FIELD OF THE INVENTION
[0001] The present invention relates to circular knitting machines and more particularly
to a jacquard pattern control mechanism therefor.
BACKGROUND OF THE INVENTION
[0002] Jacquard knitting on a circular knitting machine requires needle selection of specific
knitting needles being switched between active and inactive positions. Such needle
selection is typically provided by jacquard pattern control mechanisms which include
pattern selection devices. Such jacquard control mechanisms, including their pattern
selection devices, are discussed in co-pending United States patent application, Serial
No. 771,519, now United States Patent No. 5,689,977, commonly owned with this application
and incorporated herein by reference.
[0003] As is stated in United States Patent No. 5,689,977, prior pattern selection devices
combining a permanent magnet and an electromagnet required a plurality of control
electromagnets in order to function properly. In addition, such devices were required
to limit the size of the electromagnets such that the magnetic attraction generated
thereby would not be stronger than that of the permanent magnet. Therefore, both the
permanent magnet and the electromagnets had to be quite large which caused spatial
problems in the knitting machines.
[0004] Applicant solved many of these problems and deficiencies in United States Patent
No. 5,689,977 by pattern selection devices embodying both a permanent magnet and an
electromagnet working in concert to provide the necessary magnetic attraction while
using small magnets. The present invention is an improvement on the invention of United
States Patent No. 5,689,977.
SUMMARY OF THE INVENTION
[0005] It is an object of the present invention to provide a jacquard control mechanism
for a circular knitting machine that provides an improved electromagnetic pattern
selection device producing even stronger magnetic attraction than has been achieved
heretofore by comparable sized magnets.
[0006] This object is accomplished by an electromagnetic selecting mechanism including a
rocker bar having first and second attractable portions at its opposite ends and magnetic
attracting means comprising a permanent magnet and first and second electromagnets
connected to opposite sides of the permanent magnet in series. The electromagnets
include first and second cores and first and second coils, with the cores having one
end thereof disposed in attracting relation to a portion of the first and second attractable
portions of the rocker bar. The permanent magnet includes a center tip extending therefrom
into juxtaposed relation to the medial portion of the rocker bar and having a pair
of wings extending outwardly therefrom toward the ends of the cores and into juxtaposed
relation to portions of the first and second attractable portions of the rocker bar.
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] In order that the present invention may be more readily understood, reference will
now be made to the accompanying drawings, in which:-
Figure 1 is a fragmentary schematic view of the electromagnetic selecting mechanism
of the present invention;
Figure 2 is a side elevation of the mechanism shown in Figure 1 taken substantially
along line 2-2 in Figure 1;
Figure 3 is a schematic view of the mechanism of Figure 2 and illustrating the lines
of magnetic force generated when a positive voltage is applied thereto;
Figure 4 is a schematic view similar to Figure 3 illustrating the lines of magnetic
force generated when a negative voltage is applied thereto;
Figure 5 is a view similar to Figure 1 of another embodiment of the electromagnetic
selecting mechanism of the present invention;
Figure 6 is a fragmentary, vertical sectional view taken substantially along line
6-6 in Figure 5;
Figure 7 is a fragmentary, schematic view of cams, needle, sinker and operating elements
of a jacquard control mechanism of the present invention;
Figure 8 is a fragmentary vertical sectional view taken substantially along line 8-8
in Figure 7;
Figure 9 is a fragmentary vertical sectional view taken substantially along line 9-9
in Figure 7;
Figure 10A is a fragmentary vertical sectional view taken substantially along line
10-10 in Figure 7 with the sinker in its pile forming operational position;
Figure 10B is a view similar to Figure 10A with the sinker in its non-pile forming
operational position;
Figure 11A is a fragmentary vertical section taken substantially along line 11-11
in Figure 7 with the sinker in its pile forming position;
Figure 11B is a view similar to Figure 11A with the sinker in its non-pile forming
position;
Figure 12A is a fragmentary, vertical sectional view taken substantially along line
12-12 in
Figure 7 with the sinker in its pile forming position;
Figure 12B is a view similar to Figure 12A with the sinker in its non-pile forming
position;
Figure 13 ia a fragmentary, vertical sectional view taken substantially along line
13-13 in Figure 7;
Figure 14 is an enlarged, fragmentary perspective view of the rocker bar supporting
member, rocker bar, rocker bar cam and electromagnetic selection mechanism of the
present invention;
Figure 15A is a schematic view of a still further embodiment of the electromagnetic
selecting mechanism of the present invention with wiring for the selection of even
numbered knitting elements; and
Figure 15B is a view similar to Figure 15A with wiring for the selection of odd numbered
knitting elements.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0008] Referring now more specifically to the drawings and particularly to Figures 7-14,
there is illustrated schematically and sectionally the core part of a circular knitting
machine, generally indicated at
20, which incorporates the jacquard pattern control mechanism of the present invention.
