Wastewater treatment device for apple pomace biological feed processing
The electric push rod drive scraper system and wave arc groove design are designed to clean the scum in a timely manner, and the filtration pressing and knocking mechanisms are combined to treat the scum, the problems of scum retention and activated carbon waste in the wastewater treatment of apple pomace biological feed processing are solved, and the wastewater treatment is clean and efficient, reducing costs.
Patent Information
- Application Number
- CN202510777888.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-11
- Publication Date
- 2025-08-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing wastewater treatment device for apple pomace biological feed processing, the long-term retention of the scum can easily form an anaerobic environment, breeding sulfate reducing bacteria and odor-producing bacteria, causing the wastewater to become black and odorous, and the activated carbon particles are not used accurately enough, which is easy to waste.
The scraper system driven by electric push rod and wave arc groove design is adopted to clean the scum in time, and the scum is treated through filter pressing and knocking mechanisms, combined with intermittent spraying of activated carbon particles, ensuring thorough cleaning of the scum and the rational use of activated carbon.
Effectively prevent wastewater from odor, improve dehydration efficiency, reduce the cost of activated carbon, ensure the clean wastewater treatment environment, reduce the generation of odors, and improve the mixing effect and use efficiency of activated carbon.
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Figure CN120504367A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of wastewater treatment, in particular to a wastewater treatment device for processing apple pomace biological feed. Background Art
[0002] Apple pomace is a major byproduct of apple juicing, consisting primarily of the peel, core, and remaining pulp. It accounts for 5% of total apple production and is rich in nutrients such as protein, carbohydrates, minerals, and cellulose. Apple pomace can be used as a feed resource for livestock production, including cattle, sheep, pigs, and chickens. This not only helps offset feed shortages and improve the economic efficiency of the farming industry, but also prevents apple pomace from rotting and stinking, which could pollute the environment, thereby achieving sustainable resource utilization.
[0003] For example, publication number CN221701274U discloses a wastewater treatment device for apple pomace biological feed processing, including a mixing device, a suction pump and a fermentation tank. The mixing device includes a tank body, an upper cover is provided on the top of the tank body, a first motor is provided on the top of the upper cover, a first rotating shaft is provided in the stirring cavity, a plurality of stirring plates are provided at the lower end of the first rotating shaft, the upper end of which rotates through the upper cover and is connected to the output end of the first motor, a sewage pipe connected to the stirring cavity is provided on one side of the first motor, and a sludge crushing component connected to the stirring cavity is provided on the other side of the first motor, an annular cavity is provided on the inner wall of the tank body, and a spirally arranged heating wire is provided in the annular cavity; a first connecting pipe connected to the stirring cavity is provided at one end of the suction pump, a second connecting pipe is provided at the output end of the suction pump, and the outlet end of the second connecting pipe is arranged in the fermentation tank, so as to solve the problem that the sewage generated during the apple pomace squeezing process is directly discharged as wastewater, resulting in waste of resources. During wastewater treatment, if the scum is retained for a long time, an anaerobic environment will be formed, breeding sulfate-reducing bacteria (SRB) and odor-producing bacteria, which can easily cause the wastewater to turn black and smelly. Therefore, the scum needs to be cleaned in time. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a wastewater treatment device for apple pomace biological feed processing in view of the deficiencies in the above-mentioned prior art.
[0005] In order to solve the above technical problems, the technical solution adopted by the present invention is: a wastewater treatment device for apple pomace biological feed processing, including a treatment box, the left and right sides of the treatment box are respectively fixedly connected to a collection box, the left inner wall of the collection box is an inclined surface, which is used for scum to slide into the interior of the collection box, the outer sides of the two collection boxes are respectively fixedly connected to support plates, a sliding rod is fixedly connected between the inner walls of the two support plates, a cleaning mechanism is provided inside the treatment box, and the cleaning mechanism includes an electric push rod, which is fixedly connected to the right side of the left support plate, the outer wall of the sliding rod is movably sleeved with a first sliding sleeve, the top of the first sliding sleeve is fixedly connected to a vertical plate, the electric push rod is fixedly connected to the vertical plate, and the bottom of the first sliding sleeve is fixedly connected to a first extension plate. The retracting rod has a first spring as the movable sleeve on the outer wall of the first telescopic rod. The bottom of the first telescopic rod is fixedly connected to two first scrapers. The interior of the two first scrapers is movably connected to the second scraper through a limit spring. The water level line is at the half position of the second scraper, and the wastewater inside the treatment box is added from the top and discharged from the bottom side at the same time, so that the water level line is always in the same position. The electric push rod is started, and the electric push rod pushes the first sliding sleeve at the bottom of the vertical plate to slide on the sliding rod. When the first sliding sleeve moves, it will drive the first scraper and the second scraper at its bottom to move through the first telescopic rod. The movement of the first scraper and the second scraper can timely scrape off the floating scum in the treatment box, prevent the scum from being retained for a long time to form an anaerobic environment, and avoid the breeding of sulfate-reducing bacteria, odor-producing bacteria, etc.
