Integrated electric control device for sewage treatment equipment
Technical Field
The utility model relates to the technical field of sewage treatment equipment, in particular to an integrated electric control device of sewage treatment equipment.
Background
The sewage treatment is to make sewage reach and discharge into a certain water or reuse the water quality requirement to purify it, need to use the integrated sewage treatment equipment when sewage treatment, the integrated sewage treatment equipment need to use electrical control device to control it when using.
The existing electric control device is generally not provided with a dust cleaning structure, so that a large amount of dust can be accumulated in the electric control device, the heat dissipation efficiency of elements is greatly reduced, and the situation that the elements in the electric control device are damaged can occur in severe cases.
Therefore, in view of the above-mentioned current situation, there is an urgent need to develop an integrated electric control device for sewage treatment equipment to overcome the shortcomings in the current practical application.
Disclosure of utility model
The embodiment of the utility model aims to provide an integrated electric control device for sewage treatment equipment, which aims to solve the problems in the background technology.
In order to achieve the above purpose, the present utility model provides the following technical solutions:
The utility model provides an integration sewage treatment device electrical control device, includes control box and radiating groove, control box both sides wall all is provided with the radiating groove, two protective covers of control box inner wall fixedly connected with just protective cover and radiating groove one-to-one, the through groove has all been seted up on the protective cover terminal surface, two symmetrical distribution's of protective cover inner wall still fixedly connected with baffle, fixedly connected with a plurality of evenly distributed's scraper blades on the baffle, just sliding connection has back template between baffle and the one end face inner wall of protective cover, back template internal fixedly connected with dust screen, the scraper blade is used for scraping dust on dust screen surface, back template upper end fixedly connected with fixed column, fixed column upper end fixedly connected with straight-groove plate, the cooperation of straight-groove plate is provided with and presss from both sides and get the subassembly, it is used for driving straight-groove plate and releases after rising to a take the altitude to press from both sides the subassembly, the fixed first spring that is provided with a plurality of evenly distributed between protective cover bottom inner wall and the back bottom outer wall, through first spring and clamp and get a plurality of evenly distributed's scraper blade, back template drive mode that is used for scraping dust screen surface is broken, thereby the dust absorption assembly is more easily to be connected with the dust absorption port by vibration, and is more flexible, and is more easily to be inhaled by the dust absorption port.
According to a further technical scheme, the center line of the through groove is collinear with the center line of the heat dissipation groove, and the cross section of the scraping plate is trapezoid.
According to a further technical scheme, the arcs on two sides of the straight groove plate belong to concentric circles, and the radiuses are the same.
According to the technical scheme, the clamping assembly comprises a T-shaped plate, trapezoid grooves, clamping plates, push rods, second springs and fixed shafts, the T-shaped plate is connected to the protective cover in a sliding mode, two symmetrically distributed fixed shafts are fixedly connected to the T-shaped plate, the clamping plates are rotatably sleeved on the outer walls of the fixed shafts and abut against the inner walls of the protective cover, the trapezoid grooves are formed in the upper ends of the protective cover, the inner walls of the trapezoid grooves are matched and connected with the upper ends of the clamping plates, the push rods are fixedly connected to the clamping plates, and the second springs are fixedly sleeved on the two push rods.
Further technical scheme, control box upper end fixedly connected with electric telescopic handle, electric telescopic handle's drive end fixedly connected with diaphragm, just the both ends of diaphragm are fixed connection T template respectively.
According to a further technical scheme, the position height of the push rod is higher than that of the fixed shaft.
According to a further technical scheme, the dust collection assembly comprises an air pump and a dust collection bag, the air pump and the dust collection bag are fixedly connected to the side wall of the control box, the air outlet end of the air pump is communicated with the dust collection bag, and the air inlet end of the air pump is fixedly connected with the dust collection opening through a pipe hose.
In summary, compared with the prior art, the embodiment of the utility model has the following beneficial effects:
1. The clamping component drives the straight groove plate to rise to a certain height and then release, the scraping plate scrapes dust on the surface of the dust screen, and the dust collection component processes the dust removed from the dust screen, so that more air is allowed to flow, and the heat dissipation efficiency of the element is improved;
2. the return plate is driven to continuously vibrate in a reciprocating manner through the first spring and the clamping assembly, so that dust on the dust screen is vibrated to loosen, and the dust screen is easier to clean.
