Intelligent jet flow reactor based on concentration monitoring
By optimizing the structure of the water distributor and designing a jet-based intelligent reactor based on concentration monitoring, the problem of insufficient contact of reagents in fluidized bed reactors was solved, resulting in more efficient wastewater treatment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2026-03-27
AI Technical Summary
In wastewater treatment, insufficient contact between reagent particles in a fluidized bed reactor leads to low treatment efficiency and slow fluid flow rate in the distributor, affecting product quality and process safety.
A jet-based smart reactor based on concentration monitoring is designed. By optimizing the structure of the water distributor, wastewater and reagents are mixed in the water distributor to form a high-speed jet, thereby improving the fluid velocity and reagent contact effect.
It improves the jetting effect of the water distributor, enhances the mixing efficiency of the agent and the wastewater, improves the treatment efficiency and product quality, and ensures the safety of the process.
Smart Images

Figure CN224047009U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of fluid distribution device, especially to a fluid intelligent reactor based on concentration monitoring. BACKGROUND
[0002] At present, in sewage treatment technology, the medicament particles in fluidized bed reactor cannot realize full contact, leading to that the treatment efficiency does not reach ideal index, the fluid flow rate at the bottom of the water distributor is relatively slow, and medicament particles full contact, improving product quality and ensuring process safety are very important. Therefore, it is of great significance to design a structure optimization reactor based on fluid distribution device. SUMMARY
[0003] In view of the defects of the prior art, the utility model provides a fluid intelligent reactor based on concentration monitoring, which solves the problem of slow fluid flow rate of the water distributor.
[0004] A fluid intelligent reactor based on concentration monitoring is a water distributor.
[0005] The water distributor comprises a sewage inlet pipe, a reagent one inlet pipe and a reagent two inlet pipe, all of which are located in the water distributor, the reagent one inlet pipe is horizontally fixed and placed in the water distributor, a plurality of reagent one outlets are uniformly distributed on the reagent one inlet pipe, the reagent two inlet pipe is horizontally fixed and placed in the water distributor and is parallel to the reagent one inlet pipe, one end of a reagent two outlet pipe is connected with the reagent two inlet pipe perpendicularly, and the other end of the reagent two outlet pipe is connected with the reagent two inlet pipe at an angle of 45° with the water distributor. The sewage inlet pipe is horizontally fixed and placed in the water distributor and is horizontal with and lower than the reagent one inlet pipe and the reagent two inlet pipe; the second water distributor outlet is located on the left and right sides of the center line of the fluid pipe in the water distributor; the second water distributor outlet is symmetrically arranged on the left and right sides of the center line of the fluid pipe, and the outlet directions of the two symmetric second water distributor outlets are at an angle of 90°.
[0006] The above technical scheme has the following beneficial effects:
[0007] The utility model provides a structure optimization reactor based on fluid distribution device, changes the internal structure of the water distributor, and the fluid effect of the water distributor is better. BRIEF DESCRIPTION OF DRAWINGS
[0008] Figure 1 The utility model discloses a water distributor structure schematic view.
[0009] In the figure, 1 is a water distributor, 2 is a reagent one inlet pipe, 3 is a reagent two inlet pipe, 4 is a sewage inlet pipe, 5 is a reagent two outlet pipe, 6 is a second water distributor outlet, and 7 is a reagent one outlet. DETAILED DESCRIPTION
[0010] The specific embodiments of the present application will be further described in conjunction with the drawings and examples. The following examples are used to illustrate the present application, but not to limit the scope of the present application.
