Partitioned self-sustaining one-step purification equipment

By using a low-temperature condensation module in the cement kiln exhaust gas for condensation and acid-base neutralization reaction, the problem of ammonia escape in the cement kiln exhaust gas is solved, and efficient and low-cost purification of ammonia, SO2 and NOx is achieved, which simplifies the process flow and reduces the equipment volume and wastewater treatment volume.

CN115569481BActive Publication Date: 2025-07-04TIANJIN CHAOYANG ENVIRONMENTAL PROTECTION TECH GRP CO LTD
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Patent Information

Application Number
CN202211119391.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Priority Date
2021-09-14
Filing Date
2022-09-14
Publication Date
2025-07-04
Estimated Expiration
2042-09-14

AI Technical Summary

Technical Problem

The existing cement kiln exhaust NOx treatment technology has problems such as low deamification efficiency, large equipment volume, high cost and large wastewater treatment volume. Especially in the secondary pollution of the atmosphere caused by ammonia escape, the existing technology processes are complex and the deamification efficiency is low.

Method used

The partitioned self-sustaining one-step purification equipment is adopted. A cooling water pipe bundle arranged in a vertical array is set up in the flue gas channel through a low-temperature condensation module. The water vapor in the flue gas is condensed into condensed water by using the condensation process, and an acid-base neutralization reaction with ammonia and acid pollutants in the condensed water is generated to generate non-volatile salts easily soluble in condensate water, realizing a self-sustaining one-step purification.

Benefits of technology

It realizes efficient removal of ammonia escape, SO2, CO2 and NOx, the equipment is small in size, simple in process, low cost, and low wastewater treatment volume, avoiding the shortcomings of traditional spray towers, and improving the deamination efficiency and overall performance of the equipment.

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Abstract

The present application discloses a partitioned self-sustaining one-step purification device, comprising: a box body having a flue gas inlet and a flue gas outlet, and a flue gas passage formed from the flue gas inlet to the flue gas outlet; a low-temperature condensation module communicating with a cooling water inlet and a cooling water return port, the low-temperature condensation module including a cooling water pipe bundle vertically arranged and arranged in an array in the flue gas passage, and an end joint assembly that sequentially connects the upper and lower ends of multiple rows of cooling water pipes to form multiple rows of parallel water flows in the cooling water pipe bundle, and the multiple rows of parallel water flows achieve the reversal of the multiple rows of parallel water flows in the corresponding end joints; the low-temperature condensation module cools and condenses the incoming flue gas, condenses the water vapor in the flue gas into condensed water, so that ammonia and acidic pollutants in the flue gas dissolve in the condensed water, and ammonia and acidic pollutants undergo an acid-base neutralization reaction in the condensed water to generate non-volatile salts that are easily soluble in the condensed water. The present application can effectively solve the problem of ammonia escape.
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Description

Technical Field

[0001] This application relates to the technical field of environmental protection equipment. Specifically, it relates to a partitioned self-sustaining one-step purification equipment. Background Art

[0002] Currently, the vast majority of the cement kiln tail gas NOx treatment technologies still use ammonia source (such as ammonia water, urea, etc.) reducing agents. Due to the limitation of the denitrification rate, there are more or less problems of secondary air pollution caused by the phenomenon of ammonia escape due to the excessive use of reducing agents.

[0003] The known prior art discloses a recovery and circulation system for the escaped ammonia in the cement kiln ammonia-based denitrification tail gas and its control method. The system includes a spray tower, a heat exchanger, a storage tank, and a receiving tank. The denitrification tail gas in the flue is transported by a fan to the heat exchanger for cooling, and then enters the tower from the bottom of the spray tower; then the absorbent in the storage tank is pumped by a pump to the spray tower to contact and react with the upward denitrification tail gas to obtain ammonia-containing absorbent and ammonia-removed tail gas; after that, the ammonia-containing absorbent flows into the receiving tank, and after precipitation, the supernatant is pumped and recycled into the spray tower to contact the denitrification tail gas repeatedly until a saturated ammonia absorbent is formed; and the slurry settled at the bottom of the receiving tank is regularly pumped to the cement kiln through a pump; the saturated ammonia absorbent is pumped to an ammonia water storage tank and mixed with ammonia water for denitrification reaction. Ammonium salts decompose ammonia during the SNCR process as part of the ammonia source to react with nitrogen oxides, thereby realizing the recycling of escaped ammonia.

[0004] Although this prior art can solve the problem of ammonia escape, its ammonia removal efficiency is low, the equipment volume is large, and the cost is high. The specific analysis is as follows:

[0005] 1. This prior art needs to perform heat exchange first, then spray, then collect, and then recycle the tail gas treatment. The multiple treatment steps lead to a complex ammonia removal process and low ammonia removal efficiency.

[0006] 2. Before the tail gas of this prior art enters the spray tower, only limited cooling can be achieved through the heat exchanger. On the one hand, because high-temperature ammonia is easy to volatilize and is not conducive to being absorbed in the spray tower, cooling the high-temperature tail gas through the pre-positioned heat exchanger can improve the absorption efficiency of ammonia in the spray tower. On the other hand, the pre-cooling treatment through the heat exchanger can reduce the working pressure of the spray tower, that is, reduce the spray water volume of the spray tower. However, when using a spray tower to absorb ammonia, the spray water volume is still huge, which also results in a large receiving volume of the subsequent receiving tank of this prior art, a large equipment volume, and a huge treatment volume for the ammonia-containing absorbent to be recycled into the spray tower.

[0007] 3. The ammonia-containing absorbent of this prior art needs a long time to precipitate when flowing into the receiving tank, which further reduces the ammonia removal efficiency of this prior art.

[0008] Therefore, overall, the existing technology's escaped ammonia recovery and recycling system has problems such as complex processes, low ammonia removal efficiency, large equipment volume, high costs, and a large amount of wastewater treatment. Summary of the Invention

[0009] Therefore, the technical problem to be solved by the present invention is to overcome the problems of complex processes, low ammonia removal efficiency, large equipment volume, and high costs existing in the existing technology's escaped ammonia purification equipment, thereby providing a partitioned self-sustaining one-step purification equipment.

[0010] To achieve the above object, the present application provides a partitioned self-sustaining one-step purification equipment, including:

[0011] A box body, the box body having a flue gas inlet and a flue gas outlet, and a flue gas passage formed from the flue gas inlet to the flue gas outlet;

[0012] A low-temperature condensation module, connecting a cooling water inlet and a cooling water return port. The low-temperature condensation module includes cooling water pipe bundles vertically arranged and arranged in an array in the flue gas passage for cooling water circulation, and an end joint assembly that sequentially connects the upper and lower ends of multiple rows of cooling water pipes to form multiple rows of parallel water flows in the cooling water pipe bundles. The multiple rows of parallel water flows realize the commutation of multiple rows of parallel water flows in the corresponding end joints;

[0013] The low-temperature condensation module cools and condenses the flue gas entering from the flue gas inlet, condenses the water vapor in the flue gas into condensed water, so that the ammonia gas and acidic pollutants in the flue gas dissolve in the condensed water, and the ammonia gas and the acidic pollutants undergo an acid-base neutralization reaction in the condensed water to generate non-volatile salts that are easily soluble in the condensed water.

[0014] Optionally, the end joint assembly is box-shaped, including an upper water collecting tank and a lower water collecting tank. The upper water collecting tank includes multiple upper water collecting tank branches arranged above the cooling water pipe bundles as the end joints. The lower water collecting tank includes multiple lower water collecting tank branches arranged below the cooling water pipe bundles as the end joints. Each upper water collecting tank branch and the lower water collecting tank branch are respectively hermetically connected to the ends of multiple rows of the cooling water pipes, and the vertically corresponding upper water collecting tank branches and lower water collecting tank branches are staggered in the vertical direction.

[0015] Optionally, the number of rows of inlet pipes and outlet pipes correspondingly connected to each upper water collecting tank branch and each lower water collecting tank branch is the same.

[0016] Optionally, one of the upper water collecting tanks includes a cooling water inlet tank communicated with the cooling water inlet, and one of the lower water collecting tanks includes a cooling water return tank communicated with the cooling water return port. The cooling water inlet tank and the cooling water return tank are respectively communicated with multiple rows of cooling water pipes.

[0017] Optionally, the inner walls of the upper water collecting tank section and the lower water collecting tank section in contact with the cooling water flow are arranged in a streamline structure.

[0018] Optionally, the cooling water inlet and the cooling water return port are arranged on opposite sides.

[0019] Optionally, the cooling water pipe bundle is divided into several groups of cooling water pipe assemblies along the flue gas flow direction. Each group of the cooling water pipe assemblies includes multiple rows of the cooling water pipes, and correspondingly communicates with a group of the cooling water inlets and the cooling water return ports. The cooling water flows of different groups of the cooling water pipe assemblies are not communicated within the low-temperature condensation module.

[0020] Optionally, the cooling water flow rate of the cooling water pipe assembly near the flue gas outlet is less than that of the cooling water pipe assembly near the flue gas inlet.

[0021] Optionally, there are at least three groups of the cooling water pipe assemblies, and the cooling water flow rates decrease in sequence along the flue gas flow direction.

[0022] Optionally, it further includes a cooling water inlet main pipe, and the cooling water inlet main pipe is communicated with each of the cooling water inlets through a flow regulating valve; the opening degree of the flow regulating valve corresponding to the cooling water pipe assembly near the flue gas outlet is less than the opening degree of the flow regulating valve corresponding to the cooling water pipe assembly near the flue gas inlet.

[0023] Optionally, the cooling water pipe bundle is arranged in a staggered tube bank array.

