GB2250462A - Helved hammer - Google Patents
Helved hammer Download PDFInfo
- Publication number
- GB2250462A GB2250462A GB9121354A GB9121354A GB2250462A GB 2250462 A GB2250462 A GB 2250462A GB 9121354 A GB9121354 A GB 9121354A GB 9121354 A GB9121354 A GB 9121354A GB 2250462 A GB2250462 A GB 2250462A
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- GB
- United Kingdom
- Prior art keywords
- sliding member
- arm
- press
- pivotably
- axis
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B30—PRESSES
- B30B—PRESSES IN GENERAL
- B30B1/00—Presses, using a press ram, characterised by the features of the drive therefor, pressure being transmitted directly, or through simple thrust or tension members only, to the press ram or platen
- B30B1/02—Presses, using a press ram, characterised by the features of the drive therefor, pressure being transmitted directly, or through simple thrust or tension members only, to the press ram or platen by lever mechanism
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B30—PRESSES
- B30B—PRESSES IN GENERAL
- B30B15/00—Details of, or accessories for, presses; Auxiliary measures in connection with pressing
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21J—FORGING; HAMMERING; PRESSING METAL; RIVETING; FORGE FURNACES
- B21J7/00—Hammers; Forging machines with hammers or die jaws acting by impact
- B21J7/02—Special design or construction
- B21J7/10—Special design or construction with both drive and hammer connected to a fulcrumed lever, e.g. tail hammers
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B30—PRESSES
- B30B—PRESSES IN GENERAL
- B30B15/00—Details of, or accessories for, presses; Auxiliary measures in connection with pressing
- B30B15/0094—Press load monitoring means
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01R—ELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
- H01R43/00—Apparatus or processes specially adapted for manufacturing, assembling, maintaining, or repairing of line connectors or current collectors or for joining electric conductors
- H01R43/04—Apparatus or processes specially adapted for manufacturing, assembling, maintaining, or repairing of line connectors or current collectors or for joining electric conductors for forming connections by deformation, e.g. crimping tool
- H01R43/048—Crimping apparatus or processes
- H01R43/0486—Crimping apparatus or processes with force measuring means
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Manufacturing & Machinery (AREA)
- Press Drives And Press Lines (AREA)
- Presses And Accessory Devices Thereof (AREA)
Abstract
A helved hammer includes a connecting rod 4 attached pivotably to one end of a rocker arm 2 and a sliding member 6 attached pivotably to the other end. A worm wheel 23 attached to eccentric shaft 115 acted upon by worm gear 24 to rotate shaft 1 and thus adjust the stroke of the press. The pressing force at the bottom of the power stroke is detected and the stroke of the press is automatically adjusted to be within preset limits of the pressing force. <IMAGE>
Description
TITLE OF THE INVENTION
Apparatus for Adjusting Setting Position of
Reciprocating Sliding Member, Press Using Such Apparatus, and Method of Adjusting Setting Position of Reciprocating
Sliding Member
BACKGROUND OF THE INVENTION
Field of the Invention
The present invention relates generally to an apparatus of adjusting the setting position of a reciprocating sliding member, a press having such an adjusting apparatus therein, and more specifically, to an apparatus for making delicate adjustment of the stroke length and die height of a sliding member such as the ram of the press.
The present invention includes a method of automatically adjusting the pressurizing force of a press by automatically adjusting the setting position of a reciprocating sliding member, and a press to which the method is applied.
Description of the Related Art
In recent years, a medium sized or a small sized press having a relatively short stroke length is often used in the formation of the parts of precision machinery, or in the cutting or bending process of the lead frames of electronic parts such as ICs (Integrated Circuits). A crank press which moves its main slide by its crank mechanism is generally known as such a conventional medium or small sized press.
A conventional rocker arm type power press shown in "Puresu Benran (Handbook of Press) published by Maruzen, p247" for example will be described as an example of a conventional crank press in conjunction with Figs. 1 and 2.
The rocker arm type power press shown in Figs. 1 and 2 includes a rocker arm 2 disposed pivotably about an axis 1 fixed to its main body, a connecting rod 4 coupled pivotably to one end of the rocker arm 2 at a connecting part 3, and a sliding member-6 coupled pivotably to the other end of rocker arm 2 at a connecting part 5 by shafts 54, a link 55 and a universal joint 56. Sliding member 6 includes a slide 64 directly connected to the universal joint 56, a shank 61 fixed to the slide 64, and an movable upper die 63 having a setting member 62 at the tip end of the shank. A lower die 10 is fixed to the top of a bolster plate 9 fixed to the top of a base 8.