[0011] A jet intelligent reactor based on concentration monitoring, for water distributor 1;As Figure 1 shown;
[0012] The water distributor 1 comprises a sewage inlet pipe 4, a reagent one inlet pipe 2, a reagent two inlet pipe 3, the sewage inlet pipe 4, the reagent one inlet pipe 2, the reagent two inlet pipe 3 are located in the water distributor 1, the reagent one inlet pipe 2 is horizontally fixed in the water distributor, a plurality of reagent one outlets 7 are uniformly distributed on the reagent one inlet pipe 2, the reagent two inlet pipe 3 is horizontally fixed in the water distributor, parallel to the reagent one inlet pipe 2, the reagent two outlet pipe 5 is vertically connected with the reagent two inlet pipe 3 at one end, and the reagent two outlet pipe 5 is connected with the reagent two inlet pipe 3 at the other end at an angle of 45° with the water distributor. The sewage inlet pipe 4 is horizontally fixed in the water distributor, which is horizontal with the reagent one inlet pipe 2 and the reagent two inlet pipe 3, and lower than the reagent one inlet pipe 2 and the reagent two inlet pipe 3;The water distributor two outlet 6 is located in the water distributor 1 on both sides of the jet pipe center line;The water distributor two outlet 6 is symmetrically arranged on both sides of the jet pipe center line, and the outlet direction of the two symmetric water distributor two outlets 6 is 90°;
[0013] Sewage enters the water distributor 1 from the sewage inlet pipe 4, reagent one enters from the reagent one inlet pipe 2 and is sprayed from the reagent one outlet 7 to mix with the sewage for the first time, forming a mixed liquid, reagent two enters the water distributor 1 through the reagent two inlet pipe 3, is sprayed from the reagent two outlet 5 to mix with the mixed liquid for the second time, and is sprayed to the reaction zone through the water distributor two outlet 6 after mixing. The angle between the jet nozzle axial center line and the horizontal plane is θ, and the angle range of θ is: 45°<0<135°. The water distributor 1 is arranged below the bottom of the fluidized bed tank, a high-speed jet can be generated by the jet nozzle, which can act on the substances settled at the bottom of the fluidized bed tank with a large jet velocity, so as to carry out high-efficiency chemical reaction.
[0014] The above description is only the preferred embodiment of the present application and the explanation of the applied technical principles. Those skilled in the art should understand that the utility model range involved in the embodiments of the present application is not limited to the technical solutions formed by the specific combination of the above technical features, and should also cover other technical solutions formed by any combination of the above technical features or their equivalent features without departing from the above utility model concept. For example, the above features are replaced with the technical features disclosed in the embodiments of the present application (but not limited to) having similar functions to form technical solutions.
Claims
1. A concentration monitoring based smart jet reactor, characterized in that, The water distributor 1 is structured; The water distributor comprises a sewage inlet pipe, a reagent one inlet pipe and a reagent two inlet pipe, the sewage inlet pipe, the reagent one inlet pipe and the reagent two inlet pipe are located in the water distributor, one end of the reagent two outlet pipe is connected with the reagent two inlet pipe perpendicularly, the other end of the reagent two outlet pipe is connected with the reagent two inlet pipe at an angle of 45° with the water distributor; the water distributor two outlet of the water distributor structure is located on the left and right sides of the center line of the water jet pipe in the water distributor.
2. A smart fluidic reactor based on concentration monitoring as claimed in claim 1, wherein, The reagent one inlet pipe is horizontally fixed and placed in the water distributor, and a plurality of reagent one outlets are uniformly distributed on the reagent one inlet pipe.
3. A smart fluidic reactor based on concentration monitoring as claimed in claim 2, wherein, The reagent two inlet pipe is horizontally fixed and placed in the water distributor, and is parallel to the reagent one inlet pipe.
4. A smart fluidic reactor based on concentration monitoring as claimed in claim 3, wherein, The sewage inlet pipe is horizontally fixed and placed in the water distributor, and is horizontal to the reagent one inlet pipe and the reagent two inlet pipe, and is lower than the reagent one inlet pipe and the reagent two inlet pipe.
5. The smart fluidic reactor based on concentration monitoring as claimed in claim 1, wherein, The water distributor two outlets are symmetrically arranged on the left and right sides of the center line of the water jet pipe, and the outlet directions of the two symmetric water distributor two outlets are 90°.