Circular knitting machine
20 includes a rotary cylinder
21 having a multiplicity of grooves (not shown) therein. A knitting needle
22 is mounted for vertical sliding movement in each of the grooves in the needle cylinder
21.
[0009] Circular knitting machine
20 further includes a cam block
23 mounted adjacent the periphery of the needle cylinder
21. Cam block
23 mounts a needle cam (not shown) for raising and lowering the needles
22 between an active (knitting) position and an inactive (welting) position.
[0010] A rotary sinker cap or dial
25 is mounted on top of the needle cylinder
21 and has a multiplicity of grooves
26 extending radially from the outer periphery to the inner periphery thereof. A sinker
27 is slidably mounted in each of the sinker grooves
26 for movement between an active (extended) position and an inactive (retracted) position.
A sinker cam block
30 is mounted above the sinker cap
25 and mounts on its lower surface an inner sinker cam
31 and an outer sinker cam
32 in facing relation to the grooves
26 and sinker cap
25.
[0011] Sinker
27 has a main section
27a and an extension section
27b. The outer end of the main section
27a defines a vertical edge
27c. A butt
27d protrudes upwardly from extension section
27b and has vertical edges
27e and
27f. The main section
27a has a nose
27g defining a first top edge
27h for forming pile loops from a pile yarn
PY. Main section
27a has a second top edge
27i for forming ground or nonpile stitch loops from a ground yarn
GY. Pile yarn
PY and ground yarn
GY are fed to the needles
22 by a yarn carrier
28 (Figures 7-12).
[0012] Cam
31 has a side edge
31a that engages the vertical edge
27c of sinker
27 and a side edge
31b which cooperates with a side edge
32a on cam
32 to define a cam track
33 which receives the butt
27d and controls sinker
27 by engagement of side edge
31b with vertical edge
27e and side edge
32a with vertical edge
27f. Cam
32 has another side edge
32b, the function of which will be described presently.
[0013] An intermediate member
34 is disposed in each sinker groove in sinker cap
25 outwardly of sinker
27 (Figures 8-13). Intermediate member
34 has a butt
34a thereon which has a first vertical edge
34b and a second vertical edge
34c (Figure 7). A first intermediate cam
35 is mounted on cam block
30 adjacent cam
32 and has a first side edge
35a which cooperates with side edge
32b of cam
32 to define a cam track
36. Cam track
36 receives butt
34a on intermediate member
34 and controls and moves intermediate member
34 by engagement with side edge
32b with vertical edge
34b and side edge
35a with vertical edge
34c (Figure 7). A second intermediate cam
37 is disposed in cam track
36 and has a first side edge
37a and a second side edge
37b. Side edge
37a has a first slope or angled section
37a1 and a second straight section
37a2. Side edge
37b of cam
37 is straight and parallel to side edge
35a of cam
35. Cam
37 divides cam track
36 into two branches
36a and
36b. If butt
34a on intermediate member
34 is caused to follow branch
36a of cam track
36, side edge
37a of cam
37 engages vertical edge
34c of butt
34a and moves intermediate member
34 into contact with sinker
27 and moves sinker
27 further toward the needles
22. Such movement brings the nose
27g of sinker
27 into operative position to form pile loops over top edge
27h. Thereafter, side edge
32b returns intermediate member
34 back to its retracted position which corresponds to branch
36b of cam track
36.
