Information
-
Patent Grant
-
6619095
-
Patent Number
6,619,095
-
Date Filed
Wednesday, July 11, 200123 years ago
-
Date Issued
Tuesday, September 16, 200321 years ago
-
Inventors
-
Original Assignees
-
Examiners
Agents
- Birch, Stewart, Kolasch & Birch, LLP
-
CPC
-
US Classifications
Field of Search
US
- 072 4529
- 072 386
- 072 297
- 083 588
-
International Classifications
-
Abstract
A pressing apparatus provides an urging force for a slide cam to press only when necessary, and elsewhere this pressing-force is maintained as small as possible. Abnormal wear and seizure of the slide cam, slide cam base and the sliding portion of the driven cam are prevented. The pressing apparatus can also provide a larger retracting force for the slide cam near a lower dead center of a pressing stroke. The present apparatus includes a slide cam slidably provided in a guidepost attached to the slide cam base and guided by the slide cam base, a pressing member held by the slide cam, a retracting-spring between the slide cam base and the slide cam for urging the slide cam, and a driven cam for contacting and driving the slide cam. A pressing-spring for urging the slide cam only near a lower dead center of a pressing stroke is provided between the slide cam base and the slide cam and/or between the slide cam and the driven cam.
Description
This nonprovisional application claims priority under 35 U.S.C. §119(a) on Patent Application No. 2001-118961 filed in Japan on Apr. 18, 2001, which is herein incorporated by reference.
BACKGROUND OF THE INVENTION
SUMMARY OF THE INVENTION
The present invention relates to a pressing apparatus, and particularly to a pressing apparatus exerting a pressing force only near the lower dead center of the pressing stroke where the pressing force is mostly needed.
When bending a work by means of a cam die for example, assume that there is an 85 mm pressing stroke. Within this 85 mm of the pressing stroke, it is only about 25 mm portion near the end of the pressing stroke, i.e. near the lower dead center of the pressing apparatus, that is used directly for bending the work. It is this ending portion of the pressing stroke that requires a large pressing force for bending operation for example.
The slide cam is urged by a pressing-urge provider, which is generally provided by a coil spring. In order to exert a large urging force near the ending portion of the pressing stroke, an initial spring pressure must also be set at a high level of spring pressure.
Because of this setting, the slide cam, a slide cam base and a sliding portion of a driven cam are subject to abnormal wear and seizure.
Another problem is that during a preparatory step before manufacture, a few design changes are usually made to the pressing apparatus. In such occasions for example, it is required that the slide cam, the slide cam base, the driven cam and so on should be disassembled and reassembled easily, with the pressing apparatus staying installed to the pressing machine.
With the circumstances described above, it is an object of the present invention that the urging force for the slide cam to press is provided only when necessary and this pressing-urge is held as small as possible in a portion of the pressing stroke in which the work is not directly pressed, thereby preventing abnormal wear and seizure of the slide cam, slide cam base and the sliding portion of the driven cam. The present invention provides a pressing apparatus comprising: a slide cam base; a slide cam slidably provided in a guidepost attached to the slide cam base, the slide cam holding a pressing member such as a bending member and being guided by the slide cam base; a retracting-urge provider provided between the slide bas base and the slide cam for urging the slide cam; and a driven cam for contacting and driving the slide cam; wherein a pressing-urge provider for urging the slide cam only near a lower dead center of a pressing stroke is provided between the slide cam base and the slide cam and/or between the slide cam and the driven cam.
Further, in order to enable disassembling and reassembling of the slide cam, the slide cam base and the driven cam with the pressing apparatus staying installed to a pressing machine, the present invention provides a pressing apparatus, wherein the guidepost has an end formed with a threaded hole and each of the retracting-urge provider and the pressing-urge provider are mounted on a mounting plug faced by a wall formed with a through hole, thereby enabling the disassembling and reassembling of the slide cam, with the pressing apparatus remaining installed to the pressing machine.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1
shows a pressing apparatus as an embodiment of the present invention, showing a section at a lower dead center.
