High-calorific-value waste liquid atomizing nozzle
By using a high-calorific-value waste liquid atomizing nozzle with a centralized guide cone and guide box structure, automatic impurity cleaning is achieved, solving the problems of frequent filter hole adjustment and impurity residue in existing technologies, and improving filtration efficiency and ease of operation.
Patent Information
- Application Number
- CN202423197067.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2034-12-24
AI Technical Summary
Existing high-calorific-value waste liquid atomizing nozzles require frequent adjustments to the filter pore area to adapt to the particle size of impurities in different waste liquids, leading to filtration failure or impurity residue affecting efficiency, and the impurities scattered inside the pipe are difficult to handle.
It adopts a centralized guide cone and guide box structure, filters impurities through filter plates, and cleans impurities using solenoid valves. Combined with common filter hole designs, it achieves automatic impurity cleaning.
It solves the problem of residual impurities, simplifies the operation process, improves filtration efficiency and the convenience of impurity cleaning, and reduces the burden of manual operation.
Smart Images

Figure CN223683726U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to waste liquid atomization technical field, concretely is a kind of high calorific value waste liquid atomization nozzle. BACKGROUND
[0002] In industrial production, a large amount of waste liquid is usually generated, and different waste liquid treatment methods are different, one of which is to convert carbon dioxide and water through atomization combustion, thereby avoiding direct emission to pollute the environment, and the treatment cost is also relatively low.
[0003] The existing high calorific value waste liquid atomization nozzle needs to adjust the overlapping filtering area between the filter holes of the two filter plates according to the particle size of impurities in different waste liquids, which requires very fine operation to adjust the filter hole area, otherwise it may cause the filter hole passing area to be too small or too small, thereby causing filtering failure or the phenomenon that waste liquid is difficult to pass smoothly, and the adjustment work is very frequent when switching different waste gases, thus bringing many inconveniences, and part of the impurities filtered after waste liquid atomization will be scattered in the pipe and not treated until the next use and mixing with waste liquid and filtering, which will increase the scattering amount of impurities over time, and thus gradually affect the filtering efficiency.
[0004] Therefore, a solution is needed. UTILITY MODEL CONTENT
[0005] (I) Technical problem solved
[0006] In view of the deficiencies of the prior art, the utility model provides a high calorific value waste liquid atomization nozzle to solve the problems raised in the above background art.
[0007] (II) Technical scheme
[0008] To achieve the above purpose, the utility model is realized by the following technical scheme:
[0009] A high calorific value waste liquid atomization nozzle, comprising a nozzle, a plurality of spray ports, a waste liquid pipe, an air inlet cavity, an atomizer, a spray head, a plurality of spray holes and a filtering mechanism, the spray port is arranged on the nozzle, the waste liquid pipe is arranged inside and at the left end of the nozzle, the air inlet cavity is arranged inside the inner wall of the waste liquid pipe, the atomizer is arranged at the right end inside the waste liquid pipe, the spray head is arranged at the right end of the waste liquid pipe and inside the nozzle, a plurality of spray holes are uniformly arranged on the spray head, and the filtering mechanism is arranged inside the waste liquid pipe.
[0010] The filtering mechanism comprises a concentrated guide cone, a large fixed ring, a guide box, a small fixed plate, a release guide cone, a plurality of fixed waterproof glue, a residue discharging pipe and a solenoid valve, the concentrated guide cone is arranged at the bottom of the inner wall of the waste liquid pipe, the large fixed ring is arranged at the right end of the guide cone, the inside of the large fixed ring is provided with an extension slope plate and a liquid inlet one, the extension slope plate is arranged in a semicircular structure at the lower half of the inside of the large fixed ring, the liquid inlet one is arranged at the upper half of the inside of the large fixed ring, the guide box is arranged in a cylindrical structure at the right end of the large fixed ring, the small fixed plate is arranged in a semicircular structure on the guide box, the release guide cone is arranged at the right end of the guide box and is arranged in an up-down opposite structure with the concentrated guide cone, the shape and size of the release guide cone are consistent with those of the concentrated guide cone, the plurality of fixed waterproof glue are arranged on the large fixed ring, the guide box and the small fixed plate respectively, the residue discharging pipe is arranged at the bottom of the guide box and extends downwardly through the inner wall of the waste liquid pipe, and the solenoid valve is arranged on the residue discharging pipe.
[0011] Preferably, the slope of the top of the extension slope plate is consistent with the slope of the top of the guide cone, and the thickness of the extension slope plate is consistent with the thickness of the large fixed ring.
