[0001] The present invention relates to a sheet of pressed cellulosic fibers and to an article
of manufacture comprising a flammable surface adhesively bonded to a sheet of pressed
cellulosic fibers.
[0002] More particularly, the present invention relates to a sheet of pressed cellulosic
fibers in the form of paper containing dispersed particles of intercalated, i.e. intumescent
material graphite which can be applied to a flammable article as a fire-resistant
covering.
[0003] A continuing effort in the building supply industry is to improve the fire resistance
of flammable materials of construction and related materials such as wood products
(particle board, oriented strand board), wall board, shipping boxes, bags and like.
Such effort has involved the addition of chemicals, such as borates and phosphates
to the binder system of the flammable materials, which, at times resulted in degradation
of the properties and useful life of the materials.
[0004] DE-A-4007060 (Bayer AG) discloses an intumescent pressed sheet-material containing
cellulosic fibres, expandable graphite, and optionally a binder, manufactured by a
paper making technique, with up to 98% by weight of graphite being included.
[0005] EP-A-0408098 (T-N Technology Ltd) discloses an intumescent sheet material having
a matrix whose predominant ingredient comprises ball clay reinforced by inorganic
vitreous fibre and contains heat-expandable graphite as an intumescent agent and up
to 10 percent by weight of an organic binder, manufactured by a paper making technique.
[0006] Thus, there remains a need for increasing the fire resistance of flammable materials
of construction and related materials.
[0007] According to the present invention there is provided a sheet of pressed cellulosic
fibres which contains a dispersion of pressed particles of intercalated graphite,
said sheet having a pair of opposed outer surfaces at least a portion of which is
formed of pressed particles of intercalated graphite, with a thermosetting resin dispersed
in the sheet for bonding together cellulosic fibres and intercalated graphite particles,
said resin being present in an amount such that a surface of the sheet can be bonded
by said resin to a contacting flammable surface.
[0008] The present invention thus provides a sheet of pressed cellulosic fibers in the form
of a paper sheet containing co-pressed particles of intercalated natural graphite
particles, also known as intumescent graphite particles. These particles, upon exposure
to high temperature, e.g. a flame, expand in volume more than 50 to 100 times, i.e.
exfoliate into vermicular, worm-like structures (called "worms"). The cellulosic paper
sheet containing the intumescent, i.e. intercalated graphite particles, is rendered
highly fire-resistant due to the decrease in thermal conductivity of the graphite
particles upon the exfoliation which results from exposure to flame. The exfoliated
graphite vermicular particles, i.e. worms, virtually cover the exposed paper surface
and form a flame barrier. Any substrate to which the aforedescribed paper is bonded,
or article enclosed in such paper, is provided protection from fire damage.
[0009] The thermosetting resin incorporated in the sheet acts as an adhesive binder which
also can bond the sheet to a flammable surface which the sheet then protects.
[0010] According to a further feature of the present invention there is provided an article
of manufacture comprising a flammable surface adhesively bonded to a sheet of pressed
cellulosic fiber which contains a dispersion of pressed particles of intercalated
graphite, said sheet having a pair of opposed surfaces at least a portion of which
is formed of pressed particles of intercalated graphite, with a thermosetting resin
dispersed in the sheet for bonding together cellulosic fibers and intercalated graphite
particles, said resin being present in an amount such that a surface of the sheet
is bonded by said resin to the contacting flammable surface, one of said surfaces
being in contact with said flammable surface and the other of said surfaces constituting
an outer surface of said article.
[0011] The present invention will now be further described, by way of example, with reference
to the accompanying drawings, in which:-
Fig. 1 is a top view of the surface of a paper sheet showing dispersed particles of
intercalated graphite;
Fig. 2 is an enlarged representation of an edge view of a paper sheet; Fig. 2(A) is
a top view of the sheet of Fig. 2;
Fig. 3 is an enlarged representation of an edge view of a paper sheet constructed
in accordance with the present invention showing partially set resin in the paper;
Fig. 3(A) is a top view of the sheet of Fig. 2(A);
Fig. 4 shows a paper sheet constructed in accordance with the present invention bonded
to a flammable substrate; and
Fig. 5 is a top view of a portion of the paper sheet of Fig. 4 after exposure to flame.
