EP4139521A1 - Procédé et appareil pour oxydation de liqueur blanche - Google Patents

Procédé et appareil pour oxydation de liqueur blanche

Info

Publication number
EP4139521A1
EP4139521A1 EP21713381.8A EP21713381A EP4139521A1 EP 4139521 A1 EP4139521 A1 EP 4139521A1 EP 21713381 A EP21713381 A EP 21713381A EP 4139521 A1 EP4139521 A1 EP 4139521A1
Authority
EP
European Patent Office
Prior art keywords
white liquor
oxygen
reactor
nanobubbles
oxidation
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
EP21713381.8A
Other languages
German (de)
English (en)
Other versions
EP4139521B1 (fr
Inventor
Bernhard Thaller
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Messer Austria GmbH
Original Assignee
Messer Austria GmbH
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Messer Austria GmbH filed Critical Messer Austria GmbH
Publication of EP4139521A1 publication Critical patent/EP4139521A1/fr
Application granted granted Critical
Publication of EP4139521B1 publication Critical patent/EP4139521B1/fr
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21CPRODUCTION OF CELLULOSE BY REMOVING NON-CELLULOSE SUBSTANCES FROM CELLULOSE-CONTAINING MATERIALS; REGENERATION OF PULPING LIQUORS; APPARATUS THEREFOR
    • D21C11/00Regeneration of pulp liquors or effluent waste waters
    • D21C11/0057Oxidation of liquors, e.g. in order to reduce the losses of sulfur compounds, followed by evaporation or combustion if the liquor in question is a black liquor
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21CPRODUCTION OF CELLULOSE BY REMOVING NON-CELLULOSE SUBSTANCES FROM CELLULOSE-CONTAINING MATERIALS; REGENERATION OF PULPING LIQUORS; APPARATUS THEREFOR
    • D21C3/00Pulping cellulose-containing materials
    • D21C3/22Other features of pulping processes
    • D21C3/222Use of compounds accelerating the pulping processes
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21CPRODUCTION OF CELLULOSE BY REMOVING NON-CELLULOSE SUBSTANCES FROM CELLULOSE-CONTAINING MATERIALS; REGENERATION OF PULPING LIQUORS; APPARATUS THEREFOR
    • D21C3/00Pulping cellulose-containing materials
    • D21C3/02Pulping cellulose-containing materials with inorganic bases or alkaline reacting compounds, e.g. sulfate processes
    • D21C3/026Pulping cellulose-containing materials with inorganic bases or alkaline reacting compounds, e.g. sulfate processes in presence of O2, e.g. air
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21CPRODUCTION OF CELLULOSE BY REMOVING NON-CELLULOSE SUBSTANCES FROM CELLULOSE-CONTAINING MATERIALS; REGENERATION OF PULPING LIQUORS; APPARATUS THEREFOR
    • D21C9/00After-treatment of cellulose pulp, e.g. of wood pulp, or cotton linters ; Treatment of dilute or dewatered pulp or process improvement taking place after obtaining the raw cellulosic material and not provided for elsewhere
    • D21C9/10Bleaching ; Apparatus therefor
    • D21C9/147Bleaching ; Apparatus therefor with oxygen or its allotropic modifications

