes through the outer wall and a transmission mechanism 9 is movably installed, two vertical rods 10 are symmetrically and fixedly installed on the top of the transmission mechanism 9, and the vertical rods 10 A cover plate 11 is fixedly installed on the top, a semicircular arc block 12 is fixedly installed on the bottom of the cover plate 11, a cam 13 is fixedly installed on the outer wall of the bottom end of the electric rotating rod 8, and a water guide frame 14 is slidably installed on the inner walls of the front and back sides of the device body 1 through a spring. An anti-flow device 17 is provided below the water guide frame 14 to prevent water from accumulating in the gap. An anti-flow device 17 is provided around the anti-flow device 17 for secondary purification of the water source in the gap. A T-shaped plate 15 is fixedly installed inside the right end of the water guide frame 14, and a resistance frame 16 is fixedly installed on the bottom right end of the landscape frame 2.

[0030] The left and right ends of the device body 1 are respectively provided with a water inlet pipe and a drain pipe, a horizontal groove is provided at the bottom of the float block assembly 3, a micro-bubble generator is provided inside the atomizing pipe 5, a drainage mechanism 6 is fixedly installed on the left end of the drain pipe, and an H-shaped nozzle 7 is provided between adjacent float block assemblies 3. The bottom of the H-shaped nozzle 7 is connected to the top of the water inlet pipe through a telescopic pipe, a reciprocating spiral groove is provided on the top of the outer wall of the electric rotating rod 8, the left end of the transmission mechanism 9 passes through and is slidably installed on the outer wall of the atomizing pipe 5, the outer wall of the semicircular arc block 12 contacts the inner wall of the atomizing pipe 5, the outer wall of the bottom end of the T-shaped plate 15 contacts the outer wall of the cam 13, and the bottom of the abutment frame 16 is located on the motion trajectory of the top of the T-shaped plate 15. Through the above cooperation, the atomizing pipe 5 and the H-shaped nozzle 7 are relied on to achieve full coverage of the plants, and The bubbling improves the water quality with oxygen content and complements the plants. The vegetation thrives while purifying the water quality. At the same time, the cover plate 11 and the semicircular arc block 12 improve the coverage effect of the water source on the vegetation, while reducing the adhesion of impurities in the water to the inner wall of the nozzle of the atomizing tube 5, avoiding clogging of the nozzle, thereby reducing the water spray volume or making it difficult to discharge water, preventing equipment damage and poor water purification effect; through the above cooperation, the reciprocating up and down movement of the landscape frame 2 causes the excess water inside the landscape frame 2 and on the surface of the plants to fall quickly, providing a suitable environment for the growth of plants, avoiding excessive humidity causing plant decay, and at the same time, the water guide frame 14 guides the falling water flow in the center direction to prevent the water source from flowing into the gap at the edge of the device body 1 and being difficult to discharge, thereby breeding mold and moss and eroding the roots of plants.