[0012] Preferably, the guide box comprises a liquid inlet two, a fixed groove, a filtrate port, a guide arc, a guide block one, a guide block two, a filter plate and a residue discharging port, the liquid inlet two is arranged in a semicircular structure at the left end of the upper half of the side wall of the guide box, the fixed groove is arranged in a concave structure at the upper half of the right end of the side wall of the guide box, the filtrate port is arranged in a semicircular structure at the bottom of the fixed groove and is located in the inside of the guide box, the guide arc is arranged at the top of the inside of the guide box, the guide block one and the guide block two are arranged in a left-right opposite structure at the bottom of the inside of the guide box, the filter plate is arranged at the left end of the filtrate port and is located in the inside of the guide box, and the residue discharging port is arranged between the guide block one and the guide block two and is located at the bottom of the inside of the guide box.
[0013] Preferably, the shape and size of the fixed groove are consistent with those of the small fixed plate, and the size and the slope of the top of the guide block one are greater than those of the guide block two.
[0014] (Three) beneficial effects
[0015] The utility model provides a kind of high calorific value waste liquid atomizing nozzle.It has the following beneficial effects:
[0016] 1. The scheme is by concentrating the guide cone to guide the waste liquid into the guide box, so that the waste water falls from top to bottom and is filtered by the filter plate on the right, the filtrate is released from the filtrate outlet, the impurity particles after filtration are guided downward by the guide block to the slag discharge port, and when cleaning is needed, the electromagnetic valve is opened, and the impurity particles can be discharged along the slag discharge pipe, solving the problem of residual impurities left in the pipeline after each filtration.
[0017] 2. Moreover, the filter plate adopts the smallest filter hole plate that can match the filtrate commonly used in work, so that it can intercept the impurity particles in different filtrates. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0019] Figure 2 It is a schematic diagram of the filter mechanism structure of the utility model;
[0020] Figure 3 It is a schematic diagram of the large fixed ring and its surrounding structure of the utility model;
[0021] Figure 4 It is a schematic diagram of the extension slope plate structure of the utility model;
[0022] Figure 5 It is a schematic diagram of the left end structure of the guide box of the utility model;
[0023] Figure 6 It is a schematic diagram of the right end structure of the guide box of the utility model;
[0024] Figure 7 It is a schematic diagram of the filter plate structure of the utility model.
[0025] In the figure, 1-nozzle; 2-several spray openings; 3-waste liquid pipe; 4-air inlet cavity; 5-atomizer; 6-sprayer; 7-several spray holes; 8-filter mechanism; 81-concentrating guide cone; 82-large fixed ring; 821-extension slope plate; 822-liquid inlet one; 83-guide box; 831-liquid inlet two; 832-fixed groove; 833-filtrate outlet; 834-guide arc; 835-guide block one; 836-guide block two; 837-filter plate; 838-slag discharge port; 84-small fixed plate; 85-release guide cone; 86-several fixed waterproof glue; 87-slag discharge pipe; 88-electromagnetic valve. DETAILED DESCRIPTION
[0026] Clearly, the described embodiments are merely a part of the embodiments of the present application, but not all the embodiments. Based on the embodiments of the present application, all the other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0027] Please refer to Figures 1-7 The utility model discloses an embodiment provides a technical scheme to realize: including nozzle 1, a plurality of spouts 2, waste liquid pipe 3, inlet cavity 4, atomizer 5, spray head 6, a plurality of spray holes 7 and filter mechanism 8, spout 2 sets up on the nozzle 1, waste liquid pipe 3 sets up inside and left end of nozzle 1, inlet cavity 4 sets up inside the inner wall of waste liquid pipe 3, atomizer 5 sets up inside the right end of waste liquid pipe 3, spray head 6 sets up inside the right end of waste liquid pipe 3 and nozzle 1, a plurality of spray holes 7 evenly sets up on spray head 6, filter mechanism 8 sets up inside waste liquid pipe 3.
[0028] The core, filter mechanism 8 includes concentrated guide cone 81, big fixed ring 82, guide box 83, small fixed plate 84, release guide cone 85, a plurality of fixed waterproof glue 86, deslag pipe 87 and solenoid valve 88, concentrated guide cone 81 sets up at the bottom of the inner wall of waste liquid pipe 3, big fixed ring 82 sets up at the right end of guide cone 81, the inside of big fixed ring 82 is provided with extension slope plate 821 and liquid inlet one 822, extension slope plate 821 is provided with half circular structure at the lower half of the inside of big fixed ring 82, liquid inlet one 822 sets up at the upper half of the inside of big fixed ring 82, guide box 83 is provided with cylindrical structure at the right end of big fixed ring 82, small fixed plate 84 is provided with half circular structure on guide box 83, release guide cone 85 sets up at the right end of guide box 83 and is provided with upper and lower opposite structure distribution with concentrated guide cone 81, the shape of release guide cone 85 and concentrated guide cone 81 is consistent, a plurality of fixed waterproof glue 86 are arranged on big fixed ring 82, guide box 83 and small fixed plate 84 respectively, deslag pipe 87 sets up at the bottom of guide box 83 and extends downwardly through the inner wall of waste liquid pipe 3, solenoid valve 88 sets up on deslag pipe 87.Extension slope plate 821 top slope and guide cone 81 top slope are consistent, and the thickness of extension slope plate 821 and the thickness of big fixed ring 82 are consistent.