FIG. 2
is a view taken from a direction indicated by Arrow II in FIG.
1
.
FIG. 3
is a view taken from a direction indicated by Arrow III in FIG.
1
.
FIG. 4
is a sectional view taken from a direction indicated by Arrow IV in FIG.
3
.
FIG. 5
is a sectional view taken from a direction indicated by Arrow V in FIG.
3
.
FIG. 6
is a stroke diagram according to the embodiment of the present invention.
FIG. 7
is a diagram of a spring (retracting-urge provider, pressing-urge provider) according to the embodiment of the present invention.
FIG. 8
shows the pressing apparatus as an embodiment of the present invention, showing a section at an upper dead center.
PROBLEMS TO BE SOLVED BY THE INVENTION
Now, the present invention will be described based on a specific embodiment shown in the accompanying drawings.
FIG. 1
shows a cam-operated pressing apparatus as an embodiment of the present invention, showing a section at a lower dead center.
FIG. 2
is a view taken from a direction indicated by Arrow II in FIG.
1
.
FIG. 3
is a view taken from a direction indicated by Arrow III in FIG.
1
.
FIG. 4
is a sectional view taken from a direction indicated by Arrow IV in
FIG. 3
, showing a retracting-urge provider portion at the lower dead center.
FIG. 5
is a sectional view taken from a direction indicated by Arrow V in
FIG. 3
, showing a pressing-urge provider portion.
FIG. 6
is a stroke diagram.
FIG. 7
is a diagram of a spring (retracting-urge provider, pressing-urge provider).
FIG. 8
shows a section at an upper dead center.
The present embodiment is a pressing apparatus for bending a work.
As shown in
FIG. 1
, a lower die
82
has a lower base plate
1
provided with a supporting member
2
fixed by a bolt
3
for positioning a work W.
Near the supporting member
2
and on the lower base plate
1
, a driven cam
4
having an upper surface slanted to become lower toward the supporting member
2
, i.e. having a rightward rising slope as viewed in the figure, is fixed by a bolt
5
. The slanted surface
6
of the driven cam
4
is provided with a ridge-shaped guide
7
.
As shown in
FIG. 2
, the ridge-shaped guide
7
has an upper surface provided with a wear plate
9
fixed by a bolt
10
. Further, the slanted surface
6
of the driven cam
4
is provided with a wear plate
11
fixed by a bolt
12
.
As shown in
FIG. 2
, a slide cam
19
is generally wedge-shaped, having a lower surface provided with a V groove
16
and a wear plate
17
fixed by a bolt
18
. The V groove is provided with a wear plate
9
contacted with the driven cam
4
. The wear plate
17
is contacted with the wear plate
11
of the driven cam
4
. With this arrangement, the slide cam
19
is slidably mounted on the driven cam
4
.
On the other hand, a slide cam base
21
has a surface oppositely slanted to the driven cam
4
, or more specifically has a rightward falling slope as viewed in the figure, and is fixed to an upper base plate
22
of an upper die
81
by a bolt
23
. The slide cam base
21
has a lower end portion provided with rightward falling guideposts
24
, to which the slide cam
19
is slidably installed. Further, the slide cam
19
is urged by a gas spring
25
which serves as a retracting-urge provider, built in the slide cam base
21
in a rightward falling direction as viewed in FIG.
4
.
As shown in
FIG. 1
, the guideposts
24
are installed on two walls
28
,
29
of the slide cam base
21
. The guideposts
24
are each fitted into bores
42
provided in a guidepost support
41
in an upper portion of the slide cam
19
, via bushings
30
,
31
coaxially fitted into respective bores. Each of the guidepost
24
has a diametrically smaller end portion
32
inserted into a fitting bore
33
of the wall
28
. The tip of the diametrically smaller end
32
is threaded by a nut
83
, while the other end portion
34
is fitted into a fitting bore
35
of the wall
29
.
