FIELD OF THE INVENTION
[0001] The present invention relates to a self-cross-linking binder that provides fibrous
substrates with a high wet-strength. Fibrous substrates that benefit from the use
of the binder include non-woven, woven and paper products, fiberglass, and other similar
materials.
BACKGROUND OF THE INVENTION
[0002] Non-woven materials and other fibrous products consist of a loosely assembled mass
of fibers that are bound together with a polymeric binder to form a self-sustaining
web that can be used to produce many items such as consumer towels, disposable wipes,
absorbent media for feminine hygiene applications and diapers medical drapes, table-cloths,
and high-grade napkins. The strength of the non-woven fabric, especially wet tensile
strength, is an important property in many applications.
[0003] One way to improve the tensile strength of a non-woven material is through the incorporation
of crosslinking monomers into the polymer. The crosslinking monomers are capable of
self-crosslinking after application to the non-woven web. The most widely used crosslinking
monomer in such applications is N-methylol acrylamide. There are two problems with
the cross-linking monomers. First, is that there is an upper limit to amount of the
cross-linking monomer that can be incorporated to produce a useful binder under current
processes. Second, N-methylol acrylamide is a recognized source of formaldehyde, which
is undesirable in most applications. Several methods have been used to take advantage
of the higher tensile strength available from the use of N-methylol acrylamide, while
keeping the residual formaldehyde levels low.
[0004] U.S. Patent Number 4,449,978 discloses the use of acrylamide to replace some of the N-methylol acrylamide(NMA).
With N-methylol levels of from 1.75 to 3.5 percent of the polymer, free formaldehyde
levels of below 10 ppm were obtained.
[0005] U.S. Patent Number 5,540,987 discloses the use of an ascorbic acid initiator system to reduce the free formaldehyde
levels to less than 10 ppm for a non-woven binder containing from 0.5 to 10 percent,
and preferably from 1-5 percent of N-methylol acrylamide or other crosslinking monomers.
Exemplified are emulsion polymers having from 3 to 5 percent of NMA, formed at a polymerization
temperature of 75 to 80°C.
[0006] There is a need for a binder that can provide a non-woven fabric with a higher level
of wet tensile strength than currently available. For many applications, the high
wet strength must be obtainable at a low level of formaldehyde.
[0007] Surprisingly it has been found that ethylene-vinyl acetate emulsion binders having
higher levels of cross-linking monomer such as n-methylol acrylamide, that are made
by a low temperature polymerization, produce non-woven products having high wet tensile
strength, yet have low (less than 15 ppm) of formaldehyde.
SUMMARY OF THE INVENTION
[0008] The present invention is directed to a fibrous substrate made of chemically bonded
fibers, where the fibers are bound with a polymeric binder in an amount which is sufficient
to bind the fibers together to form a self-sustaining web. The binder is characterized
as having an average cross-machine direction (CMD) wet tensile strength of greater
than 4500 grams per inch (g/in) when measured at a 20 percent add-on on Whatman #4
Chromatography Paper which is drum dried for 90 seconds at 210 to 215°F and cured
for 2 minutes at 300 to 325°F.
[0009] The invention is also directed to a bonded substrate comprising
- a) a substrate comprising fibers; and
- b) a polymeric binder comprising at least 6 percent, and preferably at least 7 percent,
by weight of cross-linking monomer units,
wherein said bonded substrate is characterized as having less than 15 ppm of free
formaldehyde, and wherein said binder is present in an amount which is sufficient
to bind the fibers together to form a self-sustaining web.
[0010] The invention is further directed to a non-woven product comprising a non-woven web
of fibers bonded together with an emulsion polymer binder comprising
a) at least 50 percent by weight percent of vinyl acetate units;
b) 0 to 40 percent by weight of ethylene units;
c) 6 to 20 percent by weight of crosslinking monomer units;
d) 0.1 to 7 percent by weight of acrylamide, methacrylamide, or a mixture thereof;
and
e) 0 to 40 percent by weight of other co-monomers
wherein said non-woven product has a free formaldehyde content after drying of less
than 15 ppm.
[0011] The invention is directed further to a treated fibrous substrate comprising natural
or synthetic fibers that may be woven or non-woven, and having coated thereon an emulsion
polymer, wherein the level of free formaldehyde in the fibrous substrate is less than
15 ppm, and where the emulsion polymer is characterized as having a wet tensile strength
of greater than 4500 grams per inch (g/in) when measured at a 20 percent add-on on
Whatman #4 chromatography paper which is drum dried for 90 seconds at 210 to 215°F
and cured for 2 minutes at 300 to 325°F.
DETAILED DESCRIPTION OF THE INVENTION
[0012] The invention is directed to fibrous substrates that are bound together by a polymeric
binder. The polymeric binder contains cross-linking monomer units that provide the
product with high strength. Preferably the bonded fibrous substrate has web formaldehyde
in the finished product is less than 15 ppm.
[0013] By "web formaldehyde", "free formaldehyde", or "fabric formaldehyde" as used herein
is meant the amount of water-extractable formaldehyde as measured by the Japanese
Ministry of Health method JM 112-1973. A low web formaldehyde level as used herein
means a level of extractable formaldehyde in the final product of below 15 ppm, and
preferably below 10 ppm.
[0014] The polymeric binder of the present invention preferably is a crosslinkable emulsion
polymer. By "crosslinkable" as used herein is meant a polymer that is capable of undergoing
crosslinking, either by a self-crosslinking mechanism, or by the incorporation of
at least one functional monomer into the polymer backbone which can undergo a post-polymerization
crosslinking reaction to form crosslinks. Improved wet strength may also be achieved
via the addition of external crosslinkers such as melamine-formaldehyde, urea-formaldehyde,
phenol-formaldehyde, gloyoxal adducts, and other similar chemistries well known in
the art. These crosslinkers are not polymerized onto the polymer backbone, but are
rather post-added to the polymer mix. The negatives associated with these additives
are often binder stability, and increased levels of free formaldehyde. For the purposes
of this invention, a polymeric binder is defined as one that has all crosslinking
moieties polymerized directly onto the polymer backbone, and excludes any system that
requires the subsequent, or post-addition of an external crosslinking agent. Acid
catalysts may be post-added to enhance the crosslinking reaction, but it is well known
that these catalysts do not take part in the crosslinking reaction itself.