[0012] The techniques for making of paper sheets from cellulosic fiber are well known. In
general, cellulosic fibers, e.g. wood, straw, bagasse, flax, cotton and the like are
pulped, i.e. separated and suspended in water slurry. Materials, such as mineral pigments,
sizing, dyes and other coloring chemicals, starches and other fiber bonding materials,
are added to the pulp which is then drained, i.e. dewatered, pressed and dried. Commonly,
the well known Fourdrinier machines and evaporative drying by pressing a heated surface
on the wet paper are employed to make a cellulosic paper sheet.
[0013] Particles of intercalated natural graphite, i.e. intumescent graphite are added to
the cellulosic fiber pulp (which may contain other additives such as noted above)
and dispersed in the pulp slurry. The added intercalated graphite particles are mostly,
i.e. 60% by weight or more, in the size range of 30 to 80 mesh (U.S. screen series)
and the amount added is suitably in the range of 40 to 80 grams per square metre of
the paper sheet being produced typically from 0.015 cm to 0.15 cm thick (0.006 to
0.060 inch thick). The paper sheet is prepared by dewatering, pressing and drying
in the usual manner. The resulting product is shown in Figure 1 which is a 1:1 scale
view of the surface of paper sheet. Figure 2 is an enlarged representation of a sectional
side, or edge view, of the paper sheet and Figure 2A is an enlarged plan view of a
part of the surface of the sheet of Figure 2. The paper sheet 10, shown in Figures
1-3 is formed of pressed cellulosic fiber sheet indicated at 20 which contains a dispersion
of co-pressed particles of intercalated graphite indicated at 30. The pressing of
a wet sheet of cellulosic fibers containing intercalated graphite particles results
in some flattening of the intercalated graphite particles, particularly at the surface
of the sheet 10 as indicated at 300. This results in at least a portion, e.g. 5-25%
of the surface area of the sheet 10 being in the form of exposed intercalated graphite,
the balance being essentially cellulosic fibers. Upon being subjected to high temperature
e.g. a flame, the surface exposed intercalated graphite particles expand in volume,
up to 500 times and form a thermal barrier virtually covering the surface exposed
to the flame which instantly extinguishes any burning portion of the paper.
[0014] In accordance with the present invention, a thermosetting resin, e.g. water soluble
phenolic resin is added to an aqueous slurry of cellulosic fiber and intercalated
graphite, suitably in an amount of 2 to 6% by weight of the water in the slurry. In
the resin-containing paper resulting from the de-watering, pressing and drying of
the pulp slurry, the cellulosic fibers and intercalated graphite particles are adhesively
bonded due to exposure to drying temperatures of 60 tc 100°C which cause a partial
setting of the resin. A portion of the partially set resin, in the form of flattened
globules, is exposed at the surface as indicated at 400 in Figures 3) and 3(A). The
paper containing intercalated graphite and partially set resin is placed in contact
with the surface of a flammable element, e.g. wood based, wall board and pressure
is applied to the resin containing paper at temperatures of from about 70 to 120°C
to fully set the resin and cause adhesive bonding of the intercalated graphite-containing
paper to the surface of the flammable element. With reference to Figure 4, a flammable
wooden substrate is shown at 500 having an outer surface 510 and an overlying intercalated
graphite containing paper sheet 10

which has been heated and pressed against surface 510 so that an adhesive layer 520
of thermoset resin is formed which bonds sheet 10

to wooden substrate 500. The resulting article is a flammable wooden element having
at its outer surface an adhesively resin bonded sheet of paper which contains a dispersion
of intercalated graphite particles 300' at its outer surface. Upon exposure to flame,
the particles 300

undergo intumescence and expand to form "worms" 3000 shown in Figure 5 which suppress
the flame and protect substrate 500 from fire damage.
[0015] The intercalated graphite included in the present invention is essentially that which
is used in the graphite composite wall covering material disclosed in US-A-5,176,863.
In this patent it is recited that graphite is a crystalline form of carbon comprising
atoms bonded in flat layered planes with weaker bonds between the planes. By treating
particles of natural graphite flake, with an intercalant of e.g., a solution of sulfuric
and nitric acid, the crystal structure of the graphite reacts to form a compound of
graphite and the intercalant. The treated particles of graphite are hereafter referred
to as "particles of intercalated graphite". Upon exposure to high temperature, the
particles of intercalated graphite expand in dimension as much as 80 or more times
its original volume in an accordion-like fashion in the c-direction, i.e. in the direction
perpendicular to the crystalline planes of the graphite. The exfoliated graphite particles
are vermiform in appearance, and are therefore commonly referred to as worms.
