Method for reducing the amount of bacterial endospores in aqueous textile suspensions - Patent Application 20070122997

By adjusting pH and ORP and using performic acid, the method effectively reduces bacterial endospores in recycled fiber suspensions, overcoming the limitations of conventional treatments and enabling their use in hygienic paper and food packaging paperboard production.

JP7822378B2Active Publication Date: 2026-03-02KEMIRA OY
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Patent Information

Application Number
JP2023532782
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-11-30
Filing Date
2021-11-29
Publication Date
2026-03-02
Estimated Expiration
2041-11-29

AI Technical Summary

Technical Problem

Existing methods are ineffective in reducing high levels of bacterial endospores in aqueous textile suspensions from recycled cellulosic fibers, which limits their use in paper and paperboard products intended for hygiene or food packaging, due to the resilience of endospores to conventional treatments.

Method used

Adjusting the pH to 6.5 or less and the oxidation-reduction potential (ORP) to 200 mV or greater, followed by the introduction of performic acid, to effectively reduce endospore loads in fiber suspensions from recycled cellulosic fibers.

Benefits of technology

This method significantly reduces endospore loads by 2 to 4 logarithmic units, enabling the use of treated fiber suspensions for producing hygienic paper and food packaging paperboard.

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Abstract

The present invention relates to a method for reducing bacterial endospores in an aqueous fiber suspension containing recycled cellulosic fibers, the fiber suspension preferably having an original endospore load of 10,000 CFU / ml or more. The method includes adjusting the pH of the fiber suspension to a pH value of 6.5 or less, adjusting the oxidation-reduction potential (ORP) of the fiber suspension to an ORP value of 200 mV or more using a first oxidizing agent, and introducing an amount of performic acid as a second oxidizing agent into the fiber suspension to reduce the bacterial endospores to an endospore load of 1,000 CFU / ml or less.
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Description

[Technical Field]

[0001] The present invention relates to a method for reducing or lowering the amount of bacterial endospores in an aqueous textile suspension according to the preamble of the attached independent claim. [Background technology]

[0002] Bacterial cells are commonly present in the aqueous environment of paper, board, and tissue mills. Bacterial growth in processes is generally monitored and limited by various means, such as the use of biocides in the process. However, certain bacterial cells form endospores that are highly resistant to typical bacterial destruction methods, such as heat, disinfectants, chemical biocides, drying, ultraviolet light, and ionizing radiation. Bacterial endospores can remain viable in a dormant state for long periods of time, even years, until external conditions become favorable, at which point they undergo transformation, i.e., germination.

[0003] Recycled textile materials typically contain large amounts of bacteria and bacterial endospores. Textile materials collected from consumer and industrial sources for recycling often contain contaminants such as food or oil residues, which provide a good growth medium for bacteria. Even relatively clean-appearing recycled textile materials, such as collected office waste paper, typically contain large amounts of endospores because endospore loads are not actively monitored in the production of non-hygienic / non-food packaging paper or paperboard grades. Furthermore, collected textile materials are often packaged and stored under dirty, humid, and / or warm conditions, which increases the risk of widespread bacterial growth. As a result, textile suspensions produced from recycled textile materials typically contain large amounts of bacterial contaminants in the form of bacteria and bacterial endospores.

[0004] High bacterial contamination of fiber suspensions produced from recycled fiber materials can cause problems in the paper and paperboard manufacturing process itself or limit the use of the resulting paper or paperboard. For example, when paper or paperboard products are intended for hygiene purposes or for packaging food or beverages, the allowable amount of bacterial endospores in the final paper and paperboard products is strictly limited to avoid possible contamination of the packaged materials. Due to these limitations, recycled fiber materials have not been used substantially in paper and paperboard products intended for food and beverage packaging. Meanwhile, due to the ever-increasing demand for sustainability in all industrial production, there is growing interest in increasing and / or expanding the use of recycled fibers in the production of all paper and paperboard grades. As a result, there is a need for an effective method for reducing the amount of bacterial endospores in aqueous fiber suspensions containing recycled cellulosic fibers. Summary of the Invention [Problem to be solved by the invention]

[0005] It is an object of the present invention to minimize or possibly even eliminate the drawbacks present in the prior art.

[0006] Another object of the present invention is to provide an effective method for reducing or lowering the amount of bacterial endospores in aqueous fiber slurries containing recycled cellulosic fibers.

[0007] These objects are achieved according to the invention by the features presented below in the characterizing parts of the independent claims.

