Multi-sensor environment adaptability habitat management device applied to wild animal protection
By using a multi-sensor environmental adaptability habitat management device to monitor and adjust environmental parameters in real time, the problem of lagging habitat improvement effects in wildlife conservation has been solved. This has improved the stability and suitability of the habitat environment, extended the working time of the device, and enhanced the resilience and ecological support capacity of the habitat.
Patent Information
- Application Number
- CN202511686134.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-18
- Publication Date
- 2025-12-26
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing technologies for improving habitat quality in wildlife conservation through targeted application of environmental modifiers suffer from problems such as delayed improvement effects, excessive or insufficient intervention in certain areas.
The device employs a multi-sensor environmentally adaptive habitat management system. It monitors environmental parameters in real time through soil sensors, humidity sensors, and temperature sensors. The system drives a motor to stir the conditioning agent with a stirring rod and sprays it onto the soil through a spraying assembly. Combined with a rainwater filtration and automatic replenishment system, it achieves real-time adjustment and uniform improvement of environmental parameters.
It enhances the stability and suitability of the habitat environment, provides a continuously suitable growth environment, extends the working time of the device, strengthens the resilience and ecological support capacity of the habitat, and supports the healthy development of wildlife.
Smart Images

Figure CN121195652A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of wild animal protection, in particular to a multi-sensor environment adaptive habitat management device applied to wild animal protection. BACKGROUND
[0002] Wild animal protection refers to a systematic action carried out through multiple means such as legal regulation, in-situ protection, ex-situ protection, monitoring and supervision, crackdown on illegal trade and popularization and publicity, with the core purpose of maintaining biodiversity, ensuring the integrity and stability of the ecological system and realizing the harmonious coexistence of man and nature, for wild animals and their natural habitats facing survival threats due to habitat destruction, poaching and plundering, environmental pollution, climate change and invasion of alien species, and is widely applied in the fields of nature protection, ecological restoration and biological safety control. The protection process needs to follow the principles of ecology and avoid excessive artificial intervention, focusing on rescuing critically endangered species to prevent extinction and also paying attention to maintaining the balance of the entire ecological chain.
[0003] Related wild animal protection technology improves habitat quality by point release of environment modifiers, but the existing technology relies on artificial periodic operation, lacks comprehensive perception and rapid response capability for real-time changes of soil physical and chemical indicators, and the release of modifiers often has uneven distribution and poor timeliness, resulting in delayed habitat environment improvement effect, excessive intervention or insufficient intervention in local areas. SUMMARY
[0004] In view of the deficiencies of the prior art, the present application provides a multi-sensor environment adaptive habitat management device applied to wild animal protection, which solves the problem of delayed habitat environment improvement effect, excessive intervention or insufficient intervention in local areas caused by related wild animal protection technology improving habitat quality by point release of environment modifiers.
[0005] To achieve the above purpose, the present application is realized by the following technical scheme: a multi-sensor environment adaptive habitat management device applied to wild animal protection, comprising an outer shell, a soil sensor fixedly connected to the outside of the outer shell, a humidity sensor fixedly connected to the upper side of the outer shell, a temperature sensor fixedly connected to the outside of the outer shell, a material inlet fixedly connected to the side wall of the outer shell, a drive motor fixedly connected to the inside of the outer shell, an output end of the drive motor fixedly connected to a rotating rod, the rotating rod rotatably connected to the inside of the outer shell, a stirring rod fixedly connected to the outside of the rotating rod, and a spraying assembly provided on the side wall of the outer shell.
[0006] By adopting the technical scheme, the device firstly fills the soil conditioner into the shell through the feeding opening, and then the soil sensor and the humidity sensor on the shell body monitor the surrounding soil, temperature and air humidity in real time; when the parameters are abnormal, the internal driving motor starts and drives the rotating rod and the stirring rod to uniformly stir the conditioner, and the spraying assembly sprays the reagent to the surrounding soil, so as to adjust the soil nutrients and air temperature and humidity, and then automatically stops when the environmental parameters return to normal, so that the stability and suitability of the habitat environment can be improved.
