Title of Invention

MOLD CLAMPING APPARATUS

Abstract A mold clamping apparatus comprises : a bed (1) for supporting a stationary mold (12) ; a pair of tie bars (3) vertically arranged on the bed and extending through a movable platen (2), the movable platen having on its lower surface a movable mold (11) closable with respect to the stationary mold (12) ; a mold opening/closing cylinder (4) arranged between the bed and the platen (2), wherein - the cylinder (4) is provided with mold opening and closing oil chambers (42, 43) each oil chamber being defined by a piston (41), and the cylinder (4) has a hydraulic tine (21, 22) for supplying/discharging hydraulic oil to/from each of the oil chambers ; a mold clamping platen (11) having a core (14) movable into and out of the mold (12) through the platen (2); and a differential mold clamping cylinder (6) arranged on the upper end of the tie bars and having a mold clamping ram (5) having a booster ram (7), the mold clamping ram being connected to the upper surface of the platen (11) and having a hydraulic line for supplying/discharging oil to/from the booster ram (7) and a hydraulic line for supplying/discharging oil to/from the differential cylinder (6) ; characterized in that - the hydraulic lines (21) are connected to one another via a communication passage (27), a volume of oil which is discharged into the hydraulic lines as the movable mold is opened and closed and as the core moves into and out of the mold (12) being alternately supplied to the oil chamber (42) and the differential cylinder (6).
Full Text BACKGROUND OF INVENTION
1. Field of the Invention :
The present invention relates to a mold clamping apparatus, and more particularly, to a mold clamping apparatus having a movable core for use in injection molding for making molded products such as preforms, said clamping apparatus having hydraulic circuits that enable reduced operating time in which molds are opened and closed.
2. Description of the Prior Art:
The mold clamping apparatus of the type having a stationary mold to form a body of molded products, a movable mold which closes with respect to the stationary mold to form an opening in molded products, and a core which is placed in the stationary mold through the movable mold and is movable into and out of the stationary mold includes those employed in rotary type injection machines disclosed in the publication of Japanese Patent 2, 832, 263 which is incorporated herein by reference. In such a mold clamping apparatus, a mold opening/closing cylinder effects opening and closing of the movable mold, and the movement of the core into and out of the stationary mold is effected by a differentia! mold clamping cylinder, which is separate from the mold opening/closing cylinder and is fitted with a booster ram.
2

Referring to Figs. 1 (A) and 1(B), the above-described conventional clamp apparatus is shown having a machine bed 1, a movable platen 2, a pair of tie bars 3, 3, a pair of mold opening/closing cylinders 4, 4, and a differential mold clamping cylinder 6. The tie bars 3, 3 are vertically mounted on the machine bed 1 and penetrate through the opposite ends of the movable platen 2 which is movable upward and downward. The mold clamping cylinders 4, 4 are arranged between the movable platen 2 and the machine bed 1 and cause the movable platen 2 to move upward and downward as a piston 41 in each of the cylinders moves upward and downward. Arranged on the upper ends of the tie bars 3, 3 is the differential mold clamping cylinder 6 which accommodates a mold clamping ram 5. The mold clamping ram 5, which is arranged above the movable platen 2, is directed downward.
A mold clamping piston 5a is arranged in the differential mold clamping cylinder 6. The inside of the cylinder 6 has a relatively larger inner diameter than the outer diameter of the piston 5a in the area above the mold clamping position, such that the piston 5a contacts the inner surface of the cylinder only in the lower-most region of the cylinder to effect mold clamping. This leaves a communication gap about the piston 5a in the upper region of the cylinder. A booster ram 7 is inserted into the above-described mold clamping ram 5 from the upper end of the mold clamping ram.
3

