Technical Field
[0001] The present invention relates to the area of rotary staplers intended for stapling
printed matter, e.g., newspapers and brochures, the pages of which come from a printing
press on a double-sided printed running paper web. Each double-sided printed paper
web is collected and synchronised to each other, whereupon the collected paper webs
define continuous product parts that after stapling are cut off into finished products.
Alternatively, the collected paper webs are cut off into product units, which after
that are led into the rotary stapler and there are stapled together into finished
products.
Background of the Invention
[0002] From the printing presses, one or more paper webs run, usually in so-called broadsheet
format, at a constant speed on each other, which paper webs together form a continuous
row of product parts in the form of printed matter. The paper webs with the product
parts run past a rotary stapler that staples together the paper webs, the paper webs
after that being cut off halfway between the stapling points and forming separate
products. In doing so, the products constitute finished printed matter after folding
has been effected along the staplings.
[0003] The paper webs in broadsheet format will be folded only once along the web. Usually,
these products will not become stapled at all since the wire staples have to be inserted
in the longitudinal direction. However, so-called tabloid products are folded twice-
First along the web, at the same time as the web becomes cut lengthwise, and next
transverse to the direction of motion. Thereby, the wire staples have to be inserted
transverse to the web in the second folding line. The stapling can be effected before
as well as after the paper web has been cut off transverse to the direction of motion,
by means of a web-breaking roller. This technique of stapling tabloids in the fold
is well-known since before.
[0004] Smaller products, so-called quarter-folded products, are folded three times. After
a tabloid product has been produced by two foldings, it has to be folded a third time
along the direction of motion again. Therefore, the stapling in the third folding
line has also to be carried out along the direction of motion, These products will
usually be stapled outside the folding machine on a so-called saddle stapler.
[0005] Further backgrounds of rotary staplers are seen, e.g., in the Swedish patents
9300536-1 (
506 107) and
9300537-9 (
506 108), which correspond to the US patents
US 5,474,221 and
US 5,690,266. Also the US patent document
US 3,762,622 presents the background of rotary staplers. The rotary staplers are mounted in direct
connection to the printing presses in spaces especially adapted to the rotary staplers.
[0006] By the patent specification
EP 981450, a device for longitudinal stapling of multi-paged printed products over a saddle
is previously known. The patent specification discloses a device having a stapling
fork that is turned from a staple forming position into a stapling position as well
as is turned to align the stapling fork to be parallel to the material web during
the stapling stage. Also the die of the device in the die cylinder thereof is turned
to align also this one into a position parallel to the material web. Accordingly,
both the stapling fork and the die are held parallel to each other as well as to the
material web during the stapling stage. The device comprises also a staple bending
device that is formed with two parts each one of which is turnable around a separate
axis. A device according to this patent specification is adapted to stapling over
a saddle and that is clearly shown in Figures 1 and 2 thereof. Accordingly, it cannot
be used for linear stapling in the fold, before the last folding (quarter-fold) is
made.
[0007] By the patent specifications
DE 2755209 and
DE 2755210, a device for longitudinal stapling is previously known, which stapling comprises
a rotating staple bending device in the die cylinder thereof.
[0008] The problems that exist in the known saddle devices are that a complete linear stapling
of a product part or a product unit cannot be carried out before the last folding.
[0009] Furthermore, all known devices are relatively complicated in their design, which
contributes to a lower functionality, i.e., lower rate of production, and a higher
cost.
The Object of the Invention
[0010] The present invention aims at providing an improved linear stapling or stitching
machine of rotary type, which can provide a higher rate of production by integrating
the linear stapling of quarter-folded products in the already existing folding part
of a printing press. In doing so, a space-saving solution and a simple construction
with a few movable parts are allowed, since the paper handling is carried out by the
folding machine,
[0011] Yet an object of the invention is to allow a complete stapling either before cutting
off and last folding or after cutting off and before last folding. Accordingly, linear
stapling can be made either of product parts in running web or of cut-off product
units.
[0012] A further object of the invention is to provide a complete and integrated solution
that carries out the forming of the staples and the proper stapling in a single step
of operation before the final folding into a finished product.
