Desulfurization wastewater treatment device
By utilizing turbine exhaust steam for energy recovery and multi-stage concentration evaporation crystallization process in the desulfurization wastewater treatment device, the problems of high energy consumption and inability to sell crystallized salt in the existing technology are solved, and efficient and low-energy desulfurization wastewater treatment and high-purity salt recovery are achieved.
Patent Information
- Application Number
- CN202422352867.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-09-26
AI Technical Summary
Existing desulfurization wastewater treatment methods consume high energy and the treated crystalline salt cannot be sold, making it difficult to achieve economical recovery.
A desulfurization wastewater treatment device is used, including a triple tank, a clarifier, a steam compression device, a multi-stage concentration and evaporation device, a cooling device, a filtering device, a crystallization device and an absorption refrigeration device. The turbine exhaust steam is used for energy recovery, and high-purity salt is recovered through a multi-stage concentration evaporation and crystallization process.
The energy consumption of desulfurization wastewater treatment is greatly reduced, and high-purity recovery of crystalline salt is achieved, thereby increasing its added value.
Smart Images

Figure CN223385994U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of energy utilization, and particularly relates to a desulfurization wastewater treatment device. Background Art
[0002] The current reality of raw coal blending in the coal-fired power industry and increasingly stringent environmental requirements for ultra-clean flue gas emissions and wastewater reduction present new challenges to the efficient and stable operation of desulfurization facilities. Corrosion and wear issues, blockages, and the difficulty of treating excessively high chloride ion concentrations in desulfurization wastewater during desulfurization system operation severely restrict the efficient operation of desulfurization equipment. During operation of a limestone-gypsum wet flue gas desulfurization unit, chlorides and heavy metals in the flue gas accumulate in the absorber slurry, affecting desulfurization efficiency and generating desulfurization wastewater. This desulfurization wastewater, with its high salt content and difficulty in treatment, has been a technical bottleneck plaguing environmental protection efforts at coal-fired power plants.
[0003] Currently, conventional high-salt wastewater treatment methods use MVR, multi-effect evaporation or spray drying. This approach has the following disadvantages: 1) The wastewater evaporation process consumes a lot of energy; 2) The treated crystallized salt is still mixed salt and cannot be sold externally to achieve a certain economic efficiency. Utility Model Content
[0004] In order to overcome the shortcomings of the existing production process, the utility model provides a desulfurization wastewater treatment device, which not only reuses part of the exhaust steam of the turbine of the coal-fired power plant, but also greatly reduces the energy consumption required for the crystallization process of the desulfurization wastewater, and can also achieve high-purity recovery of the crystallized salt, facilitating its application in engineering.
[0005] The technical solution of this utility model:
[0006] A desulfurization wastewater treatment device, comprising a triple tank, a clarifier, a steam compression device, a multi-stage concentration and evaporation device, a cooling device, a filtering device, a crystallization device, an absorption refrigeration device, and a condenser;
[0007] The desulfurization wastewater inlet of the triple box is connected to the desulfurization wastewater outlet of the wet desulfurization system, the outlet of the triple box is connected to the inlet of the clarifier, and the outlet of the clarifier is connected to the wastewater inlet of the multi-stage concentration and evaporation device;
[0008] The inlet of the steam compression device is used to receive exhaust steam from the steam turbine, and the outlet of the steam compression device is respectively connected to the steam inlet of the multi-stage concentration and evaporation device and the absorption refrigeration device;
[0009] The concentrated desulfurization wastewater outlet of the multi-stage concentrating evaporation device is connected to the concentrated desulfurization wastewater inlet of the cooling device, and the water vapor outlet of the multi-stage concentrating device is connected to the gas inlet of the wet desulfurization system;
[0010] The steam-water mixture outlet of the multi-stage concentration and evaporation device and the steam-water mixture outlet of the absorption refrigeration device are both connected to the inlet of the condenser; a refrigerant circulation pipeline is set between the cooling device and the absorption refrigeration device;
[0011] The outlet of the cooling device is connected to the inlet of the filtering device, the liquid phase outlet of the filtering device is connected to the liquid phase inlet of the crystallization device, and the solid phase outlet of the filtering device is used to discharge the solid phase product;
[0012] The crystallization device is provided with a high-temperature gas inlet, the gas phase product outlet of the crystallization device is connected to the gas phase inlet of the wet desulfurization system, and the solid product outlet of the crystallization device is used to discharge the solid phase product.
