[0001] This invention relates to a wire winding machine, and, in particular, such a machine
for forming winding of wire on a body of a workpiece.
[0002] In the production of small-sized transformers, for example for use in pacemakers
to be installed within a human body, windings of wires have to be formed around a
core of a very small size. In the case of small-sized transformers with toroidal cores,
the difficulty is more pronounced because of the necessity of winding wire through
the centre hole of the torus. The production of small-sized transformers with toroidal
cores is thus highly labour-intensive and not readily susceptible to automation. The
production rate of such small-sized transformers is thus limited.
[0003] It is thus an object of the present invention to provide a wire winding machine to
provide a wire winding machine in which the aforesaid shortcomings are mitigated or
at least to provide a useful alternative to the trade and public.
[0004] According to a the present invention, there is provided a wire winding machine including
means for holding a workpiece having a body with a hole, and means for moving a piece
of wire through said hole of said workpiece to form at least one turn of winding of
said piece of wire on said body of said workpiece.
[0005] A wire winding machine and wire winding machine assemblies according to the present
invention will now be described, by way of examples only, with reference to the accompany
drawings, in which:
Fig. 1 is a front perspective view of a wire winding machine according to an embodiment
of the present invention;
Fig. 2 is a rear perspective view of the wire winding machine of Fig. 1;
Fig. 3 is a perspective view of a wire winding machine assembly, formed of a number
of the wire winding machines of Fig. 1;
Fig. 4 is a bottom view of the wire winding machine assembly of Fig. 3;
Fig. 5 is a front perspective view of a further wire winding machine assembly, formed
of a number of the wire winding machines of Fig. 1; and
Fig. 6 is a rear perspective view of the wire winding machine assembly of Fig. 5.
[0006] A wire winding machine according to an embodiment of the present invention is shown
in Figs. 1 and 2, generally designated as 100. The machine 100 is supported by a base
102. A toroidal core 104 (being a workpiece on and around which a piece wire is to
be wound) with an annular body 104a and a central hole 104b is held from above by
an upper holder 106 and from below by a lower holder 108. Two diametrically opposite
parts of the core 104 are thus held by the upper holder 106 and the lower holder 108.
The upper holder 106 and the lower holder 108 are fixedly engaged with a semi-circular
gear ring 110 at diametrically opposite positions, for simultaneous rotational movement
about an axis P-P which coincides with the central longitudinal axis of the core 104
when held by the upper holder 106 and lower holder 108. The semi-circular gear ring
110 is in mesh with a worm 112 which is rotatable about its own central longitudinal
axis S-S, which is perpendicular to the axis P-P. A motor 114 is operable to drive
the worm 112 to rotate about the axis S-S to thereby cause the semi-circular gear
ring 110 to rotate about the axis P-P, to cause corresponding rotation of the toroidal
core 104 held by the upper holder 106 and the lower holder 108, and about the axis
P-P.
[0007] The machine 100 further includes a first wire manipulator 116a, a second wire manipulator
116b and a third wire manipulator 116c. The first wire manipulator 116a is movable
by a first pneumatic or fluid cylinder 118a to reciprocate along a path parallel to
the axis P-P; and the second wire manipulator 116b is movable by a second pneumatic
or fluid cylinder 118b to reciprocate along a path parallel to the axis P-P. The path
along which the first wire manipulator 116a is movable coincides with the path along
which the second wire manipulator 116b is movable. The third wire manipulator 116c
is movable by a third pneumatic or fluid cylinder 118c and a fourth pneumatic or fluid
cylinder 118d. The third wire manipulator 116c is movable by the third cylinder 118c
to reciprocate along a path parallel to an axis T-T which is perpendicular to both
the axis P-P and the axis S-S, and is movable by the fourth cylinder 118d to reciprocate
along a path parallel to the axis P-P.
[0008] Both the third cylinder 118c and the fourth cylinder 118d are fixed to a board 120
which is slidable along a rail 122 fixed to the base 102. The board 120 is linked
with a rotary plate 124
via a link 126 eccentrically connected with the rotary plate 122. The rotary plate 122
is operatively associated with a motor 128, such that activation of the motor 128
will cause the rotary plate 122 to rotate about its central longitudinal axis R-R,
which is parallel to the axis S-S. Rotation of the rotary plate 122 about the axis
R-R will bring about linear movement of the board 120 (and thus the third wire manipulator
116c, the third cylinder 118c and the fourth cylinder 118d carried by it) along the
rail 122, towards or away from the worm 112, depending on the direction of rotation
of the motor 128.
[0009] To wind turns of a piece wire around the annular body 104a of the toroidal core 104,
a piece of wire is first held by the first wire manipulator 116a when at its original
rear position. The first wire manipulator 116a is then moved by the first cylinder
118a to approach the core 104 from one side, along a path parallel to the axis P-P
until the first wire manipulator 116a is at its front position in which the piece
of wire is received through the central hole 104b of the core 104. The second wire
manipulator 116b is then moved by the second cylinder 118b along a path along an axis
parallel to the axis P-P from its original rear position towards and from the other
side of the core 104 to a front position to receive the wire from the first wire manipulator
116a. The first wire manipulator 116a is then moved back by the first cylinder 118a
to its original rear position. The second wire manipulator 116b is then moved back,
with the wire held by it, to its original rear position by the second cylinder 118b.
