[0001] This invention relates to abrasive belts and to their manufacture. In particular,
this invention relates to a method of splicing the ends of strips of abrasive coated
material to produce abrasive belts.
[0002] Abrasive belts are manufactured by joining (splicing) together the two free ends
of an elongate strip of material coated with an abrasive to form an endless belt.
Two types of joint are commonly used to splice together the ends of the material known
as the 'lap splice' and the 'butt splice'.
[0003] A lap splice is formed by removing the abrasive layer from one end of the strip of
material (skiving) or in some cases from both ends of the material (double skiving),
coating one or both ends with a suitable adhesive and overlapping them to form the
splice. The preparation of lap splices is disclosed in U.S. Patent Specification Nos.
1,009,709, 2,445,807, 3,037,852 and 3,643,387.
[0004] British Patent Specification No. 1340598 discloses a method of lap-slicing abrasive
materials, in which the two free ends of the material are each bevelled so as to be
complementary to the other, in practise necessitating the removal of the make-abrasive
from one end, and then overlapped to form the splice. A slab of an adhesive composition
is sandwiched between the two ends which are then heated under pressure so as to cause
the adhesive to flow into contact with all the surfaces of the joint.
[0005] Lap splices are always somewhat stiffer than the rest of the belt, a condition which
predisposes them to failure by delamination when the belt is in use. Moreover, such
splices are slightly thicker than the rest of the belt which causes it to "bump" or
"chatter" during use which is particularly aggravating for the machine operator. Furthermore,
such belts are recommended to be run in one direction to minimise the chances of snagging
the uppermost layer.
[0006] The "butt splice" is a joint in which the free ends of the belt are brought together
without overlapping and secured, usually by means of a patch or strip of material
over the ends of the belt on the non-abrasive side. Examples of such joints are disclosed
in U.S. Patent Specification Nos. 766,930, 1,588,255, 1,728,673, 2,391,731, 2,733,181,
2,794,726, 3,154,897, 3,402,514 and 3,427,765.
[0007] British Patent Specification No. 1492789 discloses a method of forming a reinforced
butt-splice for an abrasive belt, in which the two free ends of a strip of abrasive-coated
material are brought together without overlapping and secured by means of a reinforcing
patch. The patch is affixed over the two ends on the non-abrasive side of the belt.
The patch comprises a laminate of a woven fabric layer and a layer of a heat-resistant
plastics material which is glued across the joint. The reinforcing patch is normally
prepared by gluing the fabric and plastics layer together, although the two may also
be heat fused.
[0008] British Patent Publication No. 2232636 discloses another method of forming a reinforced
butt-splice for endless abrasive belts, in which the two free ends of the strip of
abrasive-coated material are brought together without overlapping, and secured by
means of a "bonding layer". The bonding layer comprises a reinforced backing layer,
typically a sheet of a plastics material with a fibrous reinforcement bonded thereto,
which is coated or impregnated with a hot-melt adhesive. The bonding layer is affixed
over the two ends on the non-abrasive side of the belt and heat applied to promote
bonding.
[0009] Although abrasive belts incorporating butt splices can be run in either direction,
they still suffer from many of the disadvantages inherent in belts incorporating lap
splices. For example, the reinforcing material produces a raised area over the join
which causes premature loss of abrasive in that region and also the formation of grooves
in the workpiece which will tend to mar the same. Moreover, such joints tend to wear
out at the end portions causing them to split and pull away from each other under
the stresses and strains to which the belts are subjected to in use. This is a particular
problem when sanding and polishing hard substances, such as glass, marble, granite
etc. Furthermore, the raised area of a reinforced butt splice still causes the belt
to "bump" and "chatter" when used on abrading machines comprising a back support platen
or wheel.
[0010] U.S. Patent Specification No. 3,333,372 discloses an abrasive belt comprising:
a flexible base sheet including an inner surface and an outer surface,
a layer of finely divided abrasive particles adhesively secured to the outer surface,
the flexible base sheet having end portions abutting each other to form a closed,
continuous loop,
a film of flexible adhesive material on the inner surface of the flexible base
sheet, and
a reinforcing film of a tough, flexible reinforcing material bonded to the adhesive
film on the inner surface of the latter, the flexible reinforcing film comprising
a material selected from the group of film-forming materials consisting of poly(ethylene
terephthalate) and vulcanised fibre, the flexible base sheet having a joint with abutting
end portions cut at an angle of about 45° relative to the side edges of the flexible
base sheet, and the reinforcing film having a fused joint spaced longitudinally from
the first joint and with abutting end portions cut at acute angles relative to the
side edges thereof. The integrity of the belt is derived from the presence of the
fused joint formed in the reinforcing film. The base sheet and adhesive material do
not contribute significantly to the mechanical strength of the belt. Moreover, the
use of heat to fuse the free ends of the poly(ethylene terephthalate) or vulcanised
fibre reinforcing film may produce a somewhat brittle joint which is prone to shear
and split during use.
