Negative oxygen ion ecological liquid preparation equipment and method
By integrating cutting, cooking, filtering, drying and mixing into one negative oxygen ion ecological liquid preparation equipment, the problems of complicated preparation process and high cost have been solved, realizing efficient and low-cost preparation and quality control of negative oxygen ion ecological liquid.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-26
- Publication Date
- 2026-03-24
AI Technical Summary
The preparation of negative oxygen ion ecological liquid requires multiple instruments, the process is complicated, and it increases time and labor costs.
This invention provides a negative oxygen ion ecological liquid preparation device that integrates cutting, cooking, filtering, drying and mixing functions into one unit. It is controlled uniformly through a control panel. The device uses a cutting mechanism to crush Chinese herbal raw materials, a cooking mechanism to dissolve effective components, a filter screen to filter residues, a drying mechanism to dry residues, a stirring mechanism to mix powders, and ultrasonic and bubble stirring to accelerate the reaction.
This method enables the efficient preparation of negative oxygen ion ecological liquid, reduces equipment and labor costs, improves reaction rate and extraction efficiency, ensures product quality, and adjusts the preparation process through testing.
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Figure CN119548893B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of ecological liquid preparation technology, and particularly relates to a negative oxygen ion ecological liquid preparation device and method. Background Technology
[0002] Negative ion ecological liquid is a liquid with ecological effects and air purification functions. Its main characteristic is the release of negative ions, which positively impacts human health and the environment. Negative ion ecological liquid can effectively remove harmful substances such as formaldehyde and benzene from the air, improving indoor air quality. It also has a good effect on removing odors from new homes and new cars. Its preparation process requires multiple steps to ensure the quality and effectiveness of the final product. To obtain negative ion ecological liquid, specific preparation equipment and methods are needed.
[0003] In the preparation of negative ion ecological liquid, the raw materials need to be cooked, filtered, dried and mixed. At least two instruments are often required to participate in the preparation process. Many negative ion ecological liquid production formulas are also based on multiple devices. The production process is relatively complicated and increases time and labor costs.
[0004] Therefore, it is necessary to provide a device and method for preparing negative oxygen ion ecological liquid. Summary of the Invention
[0005] The main objective of this invention is to provide a negative oxygen ion ecological liquid preparation device and method. The preparation device can integrate cooking, filtration, drying and mixing, effectively solving the problems of the need for many instruments and the complicated production process, which increases time and labor costs. Based on this device, a new method for preparing negative oxygen ion ecological liquid is proposed. The raw materials used in this method are healthy and green, the process is simple and the cost is low.
[0006] To achieve the above objectives, the technical solution adopted by the present invention is as follows:
[0007] In a first aspect, the present invention provides a negative oxygen ion ecological liquid preparation device, including a cutting mechanism, a cooking mechanism, a drying mechanism, a filter screen, a stirring mechanism, a support leg, and a control panel. The stirring mechanism is disposed on the support leg, the drying mechanism is disposed on the stirring mechanism, the drying mechanism has a sliding groove inside, the filter screen is slidably connected to the drying mechanism through the sliding groove, the cooking mechanism is disposed on the drying mechanism, the cutting mechanism is disposed on the cooking mechanism, the stirring mechanism is also provided with a connecting frame, and the control panel is disposed on the connecting frame.
[0008] The above-mentioned technical solution of this application has at least the following technical effects: the cutting mechanism is used to cut and crush the Chinese herbal raw materials, further destroying the cell walls and making it easier to release the essential components inside the cells; the cooking mechanism can dissolve the effective components (such as alkaloids, flavonoids, glycosides, etc.) in the water by heating and boiling; the filtration mechanism allows the filtrate to enter the stirring mechanism, while the filter residue remains in the drying mechanism. After being dried by forced air, it can be taken out and ground and sieved, and then added to the stirring mechanism to accelerate the dissolution of powder in the raw materials, significantly improve the reaction rate and extraction efficiency, and at the same time reduce energy consumption and cost; the control panel is used to control the cooking and drying temperature, cutting spacing, ultrasonic power, etc.
[0009] In some embodiments, the cutting mechanism includes a cutting assembly, a cutting housing, and a first electric push cylinder. The cutting assembly includes a rotating roller, a blade, and a rotating motor. A groove is formed inside the cutting housing. The moving end of the first electric push cylinder is slidably connected to the groove. The other end of the first electric push cylinder is fixedly connected to the cutting housing. The rotating motor is disposed on the moving end of the first electric push cylinder. The rotating roller is coaxially driven to the output shaft of the rotating motor. The blade is disposed on the rotating roller. A rubber gasket is disposed on the end of the rotating motor away from the first electric push cylinder. Both the first electric push cylinder and the rotating motor are electrically connected to the control panel.
[0010] In some embodiments, the cooking mechanism includes a first heating element, a glass window, a cooking chamber, and a water drainage and storage assembly. The water drainage and storage assembly includes a first baffle, a rotating shaft, and a servo motor. The first heating element is disposed on the inner wall of the cooking chamber, the glass window is disposed on the cooking chamber, the servo motor is disposed in the cooking chamber, the rotating shaft is disposed on the servo motor, the first baffle is disposed on the rotating shaft, and a water inlet is also provided on the cooking chamber. A first sealing plug is provided on the water inlet. The first heating element and the servo motor are both electrically connected to the control panel.