[0024] Optionally, a single cooling water pipe in one row of two adjacent rows of the cooling water pipes is located on the center line of the corresponding two cooling water pipes in the other row of the cooling water pipes. Description of the Drawings

[0025] The drawings forming a part of this application are used to provide a further understanding of this application, making other features, objects, and advantages of this application more obvious. The schematic embodiments and descriptions of the drawings of this application are used to explain this application and do not constitute an improper limitation to this application. In the drawings:

[0026] Figure 1A is a schematic process flow diagram of a self-sustaining one-step purification process according to an embodiment of this application;

[0027] Figure 1BIt is a schematic structural diagram (front view) of the self-sustaining one-step purification equipment according to an embodiment of the present application;

[0028] Figure 1C It is Figure 1B the top view of;

[0029] Figure 1D It is a structural diagram (front view) of the self-sustaining one-step purification equipment according to an embodiment of the present application;

[0030] Figure 1E It is Figure 1D the side view of;

[0031] Figure 2A It is a schematic structural diagram (front view) of the self-sustaining one-step purification equipment (round tube) according to an embodiment of the present application;

[0032] Figure 2B It is Figure 2A the top view of;

[0033] Figure 2C It is a structural diagram (front view) of the self-sustaining one-step purification equipment (round tube grouping) according to an embodiment of the present application;

[0034] Figure 2D It is Figure 2C the top view of;

[0035] Figure 2E It is a three-dimensional view of the self-sustaining one-step purification equipment (round tube grouping) according to an embodiment of the present application;

[0036] Figure 3A It is the front view of the low-temperature condensation module (cooling water circulates along the grouped water pipes) according to an embodiment of the present application;

[0037] Figure 3B It is Figure 3A the top view of;

[0038] Figure 3C It is Figure 3A the left view of;

[0039] Figure 3D It is a three-dimensional sectional view of the low-temperature condensation module (cooling water circulates along the grouped water pipes and the cooling water volume is adjustable) according to an embodiment of the present application;

[0040] Figure 4A It is the front view of the low-temperature condensation module (direct-through type, cooling water circulates along the grouped water pipes in each area and the cooling water volume is adjustable) according to an embodiment of the present application;

[0041] Figure 4B It is Figure 4A the top view of;

[0042] Figure 4CLeft view of the low-temperature condensation module (direct-through type, cooling water in each area circulates along grouped water pipes and the cooling water volume is adjustable) of the embodiment of the present application;

[0043] Figure 5A Front view of the low-temperature condensation module (direct-through type, cooling water in each area is adjustable) of the embodiment of the present application;

[0044] Figure 5B Is Figure 5A Top view of;

[0045] Figure 5C Is Figure 5A Left view of;

[0046] Figure 6A Front view of the low-temperature condensation module (direct-through type, cooling water in each area circulates along grouped water pipes and the cooling water volume is adjustable) of the embodiment of the present application;

[0047] Figure 6B Is Figure 6A Top view of;

[0048] Figure 6C Is Figure 6A Left view of;

[0049] Figure 6D Stereoscopic cross-sectional view of the low-temperature condensation module (direct-through type, cooling water in each area circulates along grouped water pipes and the cooling water volume is adjustable) of the embodiment of the present application;

[0050] Figure 7A Top view of the arc-shaped rhombic tube of the embodiment of the present application;

[0051] Figure 7B Front view of the arc-shaped rhombic tube of the embodiment of the present application;

[0052] Figure 7C Cross-sectional view of the arc-shaped rhombic tube of the embodiment of the present application;

[0053] Figure 8 Arrangement diagram of the arc-shaped rhombic tubes of the embodiment of the present application;

[0054] Figure 9A Front view of the arc-shaped rhombic tube before tube expansion of the embodiment of the present application;

[0055] Figure 9B Is Figure 9A Partial enlarged view of;

[0056] Figure 10A Front view of the arc-shaped rhombic tube after tube expansion of the embodiment of the present application;

[0057] Figure 10B Is Figure 10A Partial enlarged view of;

[0058] Figure 10C is Figure 10A the top view;

[0059] Figure 11A is the front view of the modular self-sustaining one-step purification equipment according to the embodiment of the present application;

[0060] Figure 11B is the top view of the modular self-sustaining one-step purification equipment according to the embodiment of the present application;

[0061] Figure 11C is the left view of the modular self-sustaining one-step purification equipment according to the embodiment of the present application;

[0062] Figure 12 is the structural schematic diagram of the demisting, water collecting and water blocking plate;

[0063] Figure 13 is the simplified schematic diagram of convective heat transfer of the low-temperature condensation module according to the embodiment of the present application.

[0064] Among them, 1 is the low-temperature condensation module, 101 is the box body, 1011 is the upper box plate, 1012 is the lower box plate, 1013 is the front box plate, 1014 is the rear box plate, 102 is the cooling water pipe bundle, 102a is the cooling water pipe, 1020 is the cooling water pipe body, 1020b is the large arc end, 1020a is the small arc end, 1020c is the straight edge, 1022 is the plug, 103 is the cooling water inlet pipe, 1031 is the flow regulating valve, 1032 is the cooling water inlet main pipe, 1033 is the branch pipe, 104 is the cooling water return pipe, 105 is the round pipe elbow, 2 is the spraying device, 3 is the atomizing device, 4 is the flue gas inlet, 5 is the flue gas outlet, 9 is the water pump, 10 is the condensate discharge port, 11 is the upper water tank, 111 is the upper water tank section, 12 is the lower water tank, 121 is the lower water tank section, 13 is the demisting, water collecting and water blocking plate, 14 is the wire mesh, 15 is the rubber gasket, 16 is the sealant, 17 is the annular groove, 18 is the annular protrusion, 19 is the annular clamping protrusion, 20 is the installation foundation, 21 is the lower joint, 211 is the plug, 212 is the sealing ring, 213 is the joint, 22 is the upper joint, 23 is the condensate collection device, 24 is the cooling water pipe area, 103a is the cooling water inlet, 104a is the cooling water return port, 102b is the water pipe installation hole. Detailed implementation manners

[0065] In order to enable those skilled in the art to better understand the solution of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present application.

[0066] It should be noted that the terms "first", "second", etc. in the description, claims and the above-mentioned drawings of the present application are used to distinguish similar objects, and do not necessarily describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances, so as to implement the embodiments of the present application described herein.

[0067] In the present application, the orientation or positional relationship indicated by the terms "upper", "lower", "inner", etc. is based on the orientation or positional relationship shown in the drawings. These terms are mainly used to better describe the present application and its embodiments, and are not used to limit that the indicated devices, elements or components must have a specific orientation, or be constructed and operated in a specific orientation.

[0068] Moreover, in addition to being able to represent an orientation or positional relationship, some of the above terms may also be used to represent other meanings. For example, the term "upper" may also be used to represent a certain attachment relationship or connection relationship in some cases. For those of ordinary skill in the art, the specific meanings of these terms in the present application can be understood according to specific circumstances.

[0069] In addition, terms such as "arranged", "provided with", "connected", "fixed", etc. should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, or there is an internal connection between two devices, elements or components. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0070] In addition, the meaning of the term "plurality" should be two or more.

[0071] It should be noted that, without conflict, the embodiments in the present application and the features in the embodiments can be combined with each other. The present application will be described in detail below with reference to the drawings and in combination with embodiments.

[0072] At present, for the treatment of high-temperature flue gas, such as the NOx treatment technology for cement kiln flue gas, the vast majority still uses ammonia source (ammonia water, urea, etc.) reducing agents. Due to the limitation of the denitrification rate, there is more or less the phenomenon of ammonia escape caused by the excessive use of reducing agents, which leads to secondary air pollution.

[0073] The known prior art discloses a recovery and recycling system for escaped ammonia in flue gas by ammonia method in a cement kiln and its control method. The recovery and recycling system includes a spray tower, a heat exchanger, a storage tank, and a receiving tank. The denitrification flue gas is first transported by a fan to the heat exchanger for cooling, then enters the tower from the bottom of the spray tower, and then the absorbent in the storage tank is pumped to the spray tower by a pump to contact and react with the upward denitrification flue gas, obtaining ammonia-containing absorbent and ammonia-removed flue gas. After that, the ammonia-containing absorbent flows into the receiving tank, and after precipitation, the supernatant is pumped and recycled into the spray tower to contact the denitrification flue gas repeatedly until a saturated ammonia absorbent is formed. The slurry settled at the bottom of the receiving tank is regularly pumped to the cement kiln. The saturated ammonia absorbent is pumped to an ammonia water storage tank and mixed with ammonia water for denitrification reaction. Ammonium salts decompose ammonia during the SNCR (Selective Non-Catalytic Reduction) denitrification process as part of the ammonia source to react with nitrogen oxides, thereby realizing the recycling of escaped ammonia.

[0074] Although this prior art can solve the problem of ammonia escape, it has the defects of low ammonia removal efficiency, large equipment volume, and high cost. The specific analysis is as follows:

[0075] 1. This prior art needs to first heat exchange, then spray, then collect, and then recycle and utilize the flue gas. The multiple treatment steps lead to a complex ammonia removal process, low ammonia removal efficiency, and due to the complex process, heat exchangers, spray towers, storage tanks, receiving tanks, etc. are required, resulting in a large overall ammonia removal equipment volume and high cost.

[0076] 2. This prior art discloses that the flue gas is first transported to the heat exchanger for cooling. However, from the understanding of the entire technical solution disclosed by this prior art, the purpose of using a pre-positioned heat exchanger to cool the flue gas is, on the one hand, to avoid the fact that volatile high-temperature ammonia is not easily absorbed by the absorbent in the subsequent spray tower process, and by pre-cooling the high-temperature flue gas through the pre-positioned heat exchanger, the absorption efficiency of ammonia in the spray tower can be improved. On the other hand, pre-cooling the high-temperature ammonia through the heat exchanger can reduce the working pressure of the spray tower. However, this prior art still uses a spray tower, indicating that the means of this prior art to solve the ammonia escape problem is still the traditional idea of ammonia absorption by a spray tower. And using a spray tower has the problems of a large amount of spray water and a large amount of subsequent sewage purification treatment.

[0077] 3. The ammonia-containing absorbent of this prior art needs a long time to precipitate when flowing into the receiving tank, which further leads to low ammonia removal efficiency of this prior art.

[0078] Therefore, overall, the recovery and recycling system for escaped ammonia of this prior art has problems such as a complex process, low ammonia removal efficiency, large equipment volume, high cost, and a large amount of wastewater treatment.

[0079] To solve the problems of ammonia escape, as well as the complex process, low ammonia removal efficiency, large equipment volume, high cost, and large amount of wastewater treatment in the deammoniation system in the above-known prior art, the present application proposes a self-sustaining one-step purification device and purification method in which the components in the flue gas to be treated can complete physical and chemical reactions by themselves to achieve ammonia absorption (self-sustaining), with a small equipment volume (compact), a simple process (one-step method), low cost, and a small amount of wastewater treatment. The purification device provided by the present application can be applied not only in the cement kiln flue gas purification scenario, but also in scenarios such as power plant or coal yard flue gas purification. However, it should be noted that the purification device provided by the present application is only applicable to the purification treatment of flue gas containing water vapor, ammonia, and acidic pollutants.

[0080] As a preferred embodiment of the present application, the purification device is applied to the purification of ammonia-based denitrification flue gas in a cement kiln. At present, ammonia escape generally exists in the flue gas of cement kilns. The flue gas discharged from the cement kiln is high-temperature flue gas containing water vapor, ammonia, and acidic pollutants.

[0081] The purification device of this embodiment has a flue gas inlet 4, a flue gas outlet 5, and a flue gas purification channel from the flue gas inlet 4 to the flue gas outlet 5. The purification device further includes a low-temperature condensation module 1, and the low-temperature condensation module 1 is arranged in the flue gas purification channel.

[0082] The main structure of the above purification device can achieve the purification treatment of the cement kiln flue gas, and its purification principle is as follows:

[0083] The cement kiln flue gas enters the flue gas purification channel from the flue gas inlet 4 of the purification device. The low-temperature condensation module 1 in the flue gas channel cools and condenses the incoming flue gas, cooling the water vapor in the flue gas to condensed water (ideally, it is hoped that all the water vapor is condensed into condensed water). The ammonia and acidic pollutants (such as SO2 and CO2) contained in the flue gas itself dissolve in the condensed water (physical purification). This is the first layer of purification achieved by the purification device of the present application. However, due to the high temperature of the flue gas, the ammonia or acidic pollutants dissolved in the condensed water are likely to volatilize from the condensed water. However, the innovation of the purification device of the present application is that at the same time, the ammonia and acidic pollutants dissolve in the condensed water to undergo an acid-base neutralization reaction (chemical purification) to generate non-volatile salts that are easily soluble in the condensed water.