[0015] In a preferred embodiment, the polymeric binder is formed from vinyl acetate; at
least one crosslinkable monomer; either acrylamide or methacrylamide; and optionally
other ethylenically unsaturated monomers.
[0016] The primary monomer is vinyl acetate and the emulsions of this invention are derived
from polymers containing at least 50 percent by weight of vinyl acetate.
[0017] The crosslinking monomers used herein include N-methylol acrylamide, N-methylol methacrylamide,
N-methylol allyl carbamate, iso-butoxy methyl acrylamide and n-butoxy methyl acrylamide,
or a mixture thereof. The preferred crosslinking monomers are N-methylol acrylamide
as well as a blend of N-methylol acrylamide and acrylamide. An example of a blend
is NMA-LF which is commercially available from Cytec Industries. Acrylamide, methacrylamide,
or a mixture thereof is also used in forming the polymeric binder. These monomers
have some limited cross-linking capability. The (meth)acrylamide may be included as
part of a mixture with the crosslinking monomer, as mentioned above. Acrylamide, or
methacrylamide are present at from 0.1 to 7 percent by weight, based on the weight
of the polymer, and preferably from 1 to 5 percent by weight. The crosslinking monomer
is generally used at levels above 6 percent, preferably from 7 to 20 percent, and
more preferably from 7 to 12 percent based upon the weight of the polymer.
[0018] In addition to vinyl acetate and a crosslinking monomer, the preferred polymeric
binder may be copolymerized with at least one of any conventionally employed comonomers.
Suitable comonomers include those selected from the class of ethylene; vinyl chloride;
vinyl esters of aliphatic carboxylic acids containing 1-20 carbon atoms; dialkyl esters
of maleic and fumaric acid containing 1-8 carbon atoms in each alkyl group; and C
1-C
8 alkyl acrylates and methacrylates. These comonomers may be present in the emulsion
copolymers at levels up to 48 percent by weight of the total polymer composition.
In the case where ethylene is the comonomer, it is generally used in amounts up to
about 40 percent by weight. A preferred copolymer of the present invention is one
formed from vinyl acetate and ethylene.
[0019] Olefinically-unsaturated carboxylic acids may be used in an emulsion polymer. These
include the alkanoic acids having from 3 to 6 carbon atoms or the alkenedioic acids
having from 4 to 6 carbon atoms, like acrylic acid, methacrylic acid, crotonic acid,
itaconic acid, maleic acid or fumaric acid, or mixtures thereof in amounts sufficient
to provide up to about 4 percent by weight, of monomer units in the copolymer.
[0020] Optionally, polyunsaturated copolymerizable monomers may also be present in small
amounts, i.e., up to about 1 percent by weight. Such comonomers would include those
polyolefinically-unsaturated monomers copolymerizable with vinyl acetate, for example,
vinyl crotonate, allyl acrylate, allyl methacrylate, diallyl maleate, divinyl adipate,
diallyl adipate, diallyl phthalate, ethylene glycol diacrylate, ethylene glycol dimethacrylate,
butanediol dimethacrylate, methylene bis-acrylamide, triallyl cyanurate, etc. In addition,
certain copolymerizable monomers which assist in the stability of the copolymer emulsion,
e.g., sodium vinyl sulfonate, are also useful herein as latex stabilizer. These optionally
present monomers, if employed, are added in very low amounts of from 0.1 to about
2 percent by weight of the monomer mixture.
[0021] The emulsions are prepared using conventional batch, semi-batch or semi-continuous
emulsion polymerization procedures. Batch polymerization is preferred as it generally
produces higher molecular weight polymers, and higher molecular weight polymers lead
to higher wet strength binders. Generally, the monomers are polymerized in an aqueous
medium in the presence of the redox initiator system and at least one emulsifying
agent.
[0022] If a batch process is used, the vinyl acetate and any optional non-functional monomers
such as ethylene are suspended in water and are thoroughly agitated while being gradually
heated to polymerization temperature. The homogenization period is followed by a polymerization
period during which the initiator and functional monomers including N-methylol acrylamide
are added incrementally or continuously. The functional monomers are added slowly
to the reaction to minimize homopolymerization of the functional monomers, and instead
promote incorporation of the functional monomers into the polymer backbone. If the
slow addition procedure is employed, the vinyl acetate and any optional comonomers
are added gradually throughout the polymerization reaction. In either case, the polymerization
is performed at temperatures from 25°C to 60°C, preferably from 35°C to 60°C, for
sufficient time to achieve a low residual monomer content, e.g., from 0.5 to about
10 hours, preferably from 2 to 6 hours, to produce a latex having less than 1 percent,
preferably less than 0.2 weight percent, free monomer. The lower reaction temperature
range for the polymerization allows for a more controlled conversion rate, allowing
for the incorporation of a higher level of cross-linking monomer.
[0023] In the case of vinyl ester copolymers containing ethylene, processes suitable for
the emulsion polymerization are described in
U.S. Patent Number 5,540,987, incorporated herein by reference.
[0024] The initiator system is generally a redox system, which is effective for lower temperature
polymerizations. Redox systems using persulfate or peroxide initiators along with
a reducing agent are preferred. Peroxide initiators, and most preferably tert-butyl
hydrogen peroxide (tBHP) may be used to initiate polymerization. One particularly
preferred initiator system comprises a hydrophobic hydroperoxide, in amounts of between
0.05 and 3 percent by weight, preferably 0.1 and 1 percent by weight based on the
total amount of the emulsion and ascorbic acid, in amounts of 0.05 to 3 percent by
weight, preferably 0.1 to 1 percent by weight, based on the total amount of the emulsion.
The redox initiator system is slow-added during the polymerization.
[0025] To control the generation of free radicals, a transition metal often is incorporated
into the redox system, and such metals include an iron salt, e.g., ferrous and ferric
chloride and ferrous ammonium sulfate. The use of transition metals and levels of
addition to form a redox system for polymerization mediums are well-known.
[0026] The polymerization is carried out at a pH of between 2 and 7, preferably between
3 and 5. In order to maintain the pH range, it may be useful to work in the presence
of customary buffer systems, for example, in the presence of alkali metal acetates,
alkali metal carbonates, alkali metal phosphates. Polymerization regulators, like
mercaptans, chloroform, methylene chloride and trichloroethylene, can also be added
in some cases.