Having a structure as described above, the conventional rocker arm type power press shown in Fig. 1 operates as follows.
Up and down reciprocating driving force (indicated by arrow A in Fig. 1) from a crank 40 acts upon connecting rod 4. The reciprocating driving force is transmitted to rocker arm 2 through connecting part 3, and rocker arm 2 swings about axis 1 as a result. The pivotal movement of connecting part 5 caused by the swinging of rocker arm 2 is transformed into the up and down reciprocating movement (indicated by arrow B in Fig. 1) of shank 61, causing the up and down reciprocating movement of upper die 63.
When pressing work is conducted by such a conventional power press, a work piece (not shown) is inserted between upper die 63 and lower die 10 in the state as shown in Fig. 1 in which upper die 63 is at the upper end of its stroke, in other words the position of its top dead center. Then, as connecting rod 4 rises operated by crank 40, upper die 63 descends, reaching to the position at which the work piece is pressed between movable upper die 63 and fixed die 10, in other words the position of its bottom center (the state shown in Fig. 2).
A size L shown in Fig. 1 represents the stroke length of upper die 63 or sliding member 6, and a dimension H shown in Fig. 2 represents a so-called die height. A die height is generally defined at the distance between the bottom surface of the ram of a press and the top of a bolster plate when an upper die is at the position of its bottom dead center, however, above mentioned dimension H indicates the distance between the bottom surface of shank 61 fixed to slide (ram) 64 and the upper surface of bolster plate 9, corresponding to the structure of an embodiment of the present invention (see to Fig. 3).
The stroke length L of sliding member 6 in, for example, a medium sized/small sized press represented by the above-described arm type power press is often in the range of 30mm to 50mm, because a work piece processed by the press is relatively small. When abnormal situations take place in the dies (upper die 63 and lower die 10 in the case of the above-described conventional example) of a small press having such a short stroke length L, cumbersome operations are necessary, such as taking the work piece out of the dies, re-adjusting the dies, or other associated maintenance and inspection operations.
More specifically, in the case of the above-stated conventional press, in the process of taking out the work piece or overhauling the dies at the time of abnormality, the dies must be taken out of the machine to undergo necessary operations, and thereafter be reset to the machine. Not only the troublesome operations of taking out and resetting the dies, but also a huge amount of labor is required for the delicate adjustment of stroke length or die height at the time of resetting, resulting in degradation in productivity as a whole.
Also, not only in a medium/small sized press having a relatively small stroke length but also in a large sized press, the adjustment of its die height H is conducted by the following process.
Firstly, a reciprocating sliding member such as a ram (shank 61 in the above-described conventional example) is set at a position of a suitable height, a work piece is pressed, and the correction of the die height H is made after the inspection of the state of the pressed product.
In order to determine an appropriate die height, the adjusting operation including pressing, inspection, and correction as described above must be carried out a number of times, and the troublesome operation requires skilled labor, degrading resultant productivity.
A conventional press is known, which is provided with an overload safety mechanism in which a load gauge electrically disconnects a clutch upon detection of an emergency state when the press is overloaded, in other words the pressure imposed upon is beyond a predetermined pressuring force, to stop the operation of the machine.
Stopping the operation of the machine for every occurrence of such an overload as a state of emergency requires labor for resetting the machine for every occasion, also resulting in poor productivity.
SUMMARY OF THE INVENTION
It is an object of the present invention to provide, in a medium/small sized press having a relatively short stroke, an apparatus for adjusting the setting position of a reciprocating sliding member which enables operations such as taking out/feeding out a work piece and maintenance and inspection of dies, etc. without taking out the dies, etc. from the main body of the machine upon the occurrence of abnormality, and to provide a press including such an adjusting apparatus.
It is another object of the present invention to provide a method of appropriately and automatically adjusting pressurizing force by automatically adjusting the position of a member sliding reciprocally for pressurizing a work piece at its bottom dead center, and a press to which the method is applied.