[0016] A common method for manufacturing graphite foil from flexible graphite is described
by Shane et al, in US-A-3,404,061. In the typical practice of the Shane et al method,
natural graphite flakes are intercalated by dispersing the flakes in a solution containing
an oxidizing agent of, e.g. a mixture of nitric and sulfuric acid. The intercalation
solution contains oxidizing and other intercalating agents known in the art. Examples
include those containing oxidizing agents and oxidizing mixtures, such a solutions
containing nitric acid, potassium chlorate, chromic acid, potassium permanganate,
potassium chromate, potassium dichromate, perchloric acid, and the like, or mixtures,
such as for example, concentrated nitric acid and chlorate, chromic acid and phosphoric
acid, sulfuric acid and nitric acid, or mixtures of a strong organic acid, e.g. trifluoroacetic
acid, and a strong oxidizing agent soluble in the organic acid.
[0017] A preferred intercalating agent is a solution of a mixture of sulfuric acid, or sulfuric
acid and phosphoric acid, and an oxidizing agent, i.e. nitric acid, perchloric acid,
chromic acid, potassium permanganate, hydrogen peroxide, iodic or periodic acids,
or the like. Although less preferred, the intercalation solutions may contain metal
halides such as ferric chloride and ferric chloride mixed with sulfuric acid, or halide,
such as bromine as a solution of bromine and sulfuric acid or bromine in an organic
solvent.
[0018] After the graphite flakes are intercalated excess solution is drained from the flakes.
After washing with water, the intercalated graphite flakes are dried and if exposed
to a flame for only a few second at temperature greater than 700°C, more typically
1000°C or higher the flakes will exfoliate into "worms" with an increase in volume
of 80 or more times.
[0019] The quantity of the intercalation solution may be limited to between 10 to 50 parts
of solution per hundred parts of graphite by weight (pph) which permits the washing
step to be eliminated as taught and described in US-A-4,895,713.
[0020] Particles of exfoliated graphite of intercalated graphite flake possess substantial
fire retardant properties. Thie results from a decrease in thermal conductivity when
exposed to high temperature such as in the presence of a fire. This decrease in thermal
conductivity is attributable to its expansion at high temperature. An expansion in
thickness of 1 to 5 times the unexpanded thickness has been realized from unexfoliated
particles of intercalated graphite.
[0021] The following Example will further illustrate the present invention:
[0022] Recycled cellulose fiber was slurried in a solution consisting of 4 % by weight w/o
Ashland 72115W55 phenolic-based resin in water for 30 seconds in a Waring blender
on low speed. Intumescent natural graphite treated flake particles (ntercalated graphite),
UCAR Grade TG-388, was added and mixed for 5 seconds; excess solution was filtered
from the mixture to form a cake which was oven dried at 60°C to remove the water.
The cake was then flattened to a paper approximately 0.1cm (0.04 inches) thick between
heated (60°C) platens.
[0023] Compositions consisted of 43.04, 64.56 and 86.08 grams of treated flake (intercalated
flake) per square metre (4, 6, and 8 grams of treated flake (intercalated flake) per
square foot) of paper sheet; cellulose 172.16 grams per square metre (16 grams/square
foot) of paper sheet; and a resin content of about 21.52 grams per square metre (2
grams/square foot) of paper sheet. The intercalated flake was in the form of particles
sized 50% through 40 mesh (U.S. Screen Series). For test purposes, sheets could be
bonded to wood, OSB (oriented strand board), or plywood by pressing between platens
at about 120°C.
[0024] Compositions were tested in two ways:
1) A strip 1.27 cm x 10.16 cm (½x4 inches) long was held in a flame to ignite one
end (about 1.27 cm x 1.9 cm (½x¾ inch) area and flame spread, held horizontally and
vertically (with the burning portion down) would be evaluated.
2) An OSB panel was coated with a sheet and used as a shutter to block a 3 kW burner
flame confined to a 5.08 cm x5.08cm (2x2 inch) square area by insulator brick.
[0025] Results for samples tested as paper exposed to a flame:
a) Control no flake; ignited and burned rapidly when held in any orientation.
b) 43.04 grams/square metre (Four grams/square foot) burned very slowly horizontally
often would almost extinguish; burned when held vertically.
c) 64.56 grams/square metre (Six grams/square foot) would extinguish at less than
one-third burned when held horizontally and about half of the area burned when held
vertically.
d) 86.08 grams/square metre (Eight grams/square foot) would extinguish rapidly when
held in any orientation.