[0027] Useful dispersing agents are emulsifiers, surfactants, and protective colloids generally
used in emulsion polymerization, or a mixture thereof. The emulsifiers can be anionic,
cationic or nonionic surface active compounds, as known in the art. The emulsifiers
can be anionic, cationic or nonionic surface active compounds. Suitable anionic emulsifiers
are, for example, alkyl sulfonates, alkylaryl sulfonates, alkyl sulfates, sulfates
of hydroxylalkanols, alkyl and alkylaryl disulfonates, sulfonated fatty acids, sulfates
and phosphates of polyethoxylated alkanols and alkyphenols, as well as esters of sulfosuccinic
acid. Suitable cationic emulsifiers are, for example, alkyl quaternary ammonium salts,
and alkyl quaternary phosphonium salts. Examples of suitable non-ionic emulsifiers
are the addition products of 5 to 50 moles of ethylene oxide adducted to straight-chained
and branch-chained alkanols with 6 to 22 carbon atoms, or alkylphenols, of higher
fatty acids, or higher fatty acid amides, or primary and secondary higher alkyl amines;
as well as block copolymers of propylene oxide with ethylene oxide and mixtures thereof.
When combinations of emulsifying agents are used, it is advantageous to use a relatively
hydrophobic emulsifying agent in combination with a relatively hydrophilic agent.
The amount of emulsifying agent is generally from about 1 to 10, preferably from about
2 to about 8, weight percent of the monomers used in the polymerization. Various protective
colloids may also be used in addition to the emulsifiers described above. Suitable
colloids include polyvinyl alcohol, partially acetylated polyvinyl alcohol, e.g.,
up to 50 percent acetylated, casein, hydroxyethyl starch, carboxymethyl cellulose,
gum arabic, and the like, as known in the art of synthetic emulsion polymer technology.
In general, these colloids are used at levels of 0.05 to 4 percent by weight, based
on the total emulsion.
[0028] The dispersing agent used in the polymerization may be added in its entirety to the
initial charge, or a portion of the emulsifier, e.g., from 25 to 90 percent thereof,
can be added continuously or intermittently during polymerization.
[0029] The polymerization reaction is generally continued until the residual vinyl acetate
monomer content is below about 1 percent, preferably less than 0.2 percent. The completed
reaction product is then allowed to cool to about room temperature, while sealed from
the atmosphere.
[0030] The emulsions are produced and used at relatively high solids contents, e.g., between
35 to 60 percent, preferably 50 to 55 percent, although they may be diluted with water
as desired. Preferably the viscosity of the emulsion at 50 percent solids is less
than 500 cps.
[0031] The particle size of the latex can be regulated by the quantity of nonionic or anionic
emulsifying agent or protective colloid employed. To obtain smaller particles sizes,
greater amounts of emulsifying agents are used. As a general rule, the greater amount
of the emulsifying agent employed, the smaller the average particle size.
[0032] Polymeric binders of the present invention generally have a Tg in the range of from
-60°F to +50°C, and preferably between -40° and +35°C.
[0033] One significant property of fibrous substrates treated with the polymeric binder
of the invention is excellent wet strength. Wet strength of a binder can be determined
by measurement on Whatman #4 CHR Chromatography Paper, and this measurement is applicable
for determining wet strength in a variety of applications, and on a variety of substrates.
Wet strength is measured by applying a 20 percent by weight add-on of the binder on
Whatman #4 CHR Chromatography Paper via a saturation process. The paper is then drum
dried for 90 seconds at 210 to 215°F and cured for 2 minutes at 300 to 325°F. 1 inch
x 5 inch strips of the saturated Whatman paper are cut with the 5 inch length in the
cross-machine direction (CMD). Tensile strength is measured on a standard Instron
tensile tester, set at 3 inch gauge length and 1 inch per min. crosshead speed. Wet
tensile strength is measured after soaking specimens for one minute in a 1.0 percent
solution of Aerosol OT wetting agent. 5-7 tensile strips are measured for wet tensile
strength and an average value is taken. When tested by this method, the polymeric
binders of the present invention have an average cross-machine direction wet strength
of greater than 4500 grams per inch, preferably greater than 4750 grams per inch,
and most preferably greater than 5000 grams per inch. The high wet strength found
in substrates of the present invention allows a manufacturer to achieve a much higher
wet-strength non-woven product using an equivalent amount of add-on, or alternatively
may achieve an equivalent wet strength with a lower add-on - and thus a material cost
saving.
[0034] The emulsion binders of the invention may be used to bind fibers together in a substrate;
may be used to bind pigment, colors or other substances to a substrate; may be used
as a backing material; or may be used to finish or surface-treat a substrate.
[0035] The emulsion binders can be used to produce a non-woven product. A non-woven product
of the present invention is a chemically-bonded dry-formed web, as opposed to a mechanically
tangled or thermally bonded web. The web may be formed by any process known in the
art, such as a carded, air-laid, dry-laid, wet-laid, or air-formed process. The fibers
can be natural, synthetic, or a mixture thereof. The binder is applied to the fiber
by any means known in the art, such as print, foam, saturate, coating, and spraying;
then dried on steam cans or ovens as currently practiced in the production of non-woven
rolled goods. Binder add-on levels for non-wovens useful in the present invention
can be from 0.1 to 100 percent, preferably from 3 to 30 percent. Non-wovens made with
the binder of the present invention are useful in applications in which wet integrity
or resiliency is important, such as wipes, diapers, feminine hygiene, medical, and
filtration products. Non-woven wipes may be used in the dry form and wetted just prior
to use, or may be pre-moistened with either aqueous or organic solvents as known in
the art. Wipes are useful in applications that include household cleaning, personal
cleansing, baby wipes, and industrial wipes. Non-wovens of the invention includes
both disposable non-woven products, as well as durable non-wovens such as abrasive
pads, medical fabrics, and apparel lining.
[0036] The emulsion binder of the invention may also be used as a binder for double re-creped
paper. Double recreped paper is used in products such as toweling. The binder is print
applied at an add-on level of about 4 to 20 percent.