[0031] During use, the roots of the landscape aquatic plants pass through the horizontal groove at the bottom of the float assembly 3 and through the landscape frame 2 into the interior of the device body 1, and then the water pump 4 is started. The water pump 4 pumps water from the river through the water inlet pipe, and the water inlet pipe transports a part of the pumped water to the H-shaped nozzle 7 through the telescopic tube. The H-shaped nozzle 7 sprays the water transported by the telescopic tube upward through its own nozzle. After the water flows down, it contacts the plants to purify the water quality. At the same time, the electric rotating rod 8 is started, and the electric rotating rod 8 rotates along the bottom of the inner wall of the device body 1. The electric rotating rod 8 drives the threaded transmission mechanism 9 to slide back and forth upward along the outer wall of the atomizing tube 5 through the reciprocating spiral groove on the outer wall and resets. The transmission mechanism 9 drives the vertical rod 10 to move synchronously, and the vertical rod 10 drives the cover plate 11 to move synchronously. The cover plate 11 indirectly covers and blocks the water source flowing inside the atomizing tube 5, thereby increasing the water pressure. Then, the cover plate 11 drives the semi-circular arc block 12 to move upward from the inside of the atomizing tube 5 and in the process of resetting, the semi-circular arc block 12 scrapes the inner wall of the atomizing tube 5, and the semi-circular arc block 12 guides the upwardly sprayed water source to the surrounding areas in a fountain-like manner through its own arc surface during the gradual rise, that is, the coverage range of the green plants in the surrounding floating block assembly 3 is from far to near, and the micro-bubble generator inside the atomizing tube 5 prompts the water source transported inside itself to generate tiny bubbles to increase the oxygen concentration of the water quality and optimize the water purification effect. The falling water then falls into the inside of the device body 1 through the horizontal groove, and is discharged through the drainage mechanism 6 and the drainage pipe. The upper part cooperates with the atomizing tube 5 and the H-shaped nozzle 7 to achieve full coverage of the plants, and the water quality with improved oxygen content by bubbling complements the plants, and the vegetation thrives while purifying the water quality. At the same time, the cover plate 11 and the semicircular arc block 12 improve the coverage effect of the water source on the vegetation, while reducing the adhesion of impurities in the water to the inner wall of the nozzle of the atomizing tube 5, avoiding clogging of the nozzle, thereby reducing the water spray volume or making it difficult to discharge water, preventing equipment damage and poor water purification effect; the electric rotating rod 8 drives the cam 13 to rotate when it rotates, and the outer wall of the cam 13 resists the bottom circular surface of the T-shaped plate 15 when it rotates. As the cam 13 resists, the T-shaped plate 15 drives the water guide frame 14 to slide horizontally along the inner wall of the device body 1, and the water guide frame 14 will pass the falling water through the arc surface. The water flows to the center of the device body 1, and then the water guide frame 14 is reset by the spring. At the same time, the top of the T-shaped plate 15 contacts the resistance frame 16 during the horizontal movement. At this time, the resistance frame 16 drives the landscape frame 2 to move upward with the help of the resistance force, and the landscape frame 2 drives the floating block assembly 3 to move synchronously. Then the landscape frame 2 and the floating block assembly 3 are reset by self-realignment, and so on. Through the above cooperation, the reciprocating up and down movement of the landscape frame 2 causes the excess water inside the landscape frame 2 and on the surface of the plant to fall quickly, providing a suitable environment for the growth of plants and avoiding excessive humidity causing plant decay. At the same time, the water guide frame 14 guides the falling water flow in the center direction to prevent the water source from flowing to the edge gap of the device body 1 and being difficult to discharge, thereby breeding mold and moss and eroding the roots of plants.

[0032] See also Figures 1-9On the basis of the above embodiment, another embodiment of the present invention further includes an anti-flow accumulation device 17;

[0033] The anti-flow device 17 includes two friction wheels 171. The tops of the two friction wheels 171 are symmetrical and rotatably mounted on the bottom edge of the water guide frame 14. A round rod 172 is fixedly mounted on the bottom of the friction wheel 171. The outer wall of the spiral groove of the round rod 172 passes through and is spirally connected with an L-shaped push plate 173. The bottom of the L-shaped push plate 173 is fixedly mounted with an inclined block plate 174 near the axis of the device body 1.

[0034] The outer wall of the friction wheel 171 contacts the inner wall of the device body 1, and a non-self-locking spiral groove is provided at the bottom end of the round rod 172. The above cooperation further prevents water from remaining on the edge of the device body 1, prevents the long-term accumulation of water and the spread of mold, prevents the internal environment of the device body 1 from being poor, and prevents the long-term erosion of plant roots by bacteria, causing some plants to wither, thereby reducing the overall purification quality of the equipment.

[0035] A limiting plate 175 is slidably installed inside the L-shaped push plate 173, and the top of the limiting plate 175 is fixedly installed at the bottom edge of the water guide frame 14. A water-absorbing cotton 176 is fixedly installed at the bottom of the L-shaped push plate 173, and the left end of the water-absorbing cotton 176 is in contact with the outer wall of the limiting plate 175. An L-shaped plate 177 is fixedly installed on the side of the limiting plate 175 close to the inclined block plate 174, and the bottom of the L-shaped plate 177 is in contact with the bottom of the inner wall of the device body 1. Through the above cooperation, the microorganisms are absorbed by the water-absorbing cotton 176 to prevent the microorganisms from being discharged to the water source for a second time with the water flow, which makes it difficult to effectively reduce the content of microorganisms in the water source, resulting in reduced water quality. At the same time, with the help of the push of the L-shaped plate 177, water accumulation inside the device body 1 is effectively avoided while the equipment is running.