[0010] The third wire manipulator 116c is then moved by the third cylinder 118c and fourth
cylinder 118d towards the second wire manipulator 116b to receive the wire from the
second wire manipulator 116b, and is then moved by the third cylinder 118c and fourth
cylinder 118d towards the first wire manipulator 116a to pass the wire to the first
wire manipulator 116a. If necessary, the motor 128 rotates the rotary plate 124 to
move the board 120, which carries the third wire manipulator 116c, towards or away
from the worm 112, so as to maintain the wire in a taut condition when being transferred
by the third wire manipulator 116c from the second wire manipulator 116b to the first
wire manipulator 116a.
[0011] The above actions bring about the winding of one turn of wire on and around the annular
body 104a of the core 104. After this, the semi-circular gear ring 110 is caused by
the worm 112 to rotate by a pre-determined angle about the axis P-P, to bring about
corresponding rotation of the core 104 about the axis P-P by the same angle. A further
turn of winding of the wire may thus be formed on and around the annular body 104a
of the core 104 (next to the first turn of winding of the wire just formed on and
around the body 104a) by repeating the above sequence of actions, through passing
of the piece of wire by and from the first wire manipulator 116a to the second wire
manipulator 116b, then to the third wire manipulator 116c, and then back to the first
wire manipulator 116a, to be followed by further rotation of the core 104 in the same
direction by the same pre-determined angle.
[0012] A wire winding machine assembly formed of a number of wire winding machines 100 is
shown in Fig. 3, and generally designated as 200. In particular, the assembly 200
includes six wire winding machines 100 radially and equi-angularly arranged on a circular
base 202. To facilitate synchronous operation of the machines 100, and as shown in
Fig. 4, a central gear 204 which is operatively associated with a motor (not shown)
is provided on a bottom side of the base 202. The central gear 204 is in mesh with
six intermediate transfer gears 206, each in turn in mesh with a respective gear 208.
Each of the gears 208 is associated with a respective worm 112 of a respective wire
winding machine 100 carried by the assembly 200. By way of such an arrangement, rotation
of the worms 112 (and thus that of the semi-circular gear rings 110 and the cores
104 held by the machines 100) is synchronized.
[0013] A further wire winding machine assembly formed of a number of wire winding machines
100 is shown in Figs. 5 and 6, and generally designated as 300. In particular, the
assembly 300 includes four wire winding machines 100 arranged side by side with each
other on a base 302.
[0014] It should be understood that the above only illustrates examples whereby the present
invention may be carried out, and that various modifications and/or alterations may
be made thereto without departing from the spirit of the invention.
[0015] It should also be understood that certain features of the invention, which are, for
clarity, described in the context of separate embodiments, may be provided in combination
in a single embodiment. Conversely, various features of the invention which are, for
brevity, described in the context of a single embodiment, may also be provided separately
or in any appropriate sub-combinations.
1. A wire winding machine including:
means for holding a workpiece having a body with a hole, and
means for moving a piece of wire through said hole of said workpiece to form at least
one turn of winding of said piece of wire on said body of said workpiece.
2. A wire winding machine according to Claim 1, wherein said workpiece holding means
is rotatable to cause said workpiece to rotate about a longitudinal axis of said workpiece.
3. A wire winding machine according to Claim 2 wherein said workpiece holding means is
rotatable by a predetermined angle after formation of each turn of winding of said
piece of wire on said body of said workpiece.
4. A wire winding machine according to any of the preceding claims wherein said workpiece
holding means includes a first workpiece holder and a second workpiece holder, each
adapted to hold a respective part of said workpiece.
5. A wire winding machine according to Claim 4 wherein said first workpiece holder and
said second workpiece holder are adapted to hold two substantially diametrically opposite
parts of said workpiece.
6. A wire winding machine according to any of the preceding claims wherein said wire
moving means includes a first wire holder, a second wire holder, and a third wire
holder.
7. A wire winding machine according to Claim 6 wherein said first wire holder is adapted
to hold said piece of wire and pass said piece of wire to said second wire holder,
said second wire holder is adapted to receive said piece of wire from said first wire
holder and pass said piece of wire to said third wire holder, and said third wire
holder is adapted to receive said piece of wire from said second wire holder and pass
said piece of wire to said first wire holder.
8. A wire winding machine according to Claim 6 or 7 wherein said first wire holder is
movable along a first axis, said second wire holder is movable along a second axis
parallel to said first axis, and a third wire holder is movable along a third axis
parallel to said first axis and a fourth axis perpendicular to said third axis.
9. A wire winding machine according to Claim 8 wherein said first axis and second axis
substantially coincide with each other.
10. A wire winding machine according to any one of Claims 6 to 9, further including means
for maintaining said piece of wire taut during movement from said second wire holder
to the third wire holder and back to the first wire holder.
11. A wire winding machine according to Claim 10 wherein said maintaining means includes
means for moving said third wire holder.
12. A wire winding machine according to Claim 11 wherein said means for moving third wire
holder includes a rotary plate with a link operatively engaged with said third wire
holder.
13. A wire winding machine according to Claim 12 wherein said link is eccentrically linked
with said rotary plate.
14. A wire winding machine assembly including at least two wire winding machines according
to any of the preceding claims.