[0037] The emulsion binder may be used to bind other fibers, such as fiberglass, and carbon
fibers, by means known in the art.
[0038] The emulsion polymer binders of the invention are additionally useful in binding
pigments, colors or other substances to a substrate. Applications would include paper
finishes, colored paper binders, and abrasive pads including sanding papers.
[0039] The polymer can be used as a coating or treatment on woven and non-woven fabrics,
to improve the strength and durability of the substrate, especially in contact with
aqueous or nonaqueous liquids.
[0040] Paper and vinyl products coated with the emulsion can be used in applications in
which wet strength is an important property, such as in wall coverings that require
a high wet tear strength.
[0041] The properties of the polymer make it useful in backing for carpet, and flooring
applications such as vinyl flooring.
[0042] The high level of crosslinking in the emulsion polymer provides substrates treated
with the polymer, either as a binder of a coating, with good durability, weatherability
and resistance to water and solvents. In addition to woven and non-woven fabrics,
other materials benefiting from treatment with the emulsion include, but are not limited
to, metal, leather, wood, canvas, awnings, tarpolins, flocking upholstery, and fiberfill.
[0043] The following examples are presented to further illustrate and explain the present
invention and should not be taken as limiting in any regard.
Example 1
[0044] A general procedure for the preparation of a vinyl acetate -ethylene copolymer emulsion
of the invention is as follows:
[0045] The initial charge to the reactor includes the following:
| Water (deionized) |
2200.0 g |
| Ferrous sulfate (1% aq. sol'n) |
16.0 |
| Sod. Vinyl sulfonate (25%) |
96.0 |
| Sod. Lauryl ether sulfate (3EO), 30%Aq. |
100.0 |
| Fatty Alcohol (C12/14) Ethoxylate (10EO), 80% |
40.0 |
| Fatty Alcohol (C12/14) Ethoxylate (30EO), 65% |
45.0 |
| Sodium acetate |
0.5 |
| Ethylenediaminetetraacetic acid(1%) |
16.0 |
| Phosphoric acid |
1.5 |
| Ascorbic acid |
1.6 |
| Vinyl acetate |
3000.0 g |
Ethylene - amount to equilibrate reactor to 750 psi at 50°C
[0046] Slow additions:
| 1. |
Water |
800.0 |
| |
Sodium Lauryl ether sulfate (3EO), 30%Aq. |
40.0 |
| |
Fatty Alcohol (C12/14) Ethoxylate (10EO), 80% |
40.0 |
| |
Fatty Alcohol (C12/14) Ethoxylate (30EO), 65% |
45.0 |
| |
Sodium acetate |
1.8 |
| |
NMA-LF (48%)* |
580.0 |
| |
Sodium Dioctyl sulfosuccinate (75%) |
30.0 |
| 2. |
Water (deionized) |
250.0 g |
| |
t-butyl hydroperoxide (70% aq.sol'n) |
16.0 |
| 3. |
Water (deionized) |
250.0 g |
| |
Ascorbic acid |
12.0 |
| *NMA-LF is a blend of n-methylol acrylamide/acrylamide (48% aq. Solution) commercially
available from Cytec Industries. |
[0047] The pH of the initial aqueous charge was adjusted to 4.0-4.3 with the phosphoric
acid.
[0048] A 10L stainless steel pressure reactor was filled with initial aqueous mix. It was
flushed with nitrogen. With the agitation at about 250 rpm, the vinyl acetate was
added. After closing all reactor ports, it was purged twice with nitrogen (25 to 40
psi) and then with ethylene (50 psi). It was then heated to 50°C. Agitation was increased
to 550 rpm and it was pressurized with ethylene to 750 psi. The reactor temperature
and ethylene pressure were allowed to equilibrate for 15 - 20 minutes. The ethylene
supply was then closed off. Agitation was reduced to 400 rpm.
[0049] The reaction was initiated by starting both redox slow-additions (no.2 and 3) at
2.5 hr. rates (80 cc/hr). After the initial temperature rise, about 2-5°C, the jacket
temperature and oxidizer rate (no.2) are adjusted to allow the temperature to reach
60°C in about 15 minutes. The slow addition, no.1, was started and added over 4 hrs.
During the run, the oxidizer and reducer rates are adjusted to maintain conversion
rate with the reaction run at 60°C. The reaction is continued until the residual vinyl
acetate is reduced to 1.5-2.0% (about 2-2.5 hrs). It is then cooled to 45°C and transferred
to the degassing tank to vent off residual ethylene pressure. Defoamer, Colloid 681f
(Allied Colloids), was added to the degassing tank followed by finishing redox initiator.
This includes 15 g of a 6% t-BHP solution, waiting 5 minutes, then 15 g of a 6% Ascorbic
acid solution added over 15 minutes. This reduces the vinyl acetate to <0.3%. After
cooling to 30°C, the pH is adjusted to 4-5 with 14% ammonium hydroxide.
[0050] The emulsion had the final properties:
| Solids, % |
48.5 |
| Viscosity (20 rpm, RVT#3) |
640 cps |
| pH |
4.0 |
| %grit (200 mesh) |
0.020 |
| Tg,°C |
-15° |
Example 2
[0051] The process of Ex.1 is repeated, but the VA/E ratio is changed. The vinyl acetate
added initially is 3200 g., and the ethylene pressure charged initially is 600 psi.
The reaction was run as in Ex. 1 at 60°C and with a 4 hr slow-add of 1. (crosslinking
monomer)
[0052] The emulsion had the final properties:
| Solids, % |
50.5 |
| Viscosity (20 rpm, RVT#3) |
1300 cps |
| pH |
4.0 |
| %grit (200 mesh) |
0.020 |
| Tg, °C |
0° |
Example 3
[0053] The emulsion made as in Ex.2, with the level of crosslinking monomer, NMA-LF, increased
to 692 g. The reaction was run the same as in Ex.1. The final emulsion had the following
properties:
| Solids, % |
49.6 |
| Viscosity (20 rpm, RVT#3) |
750 cps |
| pH |
4.0 |
| %grit (200 mesh) |
0.030 |
| Tg, °C |
0° |
Example 4
[0054] The emulsion made as in Ex. 1, with the crosslinking monomer changed to NMA II* at
600 g. The reaction was run the same as in Ex.1. The final emulsion had the following
properties:
| Solids, % |
50.5 |
| Viscosity (20 rpm, RVT#3) |
480 cps |
| pH |
4.0 |
| %grit (200 mesh) |
0.030 |
| Tg, °C |
-17° |
*NMA II is a 48% aq. solution of NMA with reduced formaldehyde made according to United
States
Patent # 5,415,926. |
Example 5
[0055] Ex. 1 with increased Type II NMA adding at 720 g.