[0011] FR-A-2449743 discloses the joining of an endless belt that does not contain thermoplastic
fibres. The joining is effected using a thermoadhesive film placed between two overlapping
ends of the belt. This approach avoids the more laborious procedure of sewing. The
thermoadhesive film is not activated in cold conditions, and in order to place the
film correctly between the two ends of the belt, layers of self-adhesive resin are
introduced on the two surfaces of the film. To allow the film to be stored and easily
removed, non-stick protective masking film may cover the self-adhesive layers until
the belt is joined.
[0012] US-A-3,729,873 discloses an endless flexible abrasive belt made of one or more pieces
of abrasive sheet material. In order to form an endless belt, the piece(s) of abrasive
sheet material are joined at a pair of opposite or successive edges (ends). The joint
between abutting edges (ends) is made with thermoplastic resin (e.g., polyamide) as
a solder so as to form a soldered seam, the thickness of which is essentially equal
to the thickness of the abrasive material.
[0013] US-A-4,018,574 relates to spirally wound abrasive belts, and discloses an endless
coated abrasive article formed by helically winding a strip of abrasive material into
a spiral of coils, wherein the edges of the strip are in an abutting arrangement which
form a spiral butt. The inner periphery of the helically wound strip of abrasive material
has a continuous layer of resinous composition. Any resinous material having the desired
characteristics of adhesion to the backing of the coated abrasive material, strength,
flexibility, and wear-resistance is said to be useful as the resinous composition.
Further, the resinous composition may be in the form of a particulate solid capable
of temporarily flowing on heating, or as a coating on the reinforcing material.
[0014] The present invention seeks to provide an alternative method for splicing the ends
of a strip of abrasive coated material in the manufacture of endless abrasive belts.
[0015] According to one aspect of the present invention there is provided a method of making
an endless coated abrasive belt, the method comprising the steps of:
(a) providing an elongated strip of a flexible backing laminate material having complementary
ends, a width, a length, at least one major surface, and having an abrasive layer
attached to the major surface, the flexible backing laminate material comprising at
least one flexible support and a hot-melt adhesive layer, the hot-melt adhesive layer
being parallel to the major surface of the flexible backing laminate material and
extending the length of the elongated strip;
(b) abutting the complementary ends to provide a belt;
(c) applying pressure and heat over an area of the abutting ends sufficient to cause
the hot-melt adhesive to flow across the abutting complementary ends; and
(d) allowing the heated area to cool while maintaining pressure whereby the hot melt
adhesive is continuous over the abutting ends.
[0016] According to a second aspect of the invention there is provided a method of making
an endless coated abrasive belt, the method comprising the steps of:
(a) providing an elongated strip of a flexible backing laminate material having complementary
ends, a width, a length, and at least one major surface, the flexible backing laminate
material comprising at least one flexible support and a hot-melt adhesive layer, the
hot-melt adhesive layer being parallel to the major surface of the flexible backing
laminate material and extending the length of the elongated strip;
(b) abutting the complementary ends to provide a belt;
(c) applying pressure and heat over an area of the abutting ends sufficient to cause
the hot-melt adhesive to flow across the abutting complementary ends;
(d) allowing the heated area to cool while maintaining pressure, whereby the hot-melt
adhesive is continuous over the abutting ends and provides a splice; and
(e) applying an abrasive layer to the major surface to provide an endless coated abrasive
belt, the coated abrasive belt having a thickness, wherein the thickness is the same
throughout its length.
[0017] The invention provides a simple and effective method of preparing an endless abrasive
belt of substantially uniform thickness by butt joining an elongate strip without
the use of reinforcing patches or the like. The invention utilises a flexible support
in conjunction with a layer of hot-melt adhesive which is caused to form a continuous
layer within the region of the butt joint and possesses sufficient strength to ensure
the integrity of the belt during its use.
[0018] Abrasive belts formed with such a joint run equally well in either direction and
are found to have a greatly extended working life when compared with abrasive belts
of the prior art. The joint is easily fabricated and lends itself to the use of automated
machinery. Moreover, as the joint has substantially the same thickness, density and
flexibility as the remainder of the belt, abrasive belts incorporating such a joint
are less prone to premature wear in the joint region, thereby avoiding the problem
of marking the workpiece, and they do not "bump" or "chatter" during use.