[0011] In some embodiments, the drying mechanism includes a drying chamber, a fan, a heating element, a ventilation mesh, a second baffle, a second electric pusher cylinder, and an automatic scraping assembly. The automatic scraping assembly includes a scraper, a third electric pusher cylinder, and a support. A heat-generating chamber is formed inside the drying chamber. The fan and the heating element are disposed within the heat-generating chamber, with the fan closer to the outer wall of the drying chamber. The ventilation mesh is disposed on the heat-generating chamber and is flush with the inner wall of the drying chamber. The ventilation mesh has a groove, and the second baffle is slidably connected within the groove. The drying chamber also has an internal structure... The device has a groove, and the moving end of the second electric push cylinder is slidably connected to the groove, while the other end is fixedly connected to the drying chamber. The second baffle is fixedly connected to the moving end of the second electric push cylinder. The filter screen is slidably connected to the drying chamber. The third electric push cylinder is mounted on the bracket and abuts against the drying chamber. The scraper is bonded to the output end of the third electric push cylinder. As the output end of the third electric push cylinder moves, the bottom surface of the scraper slides on the surface of the filter screen. The fan, heating tube, second electric push cylinder, and third electric push cylinder are all electrically connected to the control panel.
[0012] In some embodiments, a rotating door is also provided on the side of the drying chamber, the rotating door is hinged to the drying chamber, and a door handle is also provided on the rotating door.
[0013] In some embodiments, a shelf is provided on the support leg, and an ultrasonic generator is provided on the shelf. The ultrasonic generator is electrically connected to the control panel.
[0014] In some embodiments, the stirring mechanism includes a stirring chamber, a second heating element, an ultrasonic vibrator, a water outlet pipe, and a stirring assembly. The stirring assembly includes an air pump, a rotating nozzle, and a stirring plate. The second heating element is disposed on the inner wall of the stirring chamber. The water outlet pipe and the ultrasonic vibrator are both disposed on the stirring chamber. The air pump is disposed on the stirring chamber. The rotating nozzle is disposed inside the stirring chamber and has a spiral groove. The stirring plate is disposed on the rotating nozzle. The ultrasonic vibrator is electrically connected to the ultrasonic generator. The stirring chamber has a sample inlet with a second sealing plug. The second heating element and the air pump are both electrically connected to the control panel.
[0015] In some embodiments, a portion of the mixing tank is composed of vibration isolation plates and a limit plate is provided on the inner wall of the mixing mechanism.
[0016] In some embodiments, temperature sensors are provided on the inner walls of the cooking chamber, drying chamber, and stirring chamber, and the temperature sensors are electrically connected to the control panel.
[0017] In some embodiments, when the rotary door is open, the drying chamber is externally connected to a grinding and conveying mechanism. The grinding and conveying mechanism includes a grinder, a spiral shaft, a rotary motor, a feeding plate, and a side plate. One end of the feeding plate is disposed on the grinder, and the other end of the feeding plate is movably connected to the drying chamber. The side plate is disposed on the feeding plate and abuts against the drying chamber. The rotary motor is disposed on the grinder, and one end of the spiral shaft is disposed on the rotary motor. The other end of the spiral shaft passes through the sample inlet and is movably connected to the stirring chamber.
[0018] Secondly, this invention provides a method for preparing a negative oxygen ion ecological liquid, the raw materials being honeysuckle, peppermint, phellodendron bark, sophora flower, dried chrysanthemum, sophora flavescens, tourmaline, vermiculite and hexagonal stone, with the following weight proportions: honeysuckle 2-4 parts, peppermint 3-4 parts, phellodendron bark 1-3 parts, sophora flower 1-2 parts, dried chrysanthemum 2-4 parts, sophora flavescens 5-7 parts, tourmaline 8-10 parts, vermiculite 6-8 parts and hexagonal stone 5-6 parts.
[0019] The specific manufacturing steps using the aforementioned negative oxygen ion ecological liquid preparation equipment are as follows:
[0020] S1. Collect water sources and store them for future use;
[0021] S2. Take honeysuckle, mint, phellodendron bark, sophora flower, dried chrysanthemum, and sophora flavescens. Pass the above raw materials through the cutting mechanism. According to the size of the raw materials, adjust the first electric push cylinder through the control panel to change the distance of the rotating rollers so that the raw materials are cut more thoroughly.
[0022] S3. The cut material is located in the cooking mechanism. Water collected in S1 is added through the water inlet. The temperature of the first heating element is adjusted through the control panel. The cooking liquid is observed through the glass window. Cooking is stopped when the cooking liquid changes color. At this time, the first baffle is in the closed state.
[0023] S4. Adjust the second electric pusher cylinder through the control panel to push the second baffle up until it completely covers the ventilation screen. Then control and open the first baffle. The cooking liquid enters the stirring mechanism through the filter screen. The solid residue of the raw material remains on the filter screen. Continue to control and pull down the second baffle to turn on the fan and heating tube to continuously dry the solid residue of the raw material.
[0024] S5. Open the rotating door, the servo motor controls the first baffle to return to the closed state, the output end of the third electric push cylinder moves, controls the scraper to slide on the filter screen, the scraper pushes the filter residue off the surface of the filter screen, slides out the filter screen and cleans the filter screen;
[0025] S6. Powdered tourmaline, vermiculite, and hexagonal stone are added to a grinder for grinding, crushing, and sieving. The mixture is then fed into a spiral shaft and placed in the stirring mechanism through the sample inlet. The temperature is controlled and increased, and the ultrasonic generator is turned on to promote the dissolution of the powdered tourmaline, vermiculite, and hexagonal stone, thereby increasing the reaction rate. At the same time, the air pump supplies air to the rotating nozzle, generating bubbles and driving the stirring plate to rotate, thus fully mixing the raw materials.
[0026] S7. Obtain the finished product from the water outlet pipe and test it.
[0027] As a further description of the above technical solution:
[0028] In step S1, water is collected and stored for future use. The collected water source is one or more of deep mountain spring water and groundwater.