[0013] The triple tank is equipped with a neutralization tank, a sedimentation tank and a flocculation tank in sequence.
[0014] The steam compression device is a single-stage high-speed centrifugal blower, a Roots steam compressor, a screw steam compressor or a reciprocating steam compressor. The steam compression device is provided with an auxiliary electric heating device for assisting in heating the compressed steam to a use temperature.
[0015] The multi-stage concentration and evaporation device is a three-effect or four-effect concentration and evaporation device.
[0016] The cooling device is a partition cooler.
[0017] The inlet of the filtering device is provided with a spiral extrusion device, which is used in conjunction with the filtering device to extrude, dehydrate and filter the cooled crystallized salt.
[0018] The absorption refrigeration device is a steam absorption refrigeration device.
[0019] The crystallization device is an OSLO evaporation crystallizer, a DTB evaporation crystallizer or a flue gas bypass crystallization evaporator.
[0020] A method for treating desulfurization wastewater, comprising the following steps:
[0021] (I) Pretreatment stage: The desulfurization wastewater generated by the wet desulfurization system during the wet desulfurization process is sent to a triple tank, which is equipped with a neutralization tank, a sedimentation tank and a flocculation tank in sequence. The desulfurization wastewater is neutralized with lime acid and alkali, organic sulfur is removed from heavy metals, and flocculation and sedimentation are then sent to a clarifier;
[0022] (II) Wastewater concentration stage: The desulfurized wastewater from the middle and lower part of the clarifier is sent to a multi-stage concentration and evaporation device, and part of the exhaust steam from the steam turbine is sent to a steam compression device for pressurization and temperature increase. The steam after pressurization and temperature increase is divided into two streams, which are respectively sent to the multi-stage concentration and evaporation device and the absorption refrigeration device. One of the steam streams sent to the multi-stage concentration and evaporation device is indirectly heat-exchanged with the desulfurized wastewater from the clarifier to achieve concentration and evaporation of the desulfurized wastewater. The concentrated desulfurized wastewater is sent to the cooling device, and the water vapor generated during the evaporation of the wastewater is sent to the wet desulfurization system as make-up water; the other steam stream sent to the absorption refrigeration device provides a heat source for the refrigerant precipitation of the absorption refrigeration device. The steam-water mixture generated by cooling the exhaust steam after heat release from the multi-stage concentration and evaporation device and the absorption refrigeration device is sent to the condenser;
[0023] (III) Salt recovery stage: During the cooling process, solids with sodium sulfate as the main component are precipitated. The sodium sulfate is filtered through a filter device, naturally dried, and then collected. The remaining liquid after filtration is sent to a crystallization device for direct contact heat exchange with the high-temperature gas input to the crystallization device. The desulfurization wastewater begins to crystallize and evaporate. The main component of the solid product produced during the crystallization and evaporation process is sodium chloride. It is discharged from the solid product outlet and collected. The generated gaseous product is sent to the wet desulfurization system.
[0024] The lime addition ratio in the neutralization box of the triple box is calculated based on the pH value of the desulfurization wastewater after acid-base neutralization, and the pH value is in the range of 8 to 10.
[0025] The heavy metal desorption material in the sedimentation box of the triple box arrangement is TMT-15.
[0026] The flocculant selected in the flocculation box of the triple box is at least one of ferric chloride, polyferric sulfate or polyaluminium chloride.