An apparatus for adjusting the position of setting a reciprocating sliding member in accordance with the present invention which achieves the above-stated former object includes an arm provided pivotably about an axis positioned in the center in the longer dimension, a member for transmitting driving force coupled pivotably at one end of the arm for transmitting driving force to cause the arm to swing about the central axis, and a sliding member coupled pivotably at least at the other end of the arm.
Fixed to the axis to be the center of the swinging of the arm is a rotating member having the center of its rotating axis being shifted from the axis center of the arm, and the rotating member is driven to rotate by a driving means.
In the above-described structure, by swinging the arm through the member for transmitting driving force coupled to one end of the arm therebetween, the sliding member coupled to the other end of the arm can be moved reciprocally, thereby providing the function and effect of a so-called rocker arm type power press.
The rotation of the rotating member causes the swinging center of the arm to pivot eccentrically about the center of the axis of the rotating member. At that time, the coupling part between one end of the rocker arm and the member for transmitting driving force appears to be fixed, the arm causes the coupling part between the other end and the sliding member to pivot about the one end.
Therefore, the pivotal movement of the coupling part at the other end of the rocker arm moves the position of the sliding member upwardly and downwardly, thereby changing its stroke length.
In a preferred embodiment, the rotating member includes a worm wheel, and the driving of the rotating member to rotate is performed by the driving means which drives a worm gear engaging with the worm wheel to rotate.
A press which achieves the above-described former object can be implemented by forming a structure in which an apparatus for adjusting the position of setting a reciprocating sliding member with the above-described structure is incorporated into the frame of its main body including a base, a movable upper die is attached to the sliding member, a fixed die is attached to the base of the frame of the main body, and the movable punch and the fixed die cooperate to press a work piece at the bottom dead center of the sliding member.
According to a method of automatically adjusting the position of setting a reciprocating sliding member which achieves the latter object of the present invention, pressurizing force applied by the sliding member is detected at the bottom dead center of the sliding member.
Then, if the measured value of the pressurizing force detected is out of the tolerance range of pressuring force, the sliding member is elevated/lowered by a prescribed amount based on the measured value of the pressurizing force, thereby adjusting the position of the bottom dead center. The pressurizing force is thus adjusted to be within the tolerance range.
In accordance with this method, pressurizing force at the bottom dead center of the sliding member is automatically detected, the position of the sliding member is automatically adjusted when the detected pressurizing force is out of the tolerance range, thereby adjusting automatically the pressurizing force to be in the range of tolerance. The pressurizing force at the bottom dead center of the slide member is thus always appropriately and automatically adjusted.
A press which achieves the above-described latter object of the present invention includes a sliding member disposed being movable reciprocally for pressurizing a work piece at its bottom dead center, a reciprocating driving mechanism for driving the sliding member to reciprocate, a pressurizing force automatic detecting part for detecting automatically pressurizing force at the bottom dead center of the sliding member, and an automatic elevating mechanism for automatically elevating/lowering the position of the sliding member at its bottom dead center based on a pressurizing force detection signal obtained at the pressurizing force automatic detecting part.
Having a structure as described above, a press capable of automatically correcting force of pressurizing a work piece can be implemented.
In a preferred embodiment of the press, its reciprocating driving mechanism includes an arm swinging about an axis, and a member coupled pivotably to one end of the arm for transmitting driving force. A sliding member for pressurizing a work piece is at least pivotably coupled to the other end of the arm, and the sliding member is caused to reciprocate by the swinging of the arm.
In another preferred embodiment of the press, an automatic elevating mechanism secures the rotating axis of a worm wheel to an axis to be the center of the swinging of the arm, rendering the center of the axis to be the swinging center of the arm shifted from the center of the rotating axis of the worm wheel, engaging a worm gear to the worm wheel and coupling a servo motor to the worm gear.
Having such a structure, the delicate adjustment of pressuring force given to a work piece by the sliding member can be automatically and accurately achieved.
The foregoing and other objects, features, aspects and advantages of the present invention will become more apparent from the following detailed description of the present invention when taken in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
Fig. 1 is a partially cut away front view showing a state in which the upper die 63 of a conventional rocker arm type power press is positioned at its top dead center;
Fig. 2 is a partially cutaway front view showing a state in which the upper die 63 of the conventional rocker arm type power press shown in Fig. 1 is positioned at its bottom dead center;
Fig. 3 is a partially cutaway front view showing a state in which the upper die 63 of the rocker arm type power press in a first embodiment of the present invention is positioned at its top dead center.