[0019] The invention will now be described by way of example with reference to the accompanying
drawings in which:
Figures 1 and 2 represent schematic illustrations of the manufacture of an abrasive
belt in accordance with the invention, and
Figure 3 represents a plan view of the butt splice of an abrasive belt manufactured
in accordance with the invention.
[0020] Referring to Figures 1 and 2 generally, the abrasive belt is formed from an elongate
strip of an abrasive coated material (2) only the end portions (4 and 6) of which
are shown. The abrasive coated material (2) comprises a flexible backing material
(8) which, in the embodiment shown, comprises two flexible supports (10 and 12) sandwiching
a layer (14) of a hot-melt adhesive and a layer (16) of an abrasive material. The
layer (16) of abrasive material may be coated or laminated onto the flexible backing
material (8) either prior to (as shown in Figure 1) or after formation of the butt
splice (18) (as shown in Figure 2), the latter arrangement allowing the join (20)
of the abrasive layer to be offset from the butt splice (18). In this manner, the
structural integrity of the layer (16) of abrasive material may advantageously contribute
to the overall strength of the butt splice (18).
[0021] In an alternative embodiment (not shown), the backing material (8) may comprise a
single flexible support (12) bearing the adhesive layer (14) onto which is applied
the layer (16) of abrasive material.
[0022] The flexible supports (10 and 12) of the backing material (8) may comprise any suitable
material known in the art including both woven and non-woven webs, papers, fabrics
and cloths and polymeric films. The flexible supports (10 and 12) preferably comprise
a web of a woven material.
[0023] The hot-melt adhesive is selected so that the melting temperature of the adhesive
is above the operating temperature of the abrasive belt. For high temperature applications
the hot-melt adhesive should have a melting point at or above 220°C, while for lower
temperature applications, the melting point may be as low as 120°C. Polyester based
adhesives are found to be particularly suitable for use in the present invention.
[0024] The backing material preferably comprises two flexible support layers sandwiching
a layer of a hot melt adhesive. The backing material generally has a thickness in
the range 0.5 to 2.5 mm, preferably 1.0 to 1.5 mm with a typical value of about 1.3
mm and a weight of from 0.5 to 2.5 kg/m², preferably 0.75 to 1.5 kg/m² with a typical
value of about 1.15 kg/m².
[0025] A preferred backing material (8) is commercially available from Charles Walker &
Co. Ltd., under the trade name BETALON TC13/NM and comprises two woven polyester/cotton
sheets with a layer of a polyester hot-melt adhesive therebetween.
[0026] The layer (16) of abrasive material may comprise particles of abrasive mineral or
grit embedded in one or more resin layers, but more preferably it comprises a layer
of a mesh material onto which is electrodeposited a layer of a metal, e.g., nickel,
into which are embedded particles of abrasive mineral. The coated mesh material is
simply laminated onto the upper flexible support (10) of the backing material (8),
or alternatively, in the case of a single layer backing, the adhesive layer (14).
[0027] The preparation of such electrodeposited abrasive layers is known in the art and
disclosed, for example, in British Patent No. 2200920, European Patent No. 13486 and
U.S. Patent Specification No. 4,256,467 amongst others. Generally, the abrasive layer
is formed by laying a length of mesh material onto an electrically conducting surface
and electrodepositing a metal onto the mesh material in the presence of an abrasive
mineral such that the mineral becomes embedded in the metal. An insulating material
is selectively applied to the mesh material before deposition of the metal layer so
that the metal can only deposit onto the mesh in those areas not covered by the insulating
material, thereby defining the pattern of the abrading surface.
[0028] In one method of making an electrodeposited abrasive layer, a mesh material in the
form of a woven fabric of electrically insulating material such as nylon, cotton,
terylene or the like is screen printed with insulating material in the form of ink.
The ink is ordinarily waterproof and acid resistant and in its preferred form is colour
fast at elevated working temperatures of the abrasive article, for example, up to
approximately 220°C. The ink should be compatible with any hot-melt adhesive which
may subsequently be applied to the abrasive layer to secure it to the backing material.
The ink may be a resin based or oil based ink and coloured as desired.
[0029] The screen printing may be conducted by conventional screen printing techniques in
such a manner to ensure that the ink penetrates into and is absorbed onto defined
areas of the mesh material leaving discrete areas without any insulating material
which defines the abrasive surface. Such discrete areas may be of any convenient shape
and size, e.g., circular, diamond-shaped, rectangular etc.