[0084] In the purification equipment of the present application, the low-temperature condensation module 1 can be of various types, such as oil-immersed self-cooled low-temperature condensation, refrigerated low-temperature condensation, etc. As a preferred embodiment of the present application, the low-temperature condensation module 1 adopts water-cooled low-temperature condensation. The purification equipment is provided with a cooling water inlet 103a and a cooling water return port 104a, and the low-temperature condensation module 1 communicates with the cooling water inlet 103a and the cooling water return port 104a. The low-temperature condensation module 1 includes a cooling water pipe bundle 102 vertically arranged and arranged in an array in the flue gas purification channel, and end joint assemblies connected to the upper and lower ends of the cooling water pipe bundle 102. The end joint assemblies and the cooling water pipe bundle 102 together form a cooling water circulation pipeline for the cooling water to flow from the cooling water inlet to the cooling water return port.

[0085] After the flue gas enters the flue gas purification channel from the flue gas inlet 4, it comes into full contact with the surface of the cooling water pipe bundle 102 flowing with cooling water. The water vapor in the flue gas condenses into condensed water on the surface of the water pipes of the cooling water pipe bundle 102 and flows down the surface of the cooling water pipes to the bottom of the purification equipment. Since the cooling water in the present application does not directly contact the flue gas, the cooling water in the cooling water pipe bundle 102 is not polluted and is continuously recycled after being cooled. Moreover, through calculation, the water consumption and consumption of the cooling water in the cooling water pipe bundle 102 are much smaller than the water consumption and consumption in the existing spray tower, and the condensed water of this purification equipment can completely make up for the evaporated water volume during the cooling process of the cooling water after being purified and recycled.

[0086] Figure 1B The working principle of the purification equipment of the present application is shown. The purification equipment of the present application can be used in conjunction with a water pump 9, a cooling water circulation pipeline, and a cooling tower. The water pump 9 provides driving force for the cooling water entering from the cooling water inlet 103a through the cooling water inlet pipeline 103 of the cooling water circulation pipeline. The cooling water flows in the cooling water circulation pipeline and then flows out from the cooling water outlet 104a into the cooling tower. The water in the cooling tower then flows back to the water pump 9 to realize the cooling water circulation. The cement kiln flue gas enters the interior of the low-temperature condensation module 1 through the flue gas inlet 4 of the low-temperature condensation module 1 and exchanges heat fully with the cooling water pipe bundle 102. The cooling water pipe bundle 102 quickly cools the flue gas. Importantly, the cooling water pipe bundle 102 condenses the water vapor in the high-temperature flue gas into condensed water, and the condensed water adsorbs alkaline ammonia molecules (ammonia gas), cement raw material dust (calcium-containing), and acidic SO2 and CO2 and other gases contained in the flue gas itself. The alkaline ammonia molecules and cement raw material dust react with acidic SO2 and CO2 in the condensed water to form non-volatile salts such as ammonium bisulfate, ammonium bicarbonate, calcium sulfate, and calcium carbonate through acid-base neutralization reactions.

[0087] The purification device of the present application further includes a condensed water collection device 23, which is arranged at the bottom of the low-temperature condensation module 1, and the condensed water collection device 23 is connected to the condensed water discharge port 10. The condensed water generated on the surface of the cooling water tube bundle 102 flows along the surface of the water tube to the bottom of the purification device, and then is collected by the condensed water collection device 23, and finally the condensed water discharge port 10 discharges the condensed water.

[0088] Furthermore, the discharged condensed water can be treated by membrane separation method into purified water (about 90%) that can be reused or discharged and about 10% high-salt concentration water (salt dust content less than 3%). The high-salt concentration water is pumped and sprayed into the clinker grate cooler at the head of the cement kiln. On the one hand, it can quickly cool the clinker, and on the other hand, calcium sulfate and calcium carbonate in the water adhere to the surface of the clinker and become components of cement. The ammonia salt in the water is quickly heated and decomposed into ammonia and SO2 by the clinker, and then enters the decomposition furnace of the cement kiln with the tertiary air, where the ammonia molecules are utilized for the denitrification function in the decomposition furnace, and SO2 reacts with CaO to form calcium sulfate and enters the clinker. There is no secondary pollution in the whole process, and all substances are recycled.

[0089] In the above known prior art, although it also discloses using a heat exchanger to cool down the denitrification flue gas, the role of the heat exchanger in the above prior art is completely different from the role of the low temperature condensation module 1 in the present application. The specific difference is:

[0090] 1. Different inventive concepts

[0091] The above-mentioned prior art mainly removes ammonia by spraying absorbent through a spray tower, and the purpose of setting up the heat exchanger is to reduce the load of the spray tower; the present application creatively utilizes the characteristic that cement kiln flue gas contains water vapor, and cools and condenses the water vapor in the high-temperature flue gas into condensed water through the low-temperature condensation module 1. Ammonia and acidic gases such as SO2 and CO2 are easily dissolved in the condensed water under the low-temperature environment of the low-temperature condensation module 1 (physical process). At the same time, alkaline ammonia molecules react with acidic and alkaline substances in acidic SO2 and CO2 to form non-volatile substances such as ammonium bisulfate, ammonium bicarbonate, calcium sulfate and calcium carbonate (chemical process) and are discharged with the condensed water, so that the problem of ammonia escape in cement kilns is effectively solved; the present application directly undergoes a deamination reaction in the heat exchanger without the need to add any absorbent.

[0092] 2. The role played by the heat exchanger in the prior art is objectively different from that of the low-temperature condensation module 1 of the present application.

[0093] 1) Although the prior art records that the heat exchanger can cool the flue gas to 50 degrees, it does not disclose that deamination is performed in the heat exchanger. From the full text of the prior art, the heat exchanger has no deamination effect. This is because, based on the inventive concept, the denitrified flue gas after cooling by the heat exchanger enters the spray tower, and the spray tower absorbs ammonia by spraying absorbent. For designers, it is not intentional to divide the ammonia absorption into two steps, that is, ammonia absorption in the heat exchanger part and ammonia absorption in the subsequent spray tower, which will only increase the difficulty of ammonia recovery;

[0094] 2) Based on the inventive concept of the prior art, the heat exchanger does not need to play a deamination role, because deamination is still required by spraying absorbent. If the heat exchanger can achieve deamination, there is no need for spray tower treatment.

[0095] 3) It is very important that for traditional heat exchangers, the general goal is to avoid generating condensed water as much as possible during the heat exchange process, because condensed water will corrode the pipes of the heat exchanger over a long period of time, resulting in a reduction in the service life of the heat exchanger. Therefore, it can be concluded that the heat exchanger of the prior art is not intended to generate condensed water.

[0096] 3. The above-mentioned known prior art has many defects

[0097] 1) There is a risk of absorbent escape. The ammonia absorbent used is formic acid. The volatilization and escape of the absorbent also require further treatment, and formic acid is also a flammable substance;

[0098] 2) The amount of wastewater treated after the absorbent absorbs ammonia is large, and the treatment cost is high;

[0099] 3) Since the method of spraying absorbent cannot fully utilize the absorbent, in order to improve the utilization rate of the absorbent, the absorbent has to be recycled. Not only does it require a long precipitation period, but the reflux pipeline used for the period of recycling will also suffer from severe corrosion, making the solution difficult to implement;

[0100] 4) It is difficult to detect whether the absorbent is saturated, and ineffective absorption is likely to occur, causing ammonia escape.

[0101] The purification equipment of the present application is different from the heat exchanger of the prior art, because the application scenario of the purification equipment of the present application is limited to the purification of flue gas containing water vapor, ammonia and acidic pollutants, and the pursuit of more condensed water in the cooling process to achieve physical and chemical purification is completely different from the concept of the existing heat exchanger. In addition, the purification equipment of the present application realizes self-sustaining, one-step deamination, and has the advantages of simple deamination process, small equipment size and low cost.

[0102] In addition, the purification equipment of the present application is not only applicable to ammonia removal. Since in the condensed water generated by the low-temperature condensation module 1, the alkaline ammonia gas, cement raw material dust react with the acidic substances such as SO2, CO2, NOx in the flue gas to undergo a neutralization reaction, the purification equipment of the present application can also be used for SO2 removal, CO2 removal, and NOx removal.

[0103] The cooling water pipe bundle 102 of the low-temperature condensation module 1 of the present application is arranged in a staggered tube bundle array. Specifically, as Figure 2B shown, the cooling water pipe bundle 102 includes multiple rows of cooling water pipes 102a arranged along the flue gas flow direction. Adjacent two rows of cooling water pipes 102a are staggered in the flue gas flow direction and there is no gap between their orthographic projection planes in the flue gas flow direction.

[0104] As a preferred embodiment of the present application, the orthographic projection planes of adjacent two rows of cooling water pipes 102a among the multiple rows of cooling water pipes 102a have an intersection in the flue gas flow direction. This setting method enables the flue gas entering the flue gas purification channel to meander forward in the gaps of the cooling water pipe bundle 102, maximizing the heat exchange contact area between the flue gas and the cooling water pipe bundle 102, and ensuring the normal flow of the flue gas without affecting the purification treatment of the continuously incoming new flue gas.

[0105] As a variation of the arrangement of the cooling water pipe bundle 102, in other embodiments, the boundaries of the orthographic projection planes of adjacent two rows of cooling water pipes 102a among the multiple rows of cooling water pipes 102a coincide in the flue gas flow direction. That is, the maximum width dimension of one cooling water pipe 102a in the previous row is exactly equal to the gap width between two adjacent cooling water pipes 102a in the next row. This setting method can also avoid the situation where some flue gas directly passes through the gap existing between adjacent two rows of cooling water pipes 102a in the front and back directions without contacting and exchanging heat with the surface of the cooling water pipes 102a.

[0106] In the present application, the cooling water pipe 102a can be in the shape of a circular pipe, an elliptical pipe, a rectangular pipe, a rhombic pipe, etc. However, considering how to minimize the resistance encountered by the flue gas in the cooling water pipe bundle 102, maximize the heat exchange contact area between the flue gas and the cooling water pipe bundle 102, and maximize the heat exchange efficiency between the cooling water pipe 102 and the flue gas, it is necessary to carry out a refined design on the shape of the cooling water pipe 102.

[0107] For this reason, as a preferred embodiment of the present application, a circular arc rhombic cooling water pipe is proposed. As Figures 7A - 7C shown, the circular arc rhombic cooling water pipe includes: a cooling water pipe body 1020, the cross-section of the cooling water pipe body 1020 is in the shape of a circular arc rhombus, the two ends of the short diagonal of the cross-section of the cooling water pipe body 1020 are respectively large arc ends 1020b, and the two ends of the long diagonal are respectively small arc ends 1020a;

[0108] The large arc ends 1020b at both ends of the short diagonal are connected to the small arc ends 1020a at both ends of the long diagonal by straight edges 1020c respectively, and the straight edges 1020c are tangent to the arc lines of the large arc ends 1020b.