A circular circumference and circular bore can be machined highly accurately as compared with prismatic or other shape because of the circular nature. For this reason, according to the present invention, the guidepost
24
is made to have a circular section, and the bushings
30
,
31
and the fitting hole
33
are shaped into circular holes, so that machining can be performed highly accurately. Further, since the guidepost
24
having a circular circumferential surface is in a tight-fit relationship with circular bores of the bushings
30
,
31
, a highly accurate radial fitting with respect to a central axis can be maintained over the entire 360-degree circumference.
It should be noted here that the guidepost may be solid or hollow as far as having a circular section. However, in consideration of strength, a solid guidepost is preferable.
Sometimes, the slide cam
19
must be removed from the slide cam base
21
for a purpose of maintaining the slide cam
19
, the driven cam
4
, the slide cam base
21
and so on. In such an occasion as this, there is no need for removing many bolts as in the prior art. Instead, by simply removing the nut
83
from the end of the diametrically smaller end
32
, the guidepost
24
can be easily pulled out. If a bolt is threaded into a bolt hole
39
provided in said other end portion
34
of the guidepost
24
, the guidepost
24
can be pulled out even more easily by using the threaded bolt.
The slide cam
19
is provided in the slide cam base
21
, via the guideposts
24
and the gas springs
25
.
According to the embodiment in
FIG. 3
, the lower portion of the slide cam base
21
is provided with four of the guideposts
24
, with the space in between serving as guide grooves
40
. The slide cam
19
has an upper portion provided with the rightward rising guideposts supports
41
. The guidepost supports
41
are movable within the guide grooves
40
. The guidepost supports
41
are formed with the rightward falling insertion bores
42
. These insertion bores
42
are fitted by coaxial bushings
30
,
31
, and the guideposts
24
are fitted into these bushings
30
,
31
.
As shown in
FIG. 4
, the gas spring
25
is disposed on a slant, with rightward end lower, and a rod
44
contacted with the wall
28
. The rod
44
, which provides the gas spring
25
together with a cylinder
43
, can extend and retract. The gas spring
25
has a base end contacted with a mounting plug
84
threaded to the guidepost support
41
formed at a lower region of an upper portion of the slide cam
19
. The guidepost support
41
of the slide cam
19
has an upper surface provided with a wear plate
87
fixed by a bolt
88
. The wear plate
85
and the wear plate
87
contact and slide each other.
The slide cam
19
is generally wedge-shaped, sandwiched by the driven cam
4
and the slide cam base
21
, and pushed to move toward the work W placed on the supporting member
2
, to press the work W.
FIG. 1
shows a state in which the pressing apparatus is at its lower dead center. The slide cam
19
approaches the supporting member
2
, and the figure shows the slide cam at a left end of its stroke, with rod
44
of the gas spring
25
in its fully retracted state. When the slide cam
19
is freed of the bind from the driven cam
4
and the slide cam base
21
, the slide cam
19
comes under an urge from the gas spring
25
, and the rod
44
begins to extend. The rod
44
is fully extended at the upper dead center, i.e. the state shown in FIG.
8
. (The fully extended rod
44
is not illustrated.)
The cylinder
43
of the gas spring
25
is charged with a gas of a high pressure, at 150 kgf/cm
2
for example, matched to an application, and provides a generally constant output of 150 kgf/cm
2
for example, over an entire stroke of the rod
44
regardless of the position of the rod
44
extending out of or retracting into the cylinder
43
. This is made possible by two tanks incorporated in the cylinder
43
: When the rod
44
is retracted to pressurize one of the tanks, the high pressure gas in this tank flows out into the other tank, thereby maintaining a generally constant output over the entire stroke of the rod (though the output may become slightly larger under compression).
As has been described, differing from a coil spring, the gas spring
25
can provide a high output over its entire stroke, making possible to reliably retract the slide cam
19
and being safe.
Further, the gas spring
25
can move the slide cam
19
for a long distance, making possible to press a big work of sheet metal into such a product as automobile side panel.
The slide base
21
and the slide cam
19
have sliding surfaces provided with wear plates
87
,
85
respectively. The wear plate
87
is fixed by a bolt
88
to the slide cam base
21
, whereas the wear plate
85
is fixed by a bolt
86
to the slide cam
19
.