Fig. 4 is a partially cut away top view showing the vicinity of the rocker arm of the press shown in Fig. 3;
Fig. 5 is a partially cut away front view showing the vicinity of a rocker arm for illustrating the operation of an apparatus for adjusting the reciprocating sliding member of the press shown in Fig. 3;
Fig. 6 is a partially cutaway sectional view showing a state in which the reciprocating sliding member of the press shown in Fig. 3 is elevated by the operation of the apparatus for adjusting the reciprocating sliding member;
Fig. 7 is a top view showing a lead frame of an IC for illustrating the cutting and bending processes conducted by a medium/small sized press represented by a rocker arm type power press;
Fig. 8 is a partially cutaway front view showing the rocker arm type power press in a second embodiment of the present invention;;
Fig. 9 is a top view showing the vicinity of the rocker arm of the rocker arm type power press shown in
Fig. 8; and
Fig. 10 is a flow chart for illustrating the adjusting operation in the pressurizing force automatic adjusting mechanism of the rocker arm type power press shown in Fig. 8.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
A first embodiment of the present invention will be described in conjunction with Figs. 3 to'7.
Fig. 3 shows a state in which the reciprocating sliding member of a rocker arm type power press in the first embodiment of the present invention is positioned at its top dead center. Referring to Fig. 3, the rocker arm type power press in the present embodiment includes a rocker arm 2 disposed pivotably about an axis 1, a connecting rod 4 coupled pivotably at a coupling part 3 at one end of rocker arm 2 by a shaft 31, and a sliding member 6 coupled pivotably at a coupling part 5 at the other end of rocker arm 2 by shafts 51, 53 and a link 52.
Sliding member 6 includes a shank 61 extending through a through hole 71 provided at the upper frame 7 of the main body of the press and a movable upper die 63 fixed to its tip end with a setting member 62 therebetween.
A lower die 10 is fixed to the top of a bolster plate 9 fixed to the top of the base 8 of the main body, poleshaped guide members 11, 11 are provided upright on the top of bolster plate 9, and guided portions 62a, 62a of setting member 62 are guided to slide along guide members 11, 11. The guided portions 62a, 62a of setting member 62 have their ends biased upwardly by a spring 12. Base 8, a side frame 13 and upper frame 7 constitute the main body 14 of the press.
Having a structure as described, the rocker arm type power press of the present embodiment shown in Fig. 3 operates as follows.
Up and down reciprocating driving force (indicated by arrow A in Fig. 3) from a driving source (not shown) acts upon connecting rod 4. For this driving source, a liquid driving source such as hydraulic pressure or an electrically operated driving source such as a pulse motor may be used. The reciprocating driving force is transmitted to rocker arm 2 through connecting part 3, and rocker arm 2 swings about axis 1 as a result. The pivotal movement of connecting part 5 caused by the swinging of rocker arm 2 is transformed into the up and down reciprocating movement (indicated by arrow B in Fig. 3) of shank 61, causing the up and down reciprocating movement of upper die 63.
When pressing work is conducted by the power press of the present embodiment, a work piece (not shown) is inserted between upper die 63 and lower die 10 in the state as shown in Fig. 3 in which upper die 63 is at the upper end of its stroke, in other words the position of its top dead center. Then, as connecting rod 4 rises operated by the driving source, upper die 63 descends, reaching to the position of its bottom center (the state shown in Fig. 4).
The above-described structure and operation of the rocker arm type power press of the present embodiment is substantially identical to the conventional ones shown in
Figs. 1 and 2. The essential difference between them consists in that in the present embodiment an adjusting mechanism 20 for adjusting the position of setting sliding member 6 is provided on upper frame 7.
Adjusting mechanism 20 includes rotating axes 21, 21 fixed to the opposing ends of the axis 1 of rocker arm 2, bearings 22, 22 for supporting rotating axes 21, 21, a worm wheel 23 fixed to one of rotating axes 21, 21, and a worm gear 24 engaged with worm wheel 23. A servo motor 25 is provided as a driving source for driving worm gear 24 to rotate both normally and reversely. Axis 1 to be the center of the swinging of rocker arm 2 is fixed to rotating axis 21 with its center O a prescribed distance shifted from the center O2 of rotating axis 21. Therefore, rocker arm 2 is pivotably provided around axis 1, and at the time of maintenance and inspection, the rotating of worm wheel 23 causes axis 1 fixed to rotating axis 21 to pivot eccentrically about the center O2 of rotating axis 21.