Definitions

  • the invention relates to a method for the oxidation of white liquor, in which white liquor is brought into contact with oxygen in a reactor and sulfur compounds in the white liquor are oxidized as a result.
  • the invention also relates to a corresponding device.
  • White liquor is the digestion medium in sulphate pulp boiling. Essentially, it is an aqueous solution of NaOH and Na2S. It is used in the kraft pulp process as cooking liquor for the digestion of wood. The cooking liquor used up during digestion, known as black liquor, is then concentrated and burned. The melt of inorganic chemicals that accumulates as a residue during incineration is dissolved with the formation of so-called green liquor, which essentially consists of sodium carbonate and sodium sulfide. The sodium carbonate is then converted into sodium hydroxide by causticizing and in this way white liquor is produced again.
  • white liquor can be used to adjust the pH of alkaline processes such as alkaline oxygen delignification, alkaline extraction or peroxide bleaching. This is particularly advantageous insofar as these bleaching stages are often incorporated into the liquor recovery process. If you were to use pure sodium hydroxide solution instead of the white liquor, the constant addition of Na to the circuit would change the Na / S ratio in the white liquor.
  • the sulfide in the white liquor causes undesirable side reactions in alkaline delignification and bleaching stages. It disrupts the process of oxygen delignification, reduces the effectiveness of bleaching agents and increases the breakdown of cellulose during bleaching. If you want to use white liquor in these process steps, this sulphide must be oxidized: (a) For oxygen delignification at least to thiosulfate ("partially oxidized white liquor”)
  • the first reaction step (a) to thiosulfate takes place very quickly, while the second reaction step (b) to sulfate requires significantly more time. These process steps are very often also carried out in two separate reactors.
  • Air, oxygen-enriched air or pure oxygen can be used as the oxidizing agent for the white liquor oxidation.
  • a gas input that is as uniform as possible and a rapid dissolution of the gas is of great importance for this process.
  • WO 00/44978 A1 describes a method in which white liquor, which mainly contains sodium sulfide, sodium hydroxide and water, is first brought into contact with an oxygen-containing gas to oxidize sodium sulfide to sodium thiosulfate. The white liquor is then brought into contact with hydrogen peroxide to oxidize sodium thiosulfate to sodium sulfate.
  • US 5500085 B1 A describes a two-stage process for oxidizing white liquor in a Kraft process.
  • sulfide is removed from the white liquor by means of oxygen and, in a second step, a substantial part of the sulfur compounds still contained in the white liquor are converted into sulfates.
  • the resulting white liquor is used as an alkali source for various processes in the further pulp production process.
  • WO 2013/78885 A1 itself proposes a method for white liquor oxidation in which a partial flow of white liquor is withdrawn from a flow passed through a line, intensively mixed with oxygen in a mixer and then fed back into the main flow of white liquor. This is intended to achieve an intensive mixing of white liquor and oxygen and to cause rapid oxidation of the sulphides.
  • the intense mixture causes the oxygen to take shape small bubbles are present and to the extent that there is a large surface-to-volume ratio, which favors the reaction of the sulfur compounds in the white liquor.
  • the oxygen bubbles tend to coagulate and, due to their buoyancy, quickly reach the surface, which significantly reduces the efficiency of the process. This applies in particular to the rather slow sulfate-forming reactions.
  • the invention is therefore based on the object of specifying a method and a device for white liquor oxidation, in which the efficiency of the reaction between the supplied oxygen and the sulfur compounds contained in the white liquor is improved compared to processes according to the prior art and in particular also for the The comparatively slow formation of sulfates ensures an efficient oxygen supply.
  • the oxygen required for the oxidation of the white liquor is at least partially introduced in the form of nanobubbles.
  • the nanobubbles are generated either directly in a reactor in which oxidation of the white liquor takes place, or indirectly, by introducing oxygen into a line that conveys water or an aqueous fluid directly or indirectly into such a reactor.
  • the oxygen is therefore present at least partially in the form of nanobubbles in the white liquor at least within the reactor.
  • Nanobubbles Gas bubbles with a diameter between 20 nm and 1 gm should be understood here as “nanobubbles” or “nanobubbles”.
  • the term “nanobubble” is used in particular to differentiate between larger bubbles with a diameter between 1 ⁇ m and 100 ⁇ m, which in the context of the present invention are referred to as “microbubbles” or “microbubbles”.
  • microbubbles Various studies have shown that nanobubbles with a diameter of over 20 nm can remain stable in water over a long period of a few weeks or even longer. In contrast to microbubbles, they do not increase Water surface, since the upward movement caused by the - comparatively low - buoyancy force is disturbed and almost completely canceled by the Brownian molecular movement.