[0029] Specifically, the guide box 83 includes liquid inlet two 831, fixed groove 832, filtrate outlet 833, guide arc 834, guide block one 835, guide block two 836, filter plate 837 and slag discharge port 838. The liquid inlet two 831 is in a semicircular structure and is arranged at the upper half of the left end side wall of the guide box 83. The fixed groove 832 is concave and arranged at the upper half of the right end side wall of the guide box 83. The filtrate outlet 833 is in a semicircular structure and arranged at the bottom of the fixed groove 832 and inside the guide box 83. The guide arc 834 is arranged at the top inside the guide box 83. The guide block one 835 and the guide block two 836 are arranged in a left-right structure and opposite each other at the bottom inside the guide box 83. The filter plate 837 is arranged at the left end of the filtrate outlet 833 and inside the guide box 83. The slag discharge port 838 is arranged between the guide block one 835 and the guide block two 836 and at the bottom inside the guide box 83. The fixed groove 832 is consistent with the shape and size of the small fixed plate 84. The size and slope of the top of the guide block one 835 are greater than the size and slope of the top of the guide block two 836.
[0030] The present scheme guides the waste liquid into the guide box 83 through the central guide cone 81, so that the waste water falls from top to bottom and is filtered by the filter plate 837 on the right. The filtrate is released through the filtrate outlet 833 to complete the filtration of the waste liquid. The filtered impurity particles are guided downward by the guide block to the slag discharge port 838. When cleaning is needed, the electromagnetic valve 88 is opened, and the impurity particles can be discharged along the slag discharge pipe 87, solving the problem of residual impurities left in the pipeline after each filtration. Moreover, the filter plate 837 uses the smallest filter hole plate that can match the common filtrate in work, so it can intercept impurity particles in different filtrates.
[0031] Working principle: When the nozzle 1 is in use, the waste liquid in the waste liquid pipe 3 is guided by the central guide cone 81 and the extended slope plate 821 along the liquid inlet one 822 and the liquid inlet two 831 to the inside of the guide box 83, and is guided downward along the guide arc 834. Then, it is released through the filtrate outlet 833, and is subsequently released through the spray nozzle 2 by the atomizer 5 and the spray hole 7. When the nozzle 1 stops working, there is no liquid in the pipe, and the filtered impurity particles accumulate at the slag discharge port 838. Opening the electromagnetic valve 88 discharges them through the slag discharge pipe 87.
[0032] The utility model discloses a 1 - nozzle, 2 - a plurality of spouts, 3 - waste liquid pipe, 4 - air inlet cavity, 5 - atomizer, 6 - shower nozzle, 7 - a plurality of spray holes, 8 - filtering mechanism, 81 - concentrated guide cone, 82 - big fixed ring, 821 - extension slope board, 822 - liquid inlet one, 83 - guide box, 831 - liquid inlet two, 832 - fixed groove, 833 - filtrate port, 834 - guide arc, 835 - guide block one, 836 - guide block two, 837 - filter plate, 838 - slag discharge port, 84 - small fixed plate, 85 - release guide cone, 86 - a plurality of fixed waterproof glue, 87 - slag discharge pipe, 88 - electromagnetic valve, these components are all general standard parts or the components that the person skilled in the art knows, and the structure and principle are all known to the person skilled in the art through technical manual or through conventional experimental method, the problem solved by the utility model is that the existing high heat value waste liquid atomizing nozzle needs to adjust the overlapping filtration area between the filter holes of two filter plates according to the particle size of impurities in different waste liquids, and the filter hole area needs very fine operation, otherwise it can cause the filter hole passing area to be too small or too small, and further cause filtration failure or the phenomenon that waste liquid is difficult to pass smoothly, and the adjustment work is very frequent when switching different waste gas, therefore bring many inconveniences, and part of the impurities filtered after waste liquid atomization can be scattered in the pipe and not be treated until the next use and waste liquid mixing and filtration, and the impurity scattering amount is increased for a long time, and further gradually affects the filtration efficiency. The utility model solves the problem that residual impurities are left in the pipeline after each filtration, and the impurities in different filtrates can be intercepted, and the process does not need manual operation, and the work burden of the staff is effectively reduced.