[0008] Some preferred embodiments of the invention are set out in the dependent claims. [Means for solving the problem]

[0009] In an exemplary method according to the present invention for reducing or lowering the amount of bacterial endospores in an aqueous textile suspension containing recycled cellulosic fibers, preferably having an original endospore load of 10,000 CFU / ml or more, the method comprises:

[0010] (a) adjusting the pH of the fiber suspension to a pH value of 6.5 or less;

[0011] (b) adjusting the oxidation-reduction potential (ORP) of the fiber suspension to an ORP value of 200 mV or greater using a first oxidizing agent; and

[0012] (c) introducing an amount of performic acid as a second oxidizing agent into the fiber suspension to reduce or lower the bacterial endospores to an endospore load of 1000 CFU / ml or less. DETAILED DESCRIPTION OF THE INVENTION

[0013] We have now surprisingly found that first adjusting the pH and oxidation-reduction potential (ORP) of a fiber suspension to specific values ​​(pH ≤ 6.5 and ORP ≥ 200 mV) and then treating the fiber suspension with performic acid can effectively reduce high bacterial endospore loads in fiber suspensions containing recycled cellulosic fibers. Introducing performic acid as a second oxidant into a fiber suspension after adjusting the ORP value of the suspension using a first oxidant in an appropriate pH range can effectively utilize the endospore-destroying ability of performic acid, significantly reducing the excessive endospore load in the suspension with a reasonable amount of performic acid consumption. It has been observed that this method can easily reduce the amount of bacterial endospores in a fiber suspension by 2 to 4 logarithmic units, and in some cases even further. The combination of adjusting the pH and ORP values ​​and introducing performic acid resulted in unexpected improvements in endospore control in fiber suspensions containing recycled fibers and high amounts of bacterial endospores. The reduction in bacterial endospore load makes it possible to use the treated fiber suspensions containing recycled cellulosic fibers even for producing paper and paperboard grades intended for hygiene purposes and / or for packaging food or beverages.

[0014] In the present context, the term "oxidation-reduction potential", abbreviated as ORP, refers to the oxidation or reduction potential of an aqueous fiber suspension. The ORP value of an aqueous fiber suspension can be determined by using a chemically inert electrode immersed in the suspension and measuring its potential compared to a reference electrode. Several commercially available sensors are available for measuring ORP values.

[0015] In the present context, the term "bacterial endospore" refers to a dormant, non-reproductive structure formed by bacteria. Bacterial endospores contain the bacterial DNA and a portion of its cytoplasm encased in a protective outer covering. Under favorable conditions, bacterial endospores can germinate to a metabolically active, i.e., vegetative, state. According to one embodiment of the present invention, the method is used to reduce the amount of bacterial endospores, e.g., from the genera Bacillus, Brevibacillus, and / or Paenibacillus, which are known to thrive under process conditions in paper, paperboard, and tissue machines. These bacterial genera can produce heat-resistant endospores that can withstand the heat of the dryer section used in processes for producing cellulosic fibrous webs, such as paper, paperboard, and tissue.

[0016] In this context, all bacterial endospore values ​​CFU / ml are given for a fiber suspension with a fiber concentration of 4% by weight as dry fiber. The bacterial endospore values ​​are determined from fiber suspensions with a fiber concentration of 4% by weight, and if determined from another concentration, the bacterial endospore values ​​are calculated to correspond to the endospore value for a fiber concentration of 4% by weight.

[0017] The fiber suspension comprises a liquid phase, typically water, and a solid phase containing at least recycled cellulosic fibers suspended in the liquid phase and optionally inorganic particles. The initial aqueous fiber suspension subjected to bacterial endospore reduction treatment in the method of the present invention comprises recycled cellulosic fibers and has an initial bacterial endospore load of at least 1,000 CFU / ml, typically at least 5,000 CFU / ml, and more typically at least 10,000 CFU / ml. The fiber suspension comprises an aqueous liquid phase and a solid phase containing recycled fibers. The recycled cellulosic fibers in the fiber suspension may be bleached recycled fibers, unbleached recycled fibers, or a mixture of bleached and unbleached recycled fibers. The recycled cellulosic fibers in the fiber suspension are non-synthetic natural fibers initially obtained by any mechanical or chemical pulping process, or any combination of mechanical and chemical pulping processes. The recycled cellulosic fibers may be wood and / or non-wood fibers, preferably wood fibers, e.g., hardwood, softwood, or a combination thereof. The recycled fibers can be derived from any available recycled industrial and / or post-consumer textile material. They can be derived, for example, from old corrugated containers (OCC), office waste paper, mixed office waste paper, sorted office waste paper, or any mixture thereof. They can be derived, for example, from recycled pre-consumer textile materials and / or recycled post-consumer textile materials. Recycled fibers can also be secondary fibers from the broke manufacturing process of paper, paperboard, tissue, etc. The amount of recycled cellulosic fibers in the processed fiber suspension is at least 60% by weight, preferably at least 80% by weight, more preferably at least 90% by weight or at least 95% by weight, calculated from the total dry fiber weight of the suspension. According to one embodiment, the cellulosic fibers in the fiber suspension consist of recycled cellulosic fibers.

