US3429772A - Manufacture of paper - Google Patents

Manufacture of paper Download PDF

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Publication number
US3429772A
US3429772A US460534A US46053465A US3429772A US 3429772 A US3429772 A US 3429772A US 460534 A US460534 A US 460534A US 46053465 A US46053465 A US 46053465A US 3429772 A US3429772 A US 3429772A
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US
United States
Prior art keywords
percent
fibres
weight
acrylonitrile
vinyl
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.)
Expired - Lifetime
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US460534A
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English (en)
Inventor
Roland Michael Harvey
Christopher Richard Na Johnson
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Chemstrand Ltd
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Chemstrand Ltd
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Publication of US3429772A publication Critical patent/US3429772A/en
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Classifications

    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H11/00Pulp or paper, comprising cellulose or lignocellulose fibres of natural origin only
    • D21H11/16Pulp or paper, comprising cellulose or lignocellulose fibres of natural origin only modified by a particular after-treatment
    • D21H11/18Highly hydrated, swollen or fibrillatable fibres
    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01DMECHANICAL METHODS OR APPARATUS IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS
    • D01D5/00Formation of filaments, threads, or the like
    • D01D5/42Formation of filaments, threads, or the like by cutting films into narrow ribbons or filaments or by fibrillation of films or filaments
    • D01D5/423Formation of filaments, threads, or the like by cutting films into narrow ribbons or filaments or by fibrillation of films or filaments by fibrillation of films or filaments
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H5/00Special paper or cardboard not otherwise provided for
    • D21H5/12Special paper or cardboard not otherwise provided for characterised by the use of special fibrous materials
    • D21H5/1236Special paper or cardboard not otherwise provided for characterised by the use of special fibrous materials of fibres which have been treated to render them suitable for sheet formation, e.g. fibrillatable fibres