According to a prior art pressing apparatus equipped with the slide cam of this kind, the surface pressure used is 50 to 60 kgf/cm
2
, and only one of the slide cam base and the slide cam is provided with a wear plate. According to the present invention, each of the slide cam base and the slide cam is provided with a wear plate and only worn-out wear plates may be replaced, so that the pressing apparatus can be used on a large pressing machine capable of exerting the surface pressure of up to 150 kgf/cm
2
.
Further, according to the prior art pressing apparatus equipped with the slide cam of this kind, even if the size of the pressing apparatus is increased to have the slide cam having a larger width (left-right directions in FIG.
3
), support is provided only by guide plates on the two sides. Therefore, the slide cam is in a deflected state. According to the present invention, the deflection is eliminated by providing guideposts at appropriate locations (four locations according to the embodiment in FIG.
3
).
The present embodiment is being described as an apparatus for bending operation.
As shown in
FIG. 1
, a bending member
71
is fixed by a bolt
72
to the slide cam
19
, at a location facing the supporting member
2
which supports the work W.
On the other hand,
FIG. 8
shows the pressing apparatus at its upper dead center.
Next, an operation of this pressing apparatus will be described.
As shown in
FIG. 8
, the work W is placed on the supporting member
2
, and then the upper die
81
is lowered. The state shown in
FIG. 8
is when the pressing apparatus is at its upper dead center, where the slide cam
19
is slidably provided in the guidepost
24
of the slide cam base
21
which is attached to the upper base plate
22
of the upper die
81
, and the slide cam
19
is under an urge from the gas spring
25
and is contacted with the wall
29
.
From this state, when the upper die
81
is lowered, the wear plate
17
of the slide cam
19
and the wear plate
9
of the V groove
16
make contact with the wear plate
11
and the ridge-shaped guide
7
of the driven cam
4
. When the upper die
81
continues to lower, the slide cam
19
sandwiched by the driven cam
4
and the slide cam base
21
presses the work W with a pad
89
. The slide cam
19
moves forward to the work W, and the work W is bent by the supporting member
2
and the bending member
71
. It should be noted that the members indicated by numerals
90
and
91
are a suspending bolt and a coil spring respectively.
Thus, the bending is made by the bending member
71
, and the pressing apparatus comes to the lower dead center, i.e. the state shown in FIG.
1
.
FIG. 6
is a stroke diagram of the present bending operation. A vertical pressing stroke of this pressing apparatus is 84.59 mm. A travel distance of the slide cam
19
on the guidepost
24
is 110 mm, and a travel distance of the slide cam
19
on the driven cam
4
is 78.08 mm.
As shown in FIG.
2
and
FIG. 3
, the slide cam
19
is hung by the four guideposts
24
, and use is made of three gas springs serving as retracting-urge providers and a total of six coil springs
91
serving as pressing-urge providers.
The state of the slide cam
19
hung by the guideposts
24
is illustrated in FIG.
1
and FIG.
8
.
The state of the slide cam
19
urged by the gas spring
25
is illustrated in FIG.
4
.
FIG. 4
shows the pressing apparatus at its lower dead center, in which the rod
44
of the gas spring
25
is fully retracted. When the bending operation is complete and the upper die
81
is raised, the urge from the gas spring
25
moves the slide cam
19
into contact with the wall
29
of the slide cam base
21
, to a state in which the rods
44
are fully extended.
The gas springs
25
are each contacted with the mounting plug
84
. In order to allow disassembling and reassembling of the slide cam
19
and other members without detaching the pressing apparatus from the pressing machine, a through hole
93
is provided in the wall
29
facing each of the mounting plugs
84
, whereas a hexagonal hole
94
is provided in the outward surface of each mounting plug
84
as a receptacle for a wrench.
The state in which the slide cam
19
is under the urge from the coil spring
91
is shown in FIG.