[0029] In step S3, honeysuckle, peppermint, phellodendron bark, sophora japonica flower, dried chrysanthemum, and sophora flavescens are taken and placed in a steaming and cooking device. The temperature is raised to 80-100℃ and steamed for 25-30 minutes. The steaming liquid is stopped after it changes color.
[0030] In step S4, the residue is placed in a drying mechanism and subjected to a temperature of 60-70°C for continuous air drying.
[0031] In step S6, powdered tourmaline, vermiculite, and hexagonalite are processed through a 120-140 mesh sieve.
[0032] In step S7, the finished product is taken out and tested. This mainly includes using instruments such as a negative oxygen ion detector and a pH meter to detect parameters such as the quantity, activity, and pH value of negative oxygen ions in the mixture, and adjusting the preparation process based on the test results.
[0033] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:
[0034] This invention provides a negative ion ecological liquid preparation device that integrates cooking, filtration, drying, and mixing, effectively solving the problems of numerous instruments, cumbersome processes, and increased time and labor costs associated with the preparation of negative ion ecological liquid. The invention also provides a method for preparing negative ion ecological liquid that utilizes the synergistic effect of stone materials and traditional Chinese medicinal herbs to continuously release negative ions, improving the practical application effect and environmental friendliness of the ecological liquid. Furthermore, the method includes a final product testing process to detect various properties of the finished product, allowing for adjustments to the preparation method based on the test results, ensuring the continued effectiveness of the preparation. Attached Figure Description
[0035] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0036] Figure 1 This is a schematic diagram of the overall structure of a negative oxygen ion ecological liquid device provided in an embodiment of this application;
[0037] Figure 2 This is a partial structural schematic diagram of a negative oxygen ion ecological liquid device provided in an embodiment of this application;
[0038] Figure 3 This is a schematic diagram of the overall structure of a negative oxygen ion ecological liquid device, excluding the grinding and conveying mechanism, provided in an embodiment of this application.
[0039] Figure 4 This is a schematic diagram of the overall structure of a negative oxygen ion ecological liquid device, excluding the grinding and conveying mechanism, from another angle, according to an embodiment of this application.
[0040] Figure 5 for Figure 4 A schematic diagram of the cross-section formed by cutting along the M direction;
[0041] Figure 6 for Figure 5 Enlarged view of section A in the middle;
[0042] Figure 7 This is a schematic diagram of the structure of a negative oxygen ion ecological liquid device, excluding the grinding and conveying mechanism, provided in an embodiment of this application.
[0043] Figure 8 A schematic diagram of the overall structure of a cutting component for a negative oxygen ion ecological liquid device provided in this application embodiment;
[0044] Figure 9 This is a schematic diagram of the overall structure of a negative oxygen ion ecological liquid equipment drainage and storage component provided in an embodiment of this application;
[0045] Figure 10 This is a partial structural schematic diagram of a drying mechanism for a negative oxygen ion ecological liquid device provided in an embodiment of this application.
[0046] The following are the labeling elements in the figure:
[0047] 1. Support leg; 2. Control panel; 3. Cutting mechanism; 31. Cutting chamber; 32. First electric pusher cylinder; 33. Cutting assembly; 331. Rotating roller; 332. Blade; 333. Rotating motor; 34. Rubber gasket; 4. Cooking mechanism; 41. First heating element; 42. Glass window; 43. Cooking machine chamber; 44. Water drainage and storage assembly; 441. First baffle; 442. Rotating shaft; 443. Servo motor; 45. Water inlet; 46. First sealing plug; 5. Drying mechanism; 51. Drying chamber; 52. Fan; 53. Heating tube; 54. Ventilation mesh; 55. Second baffle; 56. Second electric pusher cylinder; 57. Automatic pusher 571. Scraper assembly; 572. Third electric pusher cylinder; 573. Support; 6. Filter screen; 7. Stirring mechanism; 71. Stirring box; 72. Second heating element; 73. Ultrasonic vibrator; 74. Water outlet pipe; 75. Stirring assembly; 751. Air pump; 752. Rotary nozzle; 753. Stirring plate; 76. Sample inlet; 77. Second sealing plug; 78. Isolation vibration plate; 79. Limiting plate; 8. Grinding and conveying mechanism; 81. Grinding machine; 82. Spiral shaft; 83. Rotary motor; 84. Feeding plate; 85. Side plate; 9. Turning door; 10. Door handle; 12. Storage plate; 13. Ultrasonic generator; 14. Connecting frame. Detailed Implementation
[0048] To address the issues of the complex and time-consuming nature of the negative ion ecological liquid preparation process in related technologies, which requires numerous instruments and involves significant labor costs, this application provides the following solutions.
[0049] Example 1, please refer to it as well. Figures 1-10 The device includes a cutting mechanism 3, a cooking mechanism 4, a drying mechanism 5, a filter screen 6, a stirring mechanism 7, a support leg 1, and a control panel 2. The stirring mechanism 7 is fixedly connected to the support leg 1, and the drying mechanism 5 is fixedly connected to the stirring mechanism 7. The drying mechanism 5 has a sliding groove inside, and the filter screen 6 is slidably connected to the drying mechanism 5 through the sliding groove. The cooking mechanism 4 is fixedly connected to the drying mechanism 5, and the cutting mechanism 3 is fixedly connected to the cooking mechanism 4. A connecting frame 14 is also welded to the stirring mechanism 7, and the control panel 2 is fixedly connected to the connecting frame 14.