Definitions

  • This invention relates to the manufacture of paper formed from acrylonitrile polymer fibres. It is an object of the invention to increase the ease with which such fibres can be beaten, to provide a paper-making stock, in a conventional beater, refiner or stockmaker and to enable a paper to be produced having improved physical properties.
  • a process for the treatment of fibres formed of an acrylonitrile polymer containing at least 80 percent by weight of acrylonitrile to render said fibres suitable for use in the manufacture of paper comprising the steps of reducing said fibres to staple lengths, immersing said fibres in an aqueous solution of an oxygen-forming agent at a temperature in the range of from 10 C. to 100 C. for a predetermined period, thereby to partially disrupt said fibres, washing said fibres to remove said oxygenforming agent and drying said fibres.
  • the invention also includes fibres when treated by such process.
  • a process for the manufacture of paper from fibres produced from an acrylonitrile polymer containing at least 80 percent by weight of acrylonitrile comprising the steps of reducing said fibres to staple lengths, immersing said fibres in an aqueous solution of an oxygen-forming agent at a temperature in the range of from 10 C. to 100 C. for a predetermined period, thereby to partially disrupt said fibres, washing said fibres to remove said oxygen-forming agent, drying said fibres, beating said fibres in an aqueous dispersion and forming said fibres into a paper sheet or web.
  • the invention also includes paper when produced by such process.
  • oxygen-forming agents employed in carrying out the invention are potassium permanganate, or ammonium persulphate.
  • agents which may be employed are sodium hypochlorite, sodium perborate, potassium bichromate and potassium persulphate.
  • Other oxygen-forming agents that may be found suitable can be employed, including mixtures of any of the said agents.
  • fibres which have been subjected to treatment in an aqueous solution of an oxygen-forming agent in accordance with the invention are partially disrupted and, when subjected to heating, are split into subdeniers therefore require a lesser amount of beating than fibres which have not been treated in the manner referred to.
  • the fibres treated in accordance with the invention are formed into paper webs or sheets by conventional paper-making methods they exhibit enhanced physical properties, notably as regards tear and bursting strengths.
  • the fibres treated by the invention can be prepared from polyacrylonitrile, copolymers, including binary and ternary polymers containing at least percent by weight of acrylonitrile in the polymer molecule or a blend comprising polyacrylonitrile or copolymers comprising acrylonitrile With 2 to 50 percent by weight of the blend of another polymeric material, the blend having an overall polymerized acrylonitrile content of at least 80 percent by weight.
  • Suitable copolymerizable mono-olefinic monomers include acrylic, alpha-chloroacrylic and methacrylic acids, the methacrylates, such as methyl methacrylate, ethyl methacrylate, butyl methacrylate, methoxymethyl methacrylate, betachloroethyl methacrylate, and the corresponding esters of acrylic and alpha-chloroacrylic acids; vinyl chloride, vinyl fluoride, vinyl bromide, vinylidene chloride, l-chloro-lbromoethylene; methacrylonitrile; acrylamide and methacrylamide; alpha-chloroacrylamide, or monoalkyl substitution products thereof; methyl vinyl ketone; vinyl carboxylates, such as vinyl acetate, vinyl chloroacetate, vinyl propionate, and vinyl stearate; N-vinylimides, suchas N- vinylpthalimide and Nvinyl-succinimide; methylene malonic esters; itac
  • the polymer can be a ternary polymer or higher interpolymer, for example products obtained from the interpolymerization of acrylonitrile and two or more of any of the monomers, other than acrylonitrile enumerated above. More specifically, and preferably the ternary polymer comprises acrylontirile, methacrylonitrile and 2- vinylpyridine.
  • the ternary polymers preferably contain from 80 to 98 percent by Weight of acrylonitrile, from 1 to 10 percent by weight of a vinylpyridine or a 1-vinyl imidazole, and from 1 to 18 percent by weight of another copolymerizable mono-olefinic substance, such as methacrylonitrile or vinyl chloride.
  • the polymeric material when it comprises a blend it will be a blend of a terpolymer of 90 to 98 percent by weight of acrylonitrile and from 2 to 10 percent by weight of another mono-olefinic monomer, such as a vinyl acetate, which is not receptive to dyestuif, with a sufiicient amount of a copolymer of from 10 to 70 percent by weight of acrylonitrile and from 30 to 90 percent by weight of a vinyl-substituted tertiary heterocyclic amine, such as a vinylpyridine or l-vinylimidazole, to give a dyeable blend having an overall vinyl-substituted tertiary heterocyclic amine content of from 2 to 10 percent, based on the weight of the blend.
  • a terpolymer of 90 to 98 percent by weight of acrylonitrile and from 2 to 10 percent by weight of another mono-olefinic monomer, such as a vinyl acetate, which
  • Example I 100 grams dry weight undried acrylonitrile polymer fibers of 3 denier sold under the registered trademark Acrilan 1656 were cut into 1 inch staple lengths Examples III to V In these examples the same procedure as described in Example II was followed, except that the fibres were treated with aqueous solutions of potassium permanganate and added to 5.9 litres of Water contained in the trough of different concentrations. All other aspects of the beatof a Clough laboratory beater. A counter-weight of 3% ing process, handsheet formation and tests were as lbs. was placed on the lever arm of the beater and the described in Example II. The physical properties of the clearance between the roll and bedplate was set at 7 mil. handsheets and the concentration of the respective Beating was carried out at 1000 ft./min. peripheral roll aqueous solutions are set out in Table 3 below.
  • Handsheets were made b the conventional method using the British Standard Examples VI and VII sheet-making apparatus from which the chromium-plated III h s e p the Same Pmiledure as in Example surfacing plates had been removed on account of sticking. 11 as f llOWfid, except that the fibres were treated, in After being pressed, the handsheets were dried by an accordance With Example for a Period of 15 minutes electric iron set, by a pyrometer, to a temperature of in 1.5 litres of a 2.5 percent aqueous solution of potas- 107 C.i2 C. The sheets were again damped and resmm permanganate maintained at a temperature of 60 dried to ensure complete flatness and stability.