[0033] The above shows and describes the basic principles and main features of the utility model and the advantages of the utility model, and for those skilled in the art, it is obvious that the utility model is not limited to the details of the above-mentioned exemplary embodiments, and the utility model can be realized in other specific forms without departing from the spirit or basic characteristics of the utility model. Therefore, no matter from which point of view, the embodiments should be regarded as exemplary and non-limiting, and the scope of the utility model is defined by the appended claims rather than the above description, and therefore all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the utility model. Any reference signs in the claims should not be regarded as limiting the claims involved.
[0034] In addition, it should be understood that, although the present specification is described in terms of embodiments, not every embodiment contains only one independent technical solution, and the description manner of the specification is only for the sake of clarity, and the person skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by the person skilled in the art.
Claims
1. A high heat value waste liquid atomizing nozzle characterized by: The utility model provides a kind of atomizer, including nozzle (1), several spouts (2), waste liquid pipe (3), air inlet cavity (4), atomizer (5), shower head (6), several spray holes (7) and filter mechanism (8), the spout (2) is arranged on the nozzle (1), the waste liquid pipe (3) is arranged inside and left end of the nozzle (1), the air inlet cavity (4) is arranged inside the inner wall of the waste liquid pipe (3), the atomizer (5) is arranged at the right end inside the waste liquid pipe (3), the shower head (6) is arranged at the right end of the waste liquid pipe (3) and located inside the nozzle (1), several the spray hole (7) is evenly arranged on the shower head (6), the filter mechanism (8) is arranged inside the waste liquid pipe (3); The filter mechanism (8) includes a concentrated guide cone (81), a large fixed ring (82), a guide box (83), a small fixed plate (84), a release guide cone (85), several fixed waterproof glue (86), a slag discharge pipe (87), and a solenoid valve (88). The concentrated guide cone (81) is arranged at the bottom of the inner wall of the waste liquid pipe (3). The large fixed ring (82) is arranged at the right end of the guide cone (81). The inside of the large fixed ring (82) is provided with an extension slope plate (821) and a liquid inlet one (822). The extension slope plate (821) is arranged in a semicircular structure at the lower half of the inner wall of the large fixed ring (82). The liquid inlet one (822) is arranged at the upper half of the inner wall of the large fixed ring (82). The guide box (83) is arranged in a cylindrical structure at the right end of the large fixed ring (82). The small fixed plate (84) is arranged in a semicircular structure on the guide box (83). The release guide cone (85) is arranged at the right end of the guide box (83) and is arranged in an upper and lower opposite structure with the concentrated guide cone (81). The shape and size of the release guide cone (85) and the concentrated guide cone (81) are consistent. Several fixed waterproof glue (86) are arranged on the large fixed ring (82), the guide box (83), and the small fixed plate (84), respectively. The slag discharge pipe (87) is arranged at the bottom of the guide box (83) and extends downward through the inner wall of the waste liquid pipe (3). The solenoid valve (88) is arranged on the slag discharge pipe (87).
2. A high calorific value waste liquid atomizing nozzle according to claim 1, characterized in that: The slope of the top of the extension slope plate (821) is consistent with the slope of the top of the guide cone (81), and the thickness of the extension slope plate (821) is consistent with the thickness of the large fixed ring (82).
3. A high calorific value waste liquid atomizing nozzle according to claim 1, characterized in that: The guide box (83) comprises liquid inlet two (831), fixed groove (832), filtrate outlet (833), guide arc (834), guide block one (835), guide block two (836), filter plate (837) and slag discharge port (838), the liquid inlet two (831) is arranged in the upper half of the left end side wall of the guide box (83) in semicircular structure, the fixed groove (832) is arranged in the upper half of the right end side wall of the guide box (83) in concave, the filtrate outlet (833) is arranged in the bottom of the fixed groove (832) and is located in the inside of the guide box (83) in semicircular structure, the guide arc (834) is arranged in the top of the inside of the guide box (83), the guide block one (835) and the guide block two (836) are arranged in the bottom of the inside of the guide box (83) in left and right structure, the filter plate (837) is arranged in the left end of the filtrate outlet (833) and is located in the inside of the guide box (83), the slag discharge port (838) is arranged between the guide block one (835) and the guide block two (836) and is located in the bottom of the inside of the guide box (83).
4. A high calorific value waste liquid atomizing nozzle according to claim 1, characterized in that: The shape and size of the fixed groove (832) and the small fixed plate (84) are consistent, the size and the slope of the top of the guide block one (835) are greater than the size and the slope of the top of the guide block two (836).