5
. In
FIG. 5
, the pressing apparatus is at its lower dead center, at which the coil spring
91
is fully compressed. Again, in order to allow disassembling and reassembling of the slide cam
19
and other members without detaching the pressing apparatus from the pressing machine, a through hole
96
is provided in the wall
29
facing each of the mounting plugs
95
, whereas a hexagonal hole
97
is provided in the outward surface of each mounting plug
95
as a receptacle for a wrench.
The coil spring
91
contacting the mounting plug
95
is attached around the positioning pin
98
. The positioning pin
98
is slidably inserted into a bushing
50
press-fitted to the guidepost support
41
of the slide cam
19
. The positioning pin
98
has an upper end surface contacted with the wall
28
of the slide cam base
21
. The coil spring
91
has an end contacted with the mounting plug
95
, and the other end contacted with a flange
51
provided at an intermediate portion of the positioning pin
98
. The coil spring
91
is fully compressed in the figure, exerting the greatest spring pressure. When the upper die
81
is lowered, the slide cam
19
sandwiched between the driven cam
4
and the slide cam base
21
is slid leftward as viewed in FIG.
5
. The coil spring
91
initially is fully extended, with the flange
51
of the positioning pin
98
contacted with a bore bottom
52
, and its spring pressure is small. However, the spring pressure becomes large near the lower dead center of the pressing stroke. A setting is made in such a way that a large pressing force necessary for bending operation near the ending portion of the pressing stroke is exerted. It should be noted here that when the coil spring
91
is compressed, its spring force acts rightward as in the figure, and the reaction thereof slides the slide cam
19
leftward.
Another coil spring
91
is provided between the slide cam
19
and the driven can
4
. In this case, a positioning pin
99
is threaded into an upright wall
53
in an upper surface of the driven cam
4
. The coil spring
91
is attached around this pin, which penetrates an L-shaped pressure receiving member
54
fixed to a lower surface of the slide cam
19
. The coil spring
91
is compressed between the wall
53
and the pressure receiving member
54
, and its spring pressure is set in such a way that a large pressing force necessary for bending operation near the ending portion of the pressing stroke is exerted.
According to the present embodiment, four coil springs
91
are used between the slide cam
19
and the slide cam base
21
, and two coil springs
91
are used between the slide cam
19
and the driven cam
4
. However, depending on necessity, the coil spring may be used only between the slide cam and the slide cam base, or only between the slide cam and the driven cam.
The gas spring
25
and the coil spring
91
used in the present embodiment will be described by using a spring diagram shown in FIG.
7
. The gas spring
25
used in the present embodiment has a main body of a length of 300 mm when fully extended, with an allowable stroke of 125 mm (This relationship is not shown in
FIG. 7.
) Of this stroke, a 110 mm stroke is utilized (This relationship is not shown in FIG.
7
.), with the remaining 15 mm stroke is not used. (This relationship is not shown in
FIG. 7.
) The coil spring
91
has a total length of 152 mm. Of this length, 30 mm is used, and the remaining 122 mm is not used. Of the 30 mm, 5 mm is used for initial pressurizing and the remaining 25 mm stroke is used for an output to the bending operation.
When the coil spring
91
is compressed by 5 mm for the initial pressurizing, an output from the gas spring
25
is 11700 N (Newton: 1 kgf≈9.8 N). From here, at a point further down the stroke by 25 mm, an output from the gas spring
25
is 15400 N. The initial pressure from the coil spring
91
compressed by 5 mm is 5040 N. Thus, a total output combined with the 11700 N output from the gas spring
25
is 16740 N. On the other hand, when at the point further down the stroke by 25 mm, an output from the coil spring
91
is 30240 N. Thus, a total output combined with the 15400 N output from the gas spring
25
is 45640 N.
A total pressing stroke of this pressing apparatus is 84.59 mm as shown in FIG.
6
. In this stroke, the output is increased from 16740 N to 45640 N in about 25 mm portion near the end of the pressing stroke. As exemplified, a large pressing force necessary for bending operation is outputted near the ending portion of the pressing stroke, thereby achieving a high quality bending.