  • the fibres were strengths of the handsheets were tested on an Elmendorf treated in a solution of the same concentration for a tearing tester, a Mullen bursting strength tester, thickness period of 30 minutes at a temperature of 40 C. All by caliper, tensile strength by a Van der Korput tensile other aspects of the heating process, handsheet formatester and shrinkage percent.
  • the physical properties of tion and tests were as described in Example II.
  • the physithe handsheets are set out in Table 1 below, all the results cal properties of th hand h t are set t i T bl 4 of the tests being corrected to standard substance 70 b l g.s.rn.
  • Example H Example VIII In this example 100 grams dry Weight undried acrylo- 100 grams i Welght undned aclylomtnle g i nitrile polymer fibers of 3 denier and of the same composifibre.s of 3 demer Sold imder i reglstered trahemard tion as those employed in carrying out the preceding Acman 1.656 W cu ⁇ Into 1 Inch stap 1e lengt S an examples, but which had been stretched to the extent of rapldly surfed i hues of a 2 Pal-Pent.
  • aqueous solu' 29 percent greater than those fibres and referred to as tion of Postassmj permanganate Enamtamed at type I were cut to 1 inch staple lengths and subjected perilture of on an elecmc hot-plate A terha to precisely the same treatment and tests as in Example period of five mmutes the solution was decanted and t e I.
  • the physical properties of the handsheets Produced are fibres were washed free of Potaslum permanganate m set outinTableSbelow water at a temperature of 50-60 C.
  • Example IX In this example the same quantity of the I type fibres Tear strength (grams) 21-2 used in Example VIII were treated with a 2 percent aque- Burst strength (p.s.i.) ous solution of potassium permanganate maintained at a Thickness (mils) 6-9 temperature of 100 C. for a period of five minutes and Tensile strength (lbs/in.) 30-1 thereafter subjected to the beating and sheet-forming steps Shrinkage percent 14.2 described in Example 1, except that after a period of 15 minutes beating was discontinued as it was found that the fibres were fully split into sub-deniers.
  • the physical properties of the handsheets are set out in Table 6 below.
  • Example XVIII In this example the same procedure as described in Example II was followed, except that the fibres were treated for a period of 5 minutes at a temperature of different concentrations. All other aspects of the beating 100:) m 5 hues of a 2 percent aqueous soiunon of process, handsheet formation and tests were as described Sodmm Perborate' other aspects of the beefing in Example II. The physical properties of the handsheets ess, handsheet formation and tests were as described 1n and the concentration of the respective aqueous solutions Example The Phi/S16E11 P p 0f the handsheets ar s t t i T bl 7 b l are set out in Table 11 below.
  • Example XIII TABLE 11 In this example the same procedure as described in Tear strength (grams) 35.0 Example 11 was followed, except that the fibres were Burst strength (p.s.i 7.5 treated for a period of 15 minutes in 1.5 litres of a 1.5 Thickness (mils) 7.9 percent aqueous solution of sodium hypochlorite main- Tensile strength (lbs/in.) 5.0 aimed at a temperature of 80 C. followed by soaking for Shrinkage percent 9.0 a period of 15 minutes at a temperature of 20 C. in a 5 percent aqueous solution of sodium sulphite. All other Examp XIX aspects of the beating process, handsheet formation and tests were as described in Example 11.
  • Example XVII in accordance with the invention as described in Examples II to VII and IX to XIX were superior to the physical n t xampl the Same Procedure 35 described in properties of the handsheets prepared in accordance with Example II Was followed, eXCePt that the fibres Were Examples I and VIII where the fibers were not subjected treated 01 a period Of 5 minutes at a.
  • the concentration of the aqueous solution of the oxygen-forming agent can be varied to suit particular requirements and may range from /2 percent to 10 percent.
  • the temperature of the solution can vary from 10 C. to 100 C. and the time during which the fibres undergo treatment by the solution can be varied as may be found necessary.
  • a process for the treatment of fibres formed from an acrylonitrile polymer containing at least 80 percent by weight of acrylonitrile to render said fibres suitable for use in the manufacture of paper comprising the steps of reducing said fibres to staple lengths, immersing said fibres in an aqueous solution consisting essentially of from about .5 percent to 10 percent of an oxygen-forming agent wherein said agent is a member selected from the group consisting essentially of potassium permanganate, sodium hypochlorite, ammonium persulphate, potassium bichromate, sodium perborate and potassium persulphate at a temperature in the range of from 10 C. to 100 C. for 5 to 30 minutes thereby to partially disrupt said fibres, washing said fibres to remove said oxygen-forming agent and drying said fibres.
  • a process for the manufacture of paper from fibres produced from an acrylonitrile polymer containing at least 80 percent by weight of acrylonitrile comprising the steps of reducing said fibres to stape lengths, immersing said fibres in an aqueous solution composed essentially of from about .5 to percent of an oxygen-forming agent wherein said agent is a member selected from the group consisting of potassium permanganate, sodium hypoehloriate, ammonium persulphate, potassium bichromate, sodium perborate and potassium persulphate at a temperature in the range of from 10 C. to 100 C. for 5 to 30 minutes thereby to partially disrupt the fibres, washing said fibres to remove said oxygen-forming agent, drying said fibres, beating said fibres in an aqueous dispersion and forming said fibres into a Web.
  • said agent is a member selected from the group consisting of potassium permanganate, sodium hypoehloriate, ammonium persulphate, potassium bichromate, sodium perborate and potassium persulph
  • fibres consist of a copolymer of at least percent by weight of acrylonitrile and up to 20 percent by weight of another copolymerizable mono-olefinic monomer. .1
  • fibres consist of a copolymer of at least 80 percent by weight of acrylonitrile and up to 20 percent by weight of another copolymerizable mono-olefinic monomer.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Textile Engineering (AREA)
  • Paper (AREA)
  • Artificial Filaments (AREA)
US460534A 1964-06-03 1965-06-01 Manufacture of paper Expired - Lifetime US3429772A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
GB23014/64A GB1107724A (en) 1964-06-03 1964-06-03 Improvements in or relating to the manufacture of paper