Summary of the Invention
[0013] By the present invention such as the same is defined in the independent claims, the
above-mentioned objects are met. Suitable embodiments of the invention are defined
in the dependent claims.
[0014] The invention concerns a rotary stapler, which by a stapling module placed in a rotating
stapling cylinder applies wire staples provided with penetrating branches through
the plurality of material layers of a printed product. The wire staples are pressed
by a punch mounted in a stapling fork in the stapling module through the material
layers, whereupon the branches of the wire staples are formed against a die in a die
cylinder counter-rotating in relation to the stapling cylinder.
[0015] The invention discloses a stapler that is to be mounted in the proper folding part
of a printing press, the products becoming stapled before the last folding is carried
out, so-called quarter fold. The stapling is effected against a cylinder surface that
requires a non-linear motion of the stapling head. In contrast to prior art, the present
stapler is adapted to be integrated in the folding assembly in the printing press
in order to allow the stapling to be effected before the last folding is carried out.
In the present invention, a pivoting is provided of only the stapling head against
a cylinder so that the stapling head follows the cylinder surface. Accordingly, this
motion is not linear. The die according to the present invention may be made passive,
the same being possible to mount on already existing cylinders.
[0016] The invention concerns a linear stapling machine that is provided with a stapling
fork rotating around a first axis as well as with a die counter-rotating around a
second axis. The axes are placed in such a way and are arranged to be rotated so that
the stapling fork and the die roll off against each other at some instant of time
so that the branches of a wire staple that is carried by the stapling fork can be
forced through a plurality of layers of a product part running through the rotary
stapler and thereby be formed against the die. A first guide means is arranged to
turn the stapling fork by 90° during its motion to as well as during its motion from
a staple pick-up zone in relation to a stapling zone so that the orientation of the
stapling fork, and thereby the web of the wire staple, is parallel to the first axis
in the staple pick-up zone, but that the stapling fork, and thereby the web of the
wire staple, is perpendicular to the first axis in the stapling zone. The staple pick-up
zone and the stapling zone are defined as the respective distances along which the
stapling fork is not turned during a cylinder revolution, Upon stapling through the
product part, the wire staple will then be essentially parallel to the direction of
motion of the product part. Furthermore, at least one second stapling fork rotating
around the first axis and trailing the first stapling fork is arranged to roll off
against a corresponding second die counter-rotating around the second axis so that
the branches of a wire staple that is carried by the second stapling fork can be forced
through a plurality of layers of the same product part running through the rotary
stapler and thereby be formed against the second die. In this connection, the first
guide means is arranged to turn the second stapling fork by 90° to and from the staple
pick-up zone in relation to the stapling zone so that the orientation of the second
stapling fork is parallel to the first axis in the staple pick-up zone and perpendicular
to the first axis in the stapling zone. Upon stapling through the product part, the
wire staple is in this connection essentially parallel to the direction of motion
of the product part. In addition, a base plate is arranged in which a stapling cylinder
is rotatably mounted for rotation around the first axis, the stapling cylinder supporting
the stapling forks. By virtue of this construction of a linear stapling machine, a
product part or product unit can be completely stapled by only one stapling cylinder
during one revolution before the last folding.
[0017] In one embodiment of the linear stapling machine, the first guide means comprises
a first cam follower mounted to a first turning arm that is fixedly connected to the
stapling fork to be able to turn the same so that the staple is aligned with the direction
of motion of the product parts. The cam follower is arranged to be guided by a first
cam curve that is formed to change the position of the first cam follower in directions
parallel to the first axis.
[0018] In one embodiment, the cam curve of the first guide means is fixedly mounted to the
base plate.
[0019] In one embodiment, each stapling fork is turnably mounted around a separate stapling
main axis situated at a distance from and orientated parallel to the first axis, around
which stapling main axis the stapling fork is arranged to, by a second guide means,
be turned in the stapling zone in order to align the staple held by the stapling fork
so that the web thereof will be parallel or tangentially orientated in relation to
the surface of the product part when the web of the staple is directed in the direction
of motion of the product part. Accordingly, a pivoting motion of the stapling fork
is achieved, which thereby guides the wire staple to follow the curve motion of the
die in the stapling zone. Within the scope of the invention, the stapling fork can
directly or, which is shown in the figures, indirectly be imparted this pivoting motion
by the stapling head.