[0006] Preferably, the processing box is provided with a wave-shaped arc groove on each of the front and rear sides. A first fixing rod is fixedly connected to the back of the first scraper. The end of the first fixing rod, which is remote from the first scraper, is disposed within the wave-shaped arc groove. When the first scraper moves, it drives the first fixing rod to move as well. The first fixing rod moves within the wave-shaped arc groove, and the first fixing rod vibrates up and down under the action of the wave-shaped arc groove. This shaking function effectively breaks the surface tension between the scum and the wastewater, making the scum easier to scrape off by the scraper. In particular, for some highly adhesive scum, the up and down shaking can increase the contact area and contact frequency between the scraper and the scum, thereby more thoroughly cleaning the scum and preventing scum residue. When the first scraper and the second scraper move to the edge of the processing box, since the first scraper and the second scraper are movably connected by a limit spring, the second scraper will retract when it pushes against the water baffle and stop at the edge of the water baffle, so as to push the scum into the collection box.
[0007] Preferably, a filter press mechanism is provided inside the collecting box on the right side, and the filter press mechanism includes a vertical groove, which is opened on the inner wall of the collecting box, and a slider is slidably connected to the inside of the vertical groove, and a pressure plate is fixedly connected to the front of the slider.
[0008] Preferably, the top of the pressure plate is fixedly connected to the first interference block, the outer wall movable sleeve of the sliding rod is provided with a second sliding sleeve, the left side of the second sliding sleeve is fixedly connected to the outer wall movable sleeve of the sliding rod is provided with a third spring, and the third spring is arranged between the second sliding sleeve and the right support plate, and the bottom of the second sliding sleeve is fixedly connected to the first interference rod, and the first interference rod contacts the first interference block. When the vertical plate moves to the right, it will interfere with the connecting rod, and the connecting rod will move right under the action of the interference of the vertical plate, thereby driving the first interference rod at its bottom to move to the right side through the connecting rod. When the first interference rod moves to the right, it will interfere with the first interference block, and the pressure plate is driven downward under the action of the interference. This downward pressing action is performed after the slag falls into the collection box, and the slag can be filtered by the pressure plate.
[0009] Preferably, the left side of the first resistance rod is fixedly connected to a second fixed rod, the left side of the second fixed rod is fixedly connected to one end of a second spring, and the other end of the second spring is fixedly connected to a knocking ball, and the knocking ball contacts the inner wall of the collection box. When the vertical plate is out of contact with the connecting rod, the pressure plate will automatically reset under the action of elastic recovery, and the second sliding sleeve will automatically reset under the action of the third spring, thereby driving the first resistance rod to automatically reset. When the first resistance rod resets to the left, it will drive the second spring to move to the left through the second fixed rod, thereby driving the knocking ball to move to the left, and the knocking ball is used to knock the inclined surface of the left inner wall of the collection box. This knocking can effectively break the adhesion of the scum on the inclined surface, so that the scum can slide smoothly to the bottom of the collection box.
[0010] Preferably, a spraying mechanism is provided on the top of the processing box, and the spraying mechanism includes a connecting plate, which is fixedly connected to the top of the processing box, and a placement box is fixedly connected to the front of the connecting plate, and a discharge port is opened on the front of the placement box.
[0011] When the second stop is released, the second stop is engaged with the first and second stop blocks, and the stop block is engaged with the first and second stop blocks, respectively.