  • a size of the nanobubbles preferred in the context of the present invention is an average diameter between 20 nm and less than 1 miti, preferably an average diameter between 20 nm and 500 nm, particularly preferably between 20 nm and 200 nm.
  • the oxygen is introduced through a nozzle or a bubbling device with a section made of a porous material, such as sintered ceramic, the pore diameter of which is so large that stable nanobubbles of the desired size arise in the fluid.
  • a porous material such as sintered ceramic
  • the diameter of the pores of the porous material is also in the nano range, that is, less than 1 ⁇ m.
  • Nanobubbles are able to exchange substances with their environment. Depending on the saturation of this gas in a surrounding solution, a nanobubble loaded with a certain gas can release gas molecules into the solution or absorb it from it.
  • the nanobubbles are filled with oxygen or an oxygen-containing gas, such as air or air enriched with oxygen, and thus create a stable reservoir Oxygen.
  • the oxygen introduced in the form of nanobubbles has only a very slight tendency to coagulate to form larger gas bubbles and / or to rise to the surface.
  • Parameters such as pH value and salinity have an influence in particular on the minimum size of the nanobubbles from which the nanobubbles can be stable in the white liquor.
  • the type of feed system so that the average size of the bubbles generated during the feed and their stability in the White liquor prevailing conditions is taken into account. This can be done empirically, for example, by testing various feed systems before permanent start-up and determining their suitability for the respective chemical system.
  • the metering of oxygen in the form of nanobubbles can thus be used in the oxidation process of the white liquor both in the partial oxidation, in which the sulfide contained in the white liquor is oxidized to thiosulfate, as well as in the complete oxidation, in which the sulfur compounds contained in the white liquor be converted to sulfate with oxygen.
  • a two-stage oxidation takes place in two separate reactors connected one after the other and a partial flow of the white liquor, which is only partially oxidized in the first reactor, is withdrawn as an alkali source for oxygen delignification, however, it is advantageous to introduce oxygen in the form of nanobubbles in both reactors.
  • the supply of oxygen according to the invention in the form of oxygen-containing nanobubbles can also be used if only a single-stage process is carried out with only one reactor in which partial or complete oxidation of the white liquor is carried out.
  • the arrangement and operation of mechanical means, such as stirrers, rotors, etc. in connection with the supply of oxygen must be carried out in such a way that the stability of the nanobubbles is not impaired by mechanical effects such as strong shear forces or cavitations.
  • the white liquor treated with oxygen according to the invention is particularly advantageously suitable as an alkali source in the bleaching stages of a pulp bleaching, in particular in alkaline oxygen delignification and / or in peroxide bleaching. Due to the long service life of the nanobubbles, it is also conceivable that some of the oxygen supplied in the white liquor oxidation is still present in the bleaching stages in the form of nanobubbles and directly supports the respective bleaching reaction there.
  • a device for the oxidation of white liquor with the features of claim 5.
  • a device according to the invention is equipped with a reactor in which white liquor is brought into contact with oxygen and sulfur compounds in the white liquor are oxidized as a result, the reactor itself and / or a feed line connected to the reactor for the white liquor or for an aqueous to be fed to the reactor Fluid is assigned an entry device for the entry of oxygen in the form of nanobubbles.
  • the entry device is arranged on the reactor and / or the feed line in such a way that oxygen in the form of oxygen-containing nanobubbles can be fed directly into the fluid located in the reactor or the feed line.
  • the entry device is equipped with a nozzle or a bubbling system that has a section made of a porous material such as sintered metal or sintered ceramic, the pore diameter of which is so large that stable nanobubbles of the desired size arise in the fluid.
  • FIG.1 shows a flow chart for a White liquor oxidation, in which the treated white liquor is then fed to a bleaching process.
  • aqueous pulp suspension 2 which in addition to pulp also contains portions of lignin, passes through several successive stages, two of which are shown here, namely an alkaline oxygen deletion 3 and an oxygen-enhanced peroxide bleach 4. Further bleaching stages, such as an oxygen-enhanced one Extraction, may also be present, but are not shown here.
  • the pulp suspension 2 is treated with oxygen in one or more reactors at high temperatures in an alkaline environment. Substantial portions of the lignin still contained in the suspension are removed by reaction with oxygen.
  • oxygen delignification 3 can, however, either take place in a single reactor or - as is customary in today's bleaching processes - in several stages in several reactors connected in series.
  • the alkaline environment is achieved by feeding an alkali into the reactor or reactors, as explained in more detail below.