[0014] The second intermediate cam
37 is preferably mounted on cam block
30 for movement between an extended, operative position and a retracted, inoperative
position (Figures 12A and 12B). Accordingly, cam block
30 is provided with a recess
30a into which an inner end
38a of a threaded operating member
38 extends. Cam
37 is mounted on the inner end
38a of operating member
38 by receiving this inner end
38a in a cavity
37c in cam
37. Cavity
37c is larger than the inner end
38a of operating member
38 such that cam
37 may move a predetermined amount longitudinally or axially of operating member
38. A coil spring
39 is positioned around operating member
38 between cam
37 and the bottom of recess
38a to bias cam
37 toward the inner end of operating member
38 and toward its operative position. Thus, cam
37 protects the butt
34a from damage from outside forces which may act thereon.
[0015] A rocker bar supporting member
40 (Figures 7-14) is slidably mounted in each sinker groove
26 outwardly of intermediate member
34. Rocker bar supporting member
40 includes an inner end section
41, the lower portion of which is received in sinker groove
26 and the upper portion of which includes a butt
41a. Butt
41a includes a first vertical edge
41b and a second vertical edge
41c.
[0016] Rocker bar supporting member
40 includes a medial section
42 having a central portion
42a and opposite end portions
42b and
42c. The lower portion of central portion
42a is received in sinker groove
26 and the upper portion of which has a recess or socket
42d therein. Opposite end portions
42b and
42c of medial section
42 are of less height than central portion
42a such that the top edges thereof are recessed below the top edge of the central portion
42a. Finally, rocker bar supporting member
40 includes an outer end section
43, the lower portion of which is received in sinker groove
26.
[0017] A rocker bar
44 is mounted on the medial section
42 of rocker bar supporting member
40 for pivotal movement by a circular pivot protrusion
44a which is received in socket
42d. Rocker bar
44 has symmetrical opposite end portions
44b and
44c which are beveled, wedge-shaped at their outer extremities at
44d and
44e. The lower portions of opposite end portions
44b and
44c are bulbous-shaped and serve to engage the upper ends of end portions
42b and
42c of medial section
42 of rocker bar supporting member
40 to limit the pivotal movement of rocker bar
44. The upper sections
44f and
44g of end portions
42b and
42c are magnetically attractable and are raised above the central portion of rocker bar
44.
[0018] A rocker bar supporting member cam
46 is carried by cam block
30 adjacent cam
35. Cam
46 has a side edge
46a which is straight and spaced from a second side edge
35b of cam
35 to define therewith a cam track
47 which receives and controls butt
41a on rocker bar supporting member
40. Cam
35 has a concave section
35c in its second side edge
35b corresponding to the location of second intermediate cam
37.
[0019] Cam
46 has a second side edge
46b which is positioned to engage wedge-shaped end
44d of rocker bar
44 when rocker bar
44 is pivoted to have end portion
44b extended to maintain the rocker bar
44 and rocker bar supporting member
40 in the inactive, retracted position. A rocker bar actuating cam
48 is mounted on cam block
30 and has a side edge
48a spaced from side edge
46b a distance equal to the length of rocker bar
44. Side edge
48a engages the wedge-shaped end
44e when rocker bar
44 is pivoted to position end portion
44c in extended position. Cam
48 has a protruding portion
48b in side edge
48a in alignment with and of the same shape as the concave section
35c in side edge
35b of cam
35. The protruding portion
48b preferably has a trapezial-shaped cross section corresponding to the wedge-shaped
end
44e of rocker bar
44.
[0020] Upstream of protruding portion
48b of cam
48, a cancelling cam
49 is positioned above the path of travel of rocker bar
44 and includes an upperly and outwardly sloped surface
49a to engage a pivoted or tilted rocker bar
44 and cam rocker bar
44 back to a level or neutral position. Cancelling cam
49 will function irrespective of the direction in which rocker bar
44 is pivoted. Preferably, cancelling cam
49 is constructed of an antimagnetic material so that it effectively weakens leaking
magnetic attraction from the permanent magnet.
[0021] A magnetic attraction selection device, generally indicated at
50, is positioned immediately downstream of cancelling cam
49 and above the path of travel of rocker bar
44 such that the rocker bar
44 on the rocker bar supporting member
40 passes closely therebeneath. Selection device
50 is positioned upstream of protruding portion
48b of cam
48.