[0056] The final emulsion had the following properties:
| Solids, % |
49.6 |
| Viscosity (20 rpm, RVT#3) |
372 cps |
| pH |
3.7 |
| %grit (200 mesh) |
0.020 |
| Tg, °C |
-15° |
Example 6
[0057] Ex. 2 with NMA LF replaced with 720 g of NMA-II. The final emulsion had the following
properties:
| Solids, % |
50.5 |
| Viscosity (20 rpm, RVT#3) |
1350 cps |
| pH |
4.0 |
| %grit (200 mesh) |
0.020 |
| Tg, °C |
0° |
Example 7
[0058] Ex. 2 with the NMA LF replaced with 775 g NMA II . The final emulsion had the following
properties:
| Solids, % |
50.7 |
| Viscosity (20 rpm, RVT#3) |
450 cps |
| pH |
4.0 |
| %grit (200 mesh) |
0.030 |
| Tg, °C |
0° |
Example 8
[0059] The recipe as in Ex 2. With the level of crosslinking monomer, NMA-LF at 666 g in
slow addition 1. However the polymerization was run at 85°C
| Solids, % |
49.6 |
| Viscosity (20 rpm, RVT#3) |
220 cps |
| pH |
3.9 |
| %grit (200 mesh) |
0.015 |
| Tg, °C |
0° |
Example 9
[0060] The composition of Ex.8, however the polymerization was run at 75°C. The final emulsion
had the following properties:
| Solids, % |
49.6 |
| Viscosity (20 rpm, RVT#3) |
1250 cps |
| pH |
3.9 |
| %grit (200 mesh) |
0.020 |
| Tg, °C |
0° |
Example 10
[0061] The composition of Ex.2 however 600 g of the initial vinyl acetate was replaced with
Veova 10 monomer. The process was run as in the example at 60°C. The final emulsion
had the following properties:
| Solids, % |
50.9 |
| Viscosity (20 rpm, RVT#3) |
580 cps |
| PH |
3.7 |
| %grit |
0.020 |
| Tg, °C |
-17°C |
Example 11
[0062] The recipe was made as in Ex 2. with the level of crosslinking monomer, NMA-LF at
650 g in slow addition 1, and the sodium acetate reduced to 1 g. The reducing agent
, ascorbic acid, was replaced throughout with Bruggolite FF6; a commercially available
sulfinic acid type from L.Bruggemann Co. The polymerization was run at 60°C
| Solids, % |
49.8 |
| Viscosity (20 rpm, RVT#3) |
340 cps |
| pH |
4.8 |
| %grit (200 mesh) |
0.020 |
| Tg, °C |
0° |
Example 12 Comparative example
[0063] DUR-O-SET Elite 22, a -15°C T
g self-crosslinking EVA emulsion copolymer commercially available from National Starch
and Chemical Company.
Example 13 Comparative example
[0064] AIRFLEX 192, a +12°C T
g self-crosslinking EVA emulsion copolymer commercially available from Air Products
and Chemicals, Inc.
TABLE 1
| Example # |
Reaction Temperature
°C |
Tg
°C |
Crosslinking Monomer Type |
Crosslinkingg Monomer Level pts. phm |
CMD Wet Tensile
g/in |
Fabric Formaldehyde
ppm |
| 1 |
60 |
-15 |
NMA LF |
7 |
4765 |
|
| 2 |
60 |
0 |
NMA LF |
7 |
4720 |
|
| 3 |
60 |
0 |
NMA LF |
8.3 |
5065 |
11 |
| 4 |
60 |
-15 |
NMA II |
7 |
4610 |
|
| 5 |
60 |
-15 |
NMA II |
8.3 |
4825 |
|
| 6 |
60 |
0 |
NMA II |
8.3 |
5135 |
20 |
| 7 |
60 |
0 |
NMA II |
9 |
4891 |
|
| 8 |
85 |
0 |
NMA LF |
8 |
4421 |
11 |
| 9 |
60 |
0 |
NMA LF |
8 |
4652 |
9 |
| 10 |
60 |
-20 |
NMA LF |
7 |
4559 |
|
| 11 |
60 |
0 |
NMA LF |
8 |
4160 |
17 |
| 12 |
|
-15 |
|
|
3710 |
14 |
| 13 |
|
+10 |
|
|
4306 |
|
[0065] CMD Wet Tensile Performance is generated utilizing the aforementioned procedure of
applying the emulsion polymer to Whatman #4 CHR chromatography paper to a 20 percent
by weight add-on. The add-on is achieved by utilizing a bath solids of 20 to 30 percent
solids. All examples include 0.75 percent to 1.0 percent acid catalyst (polymer solids
on catalyst solids). The paper is then drum dried for 90 seconds at 210 to 215°F and
cured for 2 minutes at 300 to 325°F. 1 inch x 5 inch strips of the saturated Whatman
paper are cut with the 5 inch length in the cross-machine direction (CMD). Tensile
strength is measured on a standard Instron tensile tester, set at 3 inch gauge length
and 1 inch per minute crosshead speed. Wet tensile strength is measured after soaking
specimens for one minute in a 1.0 percent solution of Aerosol OT wetting agent. 5-7
strips are pulled on the Instron in the cross-machine direction to generate the wet
tensile strength values and an average measurement is taken.
[0066] Examples 14-25 were completed by producing airlaid nonwoven structures on an M&J
Fibretech pilot airlaid machine in Horsens, Denmark. DUR-O-SET Elite 33, a
+10 Tg self-crosslinking EVA copolymer commercially available from National Starch
and Chemical Company and AIRFLEX 192, a
+10 Tg self-crosslinking EVA copolymer commercially available from Air Products and
Chemicals, Inc. Airlaid nonwoven structures were produced utilizing machine line speeds
of 50 meters per minute with an exit sheet temperature of 155°C. The airlaid basesheet
conditions consist of a target basis weight of 55 grams per square meter (gsm) and
a caliper range of 0.8 - 1.1 millimeters (mm). Polymer add-on targeted 14 percent
and 18 percent by weight of the final nonwoven and was achieved via spray-application
of the binder at dilution solids of 12 to 13 percent. All airlaid structures utilized
Weyerhaeuser NB416 fluff pulp which is commercially available from Weyerhaeuser Company.