[0020] In one embodiment, the second guide means comprises a second cam follower mounted
to a second turning arm connected to a stapling head in which the stapling fork is
turnably mounted and a second cam curve that is formed to change the position of the
second cam follower in directions perpendicular to the first axis.
[0021] In one embodiment, the cam curve of the second guide means is fixedly mounted to
the base plate,
[0022] In one embodiment, the stapling fork is connected to a compression spring to bring
back the longitudinally moveable stapling fork into a projected position after stapling
has been carried out.
[0023] In one embodiment, the stapling fork is connected to a spring arranged to provide
a return of the stapling fork by a turning motion from an actuated position back into
a rest position.
[0024] In one embodiment, a cutting assembly is mounted at the staple pick-up zone and provided
with a first wire introduction assembly and a second wire introduction assembly, as
well as that third guide means are arranged to allow that the first wire introduction
assembly only delivers staple blanks to one of the stapling forks and that the second
wire introduction assembly only delivers staple blanks to the other one of the stapling
forks by a pushing-away of the respective wire introduction assembly. It is also possible
that the pushing-away actuates the stapling fork instead of the wire introduction
assembly.
[0025] In one embodiment, the third guide means comprises third cam followers mounted one
to each wire introduction assembly and third cam curves that are formed to change
the positions of the third cam followers in directions perpendicular to the first
axis.
[0026] In one embodiment, a primary third cam follower of the first wire introduction assembly
is arranged to be displaced by a cam curve situated at the first stapling fork, so
that the first stapling fork clears the first wire introduction assembly, and a secondary
third cam follower of the second wire introduction assembly is arranged to be displaced
by a cam curve situated at the second stapling fork, so that the second stapling fork
dears the second wire introduction assembly.
[0027] In one embodiment, the cam curves of the third guide means are rotatable together
with the stapling forks around the first axis.
[0028] In one embodiment, the stapling fork is turnable around a stapling fork axis mounted
in a stapling head that is turnable around the stapling main axis, the stapling fork
axis being perpendicularly orientated in relation to the stapling main axis.
[0029] In one embodiment, the stapling fork axis and the stapling main axis lie in the same
plane,
[0030] In one embodiment, a cylindrical body in the stapling head is connected to a spring
that actuates the body and thereby the stapling fork for a return into a rest position
by a turning motion.
[0031] In one embodiment, the cutting assembly is fixedly mounted to the base plate.
[0032] In one embodiment, a staple forming device, preferably in the form of a forming wheel,
is mounted in the staple pick-up zone after the two wire directing assemblies in respect
of the direction of motion of the stapling fork. In this connection, it is required
that the forming of the staple is effected after the staple pick-up has been effected
but before the stapling fork with the staple begins to be turned.
[0033] In one embodiment, the staple forming device is arranged to form staples picked up
by both stapling forks.
[0034] In one embodiment, the stapling forks are mounted in stapling heads that in turn
are mounted in a stapling cylinder that is arranged to rotate around the first axis.
[0035] The embodiment examples that will be described relate to a so-called "single round"
linear stapling machine, which means that for each revolution the stapling cylinder
rotates, a product part/product unit will be stapled. However, also a "doub!e round",
a "triple round", etc., linear stapling machine can be comprised within the scope
of the invention. In this connection, two, three, etc., product parts/product units
will be stapled during each revolution. For all these types of machines, it applies
however that the stapling forks are placed in pairs "trailing" each other in order
to finally staple together one and the same product part or product unit during the
same revolution of the stapling cylinder.
[0036] The wire advancement to the two wire directing assemblies can be effected by one
and the same motor at a constant speed, which is an advantage of this type of wire
advancement system since no acceleration and retardation of the wire advancement is
needed.
[0037] The holding of the staple in the stapling fork at its carriage from the staple pick-up
zone to the stapling zone is effected either by a clamping mechanism having grooves/notches
and integrated in the stapling fork or by a magnet action arranged in the stapling
fork. However, the holding of the staple has to be integrated in the stapling fork
since this is turned during the rotation of the stapling cylinder.