[0007] Preferably, the spraying assembly comprises a water pump, an inner part of the water pump is provided with a water delivery pipe, one end of the water delivery pipe is fixedly connected with a spray head, and the outer part of the water delivery pipe is arranged in the inner part of the shell, and the outer part of the spray head is arranged in the inner part of the shell.
[0008] Preferably, the outer part of the shell is fixedly connected with a flow guide block, the inner part of the flow guide block is fixedly connected with a filter block, and the inner part of the filter block is provided with a filter hole.
[0009] Preferably, the outer part of the flow guide block is fixedly connected with a water feeding block, and the inner part of the water feeding block is provided with a water feeding groove.
[0010] Preferably, the inner part of the shell is fixedly connected with a limiting block one, the side wall of the shell is fixedly connected with a limiting block two, the inner part of the limiting block one is provided with a return spring, and one end of the return spring is provided with a floating ball.
[0011] Preferably, the outer part of the floating ball is arranged in the inner part of the limiting block two, and the outer part of the floating ball is arranged in the inner part of the shell.
[0012] Preferably, the inner part of the flow guide block is fixedly connected with a positioning block, the side wall of the positioning block is rotatably connected with a shielding block, the outer part of the positioning block is fixedly connected with a limiting block three, and the outer part of the shielding block is arranged on the outer part of the limiting block three.
[0013] Preferably, the inner part of the positioning block is rotatably connected with a transmission ball, and the left side of the transmission ball is fixedly connected with a transmission block one.
[0014] Preferably, the side wall of the transmission block one is rotatably connected with a guide rod, one end of the guide rod is fixedly connected with a floating block, and the outer part of the guide rod is arranged on the side wall of the transmission block one.
[0015] Preferably, the right side of the transmission ball is fixedly connected with a transmission block two, the outer side of the transmission block two is provided with a trigger block, and the outer part of the trigger block is fixedly connected to the side wall of the shielding block.
[0016] Working principle: through the installation on the surface of the soil sensor, humidity sensor and temperature sensor to monitor the environmental parameters continuously, when the data is abnormal, drive motor drive by rotating rod and stirring rod composition stirring mechanism operation, ensure the adjustment agent uniform mixing, at the same time, by the water pump, water pipe and spray head constitute the spray assembly reagent atomization and spray to the surrounding environment, this process can improve the soil nutrients, air humidity and temperature, improve the stability and suitability of habitat environment, and provide a sustainable suitable growth and activity environment for wild animals, support the healthy development of wild animal population effect.
[0017] When it rains, rainwater is preliminarily filtered and collected through the filter block and its filter holes arranged on the inclined guide block; through the cooperation of the floating block, guide rod, transmission ball, transmission block two and trigger block, the device can automatically control the flow direction according to the water level in the guide block: when the water level is low, the drive blocking block closes the inlet to prevent foreign matter; when the water level rises, the channel is opened, and the accumulated water can flow into the water feeding groove of the water feeding block to provide clean drinking water for birds; in heavy rain, this structure can also serve as a drainage channel to prevent equipment from being flooded, and enhance the self-adaptability and reliability in the wild environment.
[0018] When initially filled, the liquid adjusting agent makes the floating ball float up and block the water replenishment channel, and then the solid adjusting agent is deposited due to solution saturation; when the liquid level drops due to consumption of the liquid agent, the floating ball moves down under the action of the return spring, opening the channel to automatically flow into the collected rainwater; then, the drive motor starts the stirring function to promote the dissolution of the solid agent in the new replenishment water, thereby automatically restoring the concentration of the adjusting agent, prolonging the continuous working time of the device, and reducing the maintenance frequency.
[0019] The present application provides a kind of to be applied to wild animal protection multi-sensor environmental adaptability habitat management device.It has the following beneficial effects:
[0020] 1、the present application fills soil adjusting agent to the inside of shell by inlet, and when the parameter detected by soil sensor, humidity sensor and inlet installed on the surface of shell abnormally changes, the drive motor installed in the inside of shell is started and drives rotating rod to rotate, then rotating rod drives stirring rod to uniformly stir soil adjusting agent, and at the same time, spray assembly is started to spray reagent in the inside of shell to soil near the device, so that the stability and suitability of habitat environment quality can be improved, and then a sustainable suitable growth and activity environment for wild animals is provided, and the effect of supporting the healthy development of wild animal population is supported.