[0022] Selection device
50 includes two magnetic attraction means
51 and
52 (Figures 2, 7 and 14) disposed in position to attract magnetically the magnetic attractable
sections
44f and
44g, respectively, of rocker bar
44 when rocker bar
44 passes therebeneath (Figures 1, 2, 3 and 4 are shown with the elements upside down).
Preferably, magnetic attraction selection device
50 comprises a permanent magnet
53 in the center and first and second electromagnets
54 and
55 on opposite sides thereof, which define the magnetic attraction means
51 and
52. Permanent magnet
53 and electromagnets
54 and
55 are all supported by a support member
56 (Figure 2). Preferably, the permanent magnet
53 has an extension
53a which extends toward rocker bar
44 and has a central section
53b which engages the medial portion of rocker bar
44 to stabilize the same. Extension
53a also has two wing portions
53c and
53d extending generally parallel to rocker bar support member
40 and into overlying relation to portions of the magnetic tractable sections
44f and
44g, respectively, of rocker bar
44 when rocker bar
44 is passing therebeneath.
[0023] The extension
53a must be of a magnetic material and may be part of the permanent magnet
53 and, therefore, will be of permanent magnetic material. The wings
53c and
53d are tapered or beveled outwardly and upwardly from the center section
53b to the outer ends such that when rocker bar
44 is pivoted the lower surfaces of the wings
53c and
53d will be parallel to the magnetic attractable sections
44f and
44g and spaced therefrom a gap distance of between about 0.5 mm and about 2.0 mm.
[0024] Electromagnets
54 and
55 include first and second exciting coils
54a,
55a on opposite sides of permanent magnet
53 and first and second cores
54b, 55b inside and extending to the left and right, respectively, of the coils
54a, 55a. The outer tips
54c, 55c of the cores
54b, 55b are slanted upwardly and outwardly from the inside to the outside to accommodate
sufficient pivotal movement of rocker bar
44 without contact with these tips
54c, 55c. Also preferably, the magnetically attractable sections
44f and
44g of rocker bar
44 slant downwardly and outwardly for this same reason, with the same gap distance as
stated above. The coils
54a, 55a are connected in series (Figures 3 and 4).
[0025] By applying positive or negative voltage to the electromagnets
54, 55, the tips
54c, 55c selectively attract magnetically attractable sections
44f, 44g of rocker bar
44. For example, when positive voltage is applied from
A to
B (Figure 3), the magnetic field of the permanent magnet
53 is shut off by a flux generated by the first electromagnet
54 and this shut off first magnetic field and a flux generated by the second electromagnet
55 are added to the magnetic flux of the first electromagnet
54 creating a stronger magnetic field. At this time, the core
54b of the first electromagnet
54 selectively attracts the attractable section
44f of the rocker bar
44.
[0026] As shown in Figure 4, when a negative voltage is applied from
B to
A, the magnetic field of the permanent magnet
53 is shut-off by the flux generated by the second electromagnet
55 and the shut-off magnetic field from the permanent magnet
53 and the flux generated by the first electromagnet
54 are added to the first magnetic flux of the second electromagnet
55, creating a stronger magnetic field. At this time, the core
55b of the second electromagnet
55 selectively attracts the attractable section
44g of the rocker bar
44.
[0027] Referring now to Figures 5 and 6, another embodiment of the electromagnetic selection
device
50' of the present invention is illustrated and in which like parts are referred to by
like reference characters with the prime notation added. The electromagnetic selection
device
50' includes two magnetic attraction means
51' and
52' disposed in position to attract magnetically the magnetic attractable sections
44f and
44g respectively of rocket bar
44 when rocket bar
44 passes therebeneath. Preferably, magnetic attraction selection device
50' comprises a first permanent magnet
53' in the center and first and second electromagnets
54' and
55' on opposite sides thereof, which define the magnetic attraction means
51' and
52'. Permanent magnet
53' and electromagnets
54' and
55' are identical to the permanent magnet
53 and electromagnets
54 and
55 described above and will, therefore, not be described again.