[0012] Preferably, the outer wall of the second interference rod is fixedly connected to the first push rod, the front side of the connecting plate is rotatably connected to two rotating rods, the outer walls of the two rotating rods are fixedly connected to a swing plate, the outer walls of the two rotating rods are provided with a torsion spring, and the front side of the swing plate is fixedly connected to the third fixed rod. When the activated carbon particles are discharged, the second interference rod will drive the first push rod to move, and the arc surface of the lower end of the first push rod will contact the outer wall of the third fixed rod. During this contact process, the swing plate will swing slightly under the action of the torsion spring, and the swing plate swings under the action of the torsion spring, so that the activated carbon particles can be evenly sprayed to different areas in the treatment box. At the same time, this interference will not affect the normal movement of the first push rod.
[0013] The present invention adopts the above technical solution, which can bring the following beneficial effects: 1. This wastewater treatment device for apple pomace bio-feed processing uses an electric push rod to drive the movement of the first and second scrapers, which can promptly scrape off floating scum in the treatment tank, preventing the scum from being retained for a long time and forming an anaerobic environment, thereby avoiding the breeding of sulfate-reducing bacteria and odor-producing bacteria, etc., thereby effectively preventing the wastewater from becoming black and smelly, maintaining a clean wastewater treatment environment, reducing odor generation, and improving the working environment. Furthermore, the coordination of the first fixed rod and the wavy arc groove enables the first and second scrapers to vibrate up and down while moving horizontally. This shaking function effectively breaks the surface tension between the scum and the wastewater, making it easier for the scrapers to scrape off the scum. In particular, for some highly adhesive scum, the up and down shaking can increase the contact area and frequency between the scraper and the scum, thereby more thoroughly cleaning the scum and preventing scum residue.
[0014] 2. This wastewater treatment device for apple pomace bio-feed processing applies pressure to the scum via a downward-pressing plate, which not only squeezes out moisture but also tightens the scum's structure. This compact structure reduces porosity within the scum, further reducing its moisture content and improving dehydration efficiency. The drier scum makes subsequent treatment processes (such as drying and incineration) more efficient and reduces energy consumption. Furthermore, the striking ball, in contact with the inclined surface of the collection bin's inner wall, produces a regular striking action. This striking action effectively breaks the scum's adhesion to the inclined surface, allowing it to slide smoothly to the bottom of the collection bin. The striking ball is particularly important when the scum is particularly adherent or wet, preventing it from accumulating on the inclined surface and ensuring it slides to the bottom for filtration.
[0015] 3. This wastewater treatment device for apple pomace bio-feed processing achieves intermittent discharge of activated carbon particles by intermittently lifting the baffle. This design avoids the continuous discharge of activated carbon particles. By precisely controlling the discharge of activated carbon particles, it avoids excessive use of activated carbon particles, reduces the cost of activated carbon particles for wastewater treatment, reduces unnecessary waste, and achieves the rational use of activated carbon particles. The swinging function of the swing plate can significantly increase the discharge range of activated carbon particles. The swing plate swings under the action of the torsion spring, allowing the activated carbon particles to be evenly sprayed into different areas within the treatment box. This design not only improves the mixing effect of the activated carbon particles, but also ensures the uniformity of wastewater treatment and avoids the problem of excessive or low concentration of local activated carbon particles. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a front view of the structure of the present invention; Figure 2 This is a first cross-sectional view of the structure of the present invention; Figure 3 This is an exploded view of the structure of the present invention; Figure 4 This is an enlarged view of structure A of the present invention; Figure 5 This is a second cross-sectional view of the structure of the present invention; Figure 6 This is a third cross-sectional view of the structure of the present invention; Figure 7 This is an enlarged view of structure B of the present invention.