[0026] Results for samples tested bonded on OSB (oriented strand board) in the 3 kW burner
flame:
| Sample |
Time to Ignition |
| Control |
0:55 |
| Bonded 43.04 gm/m2 (4 gm/ft2) |
3:30 |
| Bonded 64.56 gm/m2 (6 gm/ft2) |
9:10 |
[0027] Typical fire-control panels are considered good in this test for five minutes so
the 86.08 grams/square metre (8 grams/square foot) sample would obviously be "good"
and was not tested.
[0028] The invention is amenable to standard Fourdrinier paper processing; prepared paper
may be bonded to board products in the hot-pressure-cure step.
1. A sheet (10) of pressed cellulosic fibers (20) which contains a dispersion of pressed
particles (30) of intercalated graphite, said sheet (10) having a pair of opposed
outer surfaces at least a portion (300) of which is formed of pressed particles of
intercalated graphite, with a thermosetting resin (400) dispersed in the sheet (10)
for bonding together cellulosic fibers (20) and intercalated graphite particles (30),
said resin (400) being present in an amount such that a surface of the sheet (10)
can be bonded by said resin (400) to a contacting flammable surface (510).
2. A sheet according to claim 1, in which most of said particles (30) of intercalated
graphite are sized in the range of 30 to 80 mesh (U.S. Series).
3. A sheet as claimed in claim 1 in which said intercalated graphite is present in said
sheet (10) in an amount of from about 43.04 to 64.56 grams per square metre (4 to
8 grams per square foot) of sheet (10) having a thickness of 0.015cm (0.006 inch)
to 0.15 cm (0.06 inch).
4. A sheet according to any one of claims 1 to 3, wherein from 5 to 25% of the outer
surfaces are in the form of exposed, flattened, intercalated graphite particles.
5. An article of manufacture comprising a flammable surface (510) adhesively bonded to
a sheet (10) of pressed cellulosic fiber (20) which contains a dispersion of pressed
particles (30) of intercalated graphite, said sheet (10) having a pair of opposed
surfaces at least a portion (300) of which is formed of pressed particles (30) of
intercalated graphite, with a thermosetting resin (400) dispersed in the sheet (10)
for bonding together cellulosic fibers (20) and intercalated graphite particles (30),
said resin (400) being present in an amount such that a surface of the sheet (10)
is bonded by said resin (400) to the contacting flammable surface (510), one of said
surfaces being in contact with said flammable surface (510) and the other of said
surfaces constituting an outer surface of said article.
6. An article as claimed in claim 5 in which said flammable surface (510) is wood.
7. An article as claimed in claim 6 in which said flammable surface (510) is oriented
strand board.
8. An article as claimed in claim 5 in which said flammable surface (510) is wall board.
9. An article as claimed in any one of claims 5 to 8, wherein from 5 to 25% of the outer
surfaces of the sheet are in the form of exposed, flattened intercalated graphite
particles.
1. Bahn (10) aus gepreßten Zellulosefasern (20), die eine Dispersion gepreßter Teilchen
(30) aus Einlagerungsgraphit enthält, wobei die Bahn (10) ein Paar entgegengesetzte
Außenflächen hat, von denen mindestens ein Anteil (300) aus gepreßten Teilchen aus
Einlagerungsgraphit gebildet ist, wobei ein wärmehärtendes Harz (400) zum Verbinden
von Zellulosefasern (20) und Einlagerungsgraphitteilchen (30) in der Bahn (10) dispergiert
und das Harz (400) in einer solchen Menge vorhanden ist, daß eine Oberfläche der Bahn
(10) mit einer berührenden brennbaren Oberfläche (510) durch das Harz (400) verbunden
werden kann.
2. Bahn nach Anspruch 1, wobei die meisten der Teilchen (30) aus Einlagerungsgraphit
im Bereich von 30 bis 80 mesh (US-Siebreihe) klassiert sind.
3. Bahn nach Anspruch 1, wobei der Einlagerungsgraphit in der Bahn (10) in einer Menge
von etwa 43,04 bis 64,56 Gramm je Quadratmeter (4 bis 8 Gramm je Quadratfuß) Bahn
(10) mit einer Dicke von 0,015 cm (0,006 Inch) bis 0,15 cm (0,06 Inch) vorhanden ist.
4. Bahn nach einem der Ansprüche 1 bis 3, wobei 5 bis 25 % der Außenflächen in Form von
freiliegenden, abgeflachten Einlagerungsgraphitteilchen vorliegen.