[0027] The residence time of the desulfurization wastewater in the clarifier is not less than 8 hours.
[0028] The operating temperature in the cooling device is set at -20 to 10°C.
[0029] The absorption refrigeration device adopts a steam absorption refrigeration method, and the refrigerant is ammonia-water.
[0030] The evaporation form of the crystallization device is one of spray evaporation and solid adsorption evaporation.
[0031] The high-temperature gas can be selected from air preheater outlet air, induced draft fan outlet flue gas, dust collector inlet flue gas or a mixture of induced draft fan outlet flue gas and dust collector inlet flue gas.
[0032] The high temperature gas is used at a temperature between 130 and 300°C. The volume ratio of the high temperature gas to the desulfurized wastewater varies depending on the evaporation form of the crystallization device and the temperature of the high temperature gas, and is in the range of 6000 to 20000 Nm 3 / m 3 .
[0033] Beneficial effects of the utility model:
[0034] (1) By reusing the exhaust steam from the turbine, the steam used in the concentration and evaporation process of the desulfurization wastewater does not consume latent heat of vaporization, which greatly reduces the energy consumption of the entire system.
[0035] (2) Compared with the traditional desulfurization wastewater treatment process, this device can realize the classified recovery of miscellaneous salts, greatly improving its added value. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] Figure 1 This is the process route diagram of the entire device of this utility model. DETAILED DESCRIPTION
[0037] The specific implementation of the present invention is further described below in conjunction with the accompanying drawings and technical solutions.
[0038] Example
[0039] The desulfurization wastewater generated in the wet desulfurization process of the wet desulfurization system is sent to a triple box, which is equipped with a neutralization box, a sedimentation box and a flocculation box in sequence. The desulfurization wastewater is neutralized with lime acid and alkali (the pH value is about 9), organic sulfur is detoxified with heavy metals (the heavy metal desorption material uses TMT-15), and flocculation and precipitation (the flocculant uses ferric chloride) and then sent to the clarifier. The desulfurization wastewater residence time in the clarifier is 8 hours; the desulfurization wastewater in the lower part of the clarifier is sent to a multi-stage concentration and evaporation device (using a four-effect concentration and evaporation device), and part of the exhaust steam from the turbine is sent to a steam compression device (using a reciprocating steam compressor) for pressurization and heating to 80°C. The steam after pressurization and heating is divided into two streams, which are respectively sent to a multi-stage concentration and evaporation device and an absorption refrigeration device (using a steam absorption refrigeration device, and ammonia-water is selected as the refrigerant). One of the steam sent to the multi-stage concentration and evaporation device is indirectly heat exchanged with the desulfurization wastewater from the clarifier to achieve concentrated evaporation of the desulfurization wastewater. The concentrated desulfurization wastewater Water is sent to the cooling device (the cooling device adopts a partition cooler, and the temperature inside it is controlled at -5°C). The water vapor generated during the evaporation of the wastewater is sent to the wet desulfurization system as make-up water; another stream of steam is sent to the absorption refrigeration device to provide a heat source for the precipitation of the refrigerant of the absorption refrigeration device. The steam-water mixture generated by cooling the exhaust steam after the heat release of the multi-stage concentration evaporation device and the absorption refrigeration device is sent to the condenser; the solid whose main component is sodium sulfate is precipitated during the cooling process. The sodium sulfate is filtered through a filter device, naturally dried and then collected. The remaining liquid after filtration is sent to a crystallization device (using an OSLO evaporation crystallizer, and the volume ratio of 200°C hot air to high-salt wastewater in the crystallization device is 20,000Nm3 / m3), and undergoes direct contact heat exchange with the high-temperature gas input to the crystallization device. The desulfurization wastewater begins to crystallize and evaporate. The main component of the solid product generated during the crystallization and evaporation process is sodium chloride, which is discharged through the solid product outlet and collected, and the generated gaseous product is sent to the desulfurization system.