[0021] 2. In this invention, rainwater flows into the interior of the guide block along the filter holes evenly distributed on the surface of the filter block. At the same time, large impurities mixed in with the rainwater are isolated on the outside of the filter block. Subsequently, the rainwater flows into the accumulation along the inclined groove on the left side of the inside of the guide block. When the water level inside the guide block reaches a certain height, the accumulated water flows into the water trough on the water feeding block along the groove on the right side of the guide block, providing an emergency water source for wild birds. This can achieve the effects of recycling natural precipitation, maintaining water source cleanliness, and providing drinking water for wild animals, thereby enhancing the resilience and ecological support capacity of the habitat and increasing the survival probability of wild animals in changing environments.
[0022] 3. In this invention, when a certain amount of liquid soil conditioner is added into the shell through the inlet, after the soil conditioner inside the shell reaches a certain water level, the liquid surface causes the floating ball to slide. Then, the floating ball blocks the groove inside the shell, and then an excessive amount of solid soil conditioner is added into the shell through the inlet. As the device continuously consumes the liquid soil conditioner, the water level inside the shell drops, and the floating ball detaches from the groove inside the shell. At this time, the water accumulated inside the guide block flows into the shell through the groove to replenish the water source. Thus, it can achieve the effect of automatically replenishing the water source according to the consumption, continuously providing soil conditioner with a stable concentration, and extending the effective working time after a single filling.
[0023] 4. In this invention, when the water level inside the guide block is low, the floating block falls under its own weight. At this time, the floating block drives the guide rod to move down synchronously. Then, the guide rod presses down on the transmission block one to make it rotate. At the same time, the transmission block one drives the transmission ball to rotate. Then, the transmission block two rotates under the drive of the transmission ball. At this time, the transmission block two lifts the blocking block through the trigger block, and then the blocking block closes the positioning block. When the water level inside the guide block reaches a certain height, the liquid surface lifts the floating block to move up, and then the floating block drives the guide rod to move up synchronously. At this time, the blocking block drives the trigger block to press down on the transmission block two, and then exposes the groove on the right side of the guide block. The accumulated water flows into the water feeding block from the groove. When the rainfall is too heavy, the accumulated water inside the guide block can be discharged out in time through the water feeding block. This can achieve the effects of preventing foreign objects from entering the device during the dry season, providing drinking water for animals when the water level rises, and timely drainage in the event of heavy rain, thus preventing equipment damage. Attached Figure Description
[0024] Figure 1 This is a three-dimensional structural diagram of a multi-sensor environmentally adaptive habitat management device for wildlife conservation proposed in this invention;
[0025] Figure 2 This is a cross-sectional schematic diagram of the internal structure of a multi-sensor environmentally adaptive habitat management device for wildlife conservation proposed in this invention;
[0026] Figure 3A feeding water block local structure schematic view of a multi-sensor environment adaptability habitat management device applied to wild animal protection is provided in the present application;
[0027] Figure 4 A limiting block one local structure schematic view of a multi-sensor environment adaptability habitat management device applied to wild animal protection is provided in the present application;
[0028] Figure 5 An internal structure cross-sectional view of a flow guide block of a multi-sensor environment adaptability habitat management device applied to wild animal protection is provided in the present application;
[0029] Figure 6 A sheltering block local structure schematic view of a multi-sensor environment adaptability habitat management device applied to wild animal protection is provided in the present application;
[0030] Figure 7 An internal structure cross-sectional view of a positioning block of a multi-sensor environment adaptability habitat management device applied to wild animal protection is provided in the present application;
[0031] Figure 8 An internal structure cross-sectional view of a transmission block one of a multi-sensor environment adaptability habitat management device applied to wild animal protection is provided in the present application.