Thereafter, when the upper die
81
is raised, the urge from the gas spring
25
is transmitted from the rod
44
to the slide cam
19
. The slide cam
19
is then backed up, and is stopped by the wall
29
. As described, the gas spring
25
can exert a large force to retract the slide cam
19
near the ending portion of the pressing stroke.
The slide cam
19
is provided with a return plate
59
. Therefore, if the slide cam
19
is not retracted for some reason, the return plate
59
engages with the driven cam
4
, thereby forcing the slide cam
19
to retract.
In the present embodiment a bending operation is described. However, the present invention is also applicable to other forming operation.
Further, the slide cam base
21
, the slide cam
19
and the driven can
4
may be standardized so that the pressing apparatus can be readily adapted to the work of a variety of sizes.
It should be noted here that the above description covers a case in which the slide cam base
21
is provided in the upper die
81
and the driven cam
4
is provided in the lower die
82
. However, the slide cam base
21
may be provided in the lower die
82
and the driven cam
4
may be provided in the upper die
81
. This case may sometimes be regarded as safer for the operation, because the slide cam
19
is not hung by the upper die
81
but is mounted on the lower die
82
.
The present invention encompasses not only the case in which the slide cam
19
is in the upper die
81
but also the case in which the slide cam
19
is disposed in the lower die
82
.
As described above, according to the present invention, there is provided a pressing apparatus comprising: a slide cam base; a slide cam slidably provided in a guidepost attached to the slide cam base, the slide cam holding a pressing member such as a bending member and being guided by the slide cam base; a retracting-urge provider provided between the slide bas base and the slide cam for urging the slide cam; and a driven cam for contacting and driving the slide cam; wherein a pressing-urge provider for urging the slide cam only near a lower dead center of a pressing stroke is provided between the slide cam base and the slide cam and/or between the slide cam and the driven cam. Therefore, an urging force for the slide cam to press is provided only when necessary, and elsewhere this pressing-urge is held as small as possible, whereby abnormal wear and seizure of the slide cam, slide cam base and the sliding portion of the driven cam are prevented. Further, the present invention enables to provide a large retracting force for the slide cam near a lower dead center of a pressing stroke.
The setting of the cam according to the pressing apparatus provided by the present invention also clears an interference problem in a transfer pressing. Further, the present invention provides a pressing apparatus, wherein the guidepost has an end formed with a threaded hole and each of the retracting-urge provider and the pressing-urge provider are mounted on a mounting plug faced by a wall formed with a through hole, thereby enabling the disassembling and assembling of the slide cam, with the pressing apparatus remaining installed to the pressing machine. Therefore, the urging force for the slide cam to press is provided only when necessary and elsewhere this pressing-urge is held as small as possible, whereby abnormal wear and seizure of the slide cam, slide cam base and the sliding portion of the driven cam are prevented.
Claims
- 1. A pressing apparatus comprising:an upper base plate and a lower base plate; a lower die being provided on said lower base plate; an upper die being provided on said upper base plate, said upper die having an upper dead center and a lower dead center; a slide cam base operatively connected to said upper base plate; a slide cam operatively connected to said slide cam base, wherein said slide cam is slidably provided in a guidepost attached to the slide cam base and said slide cam is guided along an operating path by said slide cam base; a pressing member, wherein the pressing member is held by the slide cam and a contact position of said pressing member coincides with said lower dead center of said upper die; at least one retracting-spring being provided between the slide cam base and the slide cam for providing a spring force for moving the slide cam along said operating path; and a driven cam being provided on said lower base plate, said drive cam contacting and driving the slide cam along the operating path; at least one pressure-spring providing a spring force for moving the slide cam along said operating path toward the contact position of said pressing member in a pressing stroke.
- 2. The pressing apparatus according to claim 1, wherein said at least one pressure spring includes a pressure spring provided between said slide cam base and said slide cam.
- 3. The pressing apparatus according to claim 1, wherein said at least one pressure spring includes a pressure spring provided between said driven cam and said slide cam.
- 4. The pressing apparatus according to claim 2, wherein said at least one pressure spring includes a pressure spring provided between said driven cam and said slide cam.