Arranged on the sides of the cylinder 6 are a bypass 8 which connects the upper region of the cylinder 6 to the lower region thereof. A pair of charge cylinders 9, 9 communicate with the cylinder 6 at the lower end thereof. Pistons 10,10 are arranged in the charge cylinders 9, 9, respectively. Also, arranged above the movable platen 2 is a mold clamping platen 11 through which the tie bars 3, 3 extend. The pistons 10, 10 as well as the mold clamping ram 5 are connected to the upper surface of the mold clamping platen 11.
In such a mold clamping apparatus a stationary mold 12 to form a body of the molded products such as preforms is placed on the upper surface of the machine bed 1, and a movable mold 13 to form an opening in the molded products is fixed to the lower surface of the movable platen 2. Also, a core 14 to define an inner space in a preform is arranged on the lower surface of the mold clamping platen 11 such that it can move through the movable mold 13 into and out of a cavity defined inside the stationary mold 12.
Opening of the movable mold 13 with respect to the stationary mold 12 is effected by supplying hydraulic oil to a mold opening oil chamber 42 which is defined by a piston 41 in the lower region of the mold opening/closing cylinder 4, while closing of the movable mold 13 with respect to the stationary mold 12 is effected by supplying hydraulic oil to a mold closing oil chamber 43 which is defined in the upper region of the mold opening/closing cylinder 4.
4

Opening of the core 14 is effected by supplying hydraulic oil from the booster ram 7 to the mold clamping ram 5. Closing and clamping of the core 14 are effected by supplying hydraulic oil to the differential mold clamping cylinder 6. When inside of the differential mold clamping cylinder 6 is pressurized, the mold clamping piston 5a is pushed downward clue to the difference in area between the upper surface and the lower surface of the piston to which the pressure applies. This in turn moves the mold clamping ram 5 downward. Upon this, the hydraulic oil that is present below the mold clamping piston 5a flows through the communication gap, around the piston, to above the piston. Thus, no hydraulic resistive force is exerted while the mold clamping piston 5a is moving downward. After the mold clamping piston 5a fits in the lower-most region of the cylinder 6, however pressure builds up in the cylinder in the same manner as in a typical mold clamping cylinder. This clamps the molds.
This differential mold clamping cylinder 6 has the characteristics that the high-speed mold closing as well as mold clamping can be effected with a small supply of hydraulic oil. In contrast, in the mold opening/closing cylinder 4, which is of a typical construction and includes the two oil chambers 42, 43 defined by the piston 41, the speed at which the molds are closed and opened is varied depending on the discharge volume of the hydraulic pumps connected to the cylinder. The pump-discharge volume needs to be increased in order to make the opening of the mold by
5

the mold opening/closing cylinder 4 faster. Therefore, it has been difficult to shorten the length of the time it takes for the molds to open, or to close, by simultaneously operating the mold opening/closing cylinder 4 and the differential mold clamping cylinder 6, each of which employs a different system.
SUMMARY OF THE INVENTION
The present invention addresses the above-mentioned problem associated with the differential mold clamping cylinder utilized. Accordingly, it is an object of the present invention to provide a novel mold clamping apparatus in which the hydraulic oil forcibly discharged from one of the differential mold clamping cylinder and the mold opening oil chamber of the mold opening/closing cylinder is delivered to the other as their operating oil in an alternating manner, whereby the simultaneous operation of the two kinds of cylinders, which has been regarded as difficult until now, is realized, leading to reduction in the operating time required for the molds to open and close.
Accordingly, the present invention provides a mold clamping apparatus comprising : a bed on which a stationary mold to form a body of a product to be molded is placed ; a pair of tie bars vertically arranged on the bed ; a movable platen having each of the tie bars arranged through the opposite ends thereof and having on its lower surface a movable mold which closes with respect to the stationary mold to
6

form an opening in molded products ; a mold opening/closing cylinder arranged between the bed and the movable platen, wherein the mold opening/closing cylinder moves the movable platen upward and downward to effect the opening and closing of the movable mold, the mold opening /closing cylinder is provided with a mold opening oil chamber and a mold closing oil chamber, each of the oil chambers being defined by a piston, and the moid opening/closing cylinder is provided with a hydraulic line for supplying/discharging hydraulic oil to/from each of the oil chambers ; a mold clamping platen having a core movable into and out of the stationary mold through the movable platen ; and a differentia! mold clamping cylinder arranged on the upper end of the tie bars and having a mold clamping ram directed downward, the mold clamping ram having a booster ram inserted thereinto from the upper end thereof, the mold clamping ram being connected to the upper surface of the mold clamping platen and having a hydraulic line for supplying/discharging hydraulic oil to/from the booster ram and a hydraulic line for supplying/discharging hydraulic oil to/from the differential mold clamping cylinder; wherein the movable platen is moved upward and downward by supplying/discharging hydraulic oil to/from the mold opening /closing cylinder and opening and closing as well as clamping of the mold clamping platen are effected by supplying/discharging hydraulic oil to/from the differential mold clamping cylinder ; characterized in that the hydraulic line which is in communication with the mold opening oil chamber of the mold opening/closing cylinder and the hydraulic line for the differential mold clamping cylinder are connected to one another via a communication
7