[0109] As Figures 7A - 7C shown, the radius of curvature of the large arc end 1020b is much larger than that of the small arc end 1020a, that is, the curvature of the large arc end 1020b is much smaller than that of the small arc end 1020a. Due to the large curvature of the small arc end 1020a, an acute angle is formed together with the two straight edges 1020c.

[0110] The cooling water pipe body 1020 is in a strip structure, and its interior is a hollow structure, which can be used for the flow of cooling water. When the cooling water pipe 102a is applied to a low-temperature condensation device, the small arc end 1020a of the cooling water pipe body 1020 is horizontally arranged along the direction from the flue gas inlet 4 to the flue gas outlet 5, that is, horizontally arranged along the left-right direction of the low-temperature condensation device. The midpoint connection line of the two large arc ends 1020b is perpendicular to the connection line of the two small arc ends 1020a, that is, the two large arc ends 1020b are horizontally arranged along the front-back direction of the low-temperature condensation device.

[0111] In the embodiment of the present application, the cooling water pipe body 1020 with a cross-sectional shape of an arc rhombus is defined as an arc rhombus pipe. Compared with cooling water pipes with cross-sectional shapes such as circular, elliptical, and rhombus, it can achieve a larger heat exchange contact area between the flue gas and the cooling water pipe and a smaller flue gas resistance. The specific analysis is as follows:

[0112] Compared with a circular pipe:

[0113] The length of the short diagonal of the arc rhombus pipe is the same as the diameter of the original circular cooling water pipe, while the length of the long diagonal is greater than the diameter of the original circular cooling water pipe, making the surface area at both ends of the improved arc rhombus pipe larger than the surface area of the original circular cooling water pipe, thereby increasing the contact area between the cooling water pipe and the cement kiln flue gas, that is, increasing the heat exchange area.

[0114] In addition, since the radius of curvature of the small arc end 1020a of the cooling water pipe body 1020 is much smaller than the radius of curvature of the large arc end, that is, the two ends of the cooling water pipe body 1020 are acute angles with a smaller included angle. Compared with the shapes of both ends of the circular cooling water pipe, the wind resistance at both ends of the arc rhombus-shaped cooling water pipe body 1020 is smaller. Therefore, the arc rhombus achieves resistance reduction compared with the circle.

[0115] Compared with an elliptical pipe:

[0116] There are two differences between the arc-rhombus tube and the elliptical tube. The first difference is that in the cooling water pipe body 1020 of the present application, the large arc end 1020b and the small arc end 1020a are connected by a straight edge 1020c, while the elliptical tube is connected by an arc edge. When two cooling water pipes 102a are arranged in a staggered manner, the flow space formed between the two elliptical tubes has a structure with larger ends and a smaller middle, while the flow space formed between the two arc-rhombus tubes is more flat in size. Therefore, it is more conducive to the flow of the tail gas and can avoid the influence on the tail gas flow caused by the change in the size of the flow space.

[0117] The second difference is that in order to form an arc-rhombus structure in the present application, when the size of the large arc end 1020b with a large curvature radius is unified, the curvature radius of the other small arc end 1020a is necessarily larger for the elliptical tube than for the arc-rhombus tube. Therefore, compared with the elliptical tube, the arc-rhombus tube also has less wind resistance at both ends, and the technical effect of reducing resistance can also be achieved.

[0118] Compared with the conventional rhombus tube:

[0119] Compared with the rhombus tube, the cross-sectional shape of the arc-rhombus tube is equivalent to replacing the upper and lower sharp corners of the rhombus tube cross-section with large arc ends 1020b with a small curvature, and replacing the left and right sharp corners with small arc ends with a large curvature. The upper and lower ends of the arc-rhombus tube are large arc ends 1020b. Compared with the upper and lower ends of the rhombus tube being obtuse ends, using an arc transition can make the flow of the flue gas more stable. In addition, replacing the left and right sharp corners with small arc ends with a large curvature can prevent the flue gas from separating at the rear end.

[0120] In addition, the rhombus tube with sharp corners at both ends will cause excessive deformation at its left and right ends, making it prone to fracture. And due to structural limitations, the thickness at both ends of the rhombus tube is generally greater than that of other parts, resulting in an increase in the heat conduction path of the cooling water at both ends of the rhombus tube and a reduction in the heat exchange efficiency. However, setting it into a small arc structure can make the thickness at both ends of the arc-rhombus tube close to that of other parts, without increasing the heat conduction path of the cooling water at both ends, and thus not affecting the heat exchange efficiency.

[0121] This embodiment achieves the purpose of increasing the heat exchange area at both ends of the cooling water pipe body 1020 and using the large arc end 1020b and the small arc end 1020a to reduce the resistance suffered by the cement kiln tail gas during flow, enabling the smooth flow of the cement kiln tail gas. Thus, the technical effect of enhancing the contact area between the cement kiln tail gas and the cooling water pipe body 1020, enabling the smooth flow of the cement kiln tail gas, and improving the cooling efficiency of the cement kiln tail gas is achieved. Furthermore, the problem in the related technology that the cooling water pipe has a small heat exchange area and a large resistance to the flow of the cement kiln tail gas, and cannot effectively improve the cooling efficiency of the cement kiln tail gas is solved.

[0122] The connecting line of the midpoints of the large arc ends 1020b at both ends of the short diagonal is perpendicular to the connecting line of the small arc ends 1020a at both ends of the long diagonal.

[0123] Both the large arc end 1020b and the small arc end 1020a include inner fillets and outer fillets. To avoid the problem of thickness change caused by the fillet setting at the upper and lower ends and the left and right ends of the cooling water pipe body 1020, in this embodiment, the inner fillets and outer fillets of the large arc end 1020b are concentrically arranged, and the inner fillets and outer fillets of the small arc end 1020a are concentrically arranged.

[0124] Since the cross-sectional dimensions of the cooling water pipe body 1020 still have a great influence on the heat exchange efficiency, in order to make reasonable use of space and improve the heat exchange efficiency, the applicable ranges of the respective dimensions of the cross-section of the cooling water pipe body 1020 in this embodiment are as follows:

[0125] A = 20 - 100 mm;

[0126] B = A - 2A;

[0127] R1 = 1 / 2 × A;

[0128] R2 = R1 - t;

[0129] r1 = 6 - 1 / 2 × R1;

[0130] r2 = r1 - t;

[0131] Among them, A is the length of the short diagonal of the cooling water pipe body 1020; B is the length of the long diagonal of the cooling water pipe body 1020; R1 is the outer diameter dimension of the large arc end 1020b; R2 is the inner diameter dimension of the small arc end 1020a; t is the wall thickness of the cooling water pipe body 1020; r1 is the outer diameter dimension of the small arc end 1020a; r2 is the inner diameter dimension of the large arc end 1020b.

[0132] Since the cooling water pipe 102a in this application is an arc-shaped rhombus pipe, compared with a circular pipe, it is more difficult to install, it is difficult to ensure the sealing performance of its connection, and it is not convenient to connect with the inlet and return water pipelines. Therefore, the cooling water pipe 102a provided in this embodiment further includes an upper joint 22 and a lower joint 21 respectively provided at both ends of the cooling water pipe body 1020; among them, the upper joint 22 and the lower joint 21 have the same structure, and both include a plug 211 and a joint 213. The plug 211 is hermetically fixed at both ends of the cooling water pipe body 1020, and the first end of the joint 213 is hermetically fixed on the plug 211 and communicates with the inside of the cooling water pipe body 1020, and the second end extends out of the plug 211.

[0133] Specifically, it should be noted that the two ends of the cooling water pipe body 1020 are blocked by the plugs 211. The cross-section of the plugs 211 can be equal to or larger than the cross-section of the cooling water pipe body 1020, and the two ends of the cooling water pipe body 1020 are sealed through the plugs 211. The plugs 211 can provide an installation position for the connectors 213, so that the connectors 213 can be installed on the plugs 211, and then the connectors 213 are connected to the water inlet and return water pipelines. The connectors 213 can be set to a structure that is convenient for connection, such as circular. Through the settings of the plugs 211 and the connectors 213, the technical effects of improving the sealing performance of the cooling water pipe body 1020 and facilitating the connection with the water inlet and return water pipelines are achieved. Furthermore, the problems in the related art that it is difficult to ensure the sealing performance at the connection of non-circular cooling water pipes during installation and it is not convenient to connect with the water inlet and return water pipelines, resulting in troublesome installation, are solved.

[0134] Furthermore, the cross-section of the plug 211 is set to an arc-rhombus shape that is the same as the cross-section of the cooling water pipe body 1020. An adapter installation hole is axially formed on the plug 211, and the adapter installation hole communicates with the inside of the cooling water pipe; the first end of the connector 213 is hermetically fixed in the adapter installation hole.

[0135] To improve the sealing performance between the connector 213 and the adapter installation hole, the first end of the connector 213 is threadedly connected to the adapter installation hole, and thread sealant can be injected to improve the sealing performance. To facilitate the connection between the connector 213 and external equipment, an internal thread or an external thread is further provided at the end of the connector 213 away from the plug 211.

[0136] An annular groove is provided in the adapter installation hole, and a sealing ring 212 is embedded in the annular groove. The connector 213 is threadedly connected to the adapter installation hole and presses the sealing ring 212 against the annular groove, thereby improving the sealing performance between the connector 213 and the adapter installation hole.

[0137] In this application, as Figure 8 shown, three adjacent cooling water pipe bodies 1020 adjacent to two adjacent rows of the cooling water pipe bodies 1020 form a triangularly arranged cooling water pipe unit. The layout dimension range of the cooling water pipe unit is:

[0138] C = 1.8A~2A;

[0139] D = 0.8B~1.5B;

[0140] wherein, A is the maximum width dimension of the pipe cross-section; B is the maximum length dimension of the pipe cross-section; C is the center distance dimension of the pipe cross-sections of two adjacent cooling water pipe bodies 1020 in the same row; D is the center distance dimension of the pipe cross-sections of the cooling water pipe bodies 1020 in adjacent rows.

[0141] When the cooling water pipe 102a is an arc rhombus pipe, A is the maximum width of the short diagonal of the arc rhombus pipe; B is the maximum length of the long diagonal of the arc rhombus pipe; C is the center distance between two adjacent arc rhombus pipes in the same row; D is the horizontal center distance between two arc rhombus pipes in adjacent rows.

[0142] Figure 13 Fig. shows a simplified diagram of the convective heat transfer of the low-temperature condensation module of the present application. In the figure, s1 is the row pitch of the staggered tube bundle, and s2 is the column pitch of the staggered tube bundle.