[0018] The aqueous fiber suspension may have an initial bacterial endospore load of at least 5,000 CFU / ml, typically at least 10,000 CFU / ml, more typically at least 15,000 CFU / ml, and even more typically at least 20,000 CFU / ml. The initial endospore load of a fiber suspension comprising recycled cellulosic fibers may be in the range of 1,000 to 500,000 CFU / ml, more typically 10,000 to 500,000 CFU / ml, or 15,000 to 400,000 CFU / ml, and even more typically 20,000 to 350,000 CFU / ml.

[0019] The aqueous fiber suspension typically has a negative initial oxidation reduction (ORP) value, for example, in the range of -500mV to -50mV, more typically -400mV to -100mV, and even more typically -300mV to -200mV.

[0020] According to one embodiment of the present invention, the fiber suspension may contain inorganic particles, such as particles of calcium carbonate, kaolin, talc, gypsum, etc. The inorganic particles typically originate from internal fillers, inorganic coatings, labels, stickers, etc., present in the fiber material collected for recycling. The amount of inorganic particles as ash in post-consumer recycled cellulosic fiber material may be in the range of 5 to 30% by weight, typically 5 to 25% by weight, or 10 to 20% by weight. Complete removal of inorganic particles from recycled cellulosic fiber material during repulping of the fiber material is typically difficult and / or uneconomical, which typically means that at least some inorganic particles will follow the recycled cellulosic fiber material into the fiber suspension.

[0021] The fiber suspension will typically contain at least some dissolved carbonate ions.

[0022] The fiber concentration of the fiber suspension upon adjustment of the pH and / or ORP and / or introduction of performic acid may be at least 1% by weight, preferably at least 3% by weight, calculated as dry fiber. According to one embodiment of the invention, the fiber concentration of the fiber suspension may be 1 to 30% by weight, preferably 3 to 20% by weight, more preferably 4 to 10% by weight, calculated as dry fiber. According to another embodiment of the invention, the fiber concentration of the fiber suspension may be 1 to 15% by weight, preferably 2 to 10% by weight, more preferably 2 to 5% by weight, calculated as dry fiber.

[0023] The adjustment of pH and ORP value, and optionally the introduction of performic acid, may be carried out in or after the pulper, or during or after the pulping step, in which the recycled fiber material is disintegrated and diluted with water to a fiber concentration of typically 1 to 5% by weight, preferably 1 to 3% by weight. Alternatively, the adjustment of pH and ORP value, and optionally the introduction of performic acid, may be carried out for a process step or process equipment in which the fiber concentration of the fiber suspension is relatively high, for example, 8 to 30% by weight, preferably 15 to 25% by weight. The adjustment of pH and ORP value can be carried out at the same fiber concentration as the introduction of performic acid, or at a different fiber concentration; i.e., the fiber suspension can be concentrated or diluted between different steps of the method, particularly between steps (b) and (c).

[0024] Typically, the fiber suspension formed in the pulper / pulping step contains hydrophobic contaminants, such as plastic, tape, and / or glue residues, among others. These contaminants, as well as other impurities, such as large particles, are removed in one or more screening steps following the pulper / pulping step, where contaminants and / or impurities having a size greater than 200 micrometers are typically removed. According to one embodiment of the present invention, adjustment of the pH and ORP value, and optionally the introduction of performic acid, may be performed after the screening step, e.g., to optimize chemical consumption. For example, at least the adjustment of the pH and ORP value, and preferably also the introduction of performic acid, may be performed in a separate mixing tank located after the screening step and possibly before a heat disperger or the like.

[0025] Fiber suspensions are often subjected to fiber fractionation, in which the fibers are separated according to their length into at least long and short fiber fractions. According to one embodiment of the present invention, adjustment of the pH and ORP value, and optionally the introduction of performic acid, may be performed after the fractionation step. For example, adjustment of at least the pH and ORP value, and preferably also the introduction of performic acid, may be performed on at least one, preferably every, fiber fraction obtained from the fiber fractionation and used to make the fiber stock.

[0026] According to one embodiment of the present invention, the pH of the fiber suspension is adjusted to a pH value of 6.5 or less, preferably by introducing an acidifying agent into the fiber suspension. The pH of the fiber suspension can be adjusted within a pH range of 4 to 6.5, preferably 4.5 to 6.5, more preferably 5 to 6.5, and even more preferably 5.5 to 6.3. The acidifying agent may be any compound suitable for adjusting the pH value of the pulp suspension to the desired level, such as polyaluminum chloride, alum, etc. The acidifying agent may be an organic acid, such as citric acid or formic acid, or an inorganic acid, such as hydrochloric acid or sulfuric acid, or a mixture of organic and / or inorganic acids. The acidifying agent may be an acidifying gas, such as carbon dioxide gas. If the acidifying agent is an acid in liquid form, it is added to the fiber suspension; if the acidifying agent is in gaseous form, such as carbon dioxide gas, it is introduced into the fiber suspension. The acidifying agent is preferably introduced or added to the fiber suspension in an amount that adjusts the pH of the fiber suspension to the desired pH value without causing a significant increase in the conductivity of the fiber suspension. Effective mixing when the acidifying agent is added to the fiber suspension is advantageous.