Brief Description of the Drawings
[0038] The invention will now be described in more detail by means of embodiment examples,
reference being made to the accompanying drawings, in which
- Figure 1
- shows a side view of linear stapling machine according to the present invention,
- Figure 2
- shows a part in perspective from Figure 1 with a staple drawn,
- Figure 3
- shows a perspective view of a part of the linear stapling machine according to Figure
1,
- Figure 4
- shows a perspective view according to Figure 3 with the stapling cylinder dismounted
but with stapling heads and stapling forks,
- Figure 5
- shows a perspective view without cutting assembly and with stapling heads and stapling
forks situated in a position half a revolution later in relation to the position according
to Figure 4,
- Figure 6
- shows in planar view stapling heads and stapling forks in the same position as in
Figure 5,
- Figure 7
- shows in planar view the second cam curve according to the invention,
- Figure 8
- shows a perspective view of a stapling head having a stapling fork mounted according
to the invention,
- Figure 9
- shows in planar view parts from Figure 8,
- Figure 10
- shows a section A-A, taken according to the marking in Figure 9.
Description of the Invention
[0039] Figure 1 shows a linear stapling machine 10 of rotary type provided with a stapling
cylinder 11 in which two stapling modules 12, 12' situated in pairs after each other
are mounted at the circumference of the stapling cylinder. The stapling cylinder is
rotatably mounted to a base plate 45 for rotation around a first axis 13 around which
the stapling cylinder is driven by driving means (not shown). The stapling cylinder
11 is furthermore parallel mounted in relation to a die cylinder 14, which is rotatable
around a second axis 13' and against which the stapling cylinder rolls off. By "roll
off', it is meant a co-operation between the cylinders 11, 14 where they have the
same circumference speed in a stapling zone. Contact between the cylinders is not
required. In this connection, the stapling modules 12, 12' roll off against two dies
15, 15' mounted in the die cylinder 14 for final forming of a wire staple 25, Figure
2. Between the stapling cylinder 11 and the die cylinder 14, the printed product parts
16 run consisting of a plurality of paper layers that are to be stapled together into
finished products. The product parts 16 that are to be stapled together consist either
of a continuous material web that is cut off into finished products after stapling
of the continuous product parts or of separate, already cut-off product units that
are stapled into finished products in the stapler. In case the product parts consist
of a continuous material web, this can pass through the stapler at different degrees
of enclosure of either cylinder. In case the product units consist of already cut-off
product units, these entirely follow the surface of the die cylinder and are held
on the surface of the die cylinder by pliers elements or pins. In this connection,
the stapling is intended to be effected when the stapling modules 12, 12' roll off
against the dies 15, 15', which in the shown position in the figure occurs at the
first stapling module 12. The figure shows further that the stapling modules 12, 12'
are provided with a respective stapling fork 21, 21' that carries a ready-formed wire
staple 25, see Figure 2, from a staple forming device 22, in the figure shown as a
forming wheel, to the position when the wire staple, via a punch S mounted in the
stapling cylinder 11, see Figure 2, is forced through the material web 16 and finally
formed against the die 15. Accordingly, the stapling is effected against the dies
15, 15' at the surface of the die cylinder. In the way the initial foldings have been
made in a contemplated application for quarter-folded products according to Figure
1 it is already cut-off product units, indicated by the arrow 16 on the cylinder surface,
which are held by pliers elements on the die cylinder and which become stapled in
the position shown in Figure 1. Accordingly, the cutting into product units has already
been carried out on a collecting cylinder by means of a web-breaking roller. However,
the last folding into finished product is made after the stapling. The figure also
shows the directions of rotation of the stapling cylinder 11 and the die cylinder
14 as well as the direction of motion of the product parts 16. Both the stapling cylinder
11 and the die cylinder 14 rotate at a constant number of revolutions that corresponds
to a circumference speed that is equal to the speed of the material web 16. Furthermore,
a cutting assembly 40 is mounted adjacent to the stapling cylinder 11, which is provided
with a first wire introduction assembly 41 and a second wire introduction assembly
42 that is arranged to advance wire 23 to a staple pick-up position. In this connection,
the zone for picking-up of staples is defined as a staple pick-up zone 31. In addition,
there is defined a stapling zone 32 situated essentially at a displacement of half
a revolution in relation to the staple pick-up zone. Said zones apply to the distance
when no turning of the stapling fork is allowed. The stapling cylinder 11 with the
stapling forks 21,21' and the cutting assembly 40 thereof are mounted to the base
plate 45.