[0030] The abrasive layer is adhered to the backing material by applying a layer of adhesive
to either the abrasive layer or the backing material and heating the adhesive to adhere
the abrasive layer to the backing.
[0031] In another method the ink may be combined with an adhesive and screen printed onto
the mesh material. The metal is deposited, as described previously, and the resulting
abrasive layer applied to the backing material by heating the abrasive layer to melt
the adhesive content of the insulating material, thereby adhering the backing material
to the abrasive layer.
[0032] In another method, instead of the insulating material being an ink or an ink and
adhesive combination, adhesive only may be used as the insulating material. In this
case, the adhesive may be in the form of a sheet which is applied to the mesh material
before electrodeposition. Usually the adhesive sheet will be perforated and thereby
formed with a plurality of openings of the desired shape and size before application
to the mesh material. Preferably, this perforation will be by cutting out the openings
from the sheet by any convenient means.
[0033] The adhesive sheet is then heated when in contact with the mesh material and pressure
is applied to cause the adhesive to absorb and enter the spaces in the mesh material.
When fully penetrated the mesh material is cooled.
[0034] The mesh material is then electrodeposited with metal and abrasive as described previously.
[0035] The resulting abrasive layer has adhesive at both sides of the mesh material and
surrounding the metal areas and can be readily adhered to the backing material by
applying the backing material to the rear surface and heating to cause the adhesive
to adhere the mesh material to the backing material.
[0036] The adhesive is preferably a hot-melt adhesive which is acid resistant and water
repellant.
[0037] Again, for high temperature applications, the adhesive should have a melting point
above the working temperature, e.g., about 220°C and for lower temperature applications
the melting point may be as low as 120°C. A polyester based hot-melt film adhesive
has been found to be suitable for use in this method.
[0038] The abrasive mineral may be of any particle size useful for coated abrasive belts
including flint, cork, vermiculite, quartz, garnet, silicon carbide, diamond, cubic
boron nitride, alumina etc.
[0039] The butt splice (18) is fabricated by bringing the two ends (4 and 6) of the elongate
strip of material (2) into abutting engagement and securing them in position. The
two ends (4 and 6) are heated to a temperature sufficient to melt the adhesive in
the region immediately adjacent to the line of abutment and sufficient pressure applied
to cause the melted adhesive to flow across the joint (and between each end (4 and
6)). The ends (4 and 6) are then cooled while continuing to maintain the pressure
applied thereto so that the adhesive forms a continuous film or layer (14) across
the splice (18). This gives a strong join having no significant variation in its thickness
or flexibility when compared with the remainder of the belt. An abrasive belt formed
in this manner has an improved action and an extended working life when compared with
abrasive belts of the prior art.
[0040] The complementary ends (4 and 6) of the elongate strip of abrasive coated material
(2) are preferably cut in such a manner that the length of the abutting edges is greater
than the width of the belt. This may be achieved by simply cutting the ends at an
angle to the longitudinal axis of the elongate strip of material or more preferably
by forming the ends with a plurality of complementary and interengaging tapered fingers,
e.g., as shown by the sawtooth pattern (22) depicted in Figure 3 or the interlocking
projections or tongues disclosed in U.S. Patent Specification Nos. 766,930 and 1,588,255.
The ends are preferably cut so that the length of the abutting edges is at least three
times the width of the elongate strip and more preferably at least five times the
width of the elongate strip.
[0041] "BETALON" is a registered trade mark of Charles Walker & Co. Ltd.
1. A method of making an endless coated abrasive belt, the method comprising the steps
of:
(a) providing an elongated strip of a flexible backing laminate material having complementary
ends, a width, a length, at least one major surface, and having an abrasive layer
attached to the major surface, the flexible backing laminate material comprising at
least one flexible support and a hot-melt adhesive layer, the hot-melt adhesive layer
being parallel to the major surface of the flexible backing laminate material and
extending the length of the elongated strip;
(b) abutting the complementary ends to provide a belt;
(c) applying pressure and heat over an area of the abutting ends sufficient to cause
the hot-melt adhesive to flow across the abutting complementary ends; and
(d) allowing the heated area to cool while maintaining pressure whereby the hot melt
adhesive is continuous over the abutting ends.