[0027] Preferably, the pH of the fiber suspension is adjusted to a pH value that is not excessively acidic, for example, a pH value of 4 or higher, preferably 4.5 or higher, and more preferably 5 or higher. An excessively acidic pH can lead to at least partial dissolution of various components, such as inorganic particles present in the fiber suspension, which can result in increased conductivity and subsequent problems during the fiber web manufacturing process. In particular, when the fiber suspension contains inorganic particles such as calcium carbonate particles, the pH of the suspension is preferably adjusted to a pH within the range of 5 to 6.5, more preferably 5.5 to 6.5, and even more preferably 6 to 6.5. The acidifying agent can be selected based on the characteristics of the fiber suspension to be treated, in particular its buffering capacity. For example, a fiber suspension with a high buffering capacity, such as a fiber suspension containing recycled fibers derived from sorted office waste and having a high calcium carbonate particle content, can be treated with an acidifying agent selected from the above-mentioned organic or inorganic acids or mixtures thereof to economically consume the acidifying agent and avoid large pH changes that could result in undesirable changes in the conductivity of the fiber suspension.

[0028] According to a preferred embodiment, the conductivity of the fiber suspension does not change significantly during the reduction of bacterial endospores in the fiber suspension by the present method. This means that the fiber suspension typically has an initial conductivity value in the range of 2 to 10 mS / cm, preferably 2 to 7 mS / cm, measured before the adjustment of the pH and ORP values ​​and the introduction of performic acid, and a final conductivity value in the range of 2 to 10 mS / cm, preferably 3 to 7 mS / cm, measured after the adjustment of the pH and ORP values ​​and the addition of performic acid. The conductivity of the fiber suspension after the adjustment of the pH and ORP values ​​and the addition of performic acid preferably remains at a level that allows for the effective performance of sizing and retention chemicals later in the process of making the final fiber web.

[0029] The oxidation-reduction potential (ORP) of the fiber suspension is adjusted to an ORP value of 200 mV or greater using a first oxidizing agent added or introduced into the fiber suspension. Preferably, the ORP value of the fiber suspension may be adjusted to an ORP value of 250 mV or greater, more preferably 300 mV or greater. It has been observed that adjusting the ORP value of the fiber suspension to a level of 200 mV or greater allows performic acid to effectively eliminate and destroy bacterial endospores present in the fiber suspension. According to one embodiment, the ORP value of the fiber suspension may be adjusted to a range of +100 mV to +500 mV, preferably +200 mV to +400 mV, more preferably +300 mV to +400 mV.

[0030] The first oxidizing agent for adjusting the ORP value is different from performic acid, i.e., the first oxidizing agent is not performic acid. Preferably, the first oxidizing agent used does not include performic acid. An organic peracid other than performic acid can be used as the first oxidizing agent for adjusting the ORP value. However, preferably, the first oxidizing agent can be hydrogen peroxide, HO, or a percarbonate, preferably sodium percarbonate. Hydrogen peroxide and percarbonate are readily available on an industrial scale and can effectively adjust the ORP value of the fiber suspension to a desired level. The first oxidizing agent can be considered a sacrificial treatment agent, thereby keeping performic acid consumption as low as possible. The use of the first oxidizing agent provides an effective means for adjusting the ORP value to a level at which the full potential of performic acid can be realized.

[0031] The first oxidizing agent may be introduced into the fiber suspension containing recycled cellulosic fibers in an amount that results in a desired ORP value for the fiber suspension. According to one embodiment of the present invention, the first oxidizing agent may be introduced into the fiber suspension in an amount of 300 to 1000 ppm, preferably 400 to 800 ppm, and preferably 500 to 700 ppm, in grams of active agent per ton of fiber suspension.

[0032] The addition of the first oxidizing agent to the fiber suspension does not have a bleaching effect on the fiber suspension. This means that the ISO whiteness of the fiber suspension does not change significantly after the addition of the first oxidizing agent. Generally, the change in ISO whiteness of the fiber suspension, if any, is less than 5 ISO%, preferably less than 3 ISO%, and more preferably less than 1 ISO%, measured using standard ISO 2470-1:2016.