[0040] By adopting the above method, the purity of the collected sodium sulfate is greater than 80%, the salt removal rate in high-salt wastewater reaches more than 95%, and the purity of the recovered sodium chloride is greater than 95%, meeting the requirements for industrial salt use.
[0041] The present invention includes but is not limited to this embodiment. It should be pointed out that for ordinary technicians in this field, other methods can be used to make replacements without departing from the technical principles of the present invention. These replacements should also be regarded as the scope of protection of the present invention.
Claims
1. A desulfurization wastewater treatment device, characterized in that: The desulfurization wastewater treatment device includes a triple tank, a clarifier, a steam compression device, a multi-stage concentration and evaporation device, a cooling device, a filtering device, a crystallization device, an absorption refrigeration device, and a condenser; The desulfurization wastewater inlet of the triple box is connected to the desulfurization wastewater outlet of the wet desulfurization system, the outlet of the triple box is connected to the inlet of the clarifier, and the outlet of the clarifier is connected to the wastewater inlet of the multi-stage concentration and evaporation device; The inlet of the steam compression device is used to receive exhaust steam from the steam turbine, and the outlet of the steam compression device is respectively connected to the steam inlet of the multi-stage concentration and evaporation device and the absorption refrigeration device; The concentrated desulfurization wastewater outlet of the multi-stage concentrating evaporation device is connected to the concentrated desulfurization wastewater inlet of the cooling device, and the water vapor outlet of the multi-stage concentrating device is connected to the gas inlet of the wet desulfurization system; The steam-water mixture outlet of the multi-stage concentration and evaporation device and the steam-water mixture outlet of the absorption refrigeration device are both connected to the inlet of the condenser; a refrigerant circulation pipeline is set between the cooling device and the absorption refrigeration device; The outlet of the cooling device is connected to the inlet of the filtering device, the liquid phase outlet of the filtering device is connected to the liquid phase inlet of the crystallization device, and the solid phase outlet of the filtering device is used to discharge the solid phase product; The crystallization device is provided with a high-temperature gas inlet, the gas phase product outlet of the crystallization device is connected to the gas phase inlet of the wet desulfurization system, and the solid product outlet of the crystallization device is used to discharge the solid phase product.
2. A desulfurization wastewater treatment device according to claim 1, characterized in that: The triple tank is equipped with a neutralization tank, a sedimentation tank and a flocculation tank in sequence.
3. A desulfurization wastewater treatment device according to claim 2, characterized in that: The heavy metal desorption material in the sedimentation box of the triple box arrangement is TMT-15.
4. A desulfurization wastewater treatment device according to claim 1 or 2, characterized in that: The steam compression device is a single-stage high-speed centrifugal blower, a Roots steam compressor, a screw steam compressor or a reciprocating steam compressor.
5. A desulfurization wastewater treatment device according to claim 1 or 2, characterized in that: The steam compression device is provided with an auxiliary electric heating device for assisting in heating the compressed steam to a use temperature.
6. A desulfurization wastewater treatment device according to claim 1 or 2, characterized in that: The multi-stage concentration and evaporation device is a three-effect or four-effect concentration and evaporation device.
7. A desulfurization wastewater treatment device according to claim 1 or 2, characterized in that: The cooling device is a partition cooler.
8. A desulfurization wastewater treatment device according to claim 1 or 2, characterized in that: The inlet of the filtering device is provided with a spiral extrusion device, which is used in conjunction with the filtering device to extrude, dehydrate and filter the cooled crystallized salt.
9. A desulfurization wastewater treatment device according to claim 1 or 2, characterized in that: The absorption refrigeration device is a steam absorption refrigeration device.
10. A desulfurization wastewater treatment device according to claim 1 or 2, characterized in that: The crystallization device is an OSLO evaporation crystallizer, a DTB evaporation crystallizer or a flue gas bypass crystallization evaporator.