Publications (1)

Publication Number Publication Date
US3429772A true US3429772A (en) 1969-02-25

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US460534A Expired - Lifetime US3429772A (en) 1964-06-03 1965-06-01 Manufacture of paper

Country Status (10)

Country Link
US (1) US3429772A (fr)
BE (1) BE664917A (fr)
CH (1) CH450894A (fr)
DE (1) DE1546333A1 (fr)
DK (1) DK113120B (fr)
FR (1) FR1439376A (fr)
GB (1) GB1107724A (fr)
IL (1) IL23607A (fr)
LU (1) LU48737A1 (fr)
NL (1) NL6507100A (fr)

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2964235D1 (en) * 1979-01-04 1983-01-13 Amrotex Ag Process for manufacturing fibres from thermoplastic acrylonitrile polymers
US4929502A (en) * 1986-10-14 1990-05-29 American Cyanamid Company Fibrillated fibers and articles made therefrom
GB2323392B (en) * 1997-03-21 2001-08-22 Courtaulds Fibres Ltd Fibrillated acrylic fibre

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3127233A (en) * 1964-03-31 Cross referenci
US3232824A (en) * 1961-07-15 1966-02-01 Degussa Method of forming a water-laid fibrous sheet including a thermoplastic resin

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3127233A (en) * 1964-03-31 Cross referenci
US3232824A (en) * 1961-07-15 1966-02-01 Degussa Method of forming a water-laid fibrous sheet including a thermoplastic resin

Also Published As

Publication number Publication date
IL23607A (en) 1968-07-25
BE664917A (fr) 1965-12-03
LU48737A1 (fr) 1965-12-01
FR1439376A (fr) 1966-05-20
CH450894A (fr) 1968-05-15
NL6507100A (fr) 1965-12-06
DE1546333A1 (de) 1969-05-29
GB1107724A (en) 1968-03-27
DK113120B (da) 1969-02-17

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Owner name: KENNECOTT CORPORATION

Free format text: MERGER;ASSIGNORS:BEAR CREEK MINING COMPANY;BEAR TOOTH MINING COMPANY;CARBORUNDUM COMPANY THE;AND OTHERS;REEL/FRAME:003961/0672

Effective date: 19801230