A method for pickling steel sheets
The cross-flow ultrafiltration system with ceramic membranes addresses the clogging issue in pickling solution recirculation by minimizing colloidal silicon polymerization and fouling, achieving efficient silicon removal and compact installation design.
Patent Information
- Application Number
- IR139950140003002520
- Authority / Receiving Office
- IR · IR
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-12-20
- Filing Date
- 2020-06-14
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2040-06-14
AI Technical Summary
Existing methods for purifying pickling solutions used in high silicon content steel alloys result in significant clogging of recirculation systems, requiring large installations and frequent shutdowns for cleaning, without effectively addressing the issue of colloidal silicon formation and membrane fouling.
A method utilizing a cross-flow ultrafiltration system without storage tanks, incorporating ceramic membranes with 1-10 nm pore size, and a continuous flow rate to minimize colloidal silicon polymerization, combined with backwashing to maintain system efficiency and reduce installation footprint.
The method effectively slows down clogging, prolongs the lifetime of recirculating components, and achieves a 40% removal rate of silicon content while reducing the installation size and operational complexity.
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Abstract
Description
METHOD FOR PICKLING STEEL SHEETSThe present invention relates to a method for pickling steel sheets continuously dipped in a pickling bath containing a pickling solution while said pickling solution is purified.The development of alloys containing more and more elements engenders new problems to be solved. For example, one way to make very high resistance steel among other things is to increase its silicon content. Unfortunately, the alloy elements will contaminate the pickling bath by dissolution during the pickling process. In the case of very high resistance steel, silicon dissolution is a major concern because it leads to the formation of monosilicic acids Si(OH)4which then condensate to form colloidal silicon and ultimately form suspension and / or co-precipitation with other substances. The silicon dissolved in the pickling and recirculation tanks accumulates and eventually precipitates on the surface of the equipment, notably those downstream, the critical points of accumulation and precipitation are pipes and heat exchangers. In order to remove the precipitates and eliminate the clogging, the pickling process needs to be shut down during the cleaning process.Moreover, the management of the used acid pickling solution is also a major concern due to its chemical nature, it has to be treated e.g. in an acid regeneration plant or in a wastewater treatment plant.Patent DE 41 16 353 describes a method for removing amorphous and partially dissolved silicon from a water, acid or alkaline treatment solution, especially a circulating solution for chemical treatment of iron-silicon alloy ribbons. A part of the treatment solution comprising silicon is supplied to a storage container. Said storage container contains a solution that is subjected to a filtration membrane and the filtrate freed of silicon is sent to the treatment solution and the solution comprising a high concentration of silicon is sent to the storage tank and that the highly concentrated in silicon solution in the storage tank is removed and discarded.Patent WO 2014 / 36575 describes a method of purification and silica removal from used acid pickling baths. In this method, the resulting pickling solutions are settled in a settling tank and then cleaned in a cross-flow microfilter as a prefilter and in a downstream ultrafilter. Then, the filtrate is fed to spray roaster systems or fluidized bed process of HCl for recovering the corresponding pickling acids and iron oxide.Patent AT 411 575 relates to a method for purifying contaminated acidic pickling wastewater with the aid of cross-flow microfiltration. In order to do so, the occurring pickling solution is calmed in a settling container and then purified in a cross-flow micro-filter in the temperature range of 10-55°C. Then it is processed according to the spray roasting principle in an acid regeneration plant. This process aims to prevent plant failure as a result of pipe encrustation, filter and nozzle blockages.However, by using the above methods and their equipment, the installation requires a lot of space because they are voluminous due to the numerous devices used like, settling tanks and several filtration systems. Moreover, the circuit circulating the pickling acid is not protected against the clogging since the purpose of the above methods is to avoid the contamination of the iron oxide obtained in the acid regeneration plant and not minimize the clogging issue in the circulating circuits.Consequently, there is a need to find a way to protect the recirculating circuit against the clogging and reduce the footprint of the installation.The purpose of the invention is to provide a method permitting to avoid or at least slow down the clogging and provide an