2. A method of making an endless coated abrasive belt, the method comprising the steps
of:
(a) providing an elongated strip of a flexible backing laminate material having complementary
ends, a width, a length, and at least one major surface, the flexible backing laminate
material comprising at least one flexible support and a hot-melt adhesive layer, the
hot-melt adhesive layer being parallel to the major surface of the flexible backing
laminate material and extending the length of the elongated strip;
(b) abutting the complementary ends to provide a belt;
(c) applying pressure and heat over an area of the abutting ends sufficient to cause
the hot-melt adhesive to flow across the abutting complementary ends;
(d) allowing the heated area to cool while maintaining pressure, whereby the hot-melt
adhesive is continuous over the abutting ends and provides a splice; and
(e) applying an abrasive layer to the major surface to provide an endless coated abrasive
belt, the coated abrasive belt having a thickness, wherein the thickness is the same
throughout its length.
3. A method as claimed in Claim 1 or Claim 2 in which the flexible backing laminate material
comprises two flexible support layers with the hot-melt adhesive layer interposed
between the flexible support layers, the flexible support layers each having a first
and a second complementary end, and the first complementary ends of each of the flexible
support layers being substantially coterminous with each other and the second complementary
ends of the flexible support layers being substantially coterminous with each other.
4. A method as claimed in any one of Claims 1 to 3 in which the complementary ends of
the elongated strip have an abutting length that is at least three times the width
of the elongated strip.
5. A method as claimed in any preceding Claim in which each of the complementary ends
of the flexible backing laminate material have a plurality of tapered fingers or other
interlocking portions.
6. A method as claimed in any preceding Claim in which the abrasive layer and the complementary
ends of the flexible backing laminate material are coterminous.
7. A method as claimed in any preceding Claim in which the abrasive layer comprises a
mesh having abrasive particles embedded in a metal.
8. A method as claimed in any preceding Claim in which the hot-melt adhesive layer comprises
a hot-melt adhesive having a melting point of at least 120°C.
9. An endless coated abrasive belt comprising a flexible backing material having a major
surface and an abrasive layer attached to said major surface; said flexible backing
material comprising at least one flexible support layer and a hot-melt adhesive layer;
said hot-melt adhesive layer being parallel to the said major surface of said flexible
backing material; said flexible backing material being in the shape of an elongated
strip having a length, a width, and abutted complementary ends; said hot-melt adhesive
layer being continuous over the abutted ends to provide a splice, and the hot-melt
adhesive layer having sufficient strength to maintain the integrity of the belt, said
coated abrasive belt being of substantially the same thickness throughout its length,
and said coated abrasive belt having a width equal to said width of said elongated
strip.
10. An endless coated abrasive belt as claimed in Claim 9 in which the flexible backing
laminate material comprises two flexible support layers with the hot-melt adhesive
layer interposed between the flexible support layers, the flexible support layers
each having a first and a second complementary end, and the first complementary ends
of each of the flexible support layers being substantially coterminous with each other
and the second complementary ends of the flexible support layers being substantially
coterminous with each other.
11. An endless coated abrasive belt as claimed in Claim 9 or Claim 10 in which the complementary
ends of the elongated strip have an abutting length that is at least three times the
width of the elongated strip.
12. An endless coated abrasive belt as claimed in any one of Claims 9 to 11 in which each
of the complementary ends of the flexible backing laminate material have a plurality
of tapered fingers or other interlocking portions.
13. An endless coated abrasive belt as claimed in any one Claims 9 to 12 in which the
abrasive layer and the complementary ends of the backing laminate material are coterminous.
14. An endless coated abrasive belt as claimed in any one of Claims 9 to 13 in which the
abrasive layer comprises a mesh of material bearing abrasive particles embedded in
a metal and secured to the flexible backing material by an adhesive.
15. An endless coated abrasive belt as claimed in any one of Claims 9 to 14 in which the
hot-melt adhesive layer comprises a hot-melt adhesive having a melting point of at
least 120°C.
1. Verfahren zum Herstellen eines endlosen beschichteten Schleifbandes, wobei das verfahren
die Schritte aufweist:
(a) Bereitstellen eines länglichen Streifens flexiblen Verstärkungslaminatmaterials
mit komplementären Enden, einer Breite, einer Länge und zumindest einer Hauptoberfläche,
und mit einer auf der Hauptoberfläche angeordneten Schleifschicht, wobei das flexible
Verstärkungslaminatmaterial zumindest eine flexible Träger- und eine Heißschmelzkleberschicht
aufweist, die Heißschmelzkleberschicht parallel zu der Hauptoberfläche des flexiblen
Verstärkungslaminatmaterials liegt und sich über die Länge des länglichen Streifens
erstreckt;
(b) Stoßverbinden der komplementären Enden, um ein Band zu erzeugen;
(c) Anwenden von Druck und Wärme über einem Bereich der aneinanderstoßenden Enden,
in ausreichendem Maße, um ein Fließen des Heißschmelzklebers über die aneinanderstoßenden
komplementären Enden zu bewirken; und
(d) Zulassen einer Abkühlung des aufgeheizten Bereichs, während der Druck beibehalten
wird, wobei sich der Heizschmelzkleber fortlaufend über den aneinanderstoßenden Enden
befindet.