[0143] The heat transfer on the flue gas side of the low-temperature condensation module of the present application is that the fluid flows across the staggered tube bundle, and its average surface heat transfer coefficient h The relationship with the dimensionless heat transfer coefficient Nu is:

[0144] ;

[0145] Where l is the characteristic length, is the thermal conductivity of the fluid.

[0146] For the flue gas heat transfer condition under study, the Reynolds number range of its flow is about Re = 10 3 ~2×10 5 , Nu can be expressed as:

[0147] ;

[0148] Where s1 is the row pitch of the staggered tube bundle, and s2 is the column pitch of the staggered tube bundle. Re f is the Reynolds number of the flue gas flow, Pr f is the Prandtl number of the flue gas, Pr w is the Prandtl number of the flue gas with the wall temperature as the characteristic temperature.

[0149] In engineering calculations, if the logarithmic mean temperature difference of the convective heat transfer is given as , then according to the heat transfer equation, the overall heat transfer amount has:

[0150]

[0151] Where, k is the comprehensive heat transfer coefficient, and A is the heat transfer area.

[0152] It can be seen from the above analysis that the heat transfer area of the arc rhombus pipe is larger than that of the circular pipe. Therefore, using the arc rhombus pipe as the cooling water pipe 102a in the present application can increase the overall heat transfer amount of the equipment.

[0153] Using the arc rhombus pipe will also affect the flow resistance of the flue gas. The circular pipe and the preferred arc rhombus pipe of the present application will be compared and analyzed below.

[0154] The flow resistance relationship for staggered arrangement of circular tubes is as follows:

[0155] When gas flows around a tube bundle, the flow resistance is a function of fluid velocity, tube bundle arrangement, fluid physical properties, and the number of rows. The correlation is

[0156] ;

[0157] Among them, is the correction coefficient for the staggered tube bundle and is the relationship of pipeline parameters s1 and s2, is the number of pipeline rows, f is the resistance coefficient, f is a value that depends on the change of the flow Reynolds number Re.

[0158] The flow resistance relationship for the staggered arrangement of arc-shaped diamond tubes is as follows:

[0159] The long side of the arc-shaped diamond tube is l 1, and the short side is l 2. With a design correction coefficient ε, the flow resistance relationship for the staggered arrangement of arc-shaped diamond tubes is as follows:

[0160] ;

[0161] Among them, is the correction coefficient related to the side length of the arc-shaped diamond tube compared to the staggered tube bundle of circular tubes, is greater than 1. The meanings of the remaining parameters are the same as those in the above formula.

[0162] The sides of the arc-shaped diamond are similar to the streamline properties of an airfoil. Compared with a circular tube, the flow boundary layer separation region at the tail is reduced, and the adverse pressure gradient is decreased, so the overall resistance will decrease.

[0163] Such as Figures 3A - 3BAs shown, the box structure of the purification device of the present application preferably adopts a rectangular box structure, specifically: the box body 101 includes an upper box plate 1011, a lower box plate 1012, a front box plate 1013 and a rear box plate 1014, and the upper box plate 1011, the front box plate 1013, the lower box plate 1012 and the rear box plate 1014 are hermetically connected in sequence; openings are formed on the left and right sides of the box body 101 to form a flue gas inlet 4 and a flue gas outlet 5 for flue gas circulation, and a flue gas passage from the flue gas inlet 4 to the flue gas outlet 5; the flue gas passage is used to accommodate a vertically arranged and arrayed cooling water pipe bundle 102; a plurality of water pipe installation holes 102b for sealing and assembling the ends of the cooling water pipes 102a are opened on the upper box plate 1011 and the lower box plate 1012; spaces for assembling and connecting the upper and lower ends of the cooling water pipe bundle 102 are left above the upper box plate 1011 and below the lower box plate 1012. However, the present application does not limit that the box structure must be a rectangular structure. Those skilled in the art should understand that in some special application scenarios, the box structure can be appropriately deformed, such as an arc-shaped box structure with a certain curvature, such as a trapezoidal box structure with different sizes of flue gas inlets and flue gas outlets, etc.

[0164] In the present application, the upper and lower ends of the cooling water pipe bundle 102 are installed on the upper box plate 1011 and the lower box plate 1012. Considering that the purification device needs to operate for a long time, when the low-temperature condensation module 1 works, the cooling water pipes 102a will be frequently vibrated by the impact of the flue gas, which is likely to cause the problem of flue gas leakage at the connection between the upper and lower ends of the cooling water pipes 102a and the upper and lower box plates. To solve this problem, as Figures 9A to 10B shown, the present application proposes a sealed installation structure for the cooling water pipe and the box plate. The sealed installation structure includes an installation base 20 and a cooling water pipe body 1020; wherein,

[0165] A water pipe installation hole 102b is opened on the installation base 20, and an annular groove 17 is opened on the inner wall of the water pipe installation hole 102b along its circumferential direction; in this embodiment, the installation base 20 is the upper box plate 1011 and the lower box plate 1012 of the box body 101.

[0166] The end of the cooling water pipe body 1020 is arranged in the water pipe installation hole 102b, and a part of the cooling water pipe body 1020 corresponding to the annular groove 17 is provided with an annular protrusion 18, and the annular protrusion 18 is hermetically embedded in the annular groove 17 so that the end of the cooling water pipe body 1020 and the water pipe installation hole 102b form a curved surface seal.

[0167] In this embodiment, the cooling water pipe body 1020 has a long strip structure and is hollow inside, which can be used for the flow of cooling water. The installation base 20 is the upper box plate 1011 or the lower box plate 1012 of the present application. In the prior art, in order to improve the sealing performance between the cooling water pipe body 1020 and the installation base 20, generally a sealing ring is fixed on the installation base 20, and the cooling water pipe body 1020 is fixed inside the sealing ring, and the sealing ring is used to improve the sealing performance at the connection between the cooling water pipe body 1020 and the installation base 20.

[0168] However, since the outer side of the cooling water pipe body 1020 is still a straight curved surface structure, and the corresponding positions of the sealing ring and the installation base 20 are also straight curved surface structures, when the cooling water pipe body 1020 is installed on the sealing ring and the installation base 20, it is still difficult for the straight curved surface structure to maintain the sealing performance for a long time, resulting in an unsatisfactory sealing effect.

[0169] Therefore, to solve this problem, as Figure 9B and 10B shown, in this embodiment, a water pipe installation hole 102b is opened on the installation base 20, and an annular groove 17 is opened in the water pipe installation hole 102b. The end of the cooling water pipe body 1020 is sleeved in the water pipe installation hole 102b. To make the cooling water pipe body 1020 fit with the annular groove 17, an annular protrusion 18 can be provided on the outer side of the cooling water pipe body 1020, and the annular protrusion 18 is hermetically embedded in the annular groove 17, so that a curved surface seal is formed between the annular protrusion 18 and the annular groove 17.

[0170] Due to the setting of the annular groove 17, the inner surface of the water pipe installation hole 102b on the installation base 20 is changed from a straight curved surface structure to a zigzag curved surface structure, and the outer surface of the end of the cooling water pipe body 1020 is changed from a straight curved surface structure to a zigzag curved surface structure. It can be understood that when the cooling water pipe body 1020 is installed in the water pipe installation hole 102b, the connection between the cooling water pipe body 1020 and the water pipe installation hole 102b is also changed from a straight curved surface structure to a zigzag curved surface structure, thereby improving the sealing performance at the connection between the cooling water pipe body 1020 and the water pipe installation hole 102b. And an interference fit can be adopted between the annular protrusion 18 and the annular groove 17 to further improve the sealing performance.

[0171] This embodiment realizes the technical effect of improving the sealing performance between the cooling water pipe body 1020 and the installation base 20 and preventing the tail gas from leaking from the connection between the two, and further solves the problem that in the related art, only sealant 16 or a sealing ring is generally used for sealing between the cooling water pipe and the installation base 20, and the sealing performance is still difficult to meet the use requirements.

[0172] As Figure 9B and10B As shown, the annular groove 17 in the water pipe installation hole 102b can be formed by grooving with a special tooling. The width of the cross-section of the annular groove 17 can gradually decrease from the inside to the outside, so as to form a small arc end structure with a smaller diameter at its outermost end. Compared with a rectangular groove or a groove structure of other shapes, the structure of the annular groove 17 has better sealing performance when the annular protrusion 18 cooperates with it. The annular protrusion 18 on the cooling water pipe body 1020 can be realized by tube expanding. Specifically, the cooling water pipe body 1020 can be sleeved in the water pipe installation hole where the annular groove 17 has been formed. Through a special tube expanding tooling, an outward expanding pressure is applied to the corresponding part of the cooling water pipe body 1020 and the annular groove 17, so that the cooling water pipe body 1020 deforms at the corresponding part, forms the first annular protrusion 18 and is pressed and fixed in the annular groove 17.

[0173] To further improve the sealing performance at the connection between the cooling water pipe body 1020 and the installation base 20, a sealant 16 is provided in the annular groove 17. The sealant 16 can be applied in the annular groove 17 before installing the cooling water pipe body 1020. When the cooling water pipe body 1020 is tube-expanded to form the annular protrusion 18 and is embedded in the annular groove 17, the sealing performance is improved under the action of the sealant 16.

[0174] To improve the uniformity of the opening depth of the annular groove 17, the annular groove 17 is coaxially arranged with the water pipe installation hole.

[0175] As Figure 9B and 10B shown, a rubber gasket 15 is also provided in the annular groove 17, and the annular protrusion 18 presses the rubber gasket 15 tightly in the annular groove 17. The shape of the rubber gasket 15 matches the shape of the annular groove 17. The rubber gasket 15 can be first embedded in the annular groove 17, then the sealant 16 is injected into the annular groove 17, and finally the cooling water pipe body 1020 is sleeved in the water pipe installation hole 102b.

[0176] The annular groove 17 includes a plurality of grooves arranged at intervals circumferentially along the inner wall of the water pipe installation hole 102b, and the extending depths of the plurality of grooves on the inner wall are the same or different. The plurality of grooves can increase the contact points between the cooling water pipe body 1020 and the inner wall of the water pipe installation hole 102b. When the extending depths of the plurality of grooves are different, the sealing performance between different contact points can be different, and the depth of the grooves can be adjusted according to the actual exhaust gas flow situation to improve the scope of use.

[0177] To further improve the sealing performance at the connection between the cooling water pipe body 1020 and the installation base 20, the annular groove 17 is provided in multiple numbers and is distributed along the axial direction of the water pipe installation hole 102b, so as to form multi-stage sealing, and the sealing method of each stage is the same.

[0178] To further improve the sealing performance, as Figure 10B shown, two annular grooves 17 are provided in this embodiment, including a first annular groove 171 and a second annular groove 172. The groove opening direction of the first annular groove 171 and the groove opening direction of the second annular groove 172 are inclined in opposite directions along the axial direction of the water pipe installation hole; correspondingly, the annular protrusion 18 includes a first annular protrusion 18 and a second annular protrusion 18, and the protrusion directions of the first annular protrusion 18 and the second annular protrusion 18 are inclined in opposite directions along the axial direction of the water pipe installation hole.