[0050] In this configuration, raw materials such as Chinese medicinal herbs first enter the cutting mechanism 3, which cuts and breaks down the raw materials, further damaging the cell walls and making it easier to release the essential components within the cells. The cut and broken raw materials fall into the steaming and boiling mechanism 4, where heating and boiling allows the effective components in the plants (such as alkaloids, flavonoids, glycosides, etc.) to dissolve in the water. Then, the filter screen 6 filters out the solid residue, and the filtrate enters the stirring mechanism 7. The filter residue remains in the drying mechanism 5, and after being dried by forced air, it can be taken out and optionally ground and sieved before being added to the stirring mechanism 7 to avoid waste of residue. The stirring mechanism 7 can accelerate the mixing of powder in the raw materials with the filtrate, significantly improving the reaction rate and extraction efficiency, and finally producing the ecological liquid product. The control panel 2 is used to control the steaming and drying temperature, cutting spacing, ultrasonic power, etc.
[0051] Optionally, in some embodiments, please also refer to Figure 5 as well as Figure 8 The cutting mechanism 3 includes a cutting assembly 33, a cutting box 31, and a first electric push cylinder 32. The cutting assembly 33 includes a rotating roller 331, a blade 332, and a rotating motor 333. A groove is provided inside the cutting box 31. The moving end of the first electric push cylinder 32 is slidably connected to the groove. The other end of the first electric push cylinder 32 is fixedly connected to the cutting box 31. The rotating motor 333 is disposed on the moving end of the first electric push cylinder 32. The rotating roller 331 is coaxially connected to the output shaft of the rotating motor 333. The blade 332 is fixedly connected to the rotating roller 331. A rubber gasket 34 is adhered to the end of the rotating motor 333 away from the first electric push cylinder 32. Both the first electric push cylinder 32 and the rotating motor 333 are electrically connected to the control panel 2.
[0052] With this setup, when the control panel 2 controls the moving end of the electric push cylinder to slide on the groove, it can increase or decrease the distance between the rotating rollers 331. This allows the distance between the rotating rollers 331 to be increased or decreased according to the size of the Chinese herbal raw materials used in making the negative oxygen ion ecological liquid. Then, the rotating motor 333 works, driving the rotating rollers 331 to rotate. The rotating rollers 331 drive the blades 332 to cut and crush the raw materials, allowing them to be cut and crushed into suitable sizes, which is beneficial for the extraction of effective components from the raw materials. The blades 332 on the two rotating rollers 331 are arranged in an interlaced pattern. The rubber gaskets 34 are slightly longer than the length of the blades 332. As the distance between the rotating rollers 331 gradually decreases, the rubber gaskets 34 begin to squeeze against each other, which serves both as a shock absorber and as a limiter, preventing the blades 332 on the two rotating rollers 331 from touching the other rotating roller 331.
[0053] Optionally, in some embodiments, please also refer to Figure 3, Figure 5 as well as Figure 9 The cooking mechanism 4 includes a first heating element 41, a glass window 42, a cooking chamber 43, and a water drainage and storage assembly 44. The water drainage and storage assembly 44 includes a first baffle 441, a rotating shaft 442, and a servo motor 443. The first heating element 41 is fixedly connected to the inner wall of the cooking chamber 43. The glass window 42 is adhered to the cooking chamber 43. The servo motor 443 is fixedly connected to the cooking chamber 43. The rotating shaft 442 is rotatably connected to the servo motor 443. The first baffle 441 is fixedly connected to the rotating shaft 442. The cooking chamber 43 is also provided with a water inlet 45. A first sealing plug 46 is movably connected to the water inlet 45. The first heating element 41 and the servo motor 443 are both electrically connected to the control panel 2.
[0054] With this configuration, the heating element is made of materials with good electrical conductivity and high-temperature resistance, such as iron-chromium-aluminum alloy or nickel-chromium alloy, which can effectively convert electrical energy into heat energy, remain stable in high-temperature environments, and are not easily damaged. The glass window 42 allows people to observe the real-time color change of the cooking liquid inside the cooking mechanism 4, making it easy to determine when to stop heating. The servo motor 443 causes the rotating shaft 442 to rotate within a specific angle range, thereby driving the first baffle 441 to rotate as well. When the Chinese herbal raw materials are broken into appropriate sizes and fall onto the first baffle 441, the first sealing plug 46 is opened. Add an appropriate amount of water through the inlet 45, plug back the first sealing plug 46, and the heating element will start working. Observe the color change of the cooking liquid through the glass window 42, stop the heating element, control the servo motor 443 to rotate, drive the rotating shaft 442 to rotate, thereby driving the first baffle 441 to rotate downward. The cooking liquid and raw material residue enter the drying mechanism 5. The cooking liquid passes through the filter screen 6 and continues to enter the stirring mechanism 7, while the residue is blocked by the filter screen 6 and continues to stay in the drying mechanism 5. At this time, the servo motor 443 stops rotating, and the first baffle 441 is in the open state, which helps to discharge the hot air in the subsequent drying work.
[0055] Optionally, in some embodiments, please also refer to Figure 1 , Figure 3 , Figure 4 as well as Figure 7The drying mechanism 5 includes a drying chamber 51, a fan 52, a heating tube 53, a ventilation screen 54, a second baffle 55, a second electric pusher cylinder 56, and an automatic scraping assembly 57. The automatic scraping assembly 57 includes a scraper 57, a third electric pusher cylinder 572, and a support 573. A heat-generating chamber is formed inside the drying chamber 51. The fan 52 and the heating tube 53 are fixedly connected to the heat-generating chamber, with the fan 52 closer to the outer wall of the drying chamber 51. The ventilation screen 54 is fixedly connected to the heat-generating chamber and is on the same plane as the inner wall of the drying chamber 51. The ventilation screen 54 has a groove, and the second baffle 55 is slidably connected to the groove. A further groove is formed inside the drying chamber 51. The moving end of the second electric pusher cylinder 56 is slidably connected to the groove, and the other end is fixedly connected to the drying chamber. Inside the drying chamber 51, the second baffle 55 is fixedly connected to the moving end of the second electric push cylinder 56. The filter screen 6 is slidably connected to the drying chamber 51. The third electric push cylinder 572 is welded to the bracket 573 and abuts against the drying chamber 51. The scraper 571 is bonded to the output end of the third electric push cylinder 572. As the output end of the third electric push cylinder 572 moves, the bottom surface of the scraper 571 slides on the surface of the filter screen 6. The end of the scraper 571 near the filter screen 6 is shovel-shaped. A rotating door 9 is also provided on the side of the drying chamber 51. The rotating door 9 is hinged to the drying chamber 51. A door handle 10 is also threaded onto the rotating door 9. The fan 52, heating tube 53, second electric push cylinder 56, and third electric push cylinder 572 are all electrically connected to the control panel 2.