- 5. The pressing apparatus according to claim 1, wherein said guidepost further includesa first end formed with a threaded hole; a wall having a through hole; and a mounting plug, wherein at least one of said retracting-spring and said pressure-spring are mounted to said guidepost within said through hole and operatively secured by said mounting plug.
- 6. The pressing apparatus according to claim 4, wherein said guidepost further includesa first end formed with a threaded hole; a wall having a through hole; and a mounting plug, wherein at least one of said retracting-spring and said pressure-spring are mounted to said guidepost within said through hole and operatively secured by said mounting plug.
- 7. The pressing apparatus according to claim 1, wherein said pressing member provides a bending force in said contact position.
- 8. The pressing apparatus according to claim 1, wherein the lower die is operatively secured to said lower base plate by a supporting member and bolt.
- 9. The pressing apparatus according to claim 1, wherein the upper die is operatively secured to said upper base plate by a bolt and an upper base plate pressure-spring.
- 10. The pressing apparatus according to claim 8, wherein said wherein the upper die is operatively secured to said upper base plate by a bolt and an upper base plate pressure-spring.
- 11. The pressing apparatus according to claim 1, wherein said slide cam base includes a slanted surface and a triangular cross-section and said slide cam has a slanted surface and a triangular cross-section, said guide post being attached to said slide cam base and said slide cam along said slanted surfaces.
- 12. The pressing apparatus according to claim 11, wherein said at least one retracting spring is operative between an extended position and a retracted position, said retracted position of said retracting spring coinciding with said lower dead center of said upper die.
- 13. The pressing apparatus according to claim 6, wherein said slide cam includes a slanted surface and a triangular cross-section and said slide cam has a slanted surface and a triangular cross-section, said guide post being attached to said slide cam base and said slide cam along said slanted surfaces.
- 14. The pressing apparatus according to claim 13, wherein said at least one retracting spring is operative between an extended position and a retracted position, said retracted position of said retracting spring coinciding with said lower dead center of said upper die.
- 15. The pressing apparatus according to claim 14, wherein said drive cam includes a slanted surface having a slope rising in a direction toward said slide cam base.
- 16. The pressing apparatus according to claim 15, wherein said slide cam and said driven cam each include a wear plate along said respective slanted surfaces.
- 17. The pressing apparatus according to claim 1, wherein said slide cam and said driven cam each include a wear plate along said operating path of said slide cam.
- 18. The pressing apparatus according to claim 1, wherein said slide cam and said slide cam base each include a wear plate along said operating path of said slide cam.
- 19. The pressing apparatus according to claim 1, wherein said slide cam includes a first wear plate operatively engaged with a wear plate of said slide cam base and a second wear plate operatively engaged with a wear plate of said driven cam along said operating path of said slide cam.
- 20. A pressing apparatus comprising:an upper base plate and a lower base plate; a lower die being provided on said lower base plate; an upper die being provided on said upper base plate, said upper die having an upper dead center and a lower dead center; a slide cam base operatively connected to said upper base plate; a slide cam operatively connected to said slide cam base, wherein said slide cam is slidably provided along a circular-shaped guidepost attached to the slide cam base and said slide cam is guided along an operating path by said slide cam base; a pressing member, wherein the pressing member is held by the slide cam and a contact position of said pressing member coincides with said lower dead center of said upper die; at least one retracting-spring being provided between the slide cam base and the slide cam for providing a spring force for moving the slide cam along said operating path, wherein said at least one retracting-spring is a gas spring; and a driven cam being provided on said lower base plate, said drive cam contacting and driving the slide cam along the operating path; at least one pressure-spring providing a spring force for moving the slide cam along said operating path toward the contact position of said pressing member in a pressing stroke, wherein said at least one retracting spring is a coil spring.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2001-118961 |
Apr 2001 |
JP |
|
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A |
6230536 |
Matsuoka |
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B1 |
6336399 |
Matsuoka |
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B1 |
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JP |
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2001-47156 |
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