TABLE 2
| Example # |
Polymer Type |
Polymer Add-On
% |
Basis Weight
gsm |
Caliper
mm |
CMD Wet Tensile
N/5cm |
| 14 |
Example 3 |
14 |
53.6 |
1.00 |
4.3 |
| 15 |
Example 3 |
14 |
54.6 |
0.70 |
7.3 |
| 16 |
Example 3 |
18 |
54.2 |
1.00 |
5.9 |
| 17 |
Example 3 |
18 |
54.5 |
0.75 |
10.4 |
| 18 |
Elite 33 |
14 |
54.1 |
1.00 |
3.9 |
| 19 |
Elite 33 |
14 |
54.5 |
0.75 |
5.5 |
| 20 |
Elite 33 |
18 |
53.2 |
0.95 |
4.7 |
| 21 |
Elite 33 |
18 |
54.8 |
0.75 |
7.5 |
| 22 |
Airflex 192 |
14 |
53.7 |
1.05 |
2.9 |
| 23 |
Airflex 192 |
14 |
54.7 |
0.75 |
6.2 |
| 24 |
Airflex 192 |
18 |
53.7 |
1.00 |
5.1 |
| 25 |
Airflex 192 |
18 |
55.9 |
0.80 |
8.5 |
[0067] CMD wet tensile performance was completed utilizing EDANA test method EDANA 20.2-89
in water. All polymers were formulated with 0.75 percent to 1.0 percent acid catalyst
(polymer solids on catalyst solids) and AIRFLEX 192 included an additional formulation
of 1 percent dioctyl sulfosuccinate surfactant (polymer solids on surfactant solids).
CMD wet measurement is defined in Newton per 5 centimeters (N/5cm)
1. A fibrous substrate comprising chemically bonded fibers wherein said fibers are bonded
by a polymeric binder wherein said binder s present in an amount which is sufficient
to bind the fibers together to form a self-sustaining web, and wherein said binder
comprises
a) at least 50 percent by weight of vinyl ester units;
b) 0 to 40 percent by weight of ethylene units;
c) 5 to 20 percent by weight of crosslinking monomer units;
d) 0.1 to 5 percent by weight of acrylamide, methacrylamide, or a mixture thereof;
e) 0 to 40 percent by weight of other co-monomers
and wherein said binder is characterized as having an average cross-machine direction
(CMD) wet tensile strength of greater than 4500 grams per inch (g/in) when measured
at a 20 percent add-on using Whatman #4 CHR Chromatography paper which is drum dried
for 90 seconds at 210 to 215 °F and cured for 2 minutes at 300 to 325°F.
2. The fibrous substrate of claim 1 wherein said substrate is a non-woven material.
3. The fibrous substrate of claim 2 wherein said non-woven material comprises chemically-bonded
dry-formed non-woven web.
4. The fibrous substrate of claim 1 wherein the level of free formaldehyde is less than
15 ppm.
5. The fibrous substrate of claim 4 wherein the level of free formaldehyde is less than
10ppm.
6. The fibrous substrate of claim 1 wherein the binder is characterized as having a wet
tensile strength of greater than 4750 g/in.
7. The fibrous substrate of claim 6 wherein the binder is characterized as having a wet
tensile strength of greater than 5000 g/in.
8. The fibrous substrate of claim 1 wherein said fibers are natural fibers, synthetic
fibers, or a mixture thereof.
9. A bonded substrate comprising
a) a substrate comprising fibers; and
b) a polymeric binder comprising
at least 50 percent by weight of vinyl ester units;
0 to 40 percent by weight of ethylene units;
5 to 20 percent by weight of cross-linking monomer units;
0.1 to 5 percent by weight of acrylamide, methacrylamide, or a mixture thereof;
0 to 40 percent by weight of other co-monomers, and
wherein said bonded substrate is characterized as having less than 15 ppm of free
formaldehyde, and wherein said binder is present in an amount which is sufficient
to bind the fibers together to form a self-sustaining web, and
wherein said binder is characterized as having an average cross-machine direction
(CM) wet tensile strength of greater than 4500 grams per inch (g/in) when measured
at a 20 percent add-on using Whatman #4 CHR Chromatography paper which is drum dried
for 90 seconds at 210 to 215 °F and cured for 2 minutes at 300 to 325°F.
10. The bonded substrate of claim 9 wherein said crosslinking monomer is n-methylol acrylamide.
11. The bonded substrate of claim 9 wherein said polymeric binder further comprises from
0.1 to 7 percent by weight of acrylamide, methacrylamide, or a mixture thereof.
12. The bonded substrate of claim 9 wherein said substrate comprises a non-woven product.
13. The bonded substrate of claim 9 wherein said non-woven product is formed by an air-laid
process.
14. The bonded substrate of claim 9 wherein the level of free formaldehyde is less than
10 ppm.
15. The bonded substrate of claim 9 wherein said substrate is a double recreped paper,
fibreglass, an abrasive pad, a carpet or a floor covering, a wall covering, or a paper.
16. The bonded substrate of claim 9 comprising at least 7 percent by weight of cross-linking
monomer units.
17. A non-woven product comprising a non-woven web of fibers bonded together with an emulsion
polymer binder comprising
a) at least 50 percent by weight of vinyl ester units;
b) 0 to 40 percent by weight of ethylene units;
c) 5 to 20 percent by weight of crosslinking monomer units;
d) 0,1 to 5 percent by weight of acrylamide, methacrylamide, or a mixture thereof;
e) 0 to 40 percent by weight of other co-monomers
wherein said non-woven product has a free formaldehyde content after drying of less
than 15 ppm, and
wherein said binder is characterized as having an average cross-machine direction
wet tensile strength of greater than 4500 grams per inch (g/in) when measured at a
20 percent add-on using Whatman #4 CHR Chromatography paper which is drum dried for
90 seconds at 210 to 215°F and cured for 2 minutes at 300 to 325°F.