[0036] When the water guide frame 14 is in use, the horizontal movement of the water guide frame 14 drives the friction wheel 171 to move synchronously along the inner wall of the device body 1 to generate friction force. The friction wheel 171 rotates by the friction force and drives the round rod 172 to rotate. When the round rod 172 rotates, it drives the L-shaped push plate 173 to slide downward along the inner wall of the device body 1 through the spiral groove and wipes the angle gap of the inner wall of the device body 1. Then, when the water guide frame 14 is reset, it drives the friction wheel 171 to reset. At this time, the round rod 172 reverses and drives the L-shaped push plate 173 to reset and reciprocate. And when the water guide frame 14 is translated, it drives the L-shaped push plate 173 to move synchronously. At this time, the L-shaped push plate 173 drives the inclined plate 174 to move synchronously. The inclined plate 174 guides the water source remaining in the gap of the device body 1 toward the center direction of the device body 1 through the inclined surface, which is convenient for the drainage mechanism 6 to discharge. Through the above cooperation, water accumulation at the edge of the device body 1 is further avoided, water quality is prevented from being accumulated for a long time, resulting in the growth and spread of mold, and the internal environment of the device body 1 is prevented from being poor. The long-term erosion of plant roots by the antibacterial body causes some plants to wither, thereby reducing the overall purification quality of the equipment; the downward movement of the L-shaped push plate 173 drives the limit plate 175 and the absorbent cotton 176 to move synchronously. The bottom of the absorbent cotton 176 is resisted by the bottom of the inner wall of the device body 1, and is deformed under the pressure of the L-shaped push plate 173, and the limit plate 175 is close to one side of the absorbent cotton 176. At this time, the absorbent cotton 176 wipes off the residual water stains and microorganisms in the edge of the device body 1 in a deformed posture. At the same time, the limit plate 175 drives the L-shaped plate 177 to move synchronously. The L-shaped plate 177 pushes the water source at the bottom of the inner wall of the device body 1 toward the drainage mechanism 6. Through the above cooperation, the absorbent cotton 176 absorbs the microorganisms to prevent the microorganisms from being discharged to the water source with the water flow for the second time, which makes it difficult to effectively reduce the content of microorganisms in the water source, resulting in reduced water quality. At the same time, with the help of the push of the L-shaped plate 177, the water source inside the device body 1 is effectively avoided while the equipment is running.

[0037] See also Figures 1-9 , based on the above embodiment, another embodiment of the present invention further includes an anti-pollution device 18;

[0038] The anti-pollution device 18 includes a U-shaped frame 181, the outer wall of the U-shaped frame 181 is fixedly installed on the side of the L-shaped plate 177 away from the inclined block plate 174, and a transmission wheel 182 is rotatably installed on the side of the U-shaped frame 181 away from the absorbent cotton 176. A reciprocating screw rod 183 is fixedly installed on the side of the transmission wheel 182 close to the absorbent cotton 176, and an activated carbon plate mechanism 184 is penetrated and movably installed on the outer wall of the reciprocating screw rod 183.

[0039] The outer wall of the transmission wheel 182 contacts the bottom of the inner wall of the device body 1, and the outer wall of the activated carbon plate mechanism 184 is slidably installed on the inner wall of the U-shaped frame 181, and the bottom of the activated carbon plate mechanism 184 is a symmetrical hollow design. Through the above cooperation, the activated carbon plate mechanism 184 is used to uniformly contact and filter the water source pushed by the inclined block plate 174 and the L-shaped plate 177, and the metal pollutants or other harmful substances in the water are purified with the help of activated carbon, so as to avoid pollutants from aggravating the deterioration of water quality and affecting the reproduction of aquatic organisms, thereby preventing the imbalance of the ecological environment in the water.