[0032] In the present application, 1 is an outer shell, 2 is a soil sensor, 3 is a humidity sensor, 4 is a temperature sensor, 5 is an inlet, 6 is a driving motor, 7 is a rotating rod, 8 is a stirring rod, 9 is a spraying assembly, 901 is a water pump, 902 is a water delivery pipe, 903 is a spray head, 10 is a flow guide block, 11 is a filter block, 12 is a filter hole, 13 is a feeding water block, 14 is a limiting block one, 15 is a limiting block two, 16 is a return spring, 17 is a floating ball, 18 is a positioning block, 19 is a sheltering block, 20 is a limiting block three, 21 is a transmission ball, 22 is a transmission block one, 23 is a guide rod, 24 is a floating block, 25 is a transmission block two, 26 is a trigger block, and 27 is a feeding water tank. DETAILED DESCRIPTION
[0033] The technical solutions of the present application will be described clearly and completely below in combination with the drawings of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the present application.
[0034] Please refer to the drawings of the present application Figure 1 The drawings of the present application Figure 2The embodiment of the present application provides a multi-sensor environmental adaptability habitat management device applied to wild animal protection, which comprises a shell 1, a soil sensor 2 fixedly connected to the outside of the shell 1, a humidity sensor 3 fixedly connected to the upper side of the shell 1, a temperature sensor 4 fixedly connected to the outside of the shell 1, a feeding port 5 fixedly connected to the side wall of the shell 1, a driving motor 6 fixedly connected to the inside of the shell 1, a rotating rod 7 fixedly connected to the output end of the driving motor 6, the outside of the rotating rod 7 being rotatably connected to the inside of the shell 1, a stirring rod 8 fixedly connected to the outside of the rotating rod 7, and a spraying assembly 9 arranged on the side wall of the shell 1.
[0035] Specifically, first, the soil conditioner is filled into the inside of the shell 1 through the feeding port 5, and the soil sensor 2, the humidity sensor 3 and the feeding port 5 installed on the surface of the shell 1 monitor the changes of the soil, temperature and air humidity near the device in real time, when the abnormal change of the parameters is detected, the driving motor 6 installed in the inside of the shell 1 is started, at this time, the driving motor 6 drives the rotating rod 7 to rotate in the inside of the shell 1, then the rotating rod 7 drives the stirring rod 8 to uniformly stir the soil conditioner in the inside of the shell 1, and the spraying assembly 9 is started to spray the reagent in the inside of the shell 1 to the soil near the device, so that the soil nutrient content, air humidity and temperature are synchronously adjusted, when the parameters return to normal, the driving motor 6 and the spraying assembly 9 are turned off, so that the stability and suitability of the habitat environment quality can be improved, and a sustainable suitable growth and activity environment for wild animals is provided, and the healthy development of the wild animal population is supported.
[0036] Referring to the accompanying drawings Figure 2 The spraying assembly 9 comprises a water pump 901, a water delivery pipe 902 arranged in the inside of the water pump 901, a spray head 903 fixedly connected to one end of the water delivery pipe 902, the water delivery pipe 902 being arranged in the inside of the shell 1, and the spray head 903 being arranged in the inside of the shell 1.
[0037] Specifically, the soil conditioner in the inside of the shell 1 is transmitted to the spray head 903 through the water delivery pipe 902 by starting the water pump 901, at this time, the soil conditioner is sprayed to the soil around the device by the spray head 903 to supplement the soil nutrients.
[0038] Referring to the accompanying drawings Figure 3 and the accompanying drawings Figure 5 The shell 1 is fixedly connected with a flow guide block 10, the flow guide block 10 is fixedly connected with a filter block 11 in the inside, and a filter hole 12 is formed in the inside of the filter block 11; the flow guide block 10 is fixedly connected with a water feeding block 13, and a water feeding groove 27 is formed in the inside of the water feeding block 13.
[0039] Specifically, when the device is in the area of rainfall, rainwater flows into the inside of the guide block 10 along the filter holes 12 evenly opened on the surface of the filter block 11, while the large volume impurities mixed in the rainwater are isolated outside the filter block 11, and at the same time the left side of the guide block 10 is arranged obliquely, at this time the rainwater washes the impurities to make them separate from the filter block 11 to prevent the filter holes 12 from being blocked, and then the rainwater flows into the accumulation along the oblique grooves opened on the left side of the inside of the guide block 10, when the water level in the inside of the guide block 10 reaches a certain height, the accumulated water flows into the water feeding groove 27 opened in the water feeding block 13 along the grooves opened on the right side of the guide block 10, to provide emergency water source for wild birds, so as to achieve the effect of recycling natural precipitation, maintaining water source clean and providing drinking water for wild animals, thereby enhancing the resistance and ecological support capacity of the habitat, and improving the survival probability of wild animals in the changing environment.