[0033] According to the present invention, performic acid as a second oxidizing agent is introduced into the fiber suspension in an amount that reduces the bacterial endospore load to 1000 CFU / ml or less, preferably 500 CFU / ml or less, more preferably 250 CFU / ml or less, even more preferably 150 CFU / ml or less, and sometimes 100 CFU / ml or less for the treated fiber suspension. According to one embodiment of the present invention, performic acid can be introduced into the fiber suspension in an amount that reduces the bacterial endospore load to 50 CFU / ml or less, even 30 CFU / ml or less, or even 10 CFU / ml or less. Performic acid can be introduced into the fiber suspension in an amount of 50 to 500 ppm, preferably 100 to 400 ppm, and preferably 200 to 300 ppm, expressed as grams of active agent per ton of fiber suspension. The bacterial endospore load can be determined using conventional techniques known to those skilled in the art.

[0034] Performic acid (CHO) is introduced into the fiber suspension as an aqueous solution. The performic acid can be prepared by mixing an aqueous hydrogen peroxide solution with an aqueous formic acid solution and, optionally, a catalyst, such as sulfuric acid. Preferably, the aqueous performic acid solution is used as an equilibrium solution containing performic acid, formic acid, water, hydrogen peroxide, and, optionally, a catalyst. The performic acid solution typically has a concentration of at least 10% performic acid calculated as weight to volume, typically about 13.5% or about 14% performic acid calculated as weight to volume.

[0035] Preferably, performic acid can interact with bacterial endospores in the fiber suspension at a high fiber suspension temperature. According to one embodiment, the fiber suspension temperature can be 50°C or higher, preferably 60°C or higher, or sometimes 70°C or higher. The fiber suspension temperature can be preferably less than 100°C, more preferably less than 85°C, and even more preferably less than 75°C. In particular, when the pH of the fiber suspension is adjusted within the range of 5.5 to 6.5, a fiber suspension temperature of 30 to 120°C, preferably 30 to 99°C, more preferably 50 to 80°C, and even more preferably 60 to 80°C is advantageous when performic acid is introduced into the fiber suspension and / or when performic acid interacts with bacterial endospores. It has been observed that in this way, maximum endospore destruction effects can be achieved. Without wishing to be bound by any theory, it is believed that when performic acid is introduced into the fiber suspension, high temperatures can further sensitize bacterial endospores, making them more susceptible to the destructive action. Advantageously, effective endospore reduction or destruction can already be obtained at fiber suspension temperatures below 100° C. Thus, expensive and complex process equipment such as pressurized hot steam treatment tanks can be avoided.

[0036] The temperature of the fiber suspension may be increased to the desired value by heating the fiber suspension to the desired temperature in a separate process step. For example, the fiber suspension may be transferred to a separate tank located after the pulper, preferably after the screening step. In the separate tank, the fiber suspension may be heated to the desired temperature. Alternatively, the pH adjustment, ORP value adjustment, and / or at least the introduction of performic acid may be performed in a process stage where the temperature of the fiber suspension is at the desired level. An example of a process step, possibly in an RCF mill, may be, for example, the dispersion of the recycled fiber suspension in a thermal disperger. Thermal dispergers are commercially available and are conventionally used in recycled fiber pulping processes for the breakup of stickies and homogenization of soils. The temperature of the fiber suspension may be adjusted to the desired level shortly after or immediately after the introduction of performic acid into the fiber suspension. For example, the introduction of performic acid may be performed immediately before the fiber suspension is pre-dewatered, heated, and dispersed in the thermal disperger. For example, performic acid may be introduced into the fiber suspension at the same time as the fiber suspension is heated to the desired temperature in the thermal disperger. The concentration of the fiber suspension at the inlet of the thermal disperger may be 20-40% by weight calculated as dry fiber, and the temperature of the fiber suspension in the disperger may be 60-120°C.

[0037] Preferably, the temperature of the fiber suspension is adjusted to the above-mentioned elevated temperature before the performic acid is introduced into the fiber suspension.

[0038] The adjustment of the pH and ORP values ​​and the introduction of performic acid can also be carried out on the fiber suspension in a separate tank located immediately after the disperger, in which the fiber suspension can be heated to the desired temperature.

[0039] According to one embodiment, the adjustment of the pH and ORP value, and optionally the introduction of performic acid, may be performed on the fiber suspension in a separate tank, such as a storage tank in which the fiber suspension used to make the fiber stock is stored. The fiber suspension may comprise or consist of recycled fibers, or fibers obtained, for example, by mechanical pulping.

[0040] Lower temperatures of the fiber suspension, such as 25-60° C., preferably 30-55° C., and more preferably 35-55° C., may also be sufficient, provided the fiber suspension has a pH within the range of 4-5.5, preferably 4.3-5. Without wishing to be bound by any theory, it is believed that lower pH, like higher temperatures, may sensitize bacterial endospores, making them more susceptible to the destructive action of performic acid.