Provided between worm gear 24 and servo motor 25 are a coupling 26 for transmitting the rotating driving force of servo motor 25 to worm gear 24.
As shown in Fig. 6, upper die 63 can be elevated to upper positions by operating the servo motor 25 of adjusting mechanism 20, to the positions suitable for operation such as maintenance and inspection when some abnormality takes place between upper die 63 and lower die 10, or a work piece can be taken out upon the occurrence of defective formation of work piece.
The operation of adjusting mechanism 20 is as follows. The operation of servo motor 25 causes worm gear 24 and worm wheel 23 engaged therewith to rotate. The rotation of worm wheel 23 causes axis 1 fixed to a position shifted from the center O2 of rotating axis 21 to pivot eccentrically about the center 02. At that time, coupling part 3 at one end of rocker arm 2 appears to be fixed, and, therefore, coupling part 5 at the other end of rocker arm 2 pivots about coupling part 3.
Therefore, the pivotal movement of coupling part 5 about coupling part 3 causes upper die 63 to elevate to an upper position with a stroke length longer than a normal stroke length L. Consequently, sufficient space is readily and quickly secured between upper die 63 and lower die 10 in which the maintenance and inspection, etc. of upper die 63 and fixed die 10 can readily be conducted.
The position of upper die 63 in upward and downward directions can arbitrarily and readily set by rotating servo motor 25. The fine adjustment of the stroke L of upper die 63 can therefore be conducted efficiently, accurately and yet easily.
Although in the present embodiment, description has been given on a general press of medium/small size including an apparatus for adjusting the position of setting a sliding member, the present invention can be applied to other types of machines used for small sized work pieces.
For example, the apparatus for adjusting the position of setting a reciprocating sliding member shown in the present embodiments can be applied to the formation of the lead 27 of electric parts formed of ICs sealed by a resin material in the rectangular region C surrounded by two dotted chain line on a lead frame as shown in Fig. 7.
More specifically, a machine including an apparatus for adjusting the position of setting a reciprocating sliding member in accordance with the present embodiments can effectively be applied to the cutting and removal of unnecessary parts such as a tiebar 28 after sealing the resin, or the bending formation of a lead 27.
As described above, in accordance with the first embodiment of the present invention, an apparatus for adjusting the position of setting a reciprocating sliding member can produce excellent practical effects when used in a medium sized/small sized press, the effects being that operations such as taking out or unloading a work piece, or the maintenance and inspection of dies, etc. can be conducted without taking out the dies, etc. from the main body of the press when some abnormality is observed with the dies.
Therefore, degradation in productivity as a whole can be avoided efficiently and surely, which is caused by a large amount of labor required for operations such as taking out the dies from the main body of the machine for the delicate adjustment of its stroke and resetting the dies.
A second embodiment of the present invention will be described in conjunction with Figs. 8 to 10. The present embodiment as the above-described first embodiment relates to a power press of a rocker arm type, and its structure is substantially identical to the above-stated first embodiment. Therefore, structures common to the first embodiment will be provided with common reference numerals, and the detailed description thereof will not be provided.
The present embodiment is substantially identical to the above-described first embodiment with essential difference being that adjusting mechanism 20 for adjusting the position of setting sliding member 6 is provided with pressurizing force automatic detecting portions 29, 29 for detecting automatically pressurizing force at the bottom dead center of sliding member 6. In the present embodiment, a pressurizing force detecting signal S obtained at pressurizing force automatic detecting portions 29, 29 is output as a signal for instructing the normal/reverse rotation of servo motor 25 as indicated by an arrow of a chain dotted line in Fig. 9.
The adjusting function of the adjusting mechanism 20 of sliding member 6 will be described in detail in conjunction with a flow chart shown in Fig. 10.
Step 200 is a step of a normal pressing process.
In this pressing work, pressurizing force when sliding member 6 (upper die 63) is at its bottom dead center is detected at pressurizing force automatic detecting portions 29, 29 having a strain gauge, and in step 201, the detected value of the pressurizing force is checked whether it is within a predetermined range. If the force is out of the range, in other words beyond the upper limit or below the lower limit, it is determined that the operation of the machine cannot be continued, thereby stopping the operation (step 202), and if within the range, it is determined that the operation of the machine can be continued, so that the operation proceeds to step 203.