[0040] Referring to the accompanying drawings Figure 2 and the accompanying drawings Figure 4 The inside of the shell 1 is fixedly connected with a limiting block one 14, the side wall of the shell 1 is fixedly connected with a limiting block two 15, the inside of the limiting block one 14 is provided with a return spring 16, one end of the return spring 16 is provided with a floating ball 17, the outside of the floating ball 17 is arranged in the inside of the limiting block two 15, and the outside of the floating ball 17 is arranged in the inside of the shell 1.
[0041] Specifically, when the device is installed, a certain amount of liquid soil conditioner is put into the inside of the shell 1 through the feeding port 5, when the soil conditioner in the inside of the shell 1 reaches a certain water level, the liquid level drives the floating ball 17 to slide along the inside of the limiting block two 15, and at the same time the floating ball 17 extrudes the return spring 16, then the floating ball 17 blocks the groove opened on the right side of the inside of the shell 1, at this time the liquid soil conditioner is completely put in, and then excess solid soil conditioner is put into the inside of the shell 1 through the feeding port 5, while the liquid soil conditioner in the inside of the shell 1 reaches a saturated state and cannot dissolve the solid soil conditioner, resulting in that the solid soil conditioner is precipitated and stored in the inside of the shell 1, and as the device continuously consumes the liquid soil conditioner, the water level in the inside of the shell 1 decreases, and the floating ball 17 is separated from the groove opened on the right side of the inside of the shell 1, at this time the accumulated water in the inside of the guide block 10 flows into the inside of the shell 1 through the groove to supplement the water source, when the soil inductor 2, the humidity inductor 3 and the temperature inductor 4 detect the parameter change, the driving motor 6 is started to drive the rotating rod 7 and the stirring rod 8 to rotate, and the stirring solid soil conditioner promotes it to dissolve in the supplemented water source, so as to achieve the effect of automatically supplementing the water source according to the consumption situation, continuously providing the soil conditioner with stable concentration, and prolonging the effective working time after single filling.
[0042] Referring to the accompanying drawings Figure 5 and the accompanying drawings Figure 8The inner part of the flow guide block 10 is fixedly connected with a positioning block 18, the side wall of the positioning block 18 is rotatably connected with a shielding block 19, the outer part of the positioning block 18 is fixedly connected with a limiting block three 20, and the outer part of the shielding block 19 is arranged outside the limiting block three 20; the inner part of the positioning block 18 is rotatably connected with a transmission ball 21, the left side of the transmission ball 21 is fixedly connected with a transmission block one 22; the side wall of the transmission block one 22 is rotatably connected with a guide rod 23, one end of the guide rod 23 is fixedly connected with a floating block 24, and the outer part of the guide rod 23 is arranged on the side wall of the transmission block one 22; the right side of the transmission ball 21 is fixedly connected with a transmission block two 25, the outer side of the transmission block two 25 is provided with a trigger block 26, and the outer part of the trigger block 26 is fixedly connected on the side wall of the shielding block 19.
[0043] Specifically, when the water level in the flow guide block 10 is low, the floating block 24 falls under the action of gravity, at this time, the floating block 24 drives the guide rod 23 to move downward synchronously, then the guide rod 23 presses the transmission block one 22 to rotate around the transmission ball 21, at the same time, the transmission block one 22 drives the transmission ball 21 to rotate in the inner part of the positioning block 18, immediately, the transmission block two 25 rotates under the driving of the transmission ball 21, at this time, the transmission block two 25 lifts the shielding block 19 to the limiting block three 20 through the trigger block 26, and then the shielding block 19 closes the positioning block 18 to prevent foreign matters from entering the inner part of the flow guide block 10, when the water level in the flow guide block 10 reaches a certain height, the liquid surface lifts the floating block 24 to move upward, and then the floating block 24 drives the guide rod 23 to move upward synchronously, at this time, the shielding block 19 rotates under the influence of gravity and drives the trigger block 26 to press the transmission block two 25, and then the groove opened on the right side of the flow guide block 10 and connected with the water feeding block 13 is exposed, and then the accumulated water flows into the inner part of the water feeding block 13 from the groove, when the rainfall is too large, the accumulated water in the flow guide block 10 can be discharged to the outside in time through the water feeding block 13, so that the effects of preventing foreign matters from entering the inner part of the device in the dry season, providing drinking water for animals when the water level rises, and timely draining water in the rainstorm and preventing equipment damage can be achieved.