[0041] According to one embodiment of the present invention, after treating the fiber suspension with performic acid, at least a portion of the aqueous liquid phase of the fiber suspension is separated from the solid phase of the fiber suspension containing recycled cellulosic fibers, and the separated aqueous liquid phase is recycled in the process and reused to form the initial fiber suspension. The separated aqueous phase typically contains the base concentration of the unconsumed first and / or second oxidizing agent. This means that recycling the aqueous phase in the method offers the possibility of reducing the amount of first and / or second oxidizing agent required to adjust the ORP value to a desired level and to destroy or reduce bacterial endospores.

[0042] After the performic acid has interacted with the fiber suspension and reduced the amount of bacterial endospores in the fiber suspension, the pH of the fiber suspension may be adjusted to a desired value, e.g., neutralized, if necessary, using a strong base, e.g., NaOH or sodium bisulfite. Typically, neutralization occurs after a suitable treatment or interaction time has elapsed following the introduction of the performic acid. The treatment time required for the interaction between the performic acid and the bacterial endospores may be, for example, 15 minutes or 30 minutes.

[0043] The present invention is suitable for use in any manufacturing process in which a cellulosic fibrous web is produced from recycled fibers, such as processes for producing paper, paperboard, tissue, etc. The present invention is particularly suitable for the production of molded pulp products. The method is particularly suitable for reducing the amount of bacterial endospores in fiber suspensions containing recycled cellulosic fibers and intended for the production of liquid packaging board, food packaging board, etc.

[0044] According to a preferred embodiment of the present invention, after the introduction or addition of performic acid, the treated fiber suspension may be used to prepare a fiber stock, from which a fiber web or a fiber layer in a multi-layer fiber web may be formed. The fiber suspension may be diluted with water to a consistency suitable for forming the fiber stock and the fiber web or fiber layer. The fiber stock may also be used to manufacture molded pulp products. The fiber stock may contain any commonly used chemicals, such as retention agents, internal sizing agents, wet strength and / or dry strength agents, etc., commonly used in the production of fibrous webs such as paper, paperboard, tissue, etc.

[0045] In addition to recycled fibers, the fiber stock may also contain virgin fibers. Preferably, the fiber stock comprises at least 10% by weight, preferably at least 20% by weight, more preferably at least 30% by weight or at least 50% by weight of a fiber suspension comprising recycled cellulosic fibers and treated according to the method of the present invention.

[0046] Preferably, the total bacterial endospore load in the formed fibrous web or multi-layer fibrous web may be less than 5000 CFU per gram of dry fibrous web, preferably less than 2500 CFU per gram of dry fibrous web, more preferably less than 1000 CFU per gram of dry fibrous web, preferably less than 500 CFU per gram of dry fibrous web, and even more preferably less than 250 CFU per gram of dry fibrous web.

[0047] According to one preferred embodiment of the invention, the method is used in the manufacture of food and / or liquid packaging grade paper or paperboard. Typically, packaging grade paperboard has a basis weight of 150 to 400 g / m 2 , preferably 200 to 360 g / m 2 , and more preferably 240 to 300 g / m 2 Paper and paperboard grades for food and / or liquid packaging may be polymer coated or foil laminated for barrier properties. Suitable polymers for coating include, for example, polyolefins such as polyethylene or polypropylene; polyvinyl alcohol; polyvinylamine; polyethylene terephthalate; and polybutylene terephthalate.

[0048] experiment

[0049] Example 1

[0050] Example 1 is a laboratory test testing the killing effect of performic acid on bacterial endospores in recycled fiber pulp samples at adjusted pH and oxidation-reduction potential ORP.

[0051] In Example 1, 14% performic acid, calculated as weight to volume, was used as a preformed conventional equilibrium solution of performic acid, formic acid, water, and hydrogen peroxide.

[0052] Using separated office paper RCF pulp, one liter of genuine recycled fiber (RCF) pulp was collected from an RCF mill producing packaging board. The RCF pulp sample had a consistency of 4.4 wt%, a pH of 6.3, and an initial ORP value of -431 mV.

[0053] The collected RCF sample was divided into six subsamples, each with a volume of 100 ml. Subsamples 1, 2, and 3 were warmed to +30°C by holding them in a 30°C water bath for 45 minutes. Subsamples 4, 5, and 6 were warmed to +80°C by holding them in an 80°C water bath for 45 minutes.

[0054] The pH was reduced to below 6.0 in subsamples 2, 3, 5, and 6. Subsamples 2 and 5 were pH adjusted using polyaluminum chloride (PAC at 1600 ppm active), and subsamples 3 and 6 were pH adjusted using 10% citric acid (at 100 ppm active).