In step 203, it is determined whether or not the operation of the machine can be continued without adjusting the pressurizing force if the pressurizing force detected at the pressurizing force automatic detecting portions 29, 29 is within the range of the upper limit and lower limit of a predetermined pressurizing force range.
More specifically, if the detected pressurizing force is within the upper limit and the lower limit of the predetermined pressurizing force range and in the range in which correction is not necessary, it is determined that the operation of the machine can be continued, and the operation proceeds to step 204 continuing the operation.
If the detected pressurizing force is within the upper limit and the lower limit of the predetermined pressurizing force range, but out of the range in which corrections are unnecessary, it is determined the correction of the pressurizing force is necessary, so that the operation proceeds to step 205.
Step 205 is a step of operating a servo motor 25 for adjusting the pressurizing force. In step 205, if the detected pressurizing force is beyond the upper limit of the range in which the correction of the pressurizing force is not necessary, the operation proceeds to step 206, and its die height is lowered so as to be within the range in which the correction of the pressurizing force is not necessary. Also, if the detected pressurizing force is below the lower limit of the range in' which the correction of the pressurizing force is not necessary, the operation proceeds to step 207, causing servo motor 25 to rotate reversely, so that its. die height H is increased so as to be within the range in which the correction of the pressurizing force is not necessary. After undergoing steps 206 or 207, the operation returns to step 203 in any case.
The above-described automatic adjusting operation of pressurizing force is conducted after the completion of pressing of a work piece and before the beginning of subsequent pressing of another work piece. Therefore, pressurizing force is automatically detected for every completion of pressing step, the adjustment of the pressurizing force is automatically conducted depending upon necessities. Therefore, for any of pressing processes, suitable pressing force can always be provided.
As described above, in accordance with the second embodiment of the present invention, pressurizing force at the bottom dead center of the sliding member in the press is automatically detected and the position of the sliding member in the direction of height is always adjusted appropriately and automatically by automatically increasing or decreasing its die height based on a pressurizing force detecting signal if the detected pressurizing force is beyond the range in which the adjustment of the pressurizing force is not necessary.
Therefore, the conventional problems can efficiently and surely be solved, such problems as a large amount of labor is necessary for the setting of a die height, and the operation is cumbersome and requires skilled labor, thereby degrading productivity. A machine does not have to be stopped every time an overload is imposed upon the machine as in the conventional cases, so that productivity is further increased.
Although the present invention has been described and illustrated in detail, it is clearly understood that the same is by way of illustration and example only and is not to be taken by way of limitation, the spirit and scope of the present invention being limited only by the terms of the appended claims.
Claims (19)
1. An apparatus for adjusting the position of setting a reciprocating sliding member comprising:
an arm (2) attached pivotably about an axis (1);
a member for transmitting driving force (4) coupled pivotably at a connecting part (3) at one end of said arm (2), for transmitting driving force to swing said arm (2) about said axis (1);
a sliding member (6) coupled at least pivotably at a coupling part (5) to the other end of said arm (2);
a rotating member (23) fixed to said axis (1) with the center of its rotating axis a prescribed amount shifted from the center of said axis (1);
driving means (25, 26) for driving said rotating member (23) to rotate.
2. An apparatus for adjusting the position of setting a reciprocating sliding member as recited in claim 1, wherein
said rotating member (23) includes a worm wheel (23), and
said driving means (25, 26) drives a worm gear (24) engaging with said worm wheel (23) to rotate.
3. An apparatus for adjusting the position of setting a reciprocating sliding member as recited in claim 1, wherein
said member for transmitting driving force (2) includes a connecting rod (2), said connecting rod (4) having its one end coupled to said one end of said arm (2) at said coupling part (3) by a shaft (31) for reciprocating in its lengthwise direction by the operation of a driving source.
4. An apparatus for adjusting the position of setting a reciprocating sliding member as recited in claim 1, wherein
said coupling part (5) at said the other end of said arm (2) includes a link (52), said link (52) having its one end coupled pivotably to said the other end of said arm (2) by a shaft (53), and its other end coupled pivotably to said sliding member (6) by a shaft (51).
5. An apparatus for adjusting the position of setting a reciprocating sliding member as recited in claim 2, wherein
said driving means (25, 26) includes a servo motor (25) fixed to the main body of a machine, and a coupling (26) for transmitting the rotation driving force of said servo motor (25) to said worm gear (24).