In order to more clearly illustrate the structural features and efficacy of the present utility model, the present utility model will be described in detail below with reference to the accompanying drawings and examples.
Drawings
FIG. 1 is a schematic perspective view of the present utility model;
FIG. 2 is a schematic perspective view of another view of the present utility model;
FIG. 3 is a schematic perspective view of the interior of the control box of the present utility model;
FIG. 4 is a schematic view of another perspective view of FIG. 3 according to the present utility model;
fig. 5 is a schematic cross-sectional perspective view of fig. 3 according to the present utility model.
The device comprises a control box 1, a heat dissipation groove 2, an electric telescopic rod 3, a transverse plate 4, a T-shaped plate 5, a protective cover 6, a 7, a through groove 8, a partition plate 9, a return plate 10, a dust screen 11, a scraping plate 12, a first spring 13, a dust collection opening 14, a fixed column 15, a straight groove plate 16, a trapezoid groove 17, a clamping plate 18, a push rod 19, a second spring 20, an air pump 21, a dust collection bag 22 and a fixed shaft.
Detailed Description
The present utility model will be described in further detail with reference to the drawings and examples, in order to make the objects, technical solutions and advantages of the present utility model more apparent. It should be understood that the specific embodiments described herein are for purposes of illustration only and are not intended to limit the scope of the utility model.
Specific implementations of the utility model are described in detail below in connection with specific embodiments.
As shown in fig. 1-5, the embodiment of the utility model provides an integrated electric control device for sewage treatment equipment, which comprises a control box 1 and a heat dissipation groove 2, wherein the heat dissipation groove 2 is arranged on both side walls of the control box 1, two protecting covers 6 are fixedly connected to the inner wall of the control box 1, the protecting covers 6 are in one-to-one correspondence with the heat dissipation groove 2, through grooves 7 are formed in one end face of each protecting cover 6, two symmetrically distributed partition plates 8 are fixedly connected to the inner wall of each protecting cover 6, a plurality of uniformly distributed scraping plates 11 are fixedly connected to the partition plates 8, a return plate 9 is slidably connected between the partition plates 8 and one end face inner wall of each protecting cover 6, a dust screen 10 is fixedly connected to the interior of the return plate 9, the scraping plates 11 are used for scraping dust on the surface of the dust screen 10, fixing columns 14 are fixedly connected to the upper ends of the return plate 9, straight groove plates 15 are fixedly connected to the upper ends of the fixing columns, clamping components are cooperatively arranged on one end face of each protecting cover 6, the clamping components are used for driving the straight groove plates 15 to rise to a certain height, and then the bottom ends of the dust screen 9 are more uniformly distributed, and the dust screen 9 are more evenly distributed by the return plates are in a vibration mode, and the dust screen 12 is more easily removed by vibration mode, and the dust screen 12 is more easily driven by the vibration mode is better; the bottom of the protective cover 6 is provided with dust collection openings 13, and the dust collection openings 13 are connected with dust collection assemblies in a matched mode.
Further, the center line of the through groove 7 is collinear with the center line of the heat dissipation groove 2, and the cross section of the scraping plate 11 is trapezoid.
Further, the arcs at both sides of the straight groove plate 15 are concentric circles and have the same radius.
Specifically, the straight groove plate 15 is driven to rise to a certain height by the clamping component and then is released, dust on the surface of the dust screen 10 is scraped by the scraping plate 11, the return plate 9 is driven to continuously vibrate in a reciprocating manner by the first spring 12 and the clamping component in a matched mode, so that the dust on the dust screen 10 is vibrated to loosen, the dust is easier to remove, and the dust removed from the dust screen 10 is processed by the dust collection component.
As shown in fig. 2, 4 and 5, the clamping assembly comprises a T-shaped plate 5, a trapezoid groove 16, clamping plates 17, push rods 18, second springs 19 and fixed shafts 22, the T-shaped plate 5 is connected to the protective cover 6 in a sliding mode, two symmetrically distributed fixed shafts 22 are fixedly connected to the T-shaped plate 5, the clamping plates 17 are rotatably sleeved on the outer walls of the fixed shafts 22 and abut against the inner walls of the protective cover 6, the trapezoid groove 16 is formed in the upper end of the protective cover 6, the inner walls of the trapezoid grooves 16 are matched and connected with the upper ends of the clamping plates 17, the push rods 18 are fixedly connected to the clamping plates 17, and the second springs 19 are fixedly sleeved on the two push rods 18.