2. Verfahren zum Herstellen eines endlosen beschichteten Schleifbandes, wobei das verfahren
die Schritte aufweist:
(a) Bereitstellen eines länglichen Streifens flexiblen Verstärkungslaminatmaterials
mit komplementären Enden, einer Breite, einer Länge und zumindest einer Hauptoberfläche,
wobei das flexible Verstärkungslaminatmaterial zumindest eine flexible Träger- und
eine Heißschmelzkleberschicht aufweist, die Heißschmelzkleberschicht parallel zu der
Hauptoberfläche des flexiblen Verstärkungslaminatmaterials liegt und sich über die
Länge des länglichen Streifens erstreckt;
(b) Stoßverbinden der komplementären Enden, um ein Band zu erzeugen;
(c) Anwenden von Druck und Wärme über einem Bereich der aneinanderstoßenden Enden,
in ausreichendem Maße, um ein Fließen des Heißschmelzklebers über die aneinanderstoßenden
komplementären Enden zu bewirken; und
(d) Zulassen einer Abkühlung des aufgeheizten Bereichs, während der Druck beibehalten
wird, wobei sich der Heizschmelzkleber fortlaufend über den aneinanderstoßenden Enden
befindet und eine Spleißung bildet; und
(e) Aufbringen einer Schleifschicht auf die Hauptoberfläche, um ein endloses beschichtetes
Schleifband zu erzeugen, wobei das Schleifband eine Dicke aufweist, wobei die Dicke
über die gesamte Länge gleich ist.
3. Verfahren nach Anspruch 1 oder Anspruch 2, in welchem das flexible Verstärkungslaminatmaterial
zwei flexible Trägerschichten mit der Heißschmelzkleberschicht zwischen den flexiblen
Trägerschichten angeordnet aufweist, die flexiblen Trägerschichten jeweils ein erstes
und ein zweites komplementäres Ende aufweisen, und die ersten komplementären Enden
von jeder der flexiblen Trägerschichten im wesentlichen eine gemeinsame Grenze miteinander
und die zweiten komplementären Enden der flexiblen Trägerschichten im wesentlichen
eine gemeinsame Grenze miteinander aufweisen.
4. Verfahren nach einem der Ansprüche 1 bis 3, in welchem die komplementären Enden des
länglichen Streifens eine Stoßlänge aufweisen, die mindestens die dreifache Breite
des länglichen Streifens ist.
5. Verfahren nach einem der vorstehenden Ansprüche, in welchem jedes der komplementären
Enden des flexiblen Verstärkungslaminatmaterials mehrere zulaufende Finger oder andere
Verbindungsabschnitte aufweist.
6. Verfahren nach einem der vorstehenden Ansprüche, in welchem die Schleifschicht und
die komplementären Enden des flexiblen Verstärkungslaminatmaterials eine gemeinsame
Grenze aufweisen.
7. Verfahren nach einem der vorstehenden Ansprüche, in welchem die Schleifschicht ein
Gewebe mit in einem Metall eingebetteten Schleifpartikeln aufweist.
8. Verfahren nach einem der vorstehenden Ansprüche, in welchem die Heißschmelzkleberschicht
einen Heißschmelzkleber mit einem Schmelzpunkt von mindestens 120°C aufweist.
9. Endloses beschichtetes Schleifband mit einem flexiblen Verstärkungsmaterial mit einer
Hauptoberfläche und einer auf der Hauptoberfläche befestigen Schleifschicht; wobei:
das flexible Verstärkungsmaterial zumindest eine flexible Trägerschicht und eine Reißschmelzkleberschicht
aufweist; die Heißschmelzkleberschicht parallel zu der Hauptoberfläche des flexiblen
Verstärkungsmaterials liegt; das flexible Verstärkungsmaterial in der Form eines länglichen
Streifens mit einer Länge, einer Breite und aneinandergestoßenen komplementären Enden
vorliegt; die Heißschmelzkleberschicht sich über den aneinandergestoßenen Enden fortlaufend
befindet, um eine Spleißung zu erzeugen, und die Heißschmelzkleberschicht eine ausreichende
Festigkeit aufweist, um die Unversehrtheit des Bandes zu erhalten, wobei das beschichtete
Schleifband über seine gesamte Länge im wesentlichen dieselbe Dicke aufweist, und
das beschichtete Schleifband eine Breite gleich der Breite des länglichen Steifens
aufweist.