[0028] Electromagnets
54' and
55' include first and second cores
54b' and
55b'. Cores
54b' and
55b' include second and third permanent magnets
70, 71. By providing the second and third permanent magnets
70, 71 underneath the tips
54c' and
55c', even when the next signal for attraction of the rocket bar
44 is sent to the electromagnets
54', 55', the second and third permanent magnets
70, 71 continue attracting the attractable sections
44f and
44g of the rocker bar
44. As a result, when the electromagnetic selection device is used in a circular knitting
machine, after a needle selection has been performed, the electromagnetic selection
device will receive no influence of the next needle selection signal. Therefore, there
will be much less needle selection errors even at high speed operation.
[0029] The operation of the various embodiments will now be described. When sinker
27 is to be advanced, a signal from a controller (not shown) is sent to the magnetic
selection device
50 or
50' to cause electromagnetic electromagnet
55 to attract magnetically attractable section
44g of rocker bar
44 to pivot rocket bar
44 and move wedged-shaped end
44e in extended position (Figure 14). By this time, ground yarn
GY is supplied from yarn carrier
28 and crosses over top edge
27i of sinker
27 and is fed to the knitting needle
22.
[0030] As rocker bar
44 moves with rotating sinker cap
25, wedge-shaped end
44e engages the protrusion
48b of cam
48 and rocker bar
44 and rocker bar supporting member
40 are pushed inwardly toward the cylinder
21. Rocker bar supporting member
40 engages and pushes inwardly intermediate member
34 such that butt
34a engages the inwardly slanting section
37a1 of side edge
37a of second intermediate cam
37 which pushes intermediate member
34 even further inwardly toward cylinder
21.
[0031] Intermediate member
34 engages sinker
27 and advances sinker
27 to its most extended inward position in which nose
27g is in position to receive pile yarn
PY from yarn carrier
28 across the top edge
27h thereof to form a pile loop in concert with needle
22. When butt
34a reaches the straight section
37a2 of side edge
37a of second intermediate cam
37, the tip of nose
27g of sinker
27 is preferably at least 0.3 mm inward from the circumferential action line
L (Figure 7) of the knitting needle
22. Therefore, formation of a pile loop at least 0.3 mm from the tip of nose
27g is ensured and will prevent such pile loop from prematurely slipping off of top edge
27h of sinker
27.
[0032] While intermediate member
34 is being pushed further out by second intermediate cam
37, butt
41a on rocker bar supporting member
40 engages the outwardly slanting portion of concave section
35c of first intermediate cam
35 which returns rocker bar supporting member
40 and thus rocker bar
44 to their original retracted positions. Of course, it is possible to omit intermediate
member
34 and have rocker bar supporting member
40 act directly on sinker
27. Suitable modification of the cam system would also be required.
[0033] When sinker
27 is not to be advanced, a signal is sent to electromagnet
54 so as to attract magnetically attractable section
44f of rocker bar
44 to pivot rocker bar
44 to extend wedge-shaped end
44d. Rocker bar
44 does not engage rocker bar actuating cam
48 and, therefore, rocker bar
44 and rocker bar supporting member
40 do not move inwardly in groove
26 of sinker cap
25. Consequently, intermediate member
34 is not pushed inwardly and butt
34a thereon remains in branch
36b of cam track
36. Sinker
27 is thus only controlled by cam track
33 and both the pile yarn and ground yarn
GY are fed to needle
22 and form ground stitch loops across the second top edge
27i of sinker
27. The action line
L2 (Figure 7) shows the action of sinker
27 forming pile and nonpile loops in the knitted fabric.
[0034] As each rocker bar
44 approaches the electronic attracting device
50, the rocker bar
44 is preferably aligned to be horizontal by the cancelling cam
49. The rocker bar
44 is thus always in the neutral position when it reaches the magnetic selecting device
50 or
50'.
[0035] In the electromagnetic selecting device
50 and
50', the North pole and the South pole of the permanent magnet
53 are arranged outward and inward respectively. When this electromagnetic selecting
device
50, 50' is employed as a sinker control in a circular knitting machine, alternating the poles
between mutually adjacent yarn feeders eliminates residual magnetism in the rocker
bar
44. In this manner, if a positive voltage applied to electromagnets
54 and
55 (Figure 15A) at one yarn feeder is alternated with a negative voltage applied to
the electromagnets
54, 55 at the next yarn feeder (Figure 15B), control signals for other action or nonaction
from the control apparatus can have the same polarity for every yarn feeder.
