Method for desulfurizing sintering machine flue gas by magnesium strengthened line-gypsum
A technology of sintering machine and gypsum method, applied in chemical instruments and methods, separation methods, calcium/strontium/barium sulfate, etc., can solve problems such as high oxygen content in flue gas, high moisture content in flue gas, and instability. achieve high-quality results
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Publication Date
- 2011-04-06
- Estimated Expiration
- Not applicable · inactive patent
Abstract
Description
technical field
[0001] The invention relates to a method for desulfurizing flue gas of a sintering machine by adding magnesium to strengthen the lime-gypsum method. Background technique
[0002] Sintering machine flue gas has the following characteristics:
[0003] 1. Flue gas SO 2 The concentration varies greatly, at 400-4000mg / m 3 above.
[0004] 2. Flue gas temperature can vary greatly, from 80°C to 180°C.
[0005] 3. The flue gas flow rate varies greatly, up to 40%.
[0006] 4. The moisture content of flue gas is high, between 10% and 13%, and it is unstable.
[0007] 5. The oxygen content of flue gas is high, between 15% and 18%.
[0008] 6. Flue gas contains a variety of pollution components, in addition to sulfur dioxide and dust, it also contains
[0009] Heavy metals, dioxins, nitrogen oxides, etc.
[0010] Domestic commonly used sintering machine flue gas desulfurization methods mainly include: lime-gypsum method, limestone-gypsum method, ammonia method, ci...
Examples
Embodiment Construction
[0031] After the flue gas of the sintering machine is purified by the electrostatic precipitator, it is introduced into the absorption tower by the induced draft fan. The flue gas contacts with the atomized desulfurization liquid sprayed from the nozzle in reverse convection in the tower to form a good atomized absorption area to complete the desulfurization absorption of the flue gas. The desulfurized flue gas passes through the demister at the top of the tower, and is discharged directly from the chimney at the top of the tower after demisting.
[0032] The second impact technology is adopted in the absorption tower to prolong the contact time between the flue gas and the slurry and improve the desulfurization efficiency. A secondary impact device is placed between the first spray layer of the absorption tower and the flue gas inlet. After the flue gas enters the absorption tower, an impact is formed between the flue gas and the desulfurization liquid, forming a dynamic pres...