passage, and a volume of hydraulic oil which is discharged into the hydraulic lines as the movable mold is opened and closed and as the core moves into and out of the stationary mold is alternately supplied to the mold opening oil chamber of the mold opening/closing cylinder and the differentia! mold clamping cylinder.
Preferably, a pressure/flow control valve is arranged on the communication passage for controlling the pressure as well as the flow of the hydraulic oil that flows out into the hydraulic lines.
Also, it is preferred that the amount of hydraulic oil that is discharged from the mold opening/closing cylinder is substantially the same as that of hydraulic oil that is discharged from the differential mold clamping cylinder.
The present invention, which is characterized in that hydraulic oil discharged from the differential mold clamping cylinder and hydraulic oil discharged from the mold clamping oil chamber of the mold opening/closing cylinder are shared by the two kinds of cylinders as operating oil in an alternating manner, has an advantage that it is not necessary to increase the discharge volume of the pump in order to increase the operating speed of the mold opening/closing cylinder to open and close the mold and the amount of hydraulic oil that is drained is relatively small.
8

Thus, even in a mold clamping apparatus of the type which utilizes a differential mold clamping operative in a differential manner with a small amount of hydraulic oil to open and close a core as well as to clamp molds and utilizes a mold opening/closing cylinder which is of a normal configuration and requires a large hydraulic oil to open and close a movable mold, the simultaneous operation of the two kinds of cylinders, which has been difficult until now, is achieved. Accordingly, it is possible to shorten the molding cycle by reducing the length of the time required for the molds to open and close.
Further, the simple configuration of the mold clamping apparatus according to the present invention in which two hydraulic lines, i.e., one for the differential mold clamping cylinder and the other for the mold opening oil chamber of the mold opening/dosing cylinder, are interconnected via a communication passage will not make the hydraulic circuit particularly complex and is readily applicable to the existing hydraulic circuits. With a pressure/flow control valve arranged on the communication passage, the mold clamping apparatus of the present invention can be easily controlled. Finally, by making the amount of oil discharged from one of the two kinds of cylinders the same as the amount of oil discharged from the other cylinder, the required amount of operating oil is substantially supplemented by the hydraulic oil discharged from each cylinder. This maximizes the efficiency of the system by minimizing the amount of hydraulic oil that is drained or needs to be added by a pump.
9

BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
These and other objects and advantages of the present invention will become clear from the following description with reference to the accompanying drawings, wherein ;
Figs. 1(A) and 1(B) respectively are longitudinal cross-sectional front view and longitudinal cross-sectional side view of a conventional mold clamping apparatus of the type in which the present invention is applied ;
Fig. 2 shows hydraulic circuits in a mold clamping apparatus according to the present invention, when the molds are closed ; and
Fig. 3 shows hydraulic circuits in a mold clamping apparatus according to the present invention, when the molds are opened.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
The present invention will now be described in detail hereinafter with reference to the accompanying drawings.
Referring to Figs. 2 .and 3, an exemplary hydraulic circuit employed in a mold clamping apparatus in accordance with the present invention is shown! As shown, the
10

reference numerals 21, 22 denote a hydraulic line on the moid opening side and a hydraulic line on the mold closing side of the mold opening/closing cylinder 4, respectively. A solenoid switching valve VI for switching connections between a main line 23 which is connected to a pump P and a drain line 24 is arranged on the hydraulic lines 21,22.
The reference numerals 25, 26 denote a hydraulic line for a differential mold clamping cylinder 6 and a hydraulic line for a booster ram 7 , respectively. A solenoid switching valve V2 for switching connections between a main line 23 connected to a pump P and a drain line 24 is arranged on the hydraulic lines 25, 26.
A communication passage connects the hydraulic line 21 to the hydraulic line 25 for the differential mold clamping cylinder 6 and is designated by the reference numeral 27. In the present invention, this communication passage serves as a hydraulic passage which, in a mold closing operation, supplies the differential mold clamping cylinder 6 with the operating oil, i. e. , the hydraulic oil that has flown out from a mold opening oil chamber 42 of the cylinder 4 into the hydraulic line 21 and, in a mold opening operation, supplies the mold opening oil chamber 42 with the operating oil, i.e., the hydraulic oil that has flown out from the differential mold clamping cylinder 6 into the hydraulic line 25. A pressure/flow control valve 28 is arranged on the communication passage 27 for controlling the pressure and the flow of the hydraulic
11