[0040] Figure 2 shows a stapling fork 21 that holds a wire staple 25 that has been bent
by the forming wheel 22 upon the passage of the stapling fork into at-shape having
two branches 26 and a web 27. In this connection, the wire staple is arranged to be
forced through the material web by a punch S in the stapling fork. A corresponding
wire staple for the second stapling fork has been analogously designated by a second
wire staple 25', a second pair of branches 26', and a second web 27'.
[0041] The forming of each wire staple is made by wire 23, from a coil of wire not shown,
being advanced to a cutting position, whereupon cutting, picking-up and forming of
the wire staple are effected when the stapling fork 21, 21' passes the cutting assembly
40 with the staple forming device 22 thereof, see Figure 1. Next, the wire staple
is carried by the stapling fork 21 approximately half a revolution so as to encounter
the die 15, the wire staple via the punch being forced through the product part 16
and formed against the die 15.
[0042] Figure 3 shows in perspective the linear stapling machine 10 with the stapling cylinder
11 rotatable around the first axis 13. The stapling cylinder comprises the stapling
modules 12, 12' that are identically constructed and therefore we only describe the
first stapling module 12, the indexed numbered reference referring to the parts of
the second stapling module 12'. The stapling module 12, 12' comprises a stapling head
50, 50' that is turnably mounted around a stapling main axis 35, 35'. The stapling
head is provided with a stapling fork 21, 21' that is rotatably mounted in the stapling
head 50, 50' around a stapling fork axis 61, 61' that is perpendicularly orientated
in relation to the stapling main axis 35, 35'. The stapling fork is arranged with
a cylindrical body 36, 36' rotatably in a corresponding cylindrical space in the stapling
head. The cylindrical body is provided with a first guide means 37 by which the stapling
fork 21, 21' can be turned around the stapling fork axis 61, 61' in the stapling head
50, 50'. The stapling head is further provided with a second guide means 38, 38' by
which the stapling head together with the stapling fork can be turned in the stapling
cylinder around the stapling main axis 35, 35'. The stapling cylinder 11 comprises
a cam disc 39 provided with a primary third guide means 43 and a secondary third guide
means 44, which third guide means are mounted adjacent to a respective stapling fork,
Said third guide means 43, 44 are placed at each stapling fork but axially displaced
to each other so that the primary third guide means 43 pushes away one of the wire
introduction assemblies from the first stapling fork 21 and the other wire introduction
assembly from the second stapling fork 21' when the stapling forks pass the cutting
assembly 40. In doing so, one of the stapling forks always picks up staple blanks
from one of the wire introduction assemblies but never from the other one, while the
other stapling fork always picks up staple blanks from the other wire introduction
assembly but never from the one of them. By this design of a cutting assembly having
two wire introduction assemblies, the wire advancement can be kept constant and also
be driven by only one motor.
[0043] Figure 4 shows the corresponding view as in Figure 3 but with the stapling cylinder
parts removed. The first guide means 37 of the cylindrical body 36, 36' comprises
a first cam follower 46 mounted to a first turning arm 47, which cam follower 46 co-operates
in the rotation of the stapling cylinder with a first cam curve 48 for a turning of
the stapling fork 21 in the stapling head. In doing so, the first guide means 37 provides
a turning of the stapling fork by 90° during its motion to respective from the cutting
assembly 40 outside the stapling zone and outside the staple pick-up zone so that
the stapling fork before stapling in the stapling zone holds the wire staple with
the web 27 thereof essentially parallel to the direction of motion of the product
parts 16 and perpendicular in relation to the first axis 13. Accordingly, the first
cam curve 48 is formed to change the position of the first cam follower 46 in directions
parallel to the first axis 13 upon rotation around the first axis 13. When the stapling
fork has delivered up the staple in the stapling zone, the stapling fork is turned
back so that the stapling fork can fetch a new staple blank from the cutting assembly
40 in the staple pick-up zone. The staple blank is formed when it passes the forming
wheel 22 whereupon a new turning of the stapling fork by 90' is effected when the
same has left the staple pick-up zone and a new stapling cycle commences.