Further, the upper end of the control box 1 is fixedly connected with an electric telescopic rod 3, the driving end of the electric telescopic rod 3 is fixedly connected with a transverse plate 4, and two ends of the transverse plate 4 are respectively and fixedly connected with a T-shaped plate 5.
Further, the push rod 18 is positioned at a higher level than the fixed shaft 22.
Specifically, the electric telescopic rod 3 contracts, then the electric telescopic rod 3 drives the T-shaped plate 5 to descend through the transverse plate 4, then the T-shaped plate 5 drives the clamping plate 17 to descend through the fixed shaft 22 until the lower end of the clamping plate 17 abuts against the straight groove plate 15, along with the continuous descending of the T-shaped plate 5, the lower ends of the two clamping plates 17 simultaneously rotate outwards under the extrusion of the straight groove plate 15 until the lower ends of the clamping plates 17 are separated from the upper end face of the straight groove plate 15, then the second spring 19 pushes the two lower ends to be close to each other, so that the lower end faces of the straight groove plate 15 are clamped, then the electric telescopic rod 3 stretches, then the electric telescopic rod 3 drives the T-shaped plate 5 to ascend through the transverse plate 4, then the T-shaped plate 5 drives the clamping plates 17 to ascend through the fixed shaft 22 until the upper ends of the clamping plates 17 abut against the trapezoid groove 16, along with the continuous ascending of the T-shaped plate 5, the upper ends of the two clamping plates 17 are close to each other under the restriction of the trapezoid groove 16, so that the lower ends of the two clamping plates 17 are far away from each other, and then the lower ends of the clamping plates 17 are released.
As shown in fig. 1 and 4, the dust collection assembly comprises an air pump 20 and a dust collection bag 21, wherein the air pump 20 and the dust collection bag 21 are fixedly connected to the side wall of the control box 1, the air outlet end of the air pump 20 is communicated with the dust collection bag 21, and the air inlet end of the air pump 20 is fixedly connected with the dust collection opening 13 through a pipe hose.
Specifically, the dust removed from the dust screen 10 is sucked by the air pump 20 through the hose and then transferred into the dust bag 21.
Further, a dust sensor for detecting dust concentration is fixedly installed in the control box 1.
When the dust sensor detects that the dust concentration exceeds the standard, the electric telescopic rod 3 contracts, then the electric telescopic rod 3 drives the T-shaped plate 5 to descend through the transverse plate 4, then the T-shaped plate 5 drives the clamping plate 17 to descend through the fixed shaft 22 until the lower ends of the clamping plates 17 are abutted against the straight groove plate 15, as the T-shaped plate 5 descends continuously, the lower ends of the two clamping plates 17 rotate outwards under the extrusion of the straight groove plate 15 until the lower ends of the clamping plates 17 are separated from the straight groove plate 15, at the moment, the second springs 19 push the two lower ends to be close to each other, thereby clamping the lower end face of the straight groove plate 15, then the electric telescopic rod 3 stretches, then the electric telescopic rod 3 drives the T-shaped plate 5 to ascend through the transverse plate 4, then the T-shaped plate 5 drives the clamping plates 17 to ascend through the fixed shaft 22 until the upper ends of the clamping plates 17 are abutted against the trapezoid grooves 16, as the T-shaped plate 5 ascends continuously, the upper ends of the two clamping plates 17 are mutually close under the restriction of the trapezoid grooves 16, so that the lower ends of the two clamping plates 17 are mutually far away from each other, then the lower ends of the clamping plates 17 release the straight groove plate 15, then the gravity 9 slide downwards under the action of the first springs 12, the first springs 12 are continuously compressed, and then the dust is continuously broken, and the dust is prevented from vibrating the first springs 10 and the dust is continuously broken, and the dust is kept in the process, and the dust is broken, and the dust is continuously, and the dust is broken, and the dust is prevented from flowing; the dust removed by the dust screen 10 is sucked by the air pump 20 through the hose and then conveyed into the dust bag 21, and the above steps are repeatedly performed until the dust concentration meets the requirement.
The foregoing description of the preferred embodiments of the utility model is not intended to be limiting, but rather is intended to cover all modifications, equivalents, and alternatives falling within the spirit and principles of the utility model.