10. Endloses beschichtetes Schleifband nach Anspruch 9, in welchem das flexible Verstärkungslaminatmaterial
zwei flexible Trägerschichten mit der Heißschmelzkleberschicht zwischen den flexiblen
Trägerschichten angeordnet aufweist, die flexiblen Trägerschichten jeweils ein erstes
und ein zweites komplementäres Ende aufweisen, und die ersten komplementären Enden
von jeder der flexiblen Trägerschichten im wesentlichen eine gemeinsame Grenze miteinander
und die zweiten komplementären Enden von jeder der flexiblen Trägerschichten im wesentlichen
eine gemeinsame Grenze miteinander aufweisen.
11. Endloses beschichtetes Schleifband nach Anspruch 9 oder Anspruch 10, in welchem die
komplementären Enden des länglichen Streifens eine Stoßlänge aufweisen, die mindestens
die dreifache Breite des länglichen Streifens ist.
12. Endloses beschichtetes Schleifband nach einem der Ansprüche 9 bis 11, in welchem jedes
der komplementären Enden des flexiblen Verstärkungslaminatmaterials mehrere spitz
zulaufende Finger oder andere Verbindungsabschnitte aufweist.
13. Endloses beschichtetes Schleifband nach einem der Ansprüche 9 bis 12, in welchem die
Schleifschicht und die komplementären Enden des flexiblen Verstärkungslaminatmaterials
eine gemeinsame Grenze aufweisen.
14. Endloses beschichtetes Schleifband nach einem der Ansprüche 9 bis 13, in welchem die
Schleifschicht ein Gewebe eines Materials aufweist, das in einem Metall eingebettete
Schleifpartikel trägt und mit flexiblen Verstärkungsmaterial mittels eines Klebers
verbunden ist.
15. Endloses beschichtetes Schleifband nach einem der Ansprüche 9 bis 14, in welchem die
Heißschmelzkleberschicht einen Heißschmelzkleber mit einem Schmelzpunkt von mindestens
120°C aufweist.
1. Procédé de fabrication d'une bande abrasive revêtue sans fin, le procédé comprenant
les étapes de :
(a) préparation d'un élément allongé d'une matière stratifiée de support flexible
ayant des extrémités complémentaires, une largeur, une longueur, au moins une surface
principale, et comportant une couche abrasive fixée à la surface principale, la matière
stratifiée de support flexible comprenant au moins un support flexible et une couche
d'adhésif thermofusible, la couche d'adhésif thermofusible étant parallèle à la surface
principale de la matière stratifiée de support flexible et s'étendant sur la longueur
de l'élément allongé ;
(b) mise en butée des extrémités complémentaires, pour former une bande ;
(c) application de pression et de chaleur, sur une région des extrémités en butée,
suffisantes pour provoquer un écoulement de l'adhésif thermofusible sur les extrémités
complémentaires en butée ; et
(d) refroidissement de la région chauffée, tout en maintenant la pression, de sorte
que l'adhésif thermofusible est continu sur les extrémités en butée.
2. Procédé de fabrication d'une bande abrasive revêtue sans fin, le procédé comprenant
les étapes de :
(a) préparation d'un élément allongé d'une matière stratifiée de support flexible
ayant des extrémités complémentaires, une largeur, une longueur et au moins une surface
principale, la matière stratifiée de support flexible comportant au moins un support
flexible et une couche d'adhésif thermofusible, la couche d'adhésif thermofusible
étant parallèle à la surface principale de la matière stratifiée de support flexible
et s'étendant sur la longueur de l'élément allongé ;
(b) mise en butée des extrémités complémentaires, pour former une bande ;
(c) application de pression et de chaleur, sur une région des extrémités en butée,
suffisantes pour provoquer l'écoulement de l'adhésif thermofusible sur les extrémités
complémentaires en butée ;
(d) refroidissement de la région chauffée, tout en maintenant la pression, de sorte
que l'adhésif thermofusible est continu sur les extrémités en butée et engendre une
jonction ; et
(e) application d'une couche abrasive à la surface principale pour former une bande
abrasive revêtue sans fin, la bande abrasive revêtue ayant une épaisseur, de sorte
que l'épaisseur est constante sur toute la longueur de la bande.