installation of smaller footprint than those present in the state of the art.This object is achieved by providing a method according to claim 1. The method can also comprise any characteristics of claims 2 to 14. This object is also achieved by providing an apparatus according to claim 15.Other characteristics and advantages of the invention will become apparent from the following detailed description of the invention.To illustrate the invention, various embodiments and trials of non-limiting examples will be described, particularly with reference to the following figure:Figure 1 is a schematic illustration of the installation.The invention relates to a method for pickling steel sheets 8, said steel sheets being continuously dipped in a pickling bath 1, containing a pickling solution 10, said bath being connected to a treatment unit including a recirculation tank 3, circulation means 12 and 13, a continuous entering flow 11 of said solution being fed into an ultrafiltration device 2 from the recirculation tank 3 and two flows exits the ultrafiltration device, one filtered exiting flow 21 being then fed back inside said recirculation tank 3 and one unfiltered flow 22, said treatment unit including no storage tank.In the prior art, the clogging of the recirculation system is not dealt with. On the contrary, with the method according to the present invention, it seems that the clogging is slowed down which apparently prolonged the lifetime of recirculating system, i.e. pumps, nozzles, pipes and valves.Moreover, compared to the closest prior art, the pickling method according to the present method does not use a storage tank. This enables the present method to minimize the polymerization kinetics rate of colloidal silicon leading to a decrease of the fouling tendency of the membrane.Preferably, said pickling solution 10 is made of one or a combination of different acids. For example, hydrochloric acid at 15% is in the pickling bath 1 or a mix of hydrochloric acid and sulphuric acid.Preferably, said pickling solution 10 is not treated thermically before being fed into said ultrafiltration device. It seems that it permits to immediately treat the pickling acid and also requires less space.Preferably, neither additive, nor device is used to increase the degree of polymerization of said solution being fed into said ultrafiltration device. However, in the previous patents, the acidic pickling wastewater is settled in a tank increasing the degree of polymerization and thus permitting to obtain bigger particles. This settling process presented in the previous patent seems to ease the filtration due to a global increase of the particle size to be filtered. Consequently, the removal rate achieved is above 99% in the case of the patent WO 2014 / 36575 and 75% for AT 411 575. On the contrary, the present invention has apparently the major advantage of drastically slowing down the clogging with a removal rate of only 40% of the total silicon content in the used pickling acid solution. So the objective is achieved but the space required is reduced.Preferably, the ultrafiltration device 2 is a cross-flow ultrafiltration device. In the case of a cross-flow filtration, it is believed that contrary to a dead-end filtration, the flow is applied tangentially across the membrane surface. Without willing to be bound by any theory, as feed flows across the membrane, the filtrate passes through the holes of the membrane while the unfiltered flow exits at the opposite end of the membrane. Apparently, the tangential flow of the membrane creates a shearing effect on the surface of the membrane, which in turn reduces fouling.Preferably, the used acid pickling is being circulated using pumps, said pumps are protected by cartridge filter permitting to filter the suspended solids.Preferably, the ultrafiltration device 2 has one or several membranes. Preferably, the membrane of the ultrafiltration device 2 is made of ceramic.Preferably, the membrane of the ultrafiltration device 2 has a pore size comprised between 1 and 10 nm. For example, the membrane has a pore size of 7 nm.Preferably, the continuous flow has a silicon content of at least 60 mg.L-1, more preferably of 100 mg.L-1and even more preferably of 150 mg.L-1Apparently, the present invention has also the advantageous effect of being more efficient with higher silicon concentration because more colloidal silicon is present and thus facilitates the filtration. Without willing to be bound by any theory, this technology assures a rejection rate of 100% of colloidal and suspended matter bigger than the membrane pore size.Preferably, the continuous flow 11 of said solution is fed into the ultrafiltration device at a flow rate comprised between 5 and 50 m3.h-1, preferably between 15 and 30 m3.h-1, permitting to renew between 1 and 10 times per hour the acid volume present in recirculation tank, preferably 4 times per hour.Preferably, the purified exiting flow is comprised between 50 and 95%, more preferably between 65 and 85%, of the flow of said solution being fed into an ultrafiltration device.Preferably, the ultrafiltration system is backwashed to clean the membrane. For example, the