6. A press comprising:
a machine main body (14) including a base;
a arm (2) attached pivotably about an axis (1) positioned in the center of the lengthwise direction;
a member for transmitting driving force (4) coupled pivotably to one end of said arm (2), for transmitting driving force to cause said arm (2) to swing about said axis (1);
a sliding member (6) having one end coupled at least pivotably at a connecting part (5) at the other end of said arm (2), for fixing a upper die (63) at the other end and for reciprocating in accordance with the swinging of said arm;
a lower die (10) fixed to the top of said base (8) of said machine main body (14), for pressing a work piece interposed between said upper die (63) and said lower die (10);
a rotating member (23) fixed to said axis (1) with the center of its rotating axis a prescribed amount shifted from the center of said, axis (1); and
driving means (25, 26) fixed to said machine main body (14), for driving said rotating member (23) to rotate.
7. A press as recited in claim 6, wherein said machine main body (14) has an upper frame (7) fixed to said base (8) with a side frame (13) therebetween,
said arm (2) is positioned upwardly from said upper frame (7), and
said sliding member (6) includes a shank (61) having its one end coupled to said the other end of said rocker arm at said coupling part (5) and extending through a through hole provided to said upper frame (7), and a setting member (62) for setting said upper die (63) to the other end of said shank (61).
8. A press as recited in claim 6, wherein said sliding member (6) slides along guide members (11) fixed on said base (8) of said machine main body (14).
9. A press as recited in claim 7, further comprising a prescribed number of pole-shaped guide members (11) at said base (8) of said machine main body (14), and guided portions (62a) engaged with said guide members (11) for sliding along said guide members (11).
10. A press as recited in claim 6, wherein
said rotating member (23) includes a worm wheel (23), and
said driving means (25, 26) drives a worm gear (24) engaging with said worm wheel (23) to rotate.
11. A method of adjusting automatically the position of setting a reciprocating sliding member, comprising the steps of:
detecting pressurizing force applied by a sliding member (6) at the bottom dead center of said sliding member (6);
adjusting the position of the bottom dead center of said sliding member (6) by elevating said sliding member (6) by a prescribed amount based on the measured value of the pressurizing force, when the measured value of the pressurizing force detected in the step of detecting pressurizing force is out of the upper limit and lower limit of the tolerance range of the pressurizing force.
12. A method of automatically adjusting the position of setting a reciprocating sliding member as recited in claim 11, wherein
a strain gauge is used as means for detecting pressurizing force in said step of detecting pressurizing force, and said sliding member (6) is automatically elevated/lowered by rotating said servo motor (25) based on a pressurizing force detecting signal obtained at the strain gauge.
13. A press, comprising:
a sliding member (6) provided being capable of reciprocating, for pressurizing a work piece at its bottom dead center;
a reciprocating driving mechanism (2, 3, 4, 5) for driving said sliding member (6) to reciprocate,
pressurizing force automatic detecting portion (29) for automatically detecting pressurizing force at the bottom dead center of said sliding member (6); and
an automatic elevating mechanism (20) for automatically elevating/lowering the position of said sliding member (6) at its bottom dead center, based on a pressurizing force detecting signal obtained from said pressurizing force automatic detecting portion (29).
14. A press as recited in claim 13, wherein
said reciprocating driving mechanism (2, 3, 4, 5) includes an arm (2) disposed pivotably about an axis (1); and
a member for transmitting driving force (4) coupled pivotably to one end of said arm (2), said sliding member (6) being coupled at least pivotably to the other end of said arm (2).
15. A press as recited in claim 13, wherein
said automatic elevating mechanism (20) includes
an arm (2) disposed pivotably about an axis (1); and
a member for transmitting driving force (4) coupled pivotably to one end of said arm (2),
said one end of said sliding member (6) being coupled at least pivotably to the other end of said arm (2),
the rotating axis of a worm wheel (23) being fixed to the axis (1) of said rocker arm (2), with the center of the axis (1) of said rocker arm (2) a prescribed amount shifted from the center of said rotating axis (21),
a worm gear (24) engaging with said worm wheel (23), a servo motor (25) being coupled to said worm gear (24).