18. The non-woven product of claim 17, comprising 7 to 12 percent by weight of crosslinking
monomer.
19. The nonwoven product of claim 17, wherein said crosslinking monomer comprises n-methylol
acrylamide.
1. Fasriges Substrat umfassend chemisch gebundene Fasern, wobei diese Fasern durch ein
polymeres Bindemittel gebunden sind, wobei dieses Bindemittel in ausreichender Menge
vorhanden ist, um die Fasern zu einer selbsthaltenden Bahn zu binden, und wobei dieses
Bindemittel
a) mindestens 50 Gewichtsprozent Vinylester-Einheiten;
b) 0 bis 40 Gewichtsprozent Ethylen-Einheiten;
c) 5 bis 20 Gewichtsprozent Vernetzungsmonomer-Einheiten;
d) 0,1 bis 5 Gewichtsprozent Acrylamid, Methacrylamid oder ein Gemisch davon;
e) 0 bis 40 Gewichtsprozent andere Comonomere,
wobei dieses Bindemittel
dadurch gekennzeichnet ist, dass es in Querrichtung (CMD) eine durchschnittliche Nasszugfestigkeit von über 4500 Gramm
pro Zoll (g/in) aufweist, wenn gemessen bei 20 Prozent Zusatz mit Chromatographiepapier
Whatman #4 CHR, das 90 Sekunden lang bei 210 bis 215 °F trommelgetrocknet und 2 Minuten
lang bei 300 bis 325 °F gehärtet wird.
2. Fasriges Substrat nach Anspruch 1, wobei dieses Substrat ein Vliesstoff ist.
3. Fasriges Substrat nach Anspruch 2, wobei dieser Vliesstoff eine chemisch gebundene,
trocken gebildete Vliesbahn umfasst.
4. Fasriges Substrat nach Anspruch 1, wobei der Gehalt an freiem Formaldehyd unter 15
ppm beträgt.
5. Fasriges Substrat nach Anspruch 4, wobei der Gehalt an freiem Formaldehyd unter 10
ppm beträgt.
6. Fasriges Substrat nach Anspruch 1, wobei das Bindemittel dadurch gekennzeichnet ist, dass es eine Nasszugfestigkeit von über 4750 g/in aufweist.
7. Fasriges Substrat nach Anspruch 6, wobei das Bindemittel dadurch gekennzeichnet ist, dass es eine Nasszugfestigkeit von über 5000 g/in aufweist.
8. Fasriges Substrat nach Anspruch 1, wobei diese Fasern natürliche Fasern, synthetische
Fasern oder ein Gemisch davon sind.
9. Gebundenes Substrat umfassend
a) ein Substrat, das Fasern umfasst; und
b) ein polymeres Bindemittel umfassend
mindestens 50 Gewichtsprozent Vinylester-Einheiten;
0 bis 40 Gewichtsprozent Ethylen-Einheiten;
5 bis 20 Gewichtsprozent Vernetzungsmonomer-Einheiten;
0,1 bis 5 Gewichtsprozent Acrylamid, Methaycrylamid oder ein Gemisch davon;
0 bis 40 Gewichtsprozent andere Conomonere, und
wobei dieses gebundene Substrat
dadurch gekennzeichnet ist, dass es weniger als 15 ppm freies Formaldehyd aufweist und wobei dieses Bindemittel in
einer Menge vorhanden ist, die ausreicht, um die Fasern zur Bildung einer selbsthaltenden
Bahn zu binden, und
wobei dieses Bindemittel
dadurch gekennzeichnet ist, dass es in Querrichtung (CMD) eine durchschnittliche Nasszugfestigkeit von über 4500 Gramm
pro Zoll (g/in) aufweist, wenn gemessen bei 20 Prozent Zusatz mit Chromatographiepapier
Whatman #4 CHR, das 90 Sekunden lang bei 210 bis 215 °F trommelgetrocknet und 2 Minuten
lang bei 300 bis 325 °F gehärtet wird.
10. Gebundenes Substrat nach Anspruch 9, wobei dieses Vernetzungsmonomer N-Methylol-Acrylamid
ist.
11. Gebundenes Substrat nach Anspruch 9, wobei dieses polymere Bindemittel ferner 0,1
bis 7 Gewichtsprozent Acrylamid, Methaycrylamid oder ein Gemisch davon umfasst.
12. Gebundenes Substrat nach Anspruch 9, wobei dieses Substrat ein Vlieserzeugnis umfasst.
13. Gebundenes Substrat nach Anspruch 9, wobei dieses Vlieserzeugnis durch ein Airlaid-Verfahren
gebildet wird.
14. Gebundenes Substrat nach Anspruch 9, wobei der Gehalt an freiem Formaldehyd unter
10 ppm beträgt.
15. Gebundenes Substrat nach Anspruch 9, wobei dieses Substrat ein doppelt gekrepptes
Papier, Glasfaser, ein Schleifpad, ein Teppich oder ein Fußbodenbelag, eine Tapete
oder ein Papier ist.
16. Gebundenes Substrat nach Anspruch 9, umfassend mindestens 7 Gewichtsprozent Vernetzungsmonomer-Einheiten.
17. Vlieserzeugnis umfassend eine Vliesbahn von Fasern, die mit einem Emulsionspolymerbindemittel
gebunden sind, welches umfasst:
a) mindestens 50 Gewichtsprozent Vinylester-Einheiten;
b) 0 bis 40 Gewichtsprozent Ethylen-Einheiten;
c) 5 bis 20 Gewichtsprozent Vernetzungsmonomer-Einheiten;
d) 0,1 bis 5 Gewichtsprozent Acrylamid, Methacrylamid oder ein Gemisch davon;
e) 0 bis 40 Gewichtsprozent andere Comonomere,
wobei dieses Vlieserzeugnis nach der Trocknung einen Gehalt an freiem Formaldehyd
von unter 15 ppm aufweist, und
wobei dieses Bindemittel
dadurch gekennzeichnet ist,
dass es in Querrichtung (CMD) eine durchschnittliche Nasszugfestigkeit von über 4500 Gramm
pro Zoll (g/in) aufweist, wenn gemessen bei 20 Prozent Zusatz mit Chromatographiepapier
Whatman #4 CHR, das 90 Sekunden lang bei 210 bis 215 °F trommelgetrocknet und 2 Minuten
lang bei 300 bis 325 °F gehärtet wird.