5. Produktionsgegenstand mit einer brennbaren Oberfläche (510), die mit einer Bahn (10)
aus gepreßter Zellulosefaser (20) verklebt ist, die eine Dispersion gepreßter Teilchen
(30) aus Einlagerungsgraphit enthält, wobei die Bahn (10) ein Paar entgegengesetzte
Oberflächen hat, von denen mindestens ein Anteil (300) aus gepreßten Teilchen (30)
aus Einlagerungsgraphit gebildet ist, wobei ein wärmehärtendes Harz (400) zum Verbinden
von Zellulosefasern (20) und Einlagerungsgraphitteilchen (30) in der Bahn (10) dispergiert
ist, das Harz (400) in einer solchen Menge vorhanden ist, daß eine Oberfläche der
Bahn (10) mit der berührenden brennbaren Oberfläche (510) durch das Harz (400) verbunden
ist, eine der Oberflächen mit der brennbaren Oberfläche (510) in Berührung steht und
die andere der Oberflächen eine Außenfläche des Gegenstands bildet.
6. Gegenstand nach Anspruch 5, wobei die brennbare Oberfläche (510) Holz ist.
7. Gegenstand nach Anspruch 6, wobei die brennbare Oberfläche (510) eine Platte mit orientierten
Strängen ist.
8. Gegenstand nach Anspruch 6, wobei die brennbare Oberfläche (510) eine Leichtbauplatte
ist.
9. Gegenstand nach einem der Ansprüche 4 bis 8, wobei 5 bis 25 % der Außenflächen der
Bahn in Form von freiliegenden, abgeflachten Einlagerungsgraphitteilchen vorliegen.
1. Feuille (10) de fibres cellulosiques pressées (20) contenant une dispersion de particules
pressées (30) de graphite intercalé, ladite feuille (10) ayant une paire de surfaces
externes opposées dont au moins une portion (300) est formée par des particules pressées
de graphite intercalé, avec une résine thermodurcissable (400) dispersée dans la feuille
(10) pour fixer les fibres cellulosiques (20) et les particules (30) de graphite intercalé
entre elles, ladite résine (400) étant présente en une quantité telle qu'une surface
de la feuille (10) peut être fixée par ladite résine (400) à une surface inflammable
(510) en contact.
2. Feuille selon la revendication 1, dans laquelle la plupart desdites particules (30)
de graphite intercalé sont d'une taille dans la plage de numéro de maille de 30 à
80 (série américaine).
3. Feuille selon la revendication 1, dans laquelle ledit graphite intercalé est présent
dans ladite feuille (10) en quantité d'environ 43,04 à 64,56 grammes par mètre carré
(4 à 8 grammes par pied carré) de feuille (10) ayant une épaisseur de 0,015 cm (0,006
pouces) à 0,15 cm (0,06 pouces).
4. Feuille selon l'une quelconque des revendications 1 à 3, dans laquelle de 5 à 25%
des surfaces externes sont sous forme de particules de graphite intercalé aplaties
et exposées.
5. Article de fabrication comprenant une surface inflammable (510) fixée par adhésion
à une feuille (10) de fibres cellulosiques pressées (20) contenant une dispersion
de particules pressées (30) de graphite intercalé, ladite feuille (10) ayant une paire
de surfaces opposées dont au moins une portion (300) est formée par des particules
pressées (30) de graphite intercalé, avec une résine thermodurcissable (400) dispersée
dans la feuille (10) pour fixer les fibres cellulosiques (20) et les particules (30)
de graphite intercalé entre elles, ladite résine (400) étant présente en une quantité
telle qu'une surface de la feuille (10) est fixée par ladite résine (400) à la surface
inflammable (510) en contact, l'une desdites surfaces étant en contact avec ladite
surface inflammable (510) et l'autre desdites surfaces constituant une surface externe
dudit article.
6. Article selon la revendication 5, dans lequel ladite surface inflammable (510) est
du bois.
7. Article selon la revendication 6, dans lequel ladite surface inflammable (510) est
un panneau à copeaux orientés.
8. Article selon la revendication 6, dans lequel ladite surface inflammable (510) est
un panneau mural.
9. Article selon l'une quelconque des revendications 4 à 8, dans lequel de 5 à 25% des
surfaces externes de la feuille sont sous forme de particules de graphite intercalé
aplaties et exposées.