[0179] Specifically, it should be noted that the first annular groove 171 and the second annular groove 172 are arranged in sequence from the inside to the outside. The groove opening direction of the first annular groove 171 can be inclined towards the inside of the installation base 20, while the groove opening direction of the second annular groove 172 can be inclined towards the outside of the installation base 20, so that the connection between the cooling water pipe body 1020 and the water pipe installation hole 102b is sealed in different directions.

[0180] Moreover, in this embodiment, the depth of the second annular groove 172 is greater than the depth of the first annular groove 171. Through this setting method, the second annular groove 172 forms a secondary seal with better sealing performance, further improving the sealing performance of the overall connection.

[0181] After the annular groove 17 and the annular groove 17 in the water pipe installation hole 102b are matched, the sealing performance of a part in the water pipe installation hole 102b is effectively improved. However, the parts at both ends of the water pipe installation hole 102b are still straight curved surface structures, and their sealing performance still needs to be improved. Therefore, as Figure 10B shown, two annular clamping protrusions 19 are further provided on the cooling water pipe body 1020 in this embodiment. The two annular clamping protrusions 19 are located on the inner side and the outer side of the installation base 20, that is, at both ends of the water pipe installation hole 102b. The opposite surfaces of the two annular clamping protrusions 19 are respectively pressed against the inner side surface and the outer side surface of the installation base 20. By using the two annular clamping protrusions 19 to respectively form the first seal and the last seal at the connection between the cooling water pipe body 1020 and the installation base 20, the sealing performance can be further enhanced, and at the same time, the connection strength between the cooling water pipe body 1020 and the installation base 20 can also be improved.

[0182] As a preferred embodiment of the present application, the water pipe installation hole 102b is an arc-rhombus hole that is consistent with the end cross-sectional profile and dimensions of the arc-rhombus pipe. The annular groove 17 includes a plurality of grooves that are arranged in sequence on the four straight sides 1020c and the two large arc ends 1020b of the arc-rhombus hole. Correspondingly, the annular protrusion 18 includes a plurality of protrusions that are arranged on the four straight sides 1020c and the two large arc ends 1020b of the end of the arc-rhombus pipe. The plurality of grooves and the plurality of protrusions are in a fitting and sealing cooperation. By combining the fitting depths of different grooves and protrusions and with the special-shaped arc-rhombus shape, the sealing performance at the connection between the cooling water pipe 102a and the installation base 20 (the upper box plate 1011 and the lower box plate 1012) can meet the requirement that the purification equipment can work for a long time without flue gas leakage.

[0183] In the present application, the structural form of the end joint assembly will affect the flow form of the cooling water from the cooling water inlet 103a to the cooling water return port 104a. The present application proposes five embodiments of the low-temperature condensation module 1 with different end joint assemblies.

[0184] Figures 2C - 2E An embodiment of the low-temperature condensation module with a circular pipe elbow as the end joint is shown. As can be seen from the figure, the end joint assembly is a circular pipe elbow assembly that sequentially connects the ends of two adjacent cooling water pipes 102a. Along the direction from the flue gas inlet 4 to the flue gas outlet 5, the ends of two adjacent rows of cooling water pipes 102 are connected by a circular pipe elbow 105 located outside the box plate.

[0185] In this embodiment, the cooling water circulation pipeline is arranged above the box body 101 of the low-temperature condensation module 1. In other embodiments, it can also be arranged below, and the specific position is set according to actual needs. The cooling water circulation pipeline is set in two groups. The cooling water pipe bundle 102 is divided into two front and rear cooling water pipe areas 24 in the box body 101 along the direction from the flue gas inlet 4 to the outlet. The cooling water inlet pipeline 103 and the cooling water return pipeline 104 of the two groups of cooling water circulation pipelines are respectively communicated with the inlet cooling water pipeline and the outlet cooling water pipeline of the front and rear two cooling water pipe areas 24. Since the flue gas temperature near the flue gas inlet 4 is high, a large cooling temperature drop is required for the cooling water pipe 102a near the flue gas inlet 4. On the basis of the cooling of the cooling water pipe 102a on the front side, the requirement for the cooling temperature drop of the cooling water pipe 102a near the flue gas outlet 5 is small. Therefore, in this embodiment, the cooling water flow rate in the cooling water pipe area 24 near the outlet side can be reduced, which can save the consumption of cooling water. Specifically, the way to reduce the cooling water flow rate in the cooling water pipe area 24 near the outlet side can be to reduce the pipe diameter (i.e., the cross-sectional area size) of the cooling water pipe 102a or to reduce the inlet flow rate of the cooling water inlet pipeline 103. In other embodiments, the cooling water flow rate in the cooling water pipe area 24 on the outlet side may not be reduced, that is, the cooling water consumption in the cooling water pipe area 24 on the inlet side is the same as the flow rate in the cooling water pipe area 24 on the outlet side. In addition, it should be noted that this application does not limit the number of the cooling water pipe areas 24. In other embodiments, according to actual needs, it can also be set to three, four, five, etc.

[0186] In the above embodiment, since the number of the cooling water pipes 102 is large, the same number of round pipe elbows 105 are required. However, a large number of round pipe elbows 105 will cause kinetic energy resistance loss of the cooling water at the turning points, reducing the heat exchange efficiency of the low-temperature condensation module 1. At the same time, in order to reduce the overall volume of the low-temperature condensation module 1, the setting spacing of the cooling water pipes 102 is small. To connect the ends of two cooling water pipes 102 with the round pipe elbow 105, the radian of the round pipe elbow 105 is small, and the processing difficulty is large.

[0187] To solve the problems of large kinetic energy resistance loss of the cooling water at the round pipe elbow 105 and large processing difficulty of the round pipe elbow 105, as Figures 3A - 6D shown in the embodiment of using a water tank to replace the round pipe elbow 105 as the end joint assembly.

[0188] Specifically, the end joint assembly includes an upper end joint assembly 25 and a lower end joint assembly 26. The upper end joint assembly 25 and the lower end joint assembly 26 are alternately arranged above and below the cooling water pipe bundle 102 in sequence along the flue gas flow direction, and each end joint penetrates through the ends of multiple rows of cooling water pipes 102a to form a parallel pipeline in the cooling water pipe bundle 102 for at least two rows of parallel water flows to flow in the same direction. Specifically, the upper end assembly 25 is an upper water tank 11, and the lower end assembly 26 is a lower water tank 12. The upper water tank 11 includes a plurality of upper water tank sub-parts 111 arranged in sequence along the flue gas flow direction above the cooling water pipe bundle 102 as the end joints. The lower water tank 12 includes a plurality of lower water tank sub-parts 121 arranged in sequence along the flue gas flow direction below the cooling water pipe bundle 102 as the end joints. The multiple rows of cooling water pipes 102a penetrated by each water tank sub-part include a water inlet pipeline and a water outlet pipeline arranged side by side along the flue gas flow direction, and the number of rows of the water inlet pipeline and the water outlet pipeline is the same.

[0189] Figures 3A - 3D An embodiment showing the circulation of cooling water along the grouped water pipes is illustrated. In this embodiment, water tanks are provided on the outer sides of the upper and lower box plates of the box body 101 to replace the circular pipe elbows 105 in Embodiment 1 to achieve the connection of the ends of the cooling water pipes 102. An upper water tank 11 is provided above the upper box plate 1011, and a lower water tank 12 is provided below the lower box plate 1012. A number of partition plates are provided in the upper water tank 11 to divide the upper water tank 11 into the 1st to the Nth upper water tank sub-parts 111, and a number of partition plates are provided in the lower water tank 12 to divide the lower water tank 12 into the 1st to the Nth lower water tank sub-parts 121. Each upper water tank sub-part 111 or lower water tank sub-part 121 correspondingly connects the ends of at least two rows of cooling water pipes 102. The cooling water inlet pipeline 103 is connected to the 1st lower water tank sub-part 121 close to the flue gas inlet 4, and the cooling water return pipeline 104 is connected to the Nth upper water tank sub-part 111 farthest from the flue gas inlet 4. The 2nd to the Nth lower water tank sub-parts 121 of the lower water tank 121 are respectively arranged in an interleaved manner with the 1st to the (N - 1)th upper water tank sub-parts 111 of the upper water tank 111. Specifically, as Figure 3AAs shown in the figure, the cooling water enters the first lower water tank section 121 of the lower water tank from the cooling water inlet. The first lower water tank section 121 corresponds to 4 rows of cooling water pipes 102a. Driven by the pressure of the water pump 9, the cooling water flows upward along these 4 rows of cooling water pipes 102a and flows out from the first 4 rows of cooling water pipes 102a in the first upper water tank section 111. As can be seen from the figure, the first upper water tank section 111 corresponds to and is connected to 8 rows of cooling water pipes 102a. The cooling water flowing in from the first 4 rows turns in the first upper water tank section 111 and then flows downward into the last 4 rows of cooling water pipes 102a. The second lower water tank section 121 corresponds to and is connected to 8 rows of cooling water pipes 102a. The cooling water in the 4 rows of cooling water pipes 102a flowing down from the first upper water tank section 111 turns in the second lower water tank section 121 and then flows upward out from the last 4 rows of cooling water pipes 102a. The second to N-1 upper water tank sections 111 and the third to Nth lower water tank sections 121 are arranged in sequence according to the above rules. The cooling water circulates in sequence in the lower water tank section 121, the cooling water pipes 102a, and the upper water tank section 111, and finally flows out from the cooling water return port on the Nth upper water tank section 11 of the upper water tank 11.

[0190] In this embodiment, the water tank section replaces the round pipe elbow in the above embodiment, making the cooling water routing change from 1-way turning in the above embodiment to multi-way turning, reducing the number of turns, also reducing the resistance loss of the cooling water turning, and improving the heat exchange efficiency of the cooling water pipe bundle; secondly, the water tank also reduces the processing difficulty and processing cost compared with the round pipe elbow.

[0191] For the flow resistance, since it flows inside the pipe, its flow resistance consists of the frictional resistance in the straight pipe section and the local resistances such as those flowing through elbows, joints, and sudden changes.

[0192] The frictional resistance is expressed as: ,

[0193] where is the frictional resistance coefficient, l is the pipe length, d is the inner diameter of the pipe, is the flow velocity inside the pipe, g is the acceleration due to gravity;

[0194] The local resistance is expressed as: ,

[0195] where is the local resistance coefficient, and N is the number of local resistance components.

[0196] From the above two formulas, the longer the pipe length l , the larger is, and the larger N is, The greater it is. When changing from the elbow form to the integral water tank, the distance for the water flow from one side to the other side is extremely reduced, and the flow resistance is only composed of a small section of frictional resistance and two local resistances. Since the tube bundle array changes from a series arrangement to a parallel arrangement, at this time, the flow resistances of each channel are the same and are greatly reduced.