[0056] With this configuration, the second baffle 55 moves upward to seal the ventilation mesh 54. This prevents the filtrate from splashing onto the heating pipe 53 and fan 52 when the first baffle 441 rotates towards the inner wall of the drying chamber 51 and is in the open state, thus reducing the risk of corrosion and rust and increasing the equipment's lifespan. The second electric pusher cylinder 56 controls the sliding of the second baffle 55 within the groove of the ventilation mesh 54; that is, after the steaming operation is completed, the second electric pusher cylinder 56 pushes the first baffle 55 upward. The second baffle 55 blocks all the vents of the ventilation screen 54. Then, the first baffle 441 is opened, and the cooking liquid and raw material residue enter the drying mechanism 5. The cooking liquid passes through the filter screen 6 and continues to enter the stirring mechanism 7, while the residue is blocked by the filter screen 6. All splashes of filtrate are blocked by the second baffle 55. Subsequently, the moving end of the second electric push cylinder 56 is controlled to move downward, causing the second baffle 55 to move downward. The vents of the ventilation screen 54 that were blocked are restored, and the fan 52 and heating tube 53 continue to operate. The fan 52 will add heat. The air heated by heat pipe 53 is blown onto the filter residue on filter screen 6, and the hot air generated by fan 52 is directed in opposite directions. The hot air will form convection around the filter residue to be dried. This convection helps to accelerate the evaporation of moisture on the surface of the filter residue, while ensuring that the surface of the object is heated more evenly, reducing uneven drying caused by local overheating or undercooling, thereby improving drying efficiency. After drying is completed, servo motor 443 controls the first baffle 441 to return to the closed state, and then the door handle 10 is pulled upward to open the rotating door 9. The third electric push cylinder 5 The output end of the 72 cylinder moves, controlling the adjustment scraper 571 to slide on the filter screen 6. The bottom of the scraper 571 abuts against the filter screen 6 and is shovel-shaped. During the movement, the filter residue on the filter screen 6 can be better removed from the surface of the filter screen 6 and pushed out of the drying chamber 51. After the filter residue is pushed out, the output end of the third electric pusher cylinder 572 moves to control the adjustment scraper 571 to return to its original position. At this time, the filter screen 6 can be taken out and cleaned to prevent the residual components on the filter screen 6 from interfering with the production of the next negative oxygen ion ecological liquid and affecting the product quality.
[0057] Optionally, in some embodiments, please also refer to Figure 4 A shelf 12 is welded onto the support leg 1, and an ultrasonic generator 13 is movably connected to the shelf 12. The ultrasonic generator 13 is electrically connected to the control panel 2.
[0058] With this configuration, the ultrasonic generator 13 can generate high-frequency oscillating electrical signals. These high-frequency electrical signals are then converted by a transducer to convert electrical energy into high-frequency mechanical vibration energy. Furthermore, the ultrasonic generator 13 is detachable, and the model of the ultrasonic generator 13 can be replaced at any time as needed.
[0059] Optionally, in some embodiments, please also refer to Figures 1-3 as well as Figure 5 The stirring mechanism 7 includes a stirring box 71, a second heating element 72, an ultrasonic vibrator 73, a water outlet pipe 74, and a stirring assembly 75. The stirring assembly 75 includes an air pump 751, a rotary nozzle 752, and a stirring plate 753. The second heating element 72 is fixedly connected to the inner wall of the stirring box 71. The water outlet pipe 74 and the ultrasonic vibrator 73 are both fixedly connected to the stirring box 71. The air pump 751 is fixedly connected to the stirring box 71. The rotary nozzle 752 is rotatably connected inside the stirring box 71. A spiral groove is provided inside the rotary nozzle 752. The stirring plate 753 is fixedly connected to the rotary nozzle 752. The ultrasonic vibrator 73 is electrically connected to the ultrasonic generator 13. A sample inlet 76 is provided on the stirring box 71. A second sealing plug 77 is provided on the sample inlet 76. The second heating element 72 and the air pump 751 are both electrically connected to the control panel 2.