[0040] The U-shaped frame 181 is symmetrically and fixedly installed with several L-shaped resistance plates 185 on the inner wall near one end of the absorbent cotton 176. A sliding block 186 is slidably installed on the top of the inner wall of the activated carbon plate mechanism 184. The sliding block 186 is located on the movement trajectory of the L-shaped resistance plate 185. The outer wall of the sliding block 186 is symmetrically and hinged with several inclined plates 187 through a torsion spring. The inclined plate 187 is hinged with a telescopic trapezoidal block 188 on the side away from the absorbent cotton 176. The outer wall of the telescopic trapezoidal block 188 is in contact with the inner wall of the activated carbon plate mechanism 184. Through the above cooperation, the inclined plate 187 and the telescopic trapezoidal block 188 can divert and purify the water source, avoid the water source from gathering and being difficult to disperse, thereby reducing the purification effect of harmful components. At the same time, the telescopic trapezoidal block 188 blocks the inner edge of the activated carbon plate mechanism 184 to prevent water from entering the activated carbon plate mechanism 184 and polluting it, thereby shortening its service life.

[0041] When in use, the L-shaped plate 177 drives the U-shaped frame 181 to move synchronously when it moves horizontally, and the U-shaped frame 181 drives the transmission wheel 182 to slide and rub along the bottom of the inner wall of the device body 1. At the same time, the transmission wheel 182 starts to rotate by friction and drives the reciprocating screw 183 to rotate. When the reciprocating screw 183 rotates, it drives the threaded activated carbon plate mechanism 184 through the non-self-locking reciprocating spiral groove on its outer wall to move along the inner wall of the U-shaped frame 181 toward the direction close to the absorbent cotton 176 and reset, and so on. The activated carbon plate mechanism 184 is used to uniformly contact and filter the water source pushed by the inclined plate 174 and the L-shaped plate 177, and the metal pollutants or other harmful substances in the water are purified by the activated carbon, so as to prevent the pollutants from aggravating the deterioration of water quality and affecting the reproduction of aquatic organisms, thereby preventing the imbalance of the ecological environment in the water; at the same time, the U-shaped frame 181 limits the L-shaped contact plate 185, and in the process of the activated carbon plate mechanism 184 moving toward the absorbent cotton 176, the sliding block 186 is driven to move synchronously. At this time, the sliding block 186 is The L-shaped contact plate 185 is in conflict with the activated carbon plate mechanism 184, and as the activated carbon plate mechanism 184 continues to move horizontally, the sliding block 186 is prompted to slide along the top of the inner wall of the activated carbon plate mechanism 184 in the direction away from the absorbent cotton 176. At this time, the sliding block 186 drives the inclined plate 187 to move synchronously. The inclined plate 187 is limited by the telescopic trapezoidal block 188 and prompts its own hinge axis to start rotating. At this time, the inclined plate 187 starts to rotate with the hinge axis as the axis, pushing the telescopic end of the telescopic trapezoidal block 188 to retract towards its fixed end. At this time, the inclined plate 187 and the telescopic trapezoidal block 188 are in conflict. An angle is formed between the inclined surfaces of the block 188. At this time, the water source entering the activated carbon plate mechanism 184 is dispersed and fully contacts the inside of the activated carbon plate mechanism 184. Through the above cooperation, the inclined plate 187 and the telescopic trapezoidal block 188 enable the water source to be diverted and purified, avoiding the water source from gathering and being difficult to disperse, thereby reducing the purification effect of harmful components. At the same time, the telescopic trapezoidal block 188 blocks the internal edge part of the activated carbon plate mechanism 184 to prevent water from entering the activated carbon plate mechanism 184 and causing pollution to it, thereby shortening its service life.