[0017] In the figure: 1. Processing box; 2. Collection box; 3. Support plate; 4. Sliding rod; 5. Cleaning mechanism; 511. Electric push rod; 512. First sliding sleeve; 513. Vertical plate; 514. First telescopic rod; 515. First spring; 516. First scraper; 517. Second scraper; 518. First fixing rod; 519. Wave arc groove; 6. Filter pressing mechanism; 611. Vertical groove; 612. Sliding block; 613. Pressing plate; 614. First contact block; 615. Second sliding sleeve; 616. Connecting rod; 617. First interference rod; 618, second fixed rod; 619, second spring; 620, knocking ball; 621, third spring; 7, spraying mechanism; 711, connecting plate; 712, placement box; 713, discharge port; 714, fixed plate; 715, second telescopic rod; 716, fourth spring; 717, second interference block; 718, second interference rod; 719, first push rod; 720, rotating rod; 721, torsion spring; 722, swing plate; 723, third fixed rod; 724, baffle; 8, water baffle. DETAILED DESCRIPTION
[0018] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0019] See also Figure 1-7One embodiment of the present invention is: a wastewater treatment device for apple pomace biological feed processing, comprising a treatment box 1, the left and right sides of the treatment box 1 are respectively fixedly connected with a collection box 2, the left inner wall of the collection box 2 is an inclined surface, for the scum to slide into the interior of the collection box 2, the outer sides of the two collection boxes 2 are respectively fixedly connected with a support plate 3, a slide rod 4 is fixedly connected between the inner walls of the two support plates 3, a cleaning mechanism 5 is provided inside the treatment box 1, the cleaning mechanism 5 includes an electric push rod 511, the electric push rod 511 is fixedly connected to the right side of the left support plate 3, the outer side of the slide rod 4 The wall movable sleeve is provided with a first sliding sleeve 512, the top of the first sliding sleeve 512 is fixedly connected to a vertical plate 513, the electric push rod 511 is fixedly connected to the vertical plate 513, the bottom of the first sliding sleeve 512 is fixedly connected to a first telescopic rod 514, the outer wall movable sleeve of the first telescopic rod 514 is provided with a first spring 515, the bottom of the first telescopic rod 514 is fixedly connected to two first scrapers 516, the interior of the two first scrapers 516 is movably connected to a second scraper 517 through a limit spring, the water level line is at the half position of the second scraper 517, and the wastewater inside the treatment box 1 is discharged from the top The water level is always at the same position when the water is added and discharged from the bottom. The electric push rod 511 is started, and the electric push rod 511 pushes the first sliding sleeve 512 at the bottom of the vertical plate 513 to slide on the sliding rod 4. When the first sliding sleeve 512 moves, it drives the first scraper 516 and the second scraper 517 at the bottom thereof to move through the first telescopic rod 514. The movement of the first scraper 516 and the second scraper 517 can timely scrape off the floating scum in the treatment box 1, prevent the scum from being retained for a long time to form an anaerobic environment, avoid the breeding of sulfate-reducing bacteria, odor-producing bacteria, etc., and the treatment box 1 is clean. A wave arc groove 519 is respectively provided on the front and rear sides. The back of the first scraper 516 is fixedly connected to a first fixing rod 518. The end of the first fixing rod 518 away from the first scraper 516 is arranged inside the wave arc groove 519. When the first scraper 516 moves, it will drive the first fixing rod 518 to move. The first fixing rod 518 moves inside the wave arc groove 519. The first fixing rod 518 shakes up and down under the action of the wave arc groove 519. This shaking function can effectively break the surface tension between the scum and the wastewater, making the scum easier to be scraped off by the scraper. Especially for some scum with strong adhesion, shaking up and down can increase the contact area and contact frequency between the scraper and the scum, thereby cleaning the scum more thoroughly and avoiding scum residue. When the first scraper 516 and the second scraper 517 move to the edge of the processing box 1, since the first scraper 516 and the second scraper 517 are movably connected by a limit spring, the second scraper 517 will contract when it is pushed onto the water baffle 8, and the second scraper 517 will stop when it moves to the edge of the water baffle 8, in order to push the scum into the collection box 2.