ultrafiltration system is backwashed every 8 minutes by a flow of tap water 24 and the tap water flow used to clean the membrane 23 exits said ultrafiltration device.It is also possible that the ultrafiltration device is composed of several cross-flow ultrafiltration devices. For example, the ultrafiltration device is composed of two cross-flow ultrafiltration devices.Preferably, the unfiltered flow, i.e. concentrated in silicon, exiting the ultrafiltration system (2) is treated. Preferably, this treatment can be done in a decanter or a hydrocyclone. After this treatment, the purified flow, i.e. having the lowest silicon concentration, can be fed back to the recirculation tank 3 or the ultrafiltration device 2. Preferably, the flow having the highest silicon concentration exiting the treatment device can be sent to an acid regeneration plant or to wastewater treatment 4.The invention also relates to an equipment comprising a pickling bath 1, a system continuously dipping steel sheets in said pickling bath and a treatment unit including a recirculation tank 3, at least an ultrafiltration device 2, pipes connecting said recirculation tank and tap water input 24 and backwashing solution output 23 and pumps, said treatment unit including no storage tank and the eventual treatment 4 for the unfiltered flow 22.ExamplesExample 1The recirculation tank 3 contains 60 m3of hydrochloric acid at 15% having a silicon content of roughly 59 mg.L-1. The acid pickles different steel grades, e.g.: interstitial steel, medium carbon, HSLA and dual phase steels. The used pickling acid is sent by pumps to the ultrafiltration device at a flow of 17 m3.h-1. The ultrafiltration device 2 is made of 68 m2of ceramic membrane area having a pore size of 7 nm (10 kDa Molecular Weight). A flow of 14 m3.h-1of filtered flow containing 38 mg.L-1of silicon is fed back inside the bath while a flow of 3 m3.h-1of unfiltered flow containing 157 mg.L-1.Flow rate [m 3 .h -1 ] Si concentration [mg.L -1 ] Colloidal and suspended matter > 7 nm Entering flow 17 59 100 Filtered flow 14 38 0 Unfiltered flow 3 157 100
Claims
Claims 1. A method for pickling steel sheets (8), wherein the sheets are continuously immersed in a pickling bath (1) containing a pickling solution (10), and said bath is fed to a treatment unit comprising a recirculation tank (3), a rotating means (12) and (13), a continuous inlet flow (11) of said solution is sent from said recirculation tank (3) into said ultrafiltration means (2) and two flows exit the ultrafiltration means, one outlet being the filtered flow (21) which is then sent into said recirculation tank (3) and one being the unfiltered flow (22), said ultrafiltration means (2) being a cross-flow ultrafiltration means and said treatment unit having no holding tank.
2. The method according to claim 1, wherein said acid washing solution (10) is made from one or a combination of several acids.
3. The method according to claims 1 or 2, wherein said acid washing solution (10) is not heat treated before being sent to said ultrafiltration means (2).
4. The method according to any one of claims 1 to 3, wherein no additives or means are used to increase the degree of polymerization of said solution (11) sent through said ultrafiltration (2).
5. The method according to any one of claims 1 to 4, wherein said ultrafiltration device (2) comprises one or more membranes.
6. The method according to any one of claims 1 to 5, wherein said membrane in the ultrafiltration device (2) is made of ceramic.
7. The method according to any one of claims 1 to 6, wherein said membrane in the ultrafiltration device (2) has a pore size between 1 and 10 nm.
8. A method according to any one of claims 1 to 7, wherein a continuous flow (11) of said solution is sent to an ultrafiltration device (2) at a flow rate of between 5 and 50 m3.h-1, which is capable of renewing between 1 and 10 times per hour the volume of acid present in the recycle tank.
9. A method according to any one of claims 1 to 8, wherein a purified effluent stream (21) comprises between 50 and 95% of said solution stream (11) which is sent to an ultrafiltration device.
10. The method as recited in claims 1 to 9, wherein said continuous stream (11) has a silica content of at least 60 mg.L-1.
11. The method as recited in claims 1 to 10, wherein the ultrafiltration device (2) comprises a plurality of cross-flow ultrafiltration devices.
12. The method of claim 1 to 11, wherein the ultrafiltration system (2) is backwashed to clean the membrane.
13. The method of claim 1 to 12, wherein the unfiltered stream is treated with a silicon concentration that exits the ultrafiltration system (2).
14. Equipment comprising: an acid pickling bath (1), a system that continuously immerses steel sheets in said bath, and a treatment unit comprising a recirculation tank (3), at least one ultrafiltration device (2), piping connecting said recirculation tank and a municipal water inlet (24) and a backwash solution outlet (23) and pumps, said ultrafiltration device (2) being a cross-flow ultrafiltration device, said treatment unit not comprising a holding tank and final treatment (4) of the unfiltered stream (22).