[0055] After pH adjustment, subsamples 2, 3, 5 and 6 were treated with hydrogen peroxide (as 600 ppm active) and with performic acid (200 ppm active, 14% PFA).

[0056] Sub-samples 1 and 4 were left without any chemical treatment and served as reference samples.

[0057] Measurements of pH, ORP and conductivity, as well as bacterial endospore determination (plate count agar, +32°C, 2 days of incubation) were performed on all samples. Subsamples 2, 3, 5 and 6 were subjected to measurements and endospore determination after chemical treatment. Prior to aerobic spore determination, the samples were pasteurized at +82°C for 10 min.

[0058] The results of Example 1 are shown in Table 1.

[0059] The results in Table 1 show that the chemically untreated reference subsamples 1 and 4 had very high bacterial endospore loads (200,000 CFU / ml and 500,000 CFU / ml) and very low ORP values ​​(-431 mV and -227 mV), regardless of whether the subsamples were maintained at 30°C or 80°C. It can be seen that chemical treatment with PAC / citric acid + H2O2 + PFA strongly increased the final ORP value to levels greater than +300 mV and significantly reduced the bacterial endospore load by 1 to 4 logs after 45 minutes of contact at +30°C and +80°C. Furthermore, the results for subsamples 3 and 6 show that chemical treatment with citric acid for pH adjustment resulted in only a slight change in conductivity.

[0060] Example 1 demonstrates that effective endospore killing can be achieved at +80°C using a chemical treatment containing citric acid, H2O2, and PFA. This chemical treatment reduced bacterial endospore levels from 200,000 spores / ml to 10 spores / ml without a significant change in the conductivity of the fiber suspension. Therefore, the results clearly demonstrate that chemical treatments involving pH and ORP adjustment using performic acid can be effectively used to reduce the amount of bacterial endospores in highly reducing RCF fiber suspensions without significantly changing the pulp conductivity. This may ultimately help RCF mills target the production of hygienic paperboard grades, where bacterial endospore content in the final paperboard is a critical hygiene criterion.

[0061] Table 1. Results of Example 1.

[0062] [Table 1]

[0063] Although the present invention has been described with reference to what are currently considered to be the most practical and preferred embodiments, it is understood that the present invention is not limited to the above-described embodiments, and the present invention is intended to encompass various modifications and equivalent technical solutions within the scope of the appended claims. (Addendum) The present disclosure includes the following aspects. <1> 1. A method for reducing bacterial endospores in an aqueous fiber suspension containing recycled cellulosic fibers, the fiber suspension preferably having an original endospore load of 10,000 CFU / ml or more, the method comprising: (a) adjusting the pH of the fiber suspension to a pH value of 6.5 or less; (b) adjusting the oxidation-reduction potential (ORP) of the fiber suspension to an ORP value of 200 mV or more using a first oxidizing agent; and (c) introducing an amount of performic acid as a second oxidizing agent into the fiber suspension to reduce bacterial endospores to an endospore load of 1,000 CFU / ml or less. <2> The fiber suspension contains inorganic particles such as calcium carbonate particles, and the pH of the fiber suspension is adjusted to a range of 5 to 6.5, more preferably 5.5 to 6.5, and even more preferably 6 to 6.5. <1> The method described below. <3> 3. The method of claim 1, wherein the pH of the fiber suspension is adjusted by introducing an acidifying agent into the fiber suspension. <1> or <2> The method described below. <4> The temperature of the fiber suspension is 50°C or higher, preferably 60°C or higher, and more preferably 70°C or higher. <1> ~ <3> 10. The method according to any one of the preceding claims. <5> the fiber suspension having a final conductivity value measured after adjustment of the pH and ORP value in the range of 2 to 10 mS / cm, preferably 3 to 7 mS / cm. <1> ~ <4> 10. The method according to any one of the preceding claims. <6> The first oxidant is H 2 O 2 or percarbonate, <1> ~ <5> 10. The method according to any one of the preceding claims. <7> The ORP value is adjusted to a range of +100mV to +500mV, preferably +200mV to +400mV, and more preferably +300mV to +400mV. <1> ~ <6> 10. The method according to any one of the preceding claims. <8> The performic acid is introduced into the fiber suspension in an amount that reduces the endospore load to less than 1000 CFU / ml, preferably less than 500 CFU / ml, more preferably less than 250 CFU / ml, and even more preferably less than 150 CFU / ml. <1> ~ <7> 10. The method according to any one of the preceding claims. <9> characterised in that the first oxidizing agent is introduced into the fibre suspension in an amount of 300 to 1000 ppm, preferably 400 to 800 ppm, preferably 500 to 700 ppm, expressed in grams of activator per tonne of fibre suspension, <1> ~ <8> 10. The method according to any one of the preceding claims. <10> The performic acid as the second oxidizing agent is introduced into the fiber suspension in an amount of 50 to 500 ppm, preferably 100 to 400 ppm, preferably 200 to 300 ppm, expressed in grams of activator per tonne of fiber suspension. <1> ~ <9> 10. The method according to any one of the preceding claims. <11> Preferably, the fiber suspension has a concentration of 1 to 5% by weight, preferably 1 to 3% by weight, characterized in that the adjustment of the pH and ORP value and optionally the introduction of the performic acid are carried out during or after the pulping. <1> ~ <10> 10. The method according to any one of the preceding claims. <12> characterised in that the adjustment of pH and ORP value and optionally the introduction of performic acid is carried out in a process step or process equipment in which the fibre suspension has a concentration of 8 to 30% by weight, preferably 15 to 25% by weight, <1> ~ <11> 10. The method according to any one of the preceding claims. <13> after reducing the bacterial endospore load of the fiber suspension to 1000 CFU / ml or less, using the fiber suspension to prepare a fiber stock, and forming a fiber web or a fiber layer in a multi-layer fiber web from the fiber stock. <1> ~ <12> 10. The method according to any one of the preceding claims. <14> The amount of bacterial endospores in the formed fiber web or multi-layer fiber web is less than 5000 CFU per gram of dry fiber web, preferably less than 2500 CFU per gram of dry fiber web, and more preferably less than 1000 CFU per gram of dry fiber web. <13> The method described below. <15> characterised in that the fibre stock comprises at least 10% by weight, preferably at least 20% by weight, and more preferably at least 50% by weight of the fibre suspension, <13> or <14> The method described below.