[0020] Working principle: Start the electric push rod 511, and the electric push rod 511 pushes the first sliding sleeve 512 at the bottom of the vertical plate 513 to slide on the sliding rod 4. When the first sliding sleeve 512 moves, it will drive the first scraper 516 and the second scraper 517 at the bottom thereof to move through the first telescopic rod 514. The movement of the first scraper 516 and the second scraper 517 can promptly scrape off the floating scum in the treatment box 1, prevent the scum from being retained for a long time to form an anaerobic environment, and avoid the breeding of sulfate-reducing bacteria, odor-producing bacteria, etc. When the first scraper 516 moves, it will drive the first fixed rod 518 to move. The first fixed rod 518 moves inside the wave arc groove 519. The first fixed rod 518 shakes up and down under the action of the wave arc groove 519. This shaking function can effectively break the surface tension between the scum and the wastewater, making the scum easier to be scraped off by the scraper. Especially for some scum with strong adhesion, shaking up and down can increase the contact area and contact frequency between the scraper and the scum, thereby cleaning the scum more thoroughly and avoiding scum residue. When the first scraper 516 and the second scraper 517 move to the edge of the processing box 1, since the first scraper 516 and the second scraper 517 are movably connected by a limit spring, the second scraper 517 will contract when it is pushed onto the water baffle 8, and the second scraper 517 will stop when it moves to the edge of the water baffle 8, in order to push the scum into the collection box 2.
[0021] See also Figure 1-7On the basis of the above embodiment, in another embodiment of the present invention, a filter press mechanism 6 is provided inside the right collection box 2, and the filter press mechanism 6 includes a vertical groove 611. The vertical groove 611 is opened on the inner wall of the collection box 2. A slider 612 is slidably connected to the inside of the vertical groove 611. A pressure plate 613 is fixedly connected to the front of the slider 612. A first resistance block 614 is fixedly connected to the top of the pressure plate 613. A second sliding sleeve 615 is provided on the outer wall of the slide rod 4. A connecting rod 616 is fixedly connected to the left side of the second sliding sleeve 615. The outer wall of the slide rod 4 is provided with a second sliding sleeve. The third spring 621 is arranged between the second sliding sleeve 615 and the right support plate 3. The bottom of the second sliding sleeve 615 is fixedly connected with a first interference rod 617. The first interference rod 617 contacts the first interference block 614. When the vertical plate 513 moves to the right, it will interfere with the connecting rod 616. The connecting rod 616 will move to the right under the interference of the vertical plate 513, thereby driving the first interference rod 617 at its bottom to move to the right through the connecting rod 616. When the first interference rod 617 moves to the right, it will interfere with the first interference block 614. Under the action of the resistance, the pressure plate 613 is driven to move downward. This downward pressing action is performed after the scum falls into the collection box 2. The scum can be filtered by the pressure plate 613. The left side of the first resistance rod 617 is fixedly connected to the second fixing rod 618. The left side of the second fixing rod 618 is fixedly connected to one end of the second spring 619. The other end of the second spring 619 is fixedly connected to the knocking ball 620. The knocking ball 620 contacts the inner wall of the collection box 2. When the vertical plate 513 is out of contact with the connecting rod 616, the pressure plate 613 will It automatically resets under the action of elastic recovery, and the second sliding sleeve 615 automatically resets under the action of the third spring 621, thereby driving the first resistance rod 617 to automatically reset. When the first resistance rod 617 resets to the left, it drives the second spring 619 to move to the left through the second fixed rod 618, thereby driving the knocking ball 620 to move to the left, and the knocking ball 620 knocks the inclined surface of the left inner wall of the collecting box 2. This knocking can effectively break the adhesion of the scum on the inclined surface, so that the scum slides smoothly to the bottom of the collecting box 2.
[0022] Working principle: When the vertical plate 513 moves to the right, it will conflict with the connecting rod 616. The connecting rod 616 will move to the right under the action of the vertical plate 513, thereby driving the first conflicting rod 617 at its bottom to move to the right through the connecting rod 616. When the first conflicting rod 617 moves to the right, it will conflict with the first conflicting block 614. Under the action of the conflict, the pressing plate 613 is driven to move downward. This downward pressing action is performed after the scum falls into the inside of the collection box 2. The scum can be filtered by the pressing plate 613. When the vertical plate 513 is out of contact with the connecting rod 616, When the first contact rod 617 is reset to the left, the second spring 619 is driven to move to the left through the second fixing rod 618, thereby driving the knocking ball 620 to move to the left. The knocking ball 620 knocks the inclined surface of the left inner wall of the collecting box 2. This knocking can effectively break the adhesion of the scum on the inclined surface, so that the scum can slide smoothly to the bottom of the collecting box 2.