oil flowing therethrough. This control valve 28 may be a single valve having its expected function, or a composite unit consisting of multiple switching valves and relief valves.
Valves V3, V4, V5 and V6 are check valve-equipped flow adjustment valves disposed on the aforementioned hydraulic lines 21, 22, 25 and 26, respectively. Valves V7, V8 and V9 are check valves disposed on the hydraulic line 21 on the side of the cylinder 4, on the main line 23, and on the hydraulic line 25 on the side of the differential mold clamping cylinder 6, respectively.
Operation of the above-described hydraulic circuit will now be described.
First, the solenoid switching valves V1 and V2, which are shown in Fig. 2 in a state in which mold opening has been completed, are together switched from the right port to the left port, as shown in Fig. 3. This connects the hydraulic line 22 for the mold closing oil chamber 43 of the mold opening closing cylinder 4 to the main line 23 for the pump P. Also, the hydraulic line 25 for the differential mold clamping cylinder 6 connects to the main line 23 for the pump P, and the hydraulic line 26 for the booster ram 7 connects to the drain line 24.
From the pump P, hydraulic oil is supplied to the mold closing oil chamber 43.
12

This causes the piston 41 to move downward, which in turn forces out the hydraulic oil in the mold opening oil chamber 42 into the hydraulic line 21. In the booster ram 7, the hydraulic resistivity in the upper chamber is removed, and the differential mold clamping cylinder 6 is provided by the pump P with hydraulic oil, the flow amount of which has been limited to a small amount by the flow adjustment valve V5.
During this process, the hydraulic oil which has been pressurized by the piston 41 and has flown out into the hydraulic line 21 flows through the communication passage 27, is combined with the hydraulic oil from the pump P, and is then delivered to the mold clamping cylinder 6 as operating oil. The resulting pressure difference acting on the mold clamping piston 5a causes it to move downward in the differential mold clamping cylinder As a result, the mold clamping platen 11 closes with respect to the core 14, as shown in Fig 1(A). Meanwhile, the piston rod in the mold opening/clamping cylinder 4 contracts into the mold opening/clamping cylinder 4, which moves the movable platen 2 downward until the movable platen 13 abuts the upper surface of the stationary mold 12. With a delay, the core 14 starts to move down, penetrates through the movable mold 13 and is then positioned at the center of the cavity in the stationary mold 12. This is followed by urging of mold clamping plate 11 against the movable platen 2 to effect mold clamping.
When the mold clamping is completed as shown in Fig. 3, the solenoid switching valves V1, V2 are together switched from their respective left ports to the
13

right ports. The switching opens connection between the hydraulic line 22 for the mold closing oil chamber 43 in the mold opening/closing cylinder 4 and the drain line 24 and connection between the hydraulic line 21 for the mold opening chamber 42 in the mold opening/closing cylinder 4 and the main line 23. Also, the hydraulic line 26 for the booster ram 7 connects to the main line 23.
As a result of the switching, hydraulic oil is provided to the upper chamber within the mold clamping ram 5 which has extended out from the differential mold clamping cylinder 6 in the mold closing operation, causing the mold clamping ram 5 to retract into the cylinder. The core 14, along with the mold clamping platen 11, then moves upward and out from the stationary mold 12. During this period, the same amount of hydraulic oil as was provided in the mold closing operation is pushed out from the differential mold clamping cylinder 6 into the hydraulic line 25, flows through the communication passage 27 and hydraulic line 21, and is then, together with the hydraulic oil from the pump P, provided to the mold opening chamber 42 in the mold opening/closing cylinder 4. This makes it possible for the mold opening/closing cylinder 4 to effect the high-speed mold opening without the need to increase the discharge volume of the pump P.
An excessive amount of operating oil results due to the fact that there is a difference in volume between the differential cylinder 6 and the mold opening oil
14