18. Vliesprodukt nach Anspruch 17, umfassend 7 bis 12 Gewichtsprozent Vernetzungsmonomer.
19. Vliesprodukt nach Anspruch 17, wobei dieses Vernetzungsmonomer N-Methylol-Acrylamid
umfasst.
1. Substrat fibreux comprenant des fibres chimiquement liées, dans lequel lesdites fibres
sont liées par un liant polymère, où ledit liant est présent dans une quantité qui
est suffisante pour lier ensemble les fibres afin de former un tissu autonome, et
dans lequel ledit liant comprend :
a) au moins 50 % en poids de motifs ester de vinyle ;
b) 0 à 40 % en poids de motifs éthylène ;
c) 5 à 20 % en poids de motifs monomère de réticulation ;
d) 0,1 à 5 % en poids d'acrylamide, de méthacrylamide ou d'un mélange de ceux-ci ;
e) 0 à 40 % en poids d'autres comonomères,
et dans lequel ledit liant est
caractérisé en ce qu'il présente une résistance moyenne à la rupture par traction à l'état humide dans
le sens transversal à la machine supérieure à 4500 grammes par pouce (g/pouce) telle
que mesurée avec un ajout de 20 % et en utilisant un papier de chromatographie Whatman
#4 CHR séché au tambour pendant 90 secondes entre 210 et 215°F et durci pendant 2
minutes entre 300 et 325 °F.
2. Substrat fibreux selon la revendication 1, dans lequel ledit substrat est un matériau
non tissé.
3. Substrat fibreux selon la revendication 2, dans lequel ledit matériau non tissé comprend
un tissu non tissé formé à sec et chimiquement lié.
4. Substrat fibreux selon la revendication 1, dans lequel le niveau de formaldéhyde libre
est inférieur à 15 ppm.
5. Substrat fibreux selon la revendication 4, dans lequel le niveau de formaldéhyde libre
est inférieur à 10 ppm.
6. Substrat fibreux selon la revendication 1, dans lequel le liant est caractérisé en ce qu'il présente une résistance à la rupture par traction à l'état humide supérieure à
4750 g/pouce.
7. Substrat fibreux selon la revendication 6, dans lequel le liant est caractérisé en ce qu'il présente une résistance à la rupture par traction à l'état humide supérieure à
5000 g/pouce.
8. Substrat fibreux selon la revendication 1, dans lequel lesdites fibres sont des fibres
naturelles, des fibres synthétiques, ou un mélange de celles-ci.
9. Substrat lié comprenant :
a) un substrat comprenant des fibres ; et
b) un liant polymère comprenant
au moins 50 % en poids de motifs ester de vinyle ;
0 à 40 % en poids de motifs éthylène ;
5 à 20 % en poids de motifs monomère de réticulation ;
0,1 à 5 % en poids d'acrylamide, de méthacrylamide ou d'un mélange de ceux-ci ;
0 à 40 % en poids d'autres comonomères, et
dans lequel ledit substrat lié est
caractérisé en ce qu'il présente moins de 15 ppm de formaldéhyde libre, et dans lequel ledit liant est
présent dans une quantité qui est suffisante pour lier ensemble les fibres et former
un tissu autonome, et
et dans lequel ledit liant est
caractérisé en ce qu'il présente une résistance moyenne à la rupture par traction à l'état humide dans
le sens transversal à la machine supérieure à 4500 grammes par pouce (g/pouce) telle
que mesurée avec un ajout de 20 % et en utilisant un papier de chromatographie Whatman
#4 CHR séché au tambour pendant 90 secondes entre 210 et 215 °F et durci pendant 2
minutes entre 300 et 325 °F.
10. Substrat lié selon la revendication 9, dans lequel ledit monomère de réticulation
est un acrylamide de n-méthylol.
11. Substrat lié selon la revendication 9, dans lequel ledit liant polymère comprend en
outre 0,1 à 7 % en poids d'acrylamide, de méthacrylamide, ou d'un mélange de ceux-ci.
12. Substrat lié selon la revendication 9, dans lequel ledit substrat comprend un produit
non tissé.
13. Substrat lié selon la revendication 9, dans lequel ledit produit non tissé est formé
par un procédé aérodynamique par voie sèche (ou "procédé air-laid").
14. Substrat lié selon la revendication 9, dans lequel le niveau de formaldéhyde libre
est inférieur à 10 ppm.
15. Substrat lié selon la revendication 9, dans lequel ledit substrat est un papier re-crêpé
double, de la fibre de verre, un tampon abrasif, un tapis ou un revêtement de sol,
un papier peint ou un papier.
16. Substrat lié selon la revendication 9, comprenant au moins 7 % en poids de motifs
monomère de réticulation.
17. Produit non tissé comprenant un tissu non tissé de fibres liées ensemble avec un liant
de polymère en émulsion, comprenant
a) au moins 50 % en poids de motifs ester de vinyle ;
b) 0 à 40 % en poids de motifs éthylène ;
c) 5 à 20 % en poids de motifs monomère de réticulation ;
d) 0,1 à 5 % en poids d'acrylamide, de méthacrylamide ou d'un mélange de ceux-ci ;
e) 0 à 40 % en poids d'autres comonomères,
dans lequel ledit produit non tissé a une teneur en formaldéhyde libre après séchage
inférieure à 15 ppm, et
dans lequel ledit liant est
caractérisé en ce qu'il présente une résistance moyenne à la rupture par traction à l'état humide dans
le sens transversal à la machine supérieure à 4500 grammes par pouce (g/pouce) telle
que mesurée avec un ajout de 20 % en utilisant un papier de chromatographie Whatman
#4 CHR séché au tambour pendant 90 secondes entre 210 et 215 °F et durci pendant 2
minutes entre 300 et 325 °F.
18. Produit non tissé selon la revendication 17, comprenant 7 à 12 pourcent en poids de
monomère de réticulation.
19. Produit non tissé selon la revendication 17, dans lequel ledit monomère de réticulation
comprend un acrylamide de n-méthylol.