[0044] Although the embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A multi-sensor environmental adaptive habitat management device for application in wildlife conservation, characterized by, The utility model provides an automatic soil moisture and temperature control device, including the shell (1), the outside fixed connection of shell (1) has soil inductor (2), the upper side fixed connection of shell (1) has humidity inductor (3), the outside fixed connection of shell (1) has temperature inductor (4), the lateral wall fixed connection of shell (1) has the inlet (5), the inside fixed connection of shell (1) has drive motor (6), the output fixed connection of drive motor (6) has rotary rod (7), the outside rotary connection of rotary rod (7) is in the inside of shell (1), the outside fixed connection of rotary rod (7) has stirring rod (8), the lateral wall of shell (1) is provided with spray assembly (9).
2. The multi-sensor environmental adaptive habitat management device for wildlife conservation of claim 1, wherein, The spray assembly (9) includes a water pump (901), the inside of the water pump (901) is provided with a water pipe (902), one end of the water pipe (902) is fixedly connected with a spray head (903), the outside of the water pipe (902) is arranged in the inside of the shell (1), and the outside of the spray head (903) is arranged in the inside of the shell (1). 3.The multi-sensor environmental adaptive habitat management device for wildlife protection of claim 1, wherein, The outside of the shell (1) is fixedly connected with a flow guide block (10), the inside of the flow guide block (10) is fixedly connected with a filter block (11), and the inside of the filter block (11) is provided with a filter hole (12).
4. The multi-sensor environmental habitat management device for wildlife conservation of claim 3, wherein, The outside of the flow guide block (10) is fixedly connected with a water feeding block (13), and the inside of the water feeding block (13) is provided with a water feeding groove (27).
5. The multi-sensor environmental habitat management device for wildlife conservation of claim 1, wherein, The inside of the shell (1) is fixedly connected with a limiting block one (14), the lateral wall of the shell (1) is fixedly connected with a limiting block two (15), the inside of the limiting block one (14) is provided with a return spring (16), one end of the return spring (16) is provided with a floating ball (17).
6. The multi-sensor environmentally adaptable habitat management device for wildlife conservation of claim 5, wherein, The outside of the floating ball (17) is arranged in the inside of the limiting block two (15), and the outside of the floating ball (17) is arranged in the inside of the shell (1).
7. The multi-sensor environmental habitat management device for wildlife conservation of claim 3, wherein, The inside of the flow guide block (10) is fixedly connected with a positioning block (18), the lateral wall of the positioning block (18) is rotatably connected with a shielding block (19), the outside of the positioning block (18) is fixedly connected with a limiting block three (20), and the outside of the shielding block (19) is arranged outside the limiting block three (20).
8. The multi-sensor environmentally adaptable habitat management device for wildlife conservation of claim 7, wherein, The inside of the positioning block (18) is rotatably connected with a transmission ball (21), and the left side of the transmission ball (21) is fixedly connected with a transmission block one (22).
9. The multi-sensor environmentally adaptable habitat management device for wildlife conservation of claim 8, wherein, The lateral wall of the transmission block one (22) is rotatably connected with a guide rod (23), one end of the guide rod (23) is fixedly connected with a floating block (24), and the outside of the guide rod (23) is arranged on the lateral wall of the transmission block one (22). 10.The multi-sensor environmental adaptive habitat management device for wildlife protection of claim 8, wherein, The right side of the transmission ball (21) is fixedly connected with a transmission block two (25), the outside of the transmission block two (25) is provided with a trigger block (26), and the outside of the trigger block (26) is fixedly connected on the lateral wall of the shielding block (19).