[0197] It should be noted that the water tank sections in this application can also be independently arranged, that is, the water tank sections are independently formed, and the water tank sections can be fixed to each other through a fixing structure. In addition, the shape of the water tank sections is not limited to the rectangular shape in the embodiments of this application. In other embodiments, in order to further reduce the resistance loss of the cooling water turning, the outer right angles of the rectangular water tank sections can also be machined into rounded corners.

[0198] Considering that the flue gas temperature is high near the flue gas inlet 4 and the cooling water consumption is large, while the flue gas temperature is low far from the flue gas inlet 4 and the cooling water consumption is small. In order to further reduce the cooling water consumption, as the best embodiment of the low-temperature condensation module 1 of this application, Figures 4A - 4C An embodiment is shown in which the cooling water in each straight-through area circulates along the grouped water pipes and the cooling water volume is adjustable. Based on the above embodiment in which the cooling water circulates along the grouped water pipes, the cooling water pipes 102 are divided into the 1st to the Nth areas, and a set of cooling water inlets 103a and cooling water outlets 104a are correspondingly arranged for each area of the cooling water pipes 102. A plurality of cooling water pipe areas are isolated from each other and the cooling water circulates independently. This application achieves the purpose of saving the overall water consumption of the low-temperature condensation module 1 by reducing the water inflow of the cooling water pipe areas on the side far from the flue gas inlet 4. Specifically, in this embodiment, the cooling water pipes 102 are divided into three areas, and the cooling water consumption of the 1st area to the 3rd area is set to decrease in sequence. The number of areas for dividing the cooling water pipes 102 in this application is not limited. In other embodiments, according to actual needs, the cooling water pipes 102 can be set to two areas, four areas, five areas, etc. Correspondingly, the cooling water inlets 103a and the cooling water outlets 104a are also set to two groups, four groups, five groups, etc.

[0199] Furthermore, in the embodiments of this application, the method for sequentially reducing the cooling water consumption on the side far from the flue gas inlet 4 is: by setting a flow regulating valve 1031 at the cooling water inlet 103a of the first lower water tank section 121 of each cooling water pipe area, the cooling water consumption of each cooling water pipe area can be adjusted by adjusting the inlet area of the flow regulating valve 1031. Specifically, a water distribution pipe 1033 communicating with the first lower water tank section 121 is arranged on the first lower water tank section 121 of each cooling water pipe area, and the flow regulating valve 1031 is arranged on the water distribution pipe 1033.

[0200] Furthermore, a main cooling water inlet pipe 1032 is provided below the lower water tank 12 in each cooling water pipe area and is communicated with each branch water pipe 1033 respectively. Cooling water enters from the main cooling water inlet pipe 1032. The main cooling water inlet pipe 1032 distributes the cooling water into each branch water pipe 1033 according to the opening sizes of the respective flow regulating valves 1031. In the embodiment of the present application, in order to save the overall water consumption of the cooling water, the openings of the flow regulating valves 1031 far from the flue gas inlet 4 are gradually reduced. In this way, the amount of cooling water distributed by the main cooling water inlet pipe to the branch water pipes 1033 far from the flue gas inlet 4 is gradually reduced, reducing the overall water consumption of the cooling water on the basis of meeting the condensation efficiency of the low-temperature condensation module 1.

[0201] As an alternative embodiment of the low-temperature condensation module 1 of the present application, the upper end component is an upper water tank that penetrates through the upper ends of all the cooling water pipes, and the lower end component is a lower water tank. The lower water tank includes a plurality of lower water tank sub-parts arranged along the flue gas flow direction. Each lower water tank sub-part penetrates through multiple rows of the cooling water pipes; the upper water tank is communicated with a cooling water return port, and each lower water tank sub-part is communicated with a cooling water inlet. It further includes a main cooling water inlet pipe, and the main cooling water inlet pipe is communicated with each cooling water inlet through a flow regulating valve. Specifically, as Figures 5A - 5C shown in the direct-through type adjustable cooling water embodiment for each area, a plurality of partitions are provided in the lower water tank 12 to divide the lower water tank 12 into several lower water tank sub-parts 121. The number of cooling water pipes 102a corresponding to each group of lower water tank sub-parts 121 can be the same or different, which is specifically set according to actual needs. There are no partitions in the upper water tank 11, and the upper water tank is a return water tank that covers and communicates with the 1st to Nth rows of cooling water pipes 102.

[0202] The cooling water enters from the main cooling water inlet pipe 1032 and is distributed to the corresponding lower water tank sub-parts 121 through the flow regulating valves 1031 of each branch water pipe 1033. In this embodiment, each lower water tank sub-part 121 is an inlet water tank. The cooling water flows from each sub-part upward along the cooling water pipe 102a into the upper water tank 11, and finally flows out from the cooling water return port 104a provided at the Nth row of cooling water pipes 102a.

[0203] Furthermore, considering that the flue gas temperature is high and the cooling water consumption is large near the flue gas inlet 4, and the flue gas temperature is low and the cooling water consumption is small far from the flue gas inlet 4, in order to further reduce the cooling water consumption of the low-temperature condensation module 1 in the embodiment of the present application, the amount of cooling water in the sub-parts far from the flue gas inlet 4 side is set to be less than that in the sub-parts near the flue gas inlet 4 side. Specifically, along the direction from the flue gas inlet 4 to the outlet, the openings of the flow regulating valves 1031 of the branch water pipes 1033 of each sub-part are gradually reduced.

[0204] As a replaceable embodiment of the low-temperature condensation module 1 of the present application, the upper end component 25 is an upper water tank 11 that penetrates through the upper ends of all the cooling water pipes 102a, and the lower end component 26 is a lower water tank 12 that penetrates through the lower ends of all the cooling water pipes 102a. One of the upper water tank 11 and the lower water tank 12 is connected to the cooling water inlet 103a, and the other is connected to the cooling water return port 104a. Specifically, as shown in Figures 6A - 6D the embodiment where the cooling water in each straight-through area circulates along the grouped water pipes and the cooling water volume is adjustable, there is no partition in the upper water tank 11, and the upper water tank 11 is a return water tank connected to the cooling water return port 104a; there is no partition in the lower water tank 12, and the lower water tank 12 is a water inlet tank connected to the cooling water inlet 103a. Both the upper water tank 11 and the lower water tank 12 cover and are connected to the 1st to Nth rows of cooling water pipes 102a. The cooling water enters the lower water tank 12 from the cooling water inlet 103a, then flows from bottom to top through the cooling water in each row to the upper water tank 11, and finally flows out from the cooling water return port 104a provided at the Nth row of cooling water pipes 102a.

[0205] Further, considering that the flue gas temperature near the flue gas inlet 4 is high and the cooling water consumption is large, while the flue gas temperature far from the flue gas inlet 4 is low and the cooling water consumption is small, in order to further reduce the cooling water consumption of the low-temperature condensation module 1 in the embodiment of the present application, along the direction from the flue gas inlet 4 to the outlet, the opening sizes of the connections between the lower water tank 12 and each row of cooling water pipes 102a are gradually reduced, so that the cooling water volumes of each row of cooling water pipes 102a from the flue gas inlet 4 to the outlet direction are gradually reduced, thereby realizing the overall water consumption of the low-temperature condensation module 1.

[0206] In addition, as shown in Figure 3C 、 4C 、5C, and 6C, the cooling water inlet 103a and the cooling water return port 104a are both arranged on opposite sides, so that the travel distances and resistances of the cooling water in each parallel-flowing branch water pipes 1033 are the same, to ensure that the water flow rates in each parallel branch water pipes 1033 are the same and their cooling efficiencies for the corresponding flue gas are the same.

[0207] In addition, in order to ensure the overall aesthetic appearance of the purification equipment in the present application, a closed grille cover is installed on the outside of the lower box plate 1012 to cover the water tank or elbow 105 exposed at the bottom of the box body 101.

[0208] The embodiment of the present application also provides a low-temperature condensation module 1 with a demisting, water collection, and water blocking plate structure.

[0209] The flue gas velocity of the flue gas discharged from the cement kiln is high, and the heat exchange and condensation time through the low-temperature condensation module 1 is short. If the ammonia-containing condensate in the flue gas does not completely flow along the cooling water pipe 102a to the bottom of the device for external discharge, the ammonia-containing condensate will be discharged to the outside from the flue gas outlet 5, causing pollution. Therefore, in this embodiment, a demisting, water-collecting and water-blocking plate 13 is arranged at the flue gas outlet to further collect the moisture in the flue gas cooled to the dew point.

[0210] In order to further ensure that the ammonia-containing condensate will not be discharged to the outside from the flue gas outlet 5, in the embodiment of the present application, as Figure 3A shown, a plurality of vertically arranged demisting, water-collecting and water-blocking plates 13 are arranged at the flue gas outlet 5. The plate surface of the demisting, water-collecting and water-blocking plate 13 is a folded plate with a plurality of folding angles. After the flue gas is discharged from the last row of cooling water pipes 102a, it will pass through the demisting, water-collecting and water-blocking plate 13. Under the action of the folded surface of the folded plate, the velocity of the flue gas will decrease, and the condensate in the flue gas will adhere to the surface of the demisting, water-collecting and water-blocking plate 13 and flow down along the surface of the demisting, water-collecting and water-blocking plate 13 to the bottom of the device. By arranging the demisting, water-collecting and water-blocking plate 13, the condensate in the flue gas can be blocked from being discharged to the outside from the flue gas port.

[0211] Furthermore, the folded plate at least includes a pair of folding angles bent in opposite directions. In this way, the travel distance of the flue gas on the folded plate can be increased, which is beneficial to the collection of the moisture mixed in the flue gas.

[0212] As a preferred embodiment, the section of the folded plate close to the flue gas outlet is a straight plate section, and its function is to guide the flue gas to flow along the demisting, water-collecting and water-blocking plate 13. Further, at least part of the demisting, water-collecting and water-blocking plate 13 is formed with oblong holes extending vertically along the surface of the demisting, water-collecting and water-blocking plate 13 as drainage holes. The condensate adhering to the surface of the demisting, water-collecting and water-blocking plate 13 will flow down along the oblong holes to the bottom of the device for external discharge. Preferably, the oblong holes extend from the upper end to the lower end of the folded plate.

[0213] In order to further improve the safety of flue gas discharge, a wire mesh 14 is arranged outside the demisting, water-collecting and water-blocking plate 13 to make a final barrier to the condensate in the flue gas.

[0214] In summary, the self-sustaining one-step purification equipment provided by the present application is applied to flue gas purification treatment scenarios such as cement kilns, power plants or coal yards, and can effectively reduce the contents of escaped ammonia, SO2, NOx, CO2 and dust content in the discharged flue gas.

[0215] In an embodiment of the purification equipment of the present application, when the flue gas temperature at the flue gas inlet is 105 °C, the moisture content of the flue gas is 9.5%, the escaped ammonia is 20 mg / m 3 , the SO2 content is 15 mg / m 3 , and the NOx content is 38 mg / m 3, CO2 concentration 20.5%, dust content 6 mg / m 3 , when the inlet water temperature of the cooling water is 28°C,

[0216] (1) The flue gas outlet temperature is 60°C, the moisture content of the flue gas is 6.5%, the escaped ammonia is 6 mg / m 3 , SO2 content 5mg / m 3 , NOx content 34 mg / m 3 , CO2 concentration 18.5%, dust content 3 mg / m 3 , the outlet water temperature of the cooling water is 46°C.