[0060] With this configuration, the second heating element 72 is used to heat the cooking liquid. Appropriately increasing the temperature helps the reaction proceed. The water outlet pipe 74 is fixedly connected to the stirring tank 71. A control valve is provided at the bottom connection point inside the stirring tank 71. The water outlet pipe 74 can also be connected to an external water tap. The sample inlet 76 is used to add powdered stone materials from the raw materials. When using, the second sealing plug 77 is opened, the powdered stone materials are added, and then the second sealing plug 77 is closed. The ultrasonic vibrator 73 receives high-frequency electrical energy generated by the ultrasonic generator. It contains piezoelectric materials such as piezoelectric crystals. These materials deform under the action of an electric field, thereby generating mechanical vibration and promoting powder dissolution. The air pump 751 can compress and generate high-pressure gas. The gas passes through a spiral groove inside the rotating nozzle 752. Due to the shape of the groove, the gas flows along the spiral path, generating a rotational torque around the axis of the object, thereby driving the rotating nozzle 752 to rotate, and simultaneously driving the stirring plate 753 to... The ecological liquid is stirred to accelerate the mixing of raw materials. A bubble stirring method is also employed, where gas is introduced into the solution. The turbulence generated by the rising and bursting of bubbles stirs the solution. The air pump 751 can be connected to different gases such as air, oxygen, and nitrogen to increase the oxygen content in the negative ion ecological liquid. Specific variations are made according to the product requirements and instructions. After the cooking liquid passes through the filter 6 and enters the stirring mechanism 7, the second heating element 72 is activated and the temperature is set. The second sealing plug 77 is opened, powdered stone is added, and then the second sealing plug 77 is closed. The ultrasonic generator 13 is activated, and the ultrasonic vibrator 73 drives the stirring mechanism 7 to vibrate at high frequency. Simultaneously, the air pump 751 is turned on, and the rotating nozzle 752 rotates, driving the stirring plate 753 to stir. This multi-faceted mixing of the negative ion ecological liquid produces the finished negative ion ecological liquid, which is then removed from the outlet pipe 74.
[0061] Optionally, in some embodiments, please also refer to Figure 5 The mixing tank 71 has a middle section composed of an isolation vibration plate 78 and a limit plate 79 fixedly connected to the inner wall of the mixing tank 71.
[0062] With this configuration, the stirring mechanism 7 is performing high-frequency vibration. The isolation vibration plate 78 isolates the high-frequency vibration from all components above it. High-frequency vibration may cause the connecting screws to loosen, thus protecting the components. When the second baffle 55 moves down, it stops moving down after contacting the limiting plate 79. At this time, part of the second baffle 55 is still in the groove of the ventilation net 54, but this does not affect the ventilation net 54's ability to pass hot air, ensuring that the second baffle 55 can always move up and down along the predetermined trajectory.
[0063] Optionally, in some embodiments, please also refer to Figure 5 Temperature sensors are fixedly connected to the cooking chamber 43, the drying chamber 51, and the stirring chamber 71, and the temperature sensors are electrically connected to the control panel 2.
[0064] This setup allows for real-time monitoring of the temperatures within the cooking mechanism 4, drying mechanism 5, and stirring mechanism 7, enabling timely temperature adjustments and precise temperature control during the production of the negative ion ecological liquid, thereby improving product quality.
[0065] Optionally, in some embodiments, please also refer to Figures 1-3 With the rotating door 9 open, a grinding and conveying mechanism 8 is connected to the outside of the drying chamber 51. The grinding and conveying mechanism 8 includes a grinder 81, a spiral shaft 82, a rotary motor 83, a feeding plate 84, and a side plate 85. One end of the feeding plate 84 is attached to the grinder 81, and the other end of the feeding plate 84 is movably connected to the drying chamber 51. The side plate 85 is attached to the feeding plate 84 and abuts against the drying chamber 51. The rotary motor 83 is welded to the grinder 81. At the bottom, one end of the spiral shaft 82 is fixedly connected to the output end of the rotary motor 83, and the other end of the spiral shaft 82 passes through the sample inlet 76 and is movably connected to the mixing tank 71. An opening is provided at the connection between the grinder 81 and the feeding plate 84, and the filter residue can enter the interior of the grinder 81 through the opening via the feeding plate 84. A funnel-shaped discharge port is provided inside the grinder 81, and a sieve plate is slidably connected to the discharge port to block large filter residue and filter small filter residue from entering the spiral shaft 82.
[0066] With this setup, after the filter residue is dried in the drying chamber, it needs to be crushed and added to the filtrate for remixing. Pulling the door handle 10 opens the rotating door 9, and the servo motor 443 controls the first baffle 441 to return to the closed state. The output end of the third electric push cylinder 572 moves, controlling the adjusting scraper 571 to slide on the filter screen 6. The scraper 571 pushes the filter residue off the surface of the filter screen 6, and the filter residue slides on the feeding plate 84. The side plates 85 on both sides prevent the filter residue from falling off the sides of the feeding plate 84 and also serve as a limit. When the side plates 85 abut against the drying chamber, the spiral shaft 82 enters the mixing chamber 71 through the sample inlet 76. The filter residue enters the interior of the grinder 81 through the opening at the connection between the grinder 81 and the feeding plate 84, and is ground into powder along with the other raw materials. The raw material powder that meets the pulverization requirements is screened by the sieve plate and falls into the spiral shaft 82. Driven by the rotary motor 83, the spiral shaft 82 feeds the raw material into the mixing chamber 71 through the sample inlet 76 by rotational conveying.
[0067] Example 2: The present invention provides a method for preparing a negative oxygen ion ecological liquid: a negative oxygen ion ecological liquid, comprising the following components: honeysuckle, peppermint, phellodendron bark, sophora flower, dried chrysanthemum, sophora flavescens, tourmaline, vermiculite and hexagonal stone, wherein the weight parts of the above materials are 2 parts, 3 parts, 3 parts, 2 parts, 4 parts, 6 parts, 10 parts, 8 parts and 6 parts.
[0068] Includes the following steps:
[0069] S1. Collect water sources and store them for future use. The collected water sources are one or more types of deep mountain spring water or groundwater.