[0023] See also Figure 1-7On the basis of the above embodiment, in another embodiment of the present invention, a spraying mechanism 7 is provided on the top of the processing box 1, and the spraying mechanism 7 includes a connecting plate 711, which is fixedly connected to the top of the processing box 1, and a placement box 712 is fixedly connected to the front of the connecting plate 711, and a discharge port 713 is provided on the front of the placement box 712, and a fixing plate 714 is fixedly connected to the front of the placement box 712, and a second telescopic rod 715 is fixedly connected to the bottom of the fixing plate 714, and a fourth spring 716 is movably provided on the outer wall of the second telescopic rod 715, and the bottom of the second telescopic rod 715 is fixedly connected to The baffle 724 is arranged on the front of the discharge port 713. The front of the baffle 724 is fixedly connected to the second contact block 717. The back of the first sliding sleeve 512 is fixedly connected to the second contact rod 718. The second contact rod 718 contacts the second contact block 717. When the first sliding sleeve 512 moves, the second contact rod 718 is driven to move. When the second contact rod 718 contacts the second contact block 717, the second contact block 717 is lifted, thereby driving the baffle 724 to rise. When the baffle 724 rises, the discharge port 713 is exposed, thereby placing the box 712 in the container. The activated carbon particles at the bottom will fall out. When the second interference rod 718 is out of contact with the second interference block 717, the baffle 724 will automatically reset under the action of the second telescopic rod 715 and the fourth spring 716, and block the discharge port 713 again. The baffle 724 is intermittently lifted to achieve intermittent discharge of activated carbon particles. The outer wall of the second interference rod 718 is fixedly connected to the first push rod 719, and the front of the connecting plate 711 is rotatably connected to two rotating rods 720. The outer walls of the two rotating rods 720 are fixedly connected to the swing plate 722. The outer walls of the two rotating rods 720 are provided with The torsion spring 721 and the front side of the swing plate 722 are fixedly connected with the third fixed rod 723. When the activated carbon particles are discharged, the second interference rod 718 will drive the first push rod 719 to move. The arc surface of the lower end of the first push rod 719 will contact the outer wall of the third fixed rod 723. During this contact process, the swing plate 722 will swing slightly under the action of the torsion spring 721. The swing plate 722 swings under the action of the torsion spring 721, so that the activated carbon particles can be evenly sprayed to different areas in the treatment box 1. At the same time, this interference will not affect the normal movement of the first push rod 719.
[0024] Working principle: When the first sliding sleeve 512 moves, it will drive the second resistance rod 718 to move. When the second resistance rod 718 contacts the second resistance block 717, the second resistance block 717 will rise, thereby driving the baffle 724 to rise. When the baffle 724 rises, the discharge port 713 will be exposed, so that the activated carbon particles inside the placement box 712 will fall out. When the second resistance rod 718 is out of contact with the second resistance block 717, the baffle 724 will automatically reset under the action of the second telescopic rod 715 and the fourth spring 716, and block the discharge port 713 again. The baffle 724 is intermittently lifted to achieve intermittent discharge of activated carbon particles. This design avoids the continuous emission of activated carbon particles. By precisely controlling the emission of activated carbon particles, it avoids the excessive use of activated carbon particles, reduces the cost of activated carbon particles for wastewater treatment, reduces unnecessary waste, and realizes the rational use of activated carbon particles. While the activated carbon particles are being discharged, the second resistance rod 718 will drive the first push rod 719 to move, and the lower end arc surface of the first push rod 719 will contact the outer wall of the third fixed rod 723. During this contact process, the swing plate 722 will swing slightly under the action of the torsion spring 721. The swing plate 722 swings under the action of the torsion spring 721, so that the activated carbon particles can be evenly sprayed to different areas in the treatment box 1. At the same time, this resistance will not affect the normal movement of the first push rod 719.
[0025] The present invention provides a wastewater treatment device for apple pomace bio-feed processing. There are numerous methods and approaches for implementing this technical solution. The above is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art may make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications are also within the scope of protection of the present invention. Any components not specified in this embodiment may be implemented using existing technologies.