[0036] As described above, by using the sinker control mechanism of the present invention,
it is possible to select "pile" or "non-pile" in accordance with the pattern signal
output from the controller and knit a jacquard pile fabric with a profiled surface.
The application of the present invention, however, is not restricted to knitting machines
for manufacturing jacquard pile fabrics. The present invention contemplates application
of the jacquard selection mechanism to a wide variety of knitting machines in which
knitting elements, such as sinkers, cylinder needles, dial needles and jacquards,
to name just a few, are selectively controlled in at least two different paths.
[0037] The electronic magnetic selection device of the present invention minimizes needle
selection errors by minimizing the influence from the previous or subsequent signals
to the electronic selection device
50 or
50'. Previously, when a rocker bar
44 and its associated electromagnetic selection means
51 and
52 receive a first signal at a needle selection point, this first rocker bar
44 moves for a certain distance in the rotational direction of the knitting machine
before a subsequent signal is sent to the electromagnetic selecting device
50 or
50' for the next rocker bar
44. When the subsequent signal is sent to the electromagnetic selecting device
50 or
50' is of opposite polarity from the immediately preceding signal, the potential for
the second signal being influenced by the first signal was present. In general, the
length of the moving distance of the previous rocker bar, i.e. the longer the pitch
between the rocker bars, and the lower the needle-selection current to the electromagnetic
selection device
50, the less influence from the previous or subsequent signals occurs and, therefore,
a more stable needle selection is achieved.
[0038] Tests have been conducted which have measured the moving distance required for stable
needle selection. The performance test results of the control mechanism of the present
invention are shown below in Table 1, whereas the performance test results of the
control mechanism of U.S. Patent No. 5,689,977 are shown in Table 2.

[0039] It is evident from Table 2 that heretofore a minimum pitch between rocker bars was
0.8 mm before stable needle selection was achieved. With the present invention, a
pitch of only 0.4 mm is necessary to obtain stable needle selection as is shown in
Table 1. Accordingly, fine gauge, high speed operation with a short rocker-bar-to-rocker-bar
pitch is possible (e.g., a minimum of 32 needles per inch with a pitch distance of
0.79 mm or less).
[0040] The chart contained in Table 3 below illustrates test results where the performance
of the electromagnetic selecting mechanism 50 are shown. In this chart, the
X axis represents current values while the
Y axis represents the attraction between the tips
54c, 55c of the cores
54, 55 and the attractable sections
44f and
44g of the rocker bar
44. Model 1 represents a gap distance between the tips of
54c and
55c and the attractable sections
44f and
44g to be 1.0 mm with a single permanent magnet
53 associated therewith. Model 2 shows a gap of 1.0 mm with two permanent magnets
70 and
71 associated with the cores
54b', 55b' of the electromagnets
54' and
55', while Model 3 employs a gap of 5.0 mm and one permanent magnet
53. As shown in this chart, Model 3 has the weakest attraction while Model 1 has a stronger
attraction than Model 3. However, Model 2 has the strongest attraction of all.

[0041] The electromagnetic selecting mechanism
50 or
50' of the present invention when, used in a jacquard circular knitting machine, occupies
considerable less space within the knitting machine. Further, because the electromagnetic
selecting mechanism of the present invention has a strong magnetic field, needle selection
errors are minimized. A further advantage of the present invention is that the rocker
bar
44 does not employ a projecting butt, but instead the end portions
44d and
44e of the rocker bar
44 engage directly against the rocker bar raising cam
48. Therefore, the rocker bar
44 does not slip off of the rocker bar raising cam
48 and this eliminates selection errors. In addition, the danger of butt breakage is
minimal or nonexistent. Finally, because the rocker bar
44 is the only item to be controlled, the magnetic attracting means
51 and
52 may also be made compact. The electronic magnetic selecting device
50 or
50' can be computer controlled and, therefore, fabrics of a wide variety of patterns
can be produced.