[0044] The second guide means 38, 38' comprises a second cam follower 56, 56' mounted to
a second turning arm 57, 57' connected to the stapling head 50, 50'. The cam follower
runs guided by force in a second cam curve 58 that is formed to change the position
of the second cam follower 56, 56' in directions perpendicular to the first axis 13.
[0045] In Figure 5, the first stapling head 50 is shown in a position for picking-up of
a staple blank in the form of a cut-off length of wire, while the trailing second
stapling head 50' has not yet reached this position. Figure 5 shows more clearly the
first cam curve 48 that in the shown position, via the first cam follower, has turned
the stapling fork by 90° in relation to the position of the stapling fork 21 that
is shown in Figure 4. Also the second cam curve 58 that guides the turning of the
stapling head 50 is clearly shown in the figure. Both the first cam curve 48 and the
second cam curve 58 are fixedly mounted to the base plate 45. As furthermore is seen
in the figure, the second cam curve 58 is formed to guide the second cam follower
56 by force in both directions, while the first cam curve 48 guides the first cam
follower by force in both directions during a part of a revolution, while during the
rest of the revolution, the first cam follower is spring actuated for the return into
a rest position that is shown for the first cam follower 46 in Figure 4.
[0046] In this connection, the stapling fork is actuated by a compression spring in order
to press it out after the stapling. The stapling head is guided by force in the second
cam curve 58. Only the innermost part, i.e., the cylindrical body, is spring actuated
when it is not guided by the first cam curve 48 most for holding the position. Hence,
there are two springs: a compression spring that actuates the stapling fork and a
small sheet metal spring that engages the cylindrical body in the stapling head when
it is not guided by the first cam curve 48.
[0047] Figure 6 shows in planar view the position according to Figure 5, the first stapling
fork 21 having been turned to one end position thereof by the first cam curve 48 having
actuated the first turning arm 47 with the cam follower thereof for the turning of
the stapling fork 21. The figure also shows that the second stapling fork 21' has
been turned approximately halfway toward the position of the first stapling fork.
The cam followers 56, 56' of the two stapling heads 50, 50' follow all the time the
second cam curve.
[0048] Figure 7 shows the second cam curve 58 that during approximately half a revolution,
where the stapling forks are in an initial stapling stage 71, a stapling stage 72,
and a final stapling stage 73, is formed so that the stapling head with the stapling
fork is aligned during the initial stapling stage 71 so that the web of the wire staple
during the stapling stage 72 is held parallel to the die in the die cylinder and accordingly
is turned in the stitching zone in order to allow the punch to force the wire staple
at a right angle through the material web and in that connection simultaneously form
the branches of the staple against the die. Accordingly, the stapling fork will be
radially directed toward the die cylinder and the die during the stapling stage. By
virtue of this motion, the die can be fixedly formed in the die cylinder, which means
a very simple and functional design of the die. During the rest of the revolution,
the second cam curve 58 is circularly formed during a staple pick-up and staple forming
stage 74.
[0049] Figure 8 shows the stapling head 50 provided with the second turning arm 57 with
the second cam follower 56 mounted. During the motions of the second cam follower,
the stapling head will be turned around the stapling main axis 35. In the stapling
head, the stapling fork 21 is with the cylindrical body 36 thereof turnably arranged
around the stapling fork axis 61 by the first turning arm 47 being fixedly arranged
on the cylindrical body 36 and movable when the first cam follower 46 is guided by
the first cam curve.