Claims
1. A wastewater treatment device for apple pomace bio-feed processing, comprising a treatment tank (1), characterized in that: The left and right sides of the processing box (1) are respectively fixedly connected to a collection box (2); the outer sides of the two collection boxes (2) are respectively fixedly connected to a support plate (3); and a sliding rod (4) is fixedly connected between the inner walls of the two support plates (3); A cleaning mechanism (5) is provided inside the processing box (1), and the cleaning mechanism (5) includes an electric push rod (511), the electric push rod (511) is fixedly connected to the right side of the left support plate (3), the outer wall of the slide rod (4) is movably sleeved with a first slide sleeve (512), the top of the first slide sleeve (512) is fixedly connected to a vertical plate (513), the electric push rod (511) is fixedly connected to the vertical plate (513), the bottom of the first slide sleeve (512) is fixedly connected to a first telescopic rod (514), the outer wall of the first telescopic rod (514) is movably sleeved with a first spring (515), the bottom of the first telescopic rod (514) is fixedly connected to two first scrapers (516), and the interiors of the two first scrapers (516) are movably connected to a second scraper (517) via a limit spring.
2. The wastewater treatment device for apple pomace bio-feed processing according to claim 1, characterized in that: The front and rear sides of the processing box (1) are respectively provided with a wave arc groove (519); the back of the first scraper (516) is fixedly connected to a first fixing rod (518); and the end of the first fixing rod (518) away from the first scraper (516) is arranged inside the wave arc groove (519).
3. The wastewater treatment device for apple pomace bio-feed processing according to claim 2, characterized in that: A filter press mechanism (6) is provided inside the collection box (2) on the right side. The filter press mechanism (6) comprises a vertical groove (611). The vertical groove (611) is formed on the inner wall of the collection box (2). A slider (612) is slidably connected to the interior of the vertical groove (611). A pressure plate (613) is fixedly connected to the front of the slider (612).
4. The wastewater treatment device for apple pomace bio-feed processing according to claim 3, characterized in that: The top of the pressure plate (613) is fixedly connected to a first resistance block (614), the outer wall movable sleeve of the slide rod (4) is provided with a second slide sleeve (615), the left side of the second slide sleeve (615) is fixedly connected to a connecting rod (616), the outer wall movable sleeve of the slide rod (4) is provided with a third spring (621), the third spring (621) is arranged between the second slide sleeve (615) and the right support plate (3), the bottom of the second slide sleeve (615) is fixedly connected to a first resistance rod (617), and the first resistance rod (617) is in contact with the first resistance block (614).
5. The wastewater treatment device for apple pomace bio-feed processing according to claim 4, characterized in that: The left side of the first resisting rod (617) is fixedly connected to a second fixing rod (618), the left side of the second fixing rod (618) is fixedly connected to one end of a second spring (619), and the other end of the second spring (619) is fixedly connected to a knocking ball (620), and the knocking ball (620) contacts the inner wall of the collection box (2).
6. The wastewater treatment device for apple pomace bio-feed processing according to claim 5, characterized in that: A spraying mechanism (7) is provided on the top of the processing box (1), and the spraying mechanism (7) comprises a connecting plate (711). The connecting plate (711) is fixedly connected to the top of the processing box (1), and a placement box (712) is fixedly connected to the front of the connecting plate (711). A discharge port (713) is provided on the front of the placement box (712).
7. The wastewater treatment device for apple pomace bio-feed processing according to claim 6, characterized in that: The front of the placement box (712) is fixedly connected to a fixed plate (714), the bottom of the fixed plate (714) is fixedly connected to a second telescopic rod (715), the outer wall of the second telescopic rod (715) is movably sleeved with a fourth spring (716), the bottom of the second telescopic rod (715) is fixedly connected to a baffle (724), the baffle (724) is arranged on the front of the discharge port (713), the front of the baffle (724) is fixedly connected to a second resistance block (717), the back of the first sliding sleeve (512) is fixedly connected to a second resistance rod (718), and the second resistance rod (718) is in contact with the second resistance block (717).
8. The wastewater treatment device for apple pomace bio-feed processing according to claim 7, characterized in that: The outer wall of the second interference rod (718) is fixedly connected to the first push rod (719), the front side of the connecting plate (711) is rotatably connected to two rotating rods (720), the outer walls of the two rotating rods (720) are fixedly connected to a swing plate (722), the outer walls of the two rotating rods (720) are provided with a torsion spring (721), and the front side of the swing plate (722) is fixedly connected to a third fixed rod (723).
Citation Information
Patent Citations
Wastewater treatment device for apple pomace biological feed processing
CN221701274U