[0042] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. An ecological landscape water purification device, comprising a device body (1), characterized in that: The device body (1) is provided with a landscape frame (2) inside, and a plurality of floating block assemblies (3) are provided at equal intervals inside the landscape frame (2). A water pump (4) is provided at the center of the bottom inner wall of the device body (1), and an atomizing tube (5) is fixedly installed on the top of the output end of the water pump (4). An electric rotating rod (8) is rotatably installed at the bottom inner wall of the device body (1), and a transmission mechanism (9) is movably installed on the outer wall of the reciprocating spiral groove of the electric rotating rod (8). Two vertical rods (10) are symmetrically and fixedly installed on the top of the transmission mechanism (9). A cover plate (11) is fixedly installed on the top of the vertical rod (10), and a semicircular arc block (12) is fixedly installed on the bottom of the cover plate (11). A cam (13) is fixedly installed on the outer wall of the bottom end of the electric rotating rod (8). The inner walls of the front and back sides of the main body (1) are slidably mounted with water guide frames (14) via springs. An anti-accumulation device (17) is provided below the water guide frame (14) to prevent water from accumulating in the gap. An anti-pollution device (18) for secondary purification of the water source in the gap is provided around the anti-accumulation device (17). A T-shaped plate (15) is fixedly mounted inside the right end of the water guide frame (14). A resistance frame (16) is fixedly mounted at the bottom of the right end of the landscape frame (2). The left end of the transmission mechanism (9) penetrates and is slidably mounted on the outer wall of the atomizing tube (5). The outer wall of the semicircular block (12) contacts the inner wall of the atomizing tube (5). The outer wall of the bottom end of the T-shaped plate (15) contacts the outer wall of the cam (13). The bottom of the resistance frame (16) is located on the motion track of the top of the T-shaped plate (15). The anti-flow accumulation device (17) comprises two friction wheels (171), the tops of the two friction wheels (171) are symmetrical and rotatably mounted on the bottom edge of the water guide frame (14), a round rod (172) is fixedly mounted on the bottom of the friction wheel (171), an L-shaped push plate (173) is passed through and spirally connected to the outer wall of the spiral groove of the round rod (172), an inclined block plate (174) is fixedly mounted on the bottom of the L-shaped push plate (173) near the axis of the device body (1), the outer wall of the friction wheel (171) contacts the inner wall of the device body (1), and a non-self-locking spiral groove is opened at the bottom end of the round rod (172).

2. The ecological landscape water purification device according to claim 1, characterized in that: The left and right ends of the device body (1) are respectively provided with a water inlet pipe and a drain pipe, a transverse groove is provided at the bottom of the float block assembly (3), a micro-bubble generator is provided inside the atomizing pipe (5), a drain mechanism (6) is fixedly installed at the left end of the drain pipe, and an H-shaped nozzle (7) is provided between adjacent ones of the float block assemblies (3), the bottom of the H-shaped nozzle (7) is connected to the top of the water inlet pipe through a telescopic pipe, and a reciprocating spiral groove is provided at the top of the outer wall of the electric rotating rod (8).

3. The ecological landscape water purification device according to claim 1, characterized in that: A limiting plate (175) is slidably installed inside the L-shaped push plate (173), the top of the limiting plate (175) is fixedly installed at the bottom edge of the water guide frame (14), and a water-absorbing cotton (176) is fixedly installed at the bottom of the L-shaped push plate (173), and the left end of the water-absorbing cotton (176) is in contact with the outer wall of the limiting plate (175). An L-shaped plate (177) is fixedly installed on the side of the limiting plate (175) close to the inclined block plate (174), and the bottom of the L-shaped plate (177) is in contact with the bottom of the inner wall of the device body (1).

4. The ecological landscape water purification device according to claim 3, characterized in that: The anti-pollution device (18) comprises a U-shaped frame (181), the outer wall of the U-shaped frame (181) being fixedly mounted on a side of the L-shaped plate (177) away from the inclined block plate (174), a transmission wheel (182) being rotatably mounted on a side of the U-shaped frame (181) away from the absorbent cotton (176), a reciprocating screw rod (183) being fixedly mounted on a side of the transmission wheel (182) close to the absorbent cotton (176), and an activated carbon plate mechanism (184) being movably mounted through the outer wall of the reciprocating screw rod (183).

5. The ecological landscape water purification device according to claim 4, characterized in that: The outer wall of the transmission wheel (182) contacts the bottom of the inner wall of the device body (1), the outer wall of the activated carbon plate mechanism (184) is slidably mounted on the inner wall of the U-shaped frame (181), and the bottom of the activated carbon plate mechanism (184) is symmetrically hollowed out.

6. The ecological landscape water purification device according to claim 5, characterized in that: The inner wall of the U-shaped frame (181) is symmetrically and fixedly mounted with a plurality of L-shaped abutment plates (185) at one end close to the absorbent cotton (176). A sliding block (186) is slidably mounted on the top of the inner wall of the activated carbon plate mechanism (184). The sliding block (186) is located on the movement trajectory of the L-shaped abutment plate (185). The outer wall of the sliding block (186) is symmetrically and hinged with a plurality of inclined plates (187) via a torsion spring. The side of the inclined plate (187) away from the absorbent cotton (176) is hinged with a telescopic trapezoidal block (188). The outer wall of the telescopic trapezoidal block (188) contacts the inner wall of the activated carbon plate mechanism (184).

Citation Information

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