16. A press as recited in claim 14, wherein
said member for transmitting driving force (4) includes a connecting rod (4), said connecting rod having its one end coupled pivotably to said one end of said arm (2) by a shaft (31) and reciprocating in its lengthwise direction by the operation of a driving source.
17. A press as recited in claim 14, wherein
a coupling part at the other end of said arm (2) includes a link (52), said link (52) having its one end coupled pivotably to said the other end of said arm (2) by a shaft (53), and its other end coupled pivotably to said sliding member (6) by a shaft (51).
18. A press as recited in claim 17, wherein
said pressurizing force automatic detecting portion
(29) has a strain gauge, and driving of said servo motor
(25) is controlled by outputting a signal corresponding to a detected value of said pressurizing force obtained by said strain gauge to said servo motor (25).
19. A press constituted and arranged substantially as herein particularly described with reference to the accompanying drawings.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
GB9406155A GB2275881B (en) | 1990-10-17 | 1994-03-31 | Method of adjusting setting position of reciprocating sliding member and press using such apparatus |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2280510A JPH04157099A (en) | 1990-10-17 | 1990-10-17 | Method for automatically adjusting ram position in pressing machine or the like and pressing machine |
JP2280509A JPH04157098A (en) | 1990-10-17 | 1990-10-17 | Device for automatically adjusting fitting position of sliding member and pressing machine providing this automatic adjusting device |
Publications (3)
Publication Number | Publication Date |
---|---|
GB9121354D0 GB9121354D0 (en) | 1991-11-20 |
GB2250462A true GB2250462A (en) | 1992-06-10 |
GB2250462B GB2250462B (en) | 1995-01-18 |
Family
ID=26553806
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
GB9121354A Expired - Fee Related GB2250462B (en) | 1990-10-17 | 1991-10-09 | Apparatus for adjusting setting position of peciprocating sliding member and press using such apparatus |
Country Status (5)
Country | Link |
---|---|
KR (1) | KR940008236B1 (en) |
GB (1) | GB2250462B (en) |
HK (2) | HK98695A (en) |
MY (1) | MY107643A (en) |
NL (1) | NL194911C (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN112283313A (en) * | 2020-10-26 | 2021-01-29 | 西安航空职业技术学院 | Rocker arm linkage device for mechanical hydraulic transmission |
Families Citing this family (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN106141028B (en) * | 2016-07-27 | 2023-06-16 | 姜勇 | Hoop bending machine with eccentric shaft type pressing mechanism |
CN108687282A (en) * | 2018-05-21 | 2018-10-23 | 芜湖凯德机械制造有限公司 | A kind of forging machine |
CN114850372B (en) * | 2022-07-05 | 2022-09-20 | 江苏圣贤锻造有限责任公司 | Resonant radial forging machine and forging application thereof |
-
1991
- 1991-10-09 GB GB9121354A patent/GB2250462B/en not_active Expired - Fee Related
- 1991-10-14 MY MYPI91001871A patent/MY107643A/en unknown
- 1991-10-14 KR KR1019910018065A patent/KR940008236B1/en not_active IP Right Cessation
- 1991-10-17 NL NL9101737A patent/NL194911C/en not_active IP Right Cessation
-
1995
- 1995-06-22 HK HK98695A patent/HK98695A/en not_active IP Right Cessation
- 1995-06-22 HK HK98595A patent/HK98595A/en not_active IP Right Cessation
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN112283313A (en) * | 2020-10-26 | 2021-01-29 | 西安航空职业技术学院 | Rocker arm linkage device for mechanical hydraulic transmission |
CN112283313B (en) * | 2020-10-26 | 2022-02-11 | 西安航空职业技术学院 | Rocker arm linkage device for mechanical hydraulic transmission |
Also Published As
Publication number | Publication date |
---|---|
KR940008236B1 (en) | 1994-09-09 |
NL9101737A (en) | 1992-05-18 |
HK98695A (en) | 1995-06-30 |
HK98595A (en) | 1995-06-30 |
MY107643A (en) | 1996-05-30 |
NL194911B (en) | 2003-03-03 |
KR920007789A (en) | 1992-05-27 |
NL194911C (en) | 2003-07-04 |
GB2250462B (en) | 1995-01-18 |
GB9121354D0 (en) | 1991-11-20 |
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Legal Events
Date | Code | Title | Description |
---|---|---|---|
PCNP | Patent ceased through non-payment of renewal fee |
Effective date: 20031009 |