[0070] S2, honeysuckle, mint, phellodendron bark, sophora flower, dried chrysanthemum, sophora flavescens, the above raw materials are passed through the cutting mechanism 3, and the first electric push cylinder 32 is adjusted according to the size of the raw materials, and the spacing of the rotating roller 331 is changed through the control panel 2 to make the raw materials cut more thoroughly;
[0071] S3. The cut material is located in the cooking mechanism 4. Water collected in S1 is added through the water inlet 45. The temperature of the first heating element 41 is adjusted through the control panel 2 to increase the temperature to 80°C and cook for 25 minutes. Wait for the cooking liquid to change color and then stop cooking. At this time, the first baffle 441 is in the closed state.
[0072] S4. Adjust the second electric pusher cylinder 56 through the control panel 2, push the second baffle 55 up until it completely covers the ventilation screen 54, then control and open the first baffle 441, the cooking liquid enters the stirring mechanism 7 through the filter screen 6, the solid residue of the raw material remains on the filter screen 6, continue to control and pull down the second baffle 55, turn on the fan 52 and heating tube 53 to provide a temperature of 60°C, and continuously air dry the solid residue of the raw material. In this step, you can also choose to take out the cooking liquid in the stirring mechanism 7 and store it for later use.
[0073] S5. Open the rotating door 9. The servo motor 443 controls the first baffle 441 to return to the closed state. The output end of the third electric push cylinder 572 moves, controlling the adjusting scraper 571 to slide on the filter screen 6. The scraper 571 pushes the filter residue off the surface of the filter screen 6. The filter screen 6 is slid out and cleaned.
[0074] S6. The dried material, tourmaline, vermiculite, and hexagonal stone are added to the grinder 81 and ground together. After passing through a 120-mesh sieve, the powdered dried material, tourmaline, vermiculite, and hexagonal stone are fed into the stirring mechanism 7 through the sample inlet 76 via the spiral shaft 82. The temperature is controlled and increased, and the ultrasonic generator 13 is turned on to promote the dissolution of the powdered dried material, tourmaline, vermiculite, and hexagonal stone in the cooking liquid and increase the reaction rate. At the same time, the air pump 751 circulates air to the rotating nozzle 752, which generates bubbles and drives the stirring plate 753 to rotate to fully mix the raw materials. If the cooking liquid in the stirring mechanism 7 is selected to be taken out for storage in S3, the stored cooking liquid is added again through the sample inlet 76.
[0075] S7. Take out the finished product and test it. This mainly includes using instruments such as negative oxygen ion detectors and pH meters to test parameters such as the number, activity, and pH value of negative oxygen ions in the mixture, and adjusting the preparation process based on the test results.
[0076] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A device for preparing negative oxygen ion ecological liquid, characterized in that: The device includes a cutting mechanism (3), a cooking mechanism (4), a drying mechanism (5), a filter screen (6), a stirring mechanism (7), a support leg (1), and a control panel (2). The stirring mechanism (7) is mounted on the support leg (1), the drying mechanism (5) is mounted on the stirring mechanism (7), the drying mechanism (5) has a sliding groove inside, the filter screen (6) is slidably connected to the drying mechanism (5) through the sliding groove, the cooking mechanism (4) is mounted on the drying mechanism (5), the cutting mechanism (3) is mounted on the cooking mechanism (4), the stirring mechanism (7) is also provided with a connecting frame (14), and the control panel (2) is mounted on the connecting frame (14). The cutting mechanism (3) includes a cutting assembly (33), a cutting box (31), and a first electric push cylinder (32). The cutting assembly (33) includes a rotating roller (331), a blade (332), and a rotating motor (333). The cutting box (31) has a groove. The moving end of the first electric push cylinder (32) is slidably connected to the groove. The other end of the first electric push cylinder (32) is fixedly connected to the cutting box (31). The rotating motor (333) is located on the moving end of the first electric push cylinder (32). The rotating roller (331) is coaxially connected to the output shaft of the rotating motor (333). The blade (332) is located on the rotating roller (331). A rubber gasket (34) is provided on the end of the rotating motor (333) away from the first electric push cylinder (32). The first electric push cylinder (32) and the rotating motor (333) are both electrically connected to the control panel (2). The cooking mechanism (4) includes a first heating element (41), a glass window (42), a cooking chamber (43), and a water drainage and storage assembly (44). The water drainage and storage assembly (44) includes a first baffle (441), a rotating shaft (442), and a servo motor (443). The first heating element (41) is disposed on the inner wall of the cooking chamber (43). The glass window (42) is disposed on the cooking chamber (43). The servo motor (443) is disposed on the cooking chamber (43). The rotating shaft (442) is disposed on the servo motor (443). The first baffle (441) is disposed on the rotating shaft (442). The cooking chamber (43) is also provided with a water inlet (45). The water inlet (45) is provided with a first sealing plug (46). The first heating element (41) and the servo motor (443) are both electrically connected to the control panel (2). The drying mechanism (5) includes a drying chamber (51), a fan (52), a heating tube (53), a ventilation screen (54), a second baffle (55), a second electric pusher cylinder (56), and an automatic scraping assembly (57). The automatic scraping assembly (57) includes a scraper (571), a third electric pusher cylinder (572), and a support (573). The drying chamber (51) has a heat-generating chamber inside. The fan (52) and the heating tube (53) are both located in the heat-generating chamber, and the fan (52) is closer to the drying chamber (51). The outer wall of the drying chamber is provided with a ventilation net (54) on the heat generation chamber and on the same plane as the inner wall of the drying chamber (51). The ventilation net (54) has a groove 1. The second baffle (55) is slidably connected in the groove 1. The drying chamber (51) also has a groove 2 inside. The moving end of the second electric push cylinder (56) is slidably connected in the groove 2. The other end of the second electric push cylinder (56) is fixedly connected to the drying chamber (51). The second baffle (55) is fixedly connected to the moving end of the second electric push cylinder (56).