  • the suspension has an average consistency of, for example, 10% to 14% consistency.
  • Oxygen or an oxygen-containing gas is introduced into the reactor or reactors.
  • the treatment takes place at a pressure of, for example, 7 to 8 bar in the inlet and 4.5 to 5.5 bar in the outlet of the (single) reactor.
  • the treatment time is, for example, 50 to 60 minutes
  • the pressure and reaction time generally differ in the two reactors.
  • a pressure of 7 to, for example, is customary in the first stage 10 bar and 10 to 15 minutes retention time and in the second stage a pressure of 3 to 5 bar, with a retention time of approx. 1 hour.
  • a peroxide in particular hydrogen peroxide (H2O2)
  • H2O2 hydrogen peroxide
  • PO oxygen-enhanced peroxide bleach
  • the treatment takes place in a reactor, for example at atmospheric pressure and a temperature between 85 ° C and 90 ° C or under an elevated pressure at temperatures between 100 ° C and 110 ° C.
  • the peroxide bleach 4 is also carried out in an alkaline medium, which is produced by adding a lye, as will also be explained in more detail below.
  • the suspension 5 of bleached cellulose produced in the bleaching stages 3, 4 is then fed to further process steps which are not of interest here.
  • white liquor is used as the lye used to produce the alkaline medium in the bleaching stages 3, 4.
  • the white liquor which consists mainly of sodium sulfide and sodium hydroxide, is used in the Kraft process to break down cell walls and can then be recovered.
  • recovered white liquor 6 is fed to the bleaching stages 3, 4, but a partial flow of the white liquor intended for digestion can also be branched off and used in the manner described here.
  • the white liquor 6 is fed to a process for white liquor oxidation 7.
  • the sulfide becomes thiosulfate (“partially oxidized white liquor”) and / or sulfate by adding oxygen in the form of air, an oxygen-rich gas or pure oxygen (with a purity of 95% by volume or more) (“Completely oxidized white liquor”) implemented.
  • Partially oxidized white liquor is suitable for the bleaching process in the oxygen delignification 3, while fully oxidized white liquor can also be used for the peroxide bleach 4.
  • the white liquor 6 is first fed to a first reactor 8 in which the white liquor 6 is partially oxidized.
  • a partial flow of the partially oxidized white liquor formed in the process is fed to the oxygen delignification 3 via a feed line 9.
  • the remaining partial flow of the partially oxidized white liquor is fed to a second reactor 10, in which a complete oxidation of the white liquor takes place.
  • the completely oxidized white liquor is fed to the peroxide bleach 4 via a feed line 11.
  • the oxygen required for the oxidation of the white liquor can be fed directly or indirectly to the reactors 8, 10.
  • at least some of the oxygen is introduced in the form of nanobubbles, that is to say bubbles with an average diameter between 20 nm and 1000 nm.
  • various possibilities are shown by way of example for locations at which oxygen can be introduced in the form of nanobubbles.
  • oxygen in the form of nanobubbles can be introduced directly into the reactor 8 via an oxygen supply line 12 or by feeding in oxygen in the form of nanobubbles via an oxygen supply line 13 which is fed into a supply line 14 leading to the reactor 8 White liquor flows in.
  • the introduction of oxygen via the oxygen supply lines 12, 13 is also sufficient for the subsequent complete oxidation of the white liquor in the reactor 10.
  • additional oxygen is introduced in the form of nanobubbles, either directly via an oxygen supply line 15 into the reactor 10 or via an oxygen feed line 16 which opens into a feed line 17 leading to the reactor 10 for partially oxidized white liquor.
  • the oxygen in the form of nanobubbles can also be introduced into a feed for an aqueous medium, such as fresh water, which opens into the feed line 14, 17, although this is not shown here.
  • the nanobubbles are generated at the point where the oxygen feed lines 12, 13, 15, 16 meet in the respective fluid-carrying line 14, 17 or the respective reactor 8, 10 at suitable feed devices 18, 19, 20,
  • these are surrounded by at least one device that generates the nanobubbles, for example a nozzle or a bubbling system or a section thereof, by water or an aqueous fluid, so that the nanobubbles can form in the aqueous phase.
  • the nanobubbles are then carried along by the flow of the respective fluid and thus get into the respective reactor 8, 10 of the reaction.
  • the oxygen is by no means necessary for the oxygen to be introduced exclusively in the form of nanobubbles. Rather, it is also possible for the oxygen to be introduced in the form of nanobubbles in addition to other modes of introduction for the oxygen, such as are known, for example, from the prior art.
  • the method according to the invention and the device according to the invention it is possible to use the oxygen introduced into the white liquor in the course of the various oxidation reactions with a significantly higher efficiency than is the case with methods from the prior art.
  • the small size of the nano-bubbles enable an even distribution of the oxygen in the white liquor and represent a sustainably available oxygen reservoir for the comparatively slow oxidation of the sulfur compounds of the white liquor to sulfate.