3. Procédé suivant la revendication 1 ou la revendication 2, dans lequel la matière stratifiée
de support flexible comprend deux couches porteuses flexibles et la couche d'adhésif
thermofusible est interposée entre les couches porteuses flexibles, les couches porteuses
flexibles ayant chacune une première et une deuxième extrémités complémentaires, et
les premières extrémités complémentaires de chacune des couches porteuses flexibles
se terminant sensiblement en concordance mutuelle, et les deuxièmes extrémités complémentaires
des couches porteuses flexibles se terminant sensiblement en concordance mutuelle.
4. Procédé suivant une quelconque des revendications 1 à 3, dans lequel les extrémités
complémentaires de l'élément allongé ont une longueur de ligne de butée qui est au
moins le triple de la largeur de l'élément allongé.
5. Procédé suivant une quelconque des revendications précédentes, dans lequel chacune
des extrémités complémentaires de la matière stratifiée de support flexible comporte
une pluralité de doigts pointus ou d'autres parties de verrouillage mutuel.
6. Procédé suivant une quelconque des revendications précédentes, dans lequel la couche
abrasive et les extrémités complémentaires de la matière stratifiée de support flexible
se terminent en concordance.
7. Procédé suivant une quelconque des revendications précédentes, dans lequel la couche
abrasive comprend une matière à mailles comportant des particules abrasives noyées
dans un métal.
8. Procédé suivant une quelconque des revendications précédentes, dans lequel la couche
d'adhésif thermofusible comprend un adhésif thermofusible ayant un point de fusion
d'au moins 120°C.
9. Bande abrasive revêtue sans fin comprenant une matière de support flexible, qui présente
une surface principale, et une couche abrasive fixée à la dite surface principale
; ladite matière de support flexible comprenant au moins une couche porteuse flexible
et une couche d'adhésif thermofusible ; ladite couche d'adhésif thermofusible étant
parallèle à ladite surface principale de ladite matière de support flexible ; ladite
matière de support flexible étant sous la forme d'un élément allongé qui a une longueur,
une largeur et des extrémités complémentaires en butée ; ladite couche d'adhésif thermofusible
étant continue sur les extrémités en butée pour engendrer une jonction, et ladite
couche d'adhésif thermofusible ayant une résistance mécanique suffisante pour maintenir
l'intégrité de la bande, ladite bande abrasive revêtue ayant une épaisseur sensiblement
constante sur toute sa longueur, et ladite bande abrasive revêtue ayant une largeur
égale à ladite largeur dudit élément allongé.
10. Bande abrasive revêtue sans fin suivant la revendication 9, dans laquelle la matière
stratifiée de support flexible comprend deux couches porteuses flexibles et la couche
d'adhésif thermofusible interposée entre lesdites couches porteuses flexibles, les
couches porteuses flexibles ayant chacune une première et une deuxième extrémités
complémentaires, les premières extrémités complémentaires de chacune des couches porteuses
flexibles se terminant sensiblement en concordance mutuelle et les deuxièmes extrémités
complémentaires des couches porteuses flexibles se terminant sensiblement en concordance
mutuelle.
11. Bande abrasive revêtue sans fin suivant la revendication 9 ou la revendication 10,
dans laquelle les extrémités complémentaires de l'élément allongé ont une longueur
de ligne de butée qui est au moins le triple de la largeur de l'élément allongé.
12. Bande abrasive revêtue sans fin suivant une quelconque des revendications 9 à 11,
dans laquelle chacune des extrémités complémentaires de la matière stratifiée de support
flexible comporte une pluralité de doigts pointus ou d'autres parties de verrouillage.
13. Bande abrasive revêtue sans fin suivant une quelconque des revendications 9 à 12,
dans laquelle la couche abrasive et les extrémités complémentaires de la matière stratifiée
de support se terminent en concordance mutuelle.
14. Bande abrasive revêtue sans fin suivant une quelconque des revendications 9 à 13,
dans laquelle la couche abrasive comprend une matière à mailles portant des particules
abrasives noyées dans un métal et fixées à la matière de support flexible par un adhésif.
15. Bande abrasive revêtue sans fin suivant une quelconque des revendications 9 à 14,
dans laquelle la couche d'adhésif thermofusible comprend un adhésif thermofusible
ayant un point de fusion d'au moins 120°C.