[0217] (2) When increasing the cooling water volume in the low-temperature condensation module to make the flue gas outlet temperature of the purification equipment 50°C, the moisture content of the flue gas is 5.0%, the escaped ammonia is 3 mg / m 3 , SO2 content 2 mg / m 3 , NOx content 32 mg / m 3 , CO2 concentration content 17.5%, dust content 2 mg / m 3 , the outlet water temperature of the cooling water is 41°C.

[0218] In another embodiment of the purification equipment of the present application, when the flue gas inlet temperature of the flue gas is 150°C, the moisture content of the flue gas is 7.5%, the escaped ammonia is 80 mg / m 3 , SO2 content 150 mg / m 3 , NOx content 40 mg / m 3 , CO2 concentration 21.0%, dust content 5 mg / m 3 , when the inlet water temperature of the cooling water is 28°C,

[0219] The flue gas outlet temperature is 65°C, the moisture content of the flue gas is 6.0%, the escaped ammonia is 15 mg / m 3 , SO2 content 42 mg / m 3 , NOx content 36 mg / m 3 , CO2 concentration 19.0%, dust content 3 mg / m 3 , at this time the outlet water temperature of the cooling water is 65°C.

[0220] For the case where the flue gas inlet temperature is relatively high, or the moisture content of the flue gas is relatively low, or the escaped ammonia content at the flue gas inlet is relatively high, in order to further improve the purification efficiency of the escaped ammonia, such as Figure 1B and Figure 2AAs shown in the figure, an embodiment of the present application provides a self-sustaining one-step purification device with an atomization device. The atomization device 3 is used to spray atomized water towards the flue gas inlet 4. The installation position of the atomization device 3 is at the flue gas inlet 4. More specifically, the atomization device 4 is installed at the trapezoidal joint of the connection position between the flue gas discharge port of the cement kiln and the flue gas inlet 4 of the purification device. However, it should be noted that the installation position of the atomization device 3 is not limited to the flue gas inlet 4. For example, in some other embodiments, the atomization device 3 can also be installed at the flue gas discharge port of the cement kiln or a more forward position. Spraying atomized water towards the flue gas inlet can increase the water content in the flue gas. The specific principle is as follows: Since the temperature of the flue gas is high, the atomized water will be evaporated into water vapor by the high temperature of the flue gas after entering the flue gas, thereby increasing the water vapor content in the flue gas. When the water vapor content in the flue gas is low, spraying atomized water through the atomization device 3 can increase the water vapor content in the flue gas, thereby improving the ammonia removal efficiency. In addition, a reagent (a reagent helpful for ammonia removal, denitrification, and desulfurization) can also be added to the atomized water. By adding the reagent in the form of atomized water, the reagent can be fully contacted with the flue gas, further improving the cleanliness of the discharged flue gas. Finally, the atomized water can also cool the flue gas, reducing the working pressure of the subsequent low-temperature condensation module 1.

[0221] For the flue gas inlet where the flue gas temperature is greater than 120 °C or the moisture content of the flue gas at the flue gas inlet is less than 8% or the escaped ammonia at the flue gas inlet is 100 mg / m 3 , start the atomization device.

[0222] When the SO2 content at the flue gas inlet is greater than 100 mg / m 3 , start the atomization device and add a desulfurization reagent to the atomized water; and / or when the Nox content at the flue gas inlet is greater than 50 mg / m 3 , start the atomization device and add a denitrification reagent to the atomized water.

[0223] In an embodiment of the purification device of the present application, when the flue gas temperature at the flue gas inlet is 150 °C, the moisture content of the flue gas is 7.5%, the escaped ammonia is 80 mg / m 3 , the SO2 content is 150 mg / m 3 , the NOx content is 40 mg / m 3 , the CO2 concentration is 21.0%, the dust content is 5 mg / m 3 , and the water temperature at the cooling water inlet is 28 °C,

[0224] Enable the atomization device 3, adjust the moisture content of the inlet flue gas to 9.0%, reduce the inlet flue gas temperature to 128 °C, and increase the cooling water volume so that the flue gas temperature at the flue gas outlet of the purification device is 55 degrees Celsius, the moisture content of the flue gas is 5.0%, the escaped ammonia is 4 mg / m 3 , SO2 18 mg / m3 , NOx content is 34 mg / m 3 , CO2 concentration is 17.8%, dust content is 1.5 mg / m 3 . At this time, the water temperature at the outlet of the cooling water is 48°C.

[0225] As a preferred embodiment of the present application, the purification device further includes a spray cleaning device 2. Since the flue gas contains particulate matter, the particulate matter will adhere to the surface of the cooling water pipes of the low-temperature condensation module 1 and is difficult to remove due to long-term contact with the flue gas, reducing the heat exchange efficiency (i.e., the cooling efficiency of the flue gas) of the low-temperature condensation module 1. Therefore, as Figure 1B shown in the figure, water is sprayed through the spray device 2 at the connection between the outlet 5 of the cement kiln flue gas and the deammoniation device. The sprayed water is in a columnar shape and is sprayed onto the flue gas port, and is washed onto the surface of the cooling water pipe fittings by the rapidly flowing flue gas blown out from the outlet 5 of the cement kiln flue gas, washing away the particulate matter adhered to the surface of the pipe fittings.

[0226] The embodiment of the present application also provides a modular purification device, which modularizes the purification device in the above embodiment. The modular purification device includes several purification device sub-modules, and several purification device sub-modules can be arranged in parallel and / or in series. Standardize the sub-modules, and determine the number of sub-modules and the connection method between sub-modules according to requirements and on-site layout.

[0227] Specifically, in an embodiment of the present application, one purification device can be made into two purification device sub-modules. When installing on-site, the two purification device sub-modules are placed side by side. Further, in order to ensure the connection reliability between the two sub-modules, the two purification device sub-modules can be connected by bolts or welding.

[0228] In addition, the sub-modules can also be placed at intervals. The outlet 5 of the cement kiln flue gas is diverted to each branch pipe and enters each sub-module respectively, and finally the flue gas of all sub-modules is collected and discharged.

[0229] Since the sub-modules are of standardized design, when the actual application scenario exceeds the purification capacity of the sub-modules, several sub-modules can be connected in series along the flue gas flow direction for use.

[0230] The above are only the preferred embodiments of the present application and are not used to limit the present application. For those skilled in the art, the present application can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A partitioned self-sustaining one-step purification device, characterized in that, Comprising: A box body, which has a flue gas inlet and a flue gas outlet, and a flue gas passage formed from the flue gas inlet to the flue gas outlet; A low-temperature condensation module, which is connected to a cooling water inlet and a cooling water return outlet. The low-temperature condensation module includes a cooling water pipe bundle for the circulation of cooling water vertically arranged and arranged in an array in the flue gas passage, and an end joint assembly that sequentially connects the upper and lower ends of multiple rows of cooling water pipes to form multiple rows of parallel water flows in the cooling water pipe bundle. The multiple rows of parallel water flows realize the commutation of multiple rows of parallel water flows in the corresponding end joints; The low-temperature condensation module cools and condenses the flue gas entering from the flue gas inlet, condenses the water vapor in the flue gas into condensed water, so that ammonia and acidic pollutants in the flue gas dissolve in the condensed water, and the ammonia and the acidic pollutants undergo an acid-base neutralization reaction in the condensed water to generate a non-volatile salt that is easily soluble in the condensed water; The cooling water pipe bundle is divided into several groups of cooling water pipe assemblies along the flue gas flow direction; The cooling water pipe assemblies are at least three groups, and the cooling water flow rate along the flue gas flow direction decreases in sequence; The cooling water pipe bundle is arranged in a staggered arrangement of tube banks; the cooling water pipe bundle includes multiple rows of cooling water pipes arranged along the flue gas flow direction, and adjacent two rows of cooling water pipes are staggered in the flue gas flow direction and there is no gap between the front projection surfaces in the flue gas flow direction.

2. The partitioned self-sustaining one-step purification device according to claim 1, wherein The end joint assembly is box-shaped and includes an upper water collecting tank and a lower water collecting tank. The upper water collecting tank includes multiple upper water collecting tank parts arranged above the cooling water pipe bundle as the end joints, and the lower water collecting tank includes multiple lower water collecting tank parts arranged below the cooling water pipe bundle as the end joints. Each upper water collecting tank part and the lower water collecting tank part are respectively sealed and connected to the ends of multiple rows of the cooling water pipes, and the upper water collecting tank parts and the lower water collecting tank parts corresponding up and down are staggered vertically.

3. The partitioned self-sustaining one-step purification device according to claim 2, characterized in that, The number of rows of inlet pipes and outlet pipes corresponding to each upper water collecting tank part and the lower water collecting tank part is the same.

4. The partitioned self-sustaining one-step purification device according to claim 2, wherein One of the upper water collecting tanks includes a cooling water inlet tank connected to the cooling water inlet, and one of the lower water collecting tanks includes a cooling water return tank connected to the cooling water return outlet. The cooling water inlet tank and the cooling water return tank are respectively connected to multiple rows of cooling water pipes.

5. The partitioned self-sustaining one-step purification device according to claim 2, characterized in that, The inner walls of the upper water collecting tank part and the lower water collecting tank part in contact with the cooling water flow are set to a streamline structure.

6. The partitioned self-sustaining one-step purification device according to claim 1, characterized in that, The cooling water inlet and the cooling water return outlet are arranged on opposite sides.

7. The partitioned self-sustaining one-step purification device according to any one of claims 1-6, characterized in that, Each group of the cooling water pipe assemblies includes multiple rows of the cooling water pipes, and correspondingly connects a group of the cooling water inlet and the cooling water return outlet. The cooling water flows of different groups of the cooling water pipe assemblies are not connected in the low-temperature condensation module.

8. The partitioned self-sustaining one-step purification device according to claim 7, characterized in that, The cooling water flow rate of the cooling water pipe assembly close to the flue gas outlet is less than the cooling water flow rate of the cooling water pipe assembly close to the flue gas inlet.

9. The partitioned self-sustaining one-step purification device according to claim 8, characterized in that, It further includes a main cooling water inlet pipe, and the main cooling water inlet pipe is communicated with each of the cooling water inlets through a flow regulating valve; the opening degree of the flow regulating valve corresponding to the cooling water pipe assembly close to the flue gas outlet is smaller than the opening degree of the flow regulating valve corresponding to the cooling water pipe assembly close to the flue gas inlet.

10. The partitioned self-sustaining one-step purification device according to claim 9, characterized in that, Among two adjacent rows of the cooling water pipes, the single cooling water pipe of one row is located on the center line of the corresponding two cooling water pipes of the other row.

Citation Information

Patent Citations

  • Partitioned self-sustaining one-step purification equipment

    CN218687851U