[0050] Figure 9 shows the cylindrical body 36 with a first branch 21
A and a second branch 21
B arranged in the stapling fork 21. Furthermore, there is shown the fixedly mounted
first turning arm 47 of the cylindrical body, Between the two branches 21
A, 21
B of the stapling fork, two permanent magnets 91, 92 are arranged in order to, together
with the tightening force developed between the branches in the forming of the wire
staple, contribute to the holding force of the wire staple when the same is carried
from the staple forming phase until the staple is forced through the paper web and
thereby is formed against the die. The first magnet 91 is placed at the first branch
21
A and the second magnet 92 is placed at the second branch 21
B, the magnets being placed symmetrically around an imaginary centre line, represented
by the section line in Figure 9, between the branches of the fork. Accordingly, this
holding is a combination of magnet action and damping action. Other holding members
for the staple are feasible, for instance, the staple may only by damping action be
held by the stapling fork during the carriage from the staple pick-up zone to the
stapling zone.
[0051] Figure 10 shows the cylindrical body 36 in an axial section. At one end of the body,
a first cover plate 101 is mounted. On the cover plate, the first turning arm 47 is
fixedly connected, and on the turning arm, the first cam follower 46 is journalled,
The other end of the body is dosed by a second cover plate 102 that is provided with
a recess for the longitudinally moveable stapling fork 21 is mounted. Inside the cylindrical
body, a compression spring 103 is mounted to bring back the longitudinally moveable
stapling fork into a projected position after stapling has been carried out.
1. Linear stapling machine (10) provided with a stapling fork (21) rotating around a
first axis (13) as well as with a die (15) counter-rotating around a second axis (13'),
the axes being placed in such a way and being arranged to be rotated so that the stapling
fork (21) and the die (15) roll off against each other at some instant of time so
that the branches (26) of a wire staple (25) that is carried by the stapling fork
(21) can be forced through a plurality of layers of a product part (16) running through
the rotary stapler (10) and thereby be formed against the die (15), as well as that
a first guide means (37) is arranged to turn the stapling fork by 90° during its motion
to as well as during its motion from a staple pick-up zone (31) in relation to a stapling
zone (32) so that the orientation of the stapling fork is parallel to the first axis
(13) in the staple pick-up zone (31), but that the stapling fork is perpendicular
to the first axis (13) in the stapling zone (32), so that the wire staple upon stapling
through the product part (16) is essentially parallel to the direction of motion of
the product part, characterized in that at least one second stapling fork (21') rotating around the first axis (13) and trailing
the first stapling fork (21) is arranged to roll off against a corresponding second
die (15') counter-rotating around the second axis (13') so that the branches (26')
of a wire staple (25') that is carried by the second stapling fork (21') can be forced
through a plurality of layers of the same product part (16) running through the rotary
stapler (10) and thereby be formed against the second die (15'), the first guide means
being arranged to turn the second stapling fork by 90° to and from the staple pick-up
zone (31) in relation to the stapling zone (32) so that the orientation of the second
stapling fork is parallel to the first axis (13) in the staple pick-up zone (31) and
perpendicular to the first axis (13) in the stapling zone (32), so that the wire staple
upon stapling through the product part (16) is essentially parallel to the direction
of motion of the product part (16), and that a base plate (45) is arranged in which
a stapling cylinder (11) supports the stapling forks (21,21'), and that the stapling
cylinder (11) is rotatably mounted for rotation around the first axis (13).
2. Linear stapling machine according to claim 1, characterized in that the first guide means (37) comprises a first cam follower mounted to a first turning
arm (47) fixedly connected to the stapling fork (21, 21') and a first cam curve (48)
that is formed to change the position of the first cam follower in directions parallel
to the first axis (13).
3. Linear stapling machine according to claim 2, characterized in that the cam curve of the first guide means is fixedly mounted to the base plate (45).
4. Linear stapling machine according to any one of claims 1-3, characterized in that each stapling fork (21, 21') is turnably mounted around a separate stapling main
axis (35, 35') situated at a distance from and orientated parallel to the first axis
(13), around which stapling main axis (35, 35') the stapling fork (21, 21') is arranged
to, by a second guide means (38, 38'), be turned in the stapling zone (32) in order
to align the staple (25, 25') held by the stapling fork so that the web (27, 27')
thereof will be parallel or tangentially orientated in relation to the surface (16)
of the product part when the web of the staple is directed in the direction of motion
of the product part.