Landscapes

  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Wood Science & Technology (AREA)
  • Chemical & Material Sciences (AREA)
  • Inorganic Chemistry (AREA)
  • Paper (AREA)

Abstract

Dans un procédé d'oxydation de liqueur blanche, en particulier de liqueur blanche utilisée dans un procédé de production de papier ou de cellulose, l'oxygène nécessaire à l'oxydation est fourni au réacteur ou aux réacteurs dans lesquels l'oxydation est réalisée au moins partiellement sous la forme de nanobulles contenant de l'oxygène. En raison de la durée de vie relativement longue des nanobulles, celles-ci fournissent très efficacement de l'oxygène également pour les réactions d'oxydation dans la liqueur blanche qui se déroulent à des vitesses différentes.
EP21713381.8A 2020-04-23 2021-03-17 Procédé et appareil pour oxydation de liqueur blanche Active EP4139521B1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102020002446.7A DE102020002446A1 (de) 2020-04-23 2020-04-23 Verfahren und Vorrichtung zur Weißlaugenoxidation
PCT/EP2021/056881 WO2021213741A1 (fr) 2020-04-23 2021-03-17 Procédé et appareil pour oxydation de liqueur blanche

Publications (2)

Publication Number Publication Date
EP4139521A1 true EP4139521A1 (fr) 2023-03-01
EP4139521B1 EP4139521B1 (fr) 2025-09-03

Family

ID=75111606

Family Applications (1)

Application Number Title Priority Date Filing Date
EP21713381.8A Active EP4139521B1 (fr) 2020-04-23 2021-03-17 Procédé et appareil pour oxydation de liqueur blanche

Country Status (7)

Country Link
US (1) US12410557B2 (fr)
EP (1) EP4139521B1 (fr)
CO (1) CO2022016642A2 (fr)
DE (1) DE102020002446A1 (fr)
ES (1) ES3054554T3 (fr)
PL (1) PL4139521T3 (fr)
WO (1) WO2021213741A1 (fr)

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102020002445A1 (de) 2020-04-23 2021-10-28 Messer Austria Gmbh Verfahren und Vorrichtung zur Herstellung von gebleichtem Zellstoff
EP4428297A1 (fr) * 2023-03-06 2024-09-11 L'air Liquide, Societe Anonyme Pour L'etude Et L'exploitation Des Procedes Georges Claude Procédé pour obtenir une liqueur blanche entièrement oxydée pour une utilisation dans la ligne de fibres d'un procédé de pâte kraft
FI20236113A1 (en) * 2023-10-06 2025-04-07 Upm Kymmene Corp Method and arrangement for oxidation of white liquor

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Also Published As

Publication number Publication date
US12410557B2 (en) 2025-09-09
EP4139521B1 (fr) 2025-09-03
PL4139521T3 (pl) 2026-02-16
WO2021213741A1 (fr) 2021-10-28
BR112022021296A2 (pt) 2022-12-27
CO2022016642A2 (es) 2023-02-16
US20230313456A1 (en) 2023-10-05
DE102020002446A1 (de) 2021-10-28
ES3054554T3 (en) 2026-02-04

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