chamber 42 when hydraulic oil flows. This excessive operating oil is controlled by the pressure/flow control valve 28 and is discharged into the drain line 24, if necessary. The discharging to the drain line 24 may also be utilized when hydraulic oil is provided from the mold opening oil chamber 42 to the differential mold clamping cylinder 6. The drainage is controlled by the pressure/flow control valve 27 arranged on the communication passage 28. Accordingly, it is only necessary to supply an amount of oil sufficient to compensate for the depletion.
Example
An illustrative example of the volume of one embodiment of the differential mold clamping cylinder as well as the mold opening/closing cylinder according to the present invention is shown below. It is however, to be understood that the embodiment is not intended to limit the invention in any sense.




stroke
differential mold clamping cylinder
inner diameter
220 mm
580 mm
mold damping ram
outer diameter
150 mm

booster ram
outer diameter
70 mm

charge cylinder
inner diameter
100 mm
580 mm
charge cylinder piston rod
outer diameter
55 mm

mold opening/closing cylinder
inner diameter
60 mm
380 mm
mold opening/closing cylinder piston rod
outer diameter
40 mm

15

volume of differential mold clamping cylinder (as measured when mold is closed)
198.0L
volume of differential mold clamping cylinder (as measured when mold is opened)
118.0L
volume difference
80.0L
volume of charge cylinder (combined volume of two cylinders)
63.5L
depletion after supplementation by charge cylinders
16.5L
volume of mold opening/closing cylinder (combined volume of three cylinders)
17.9L
As can be seen from the tables above operating oil for the differential mold clamping cylinder can be supplemented by the hydraulic oil from the mold opening/closing cylinder. Also, it was observed that the mold opening/closing operation was made faster by as much as almost two seconds and simultaneous operation of the cylinders was achieved. This is considered to be due to the fact that the time lag that arises because the hydraulic oil is supplied from the pump is diminished.
Although a preferred embodiment of the present invention has been shown and described, it will be understood that the present invention is not limited thereto and that various changes and modifications may be made by those skilled in the art without departing from the scope of the invention as set forth in the appended claims.
16

WE CLAIM :
1. A mold clamping apparatus comprising :
a bed (1) on which a stationary mold (12) to form a body of a product to be
molded is placed ;
a pair of tie bars (3) vertically arranged on the bed ;
a movable platen (2) having each of the tie bars arranged through the opposite
ends thereof, and having on its lower surface a movable mold (11) which closes with
respect to the stationary moid (12) to form an opening in molded products ;
a mold opening/closing cylinder (4) arranged between the bed (1) and the
movable platen (2), wherein -
the mold opening/closing cylinder (4) moves the movable platen (2) upward and downward to effect the opening and closing of the movable mold, the mold opening /closing cylinder (4) is provided with a mold opening oil chamber (42) and a mold closing oil chamber (43), each of the oil chambers being defined by a piston ; and
the mold opening/closing cylinder (4) is provided with a hydraulic line (21, 22) for supplying/discharging hydraulic oil to/from each of the oil chambers ; a mold clamping platen (11) having a core (14) movable into and out of the
stationary mold (12) through the movable platen (2); and
17

a differential mold clamping cylinder (6) arranged on the upper end of the tie bars and having a mold clamping ram (5) directed downward, the mold clamping ram having a booster ram (7) inserted thereinto from the upper end thereof, the mold clamping ram (5) being connected to the upper surface of the mold clamping platen (11) and having a hydraulic line for supplying/discharging hydraulic oil to/from the booster ram (7) and a hydraulic line for supplying/discharging hydraulic oil to/from the differential mold clamping cylinder (6); wherein :
the movable platen (2) is moved upward and downward by supplying/ discharging hydraulic oil to/from the mold opening /closing cylinder (4) and opening and closing as well as clamping of the mold clamping platen (1) are effected by supplying/discharging hydraulic oil to/from the differential mold clamping cylinder; characterized in that -
the hydraulic line (21) which is in communication with the mold opening oil chamber (42) of the mold opening/closing cylinder (4) and the