5. Linear stapling machine according to claim 4, characterized in that the second guide means (38) comprises a second cam follower mounted to a second turning
arm (57, 57') connected to a stapling head (50, 50') in which the stapling fork (21,
21') is turnably mounted and a second cam curve that is formed to change the position
of the second cam follower in directions perpendicular to the first axis (13).
6. Linear stapling machine according to claim 5, characterized in that the cam curve of the second guide means is fixedly mounted to the base plate (45).
7. Linear stapling machine according to any one of claims 4-6, characterized in that the stapling fork (21, 21 ') is connected to a spring (103) arranged to provide a
return of the stapling fork (21, 21') from a turning motion into a rest position.
8. Linear stapling machine according to any one of claims 1-7, characterized in that a cutting assembly (40) is mounted at the staple pick-up zone (31) and provided with
a first wire introduction assembly (41) and a second wire introduction assembly (42),
as well as that third guide means (43, 44) are arranged to allow that the first wire
introduction assembly (41) only delivers staple blanks to one of the stapling forks
(21, 21'), and that the second wire introduction assembly (42) only delivers staple
blanks to the other one of the stapling forks (21, 21') by a pushing-away of the respective
wire introduction assembly.
9. Linear stapling machine according to claim 8, characterized in that the third guide means comprises third cam followers mounted one to each wire introduction
assembly (41, 42) and third cam curves that are formed to change the positions of
the third cam followers in directions perpendicular to the first axis (13).
10. Linear stapling machine according to claim 9, characterized in that a primary third cam follower of the first wire introduction assembly (41) is arranged
to be displaced by a cam curve situated at the first stapling fork (21), so that the
first stapling fork (21) clears the first wire introduction assembly (41), and that
a secondary third cam follower of the second wire introduction assembly (42) is arranged
to be displaced by a cam curve situated at the second stapling fork (21), so that
the second stapling fork (21) dears the second wire introduction assembly (41).
11. Linear stapling machine according to any one of claims 8-10, characterized in that the cam curves of the third guide means are rotatable together with the stapling
forks (21, 21') around the first axis (13).
12. Linear stapling machine according to any one of claims 1-11, characterized in that the stapling fork (21, 21') is turnable around a stapling fork axis (61) mounted
in a stapling head (50, 50') that is turnable around the stapling main axis (35, 35'),
the stapling fork axis (61) being perpendicular in relation to the stapling main axis
(35, 35').
13. Linear stapling machine according to claim 12, characterized in that the stapling fork axis (61) and the stapling main axis (35, 35') lie in the same
plane.
14. Linear stapling machine according to any one of claims 12-13, characterized in that the stapling head (50, 50') is connected to a spring so that the turning thereof
is actuated for a return of the stapling head (50, 50') toward a rest position.
15. Linear stapling machine according to any one of claims 12-14, characterized in that the stapling fork (21, 21') is connected to a compression spring to bring back the
longitudinally moveable stapling fork (21, 21') into a projected position after stapling
has been carried out,
16. Linear stapling machine according to any one of claims 12-15, characterized in that a cylindrical body in the stapling head (50, 50') is connected to a spring arranged
to actuate the cylindrical body and thereby the stapling fork (21, 21') for a return
into a rest position by a turning motion.
17. Linear stapling machine according to any one of claims 8-16, characterized in that the cutting assembly (40) is fixedly mounted to the base plate (45).
18. Linear stapling machine according to any one of claims 1-17, characterized in that a staple forming device (43), preferably in the form of a forming wheel, is mounted
in the staple pick-up zone (31) after the two wire directing assemblies (41, 42) in
respect of the direction of motion of the stapling fork.
19. Linear stapling machine according to claim 18, characterized in that the staple forming device (43) is arranged to form staples picked up by both stapling
forks (21,21').
20. Linear stapling machine according to any one of claims 1-19, characterized in that the stapling forks (21, 21') are mounted in a stapling cylinder (51) that is arranged
to rotate around the first axis (13).