2. The negative oxygen ion ecological liquid preparation equipment according to claim 1, characterized in that: The filter screen (6) is slidably connected to the drying chamber (51). The third electric push cylinder (572) is set on the bracket (573) and abuts against the drying chamber (51). The scraper (571) is bonded to the output end of the third electric push cylinder (572). As the output end of the third electric push cylinder (572) moves, the bottom surface of the scraper (571) slides on the surface of the filter screen (6). A rotating door (9) is also provided on the side of the drying chamber (51). The rotating door (9) is hinged to the drying chamber (51). A door handle (10) is also provided on the rotating door (9). The fan (52), heating tube (53), second electric push cylinder (56) and third electric push cylinder (572) are all electrically connected to the control panel (2).
3. The negative oxygen ion ecological liquid preparation equipment according to claim 2, characterized in that: The support leg (1) is provided with a shelf (12), and the shelf (12) is provided with an ultrasonic generator (13). The ultrasonic generator (13) is electrically connected to the control panel (2).
4. The negative oxygen ion ecological liquid preparation equipment according to claim 3, characterized in that: The stirring mechanism (7) includes a stirring tank (71), a second heating element (72), an ultrasonic vibrator (73), a water outlet pipe (74), and a stirring assembly (75). The stirring assembly (75) includes an air pump (751), a rotary nozzle (752), and a stirring plate (753). The second heating element (72) is disposed on the inner wall of the stirring tank (71). The water outlet pipe (74) and the ultrasonic vibrator (73) are both disposed on the stirring tank (71). The air pump (751) is disposed on the stirring tank (751). 1) The rotating nozzle (752) is disposed inside the mixing chamber (71). The rotating nozzle (752) has a spiral groove inside. The mixing plate (753) is disposed on the rotating nozzle (752). The ultrasonic vibrator (73) is electrically connected to the ultrasonic generator (13). The mixing chamber (71) has a sample inlet (76). The sample inlet (76) is provided with a second sealing plug (77). The second heating element (72) and the air pump (751) are both electrically connected to the control panel (2).
5. The negative oxygen ion ecological liquid preparation equipment according to claim 4, characterized in that: The mixing tank (71) has a middle section composed of an isolation vibration plate (78) and a limit plate (79) is provided on the inner wall of the mixing tank (71).
6. The negative oxygen ion ecological liquid preparation equipment according to claim 5, characterized in that: Temperature sensors are installed on the inner walls of the cooking chamber (43), the drying chamber (51), and the stirring chamber (71), and the temperature sensors are electrically connected to the control panel (2).
7. The negative oxygen ion ecological liquid preparation equipment according to claim 6, characterized in that: With the rotating door (9) open, the drying chamber (51) is externally connected to a grinding and conveying mechanism (8). The grinding and conveying mechanism (8) includes a grinder (81), a spiral shaft (82), a rotary motor (83), a feeding plate (84), and a side plate (85). One end of the feeding plate (84) is mounted on the grinder (81), and the other end of the feeding plate (84) is movably connected to the drying chamber (51). The side plate (85) is mounted on the feeding plate (84) and abuts against the drying chamber (51). The rotary motor (83) is mounted on the grinder (81). One end of the spiral shaft (82) is mounted on the rotary motor (83), and the other end of the spiral shaft (82) passes through the sample inlet (76) and is movably connected to the mixing chamber (71).
8. A method for preparing a negative oxygen ion ecological liquid, using the negative oxygen ion ecological liquid preparation equipment described in claim 7, characterized in that, Includes the following steps: S1. Collect water sources and store them for future use; S2. Take 2-4 parts honeysuckle, 3-4 parts peppermint, 1-3 parts phellodendron bark, 1-2 parts sophora japonica, 2-4 parts dried chrysanthemum, and 5-7 parts sophora flavescens by weight fraction. Pass the above raw materials through the cutting mechanism (3). According to the size of the raw materials, adjust the first electric push cylinder (32) through the control panel (2) to change the spacing of the rotating roller (331) so that the raw materials are cut more fully. S3. The cut material is placed in the cooking mechanism (4). Water collected in S1 is added through the water inlet (45). The temperature of the first heating element (41) is adjusted through the control panel (2). The temperature is observed through the glass window (42). When the cooking liquid changes color, the cooking is stopped. At this time, the first baffle (441) is in the closed state. S4. Adjust the second electric push cylinder (56) through the control panel (2), push the second baffle (55) up to completely cover the ventilation net (54), then control and open the first baffle (441), the cooking liquid enters the stirring mechanism (7) through the filter (6), the solid residue of the raw material remains on the filter (6), continue to control and pull down the second baffle (55), turn on the fan (52) and heating tube (53) to continuously air dry the solid residue of the raw material; S5. Open the rotating door (9), the servo motor (443) controls the first baffle (441) to return to the closed state, the output end of the third electric push cylinder (572) moves, controls the adjustment of the scraper (571) to slide on the filter screen (6), the scraper (571) pushes the filter residue from the surface of the filter screen (6), slides out the filter screen (6) and cleans the filter screen (6). S6. Take 8-10 parts of powdered tourmaline, 6-8 parts of vermiculite and 5-6 parts of hexagonal stone according to the weight ratio, add them to the grinder (81) and grind them together. Then, pass them through a 120-140 mesh sieve and put them into the spiral shaft (82) and place them in the stirring mechanism (7) through the sample inlet (76). Control the temperature to increase and turn on the ultrasonic generator (13) to promote the dissolution of powdered tourmaline, vermiculite and hexagonal stone and increase the reaction rate. At the same time, the air pump (751) circulates air to the rotating nozzle (752) to generate bubbles and drive the stirring plate (753) to rotate to fully mix the raw materials. S7. Obtain the finished product from the outlet pipe (74) and test it.
Citation Information
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