Claims

1. 1. A method for reducing bacterial endospores in an aqueous fiber suspension containing recycled cellulosic fibers, comprising: the fiber suspension has an original endospore load of 10,000 CFU / ml or more; The method comprises: (a) adjusting the pH of the fiber suspension to a pH value of 6.5 or less; (b) adjusting the oxidation-reduction potential (ORP) of the fiber suspension to an ORP value of 200 mV or greater using a first oxidizing agent in an amount of 300-1000 ppm, expressed as grams of active agent per ton of fiber suspension, wherein the first oxidizing agent is H 2 O 2 , an organic peracid other than performic acid, or a percarbonate; (c) introducing into said fiber suspension as a second oxidizing agent 50 to 500 ppm of performic acid, expressed as grams of active agent per ton of fiber suspension, to reduce bacterial endospores to an endospore load of 1000 CFU / ml or less; Including, method.

2. 2. The method of claim 1, wherein the fiber suspension comprises inorganic particles and the pH of the fiber suspension is adjusted to a range of 5 to 6.

5.

3. 3. A method according to claim 1 or 2, characterized in that the pH of the fibre suspension is adjusted to below 6.5 by introducing an acidifying agent into the fibre suspension.

4. 4. The method according to claim 1, 2 or 3, characterized in that the temperature of the fiber suspension is above 50°C.

5. 5. The method according to any one of claims 1 to 4, characterized in that the fibre suspension has a final conductivity value measured after adjustment of the pH and ORP value in the range of 2 to 10 mS / cm.

6. 6. The method according to claim 1, wherein the ORP value is adjusted to a range of +200 mV to +400 mV.

7. 7. The method according to any one of claims 1 to 6, characterized in that the performic acid is introduced into the fibre suspension in an amount that reduces the endospore load to below 500 CFU / ml.

8. 8. A method according to any one of the preceding claims, characterized in that the first oxidizing agent is introduced into the fibre suspension in an amount of 400 to 800 ppm, expressed as grams of activator per tonne of fibre suspension.

9. 9. The method according to claim 1, wherein the performic acid as second oxidizing agent is introduced into the fiber suspension in an amount of 100 to 400 ppm, expressed as grams of activator per tonne of fiber suspension.

10. 10. The method according to any one of claims 1 to 9, characterized in that the adjustment of the pH and ORP value is carried out during or after the pulper when the fibre suspension has a concentration of 1 to 5% by weight.

11. 11. The method according to any one of claims 1 to 10, characterized in that the adjustment of the pH and ORP value is carried out in a process step or process equipment in which the fibre suspension has a concentration of 8 to 30% by weight.

12. 12. The method of any one of claims 1 to 11, characterized in that after reducing the bacterial endospore load of the fiber suspension to 1000 CFU / ml or less, the fiber suspension is used to make a fiber stock from which a fiber web or a fiber layer in a multi-layer fiber web is formed.

13. 13. The method of claim 12, wherein the amount of bacterial endospores in the formed fibrous web or multi-layer fibrous web is less than 5000 CFU / g of dry fibrous web.

14. 14. The method according to claim 12 or 13, characterized in that the fibre stock comprises at least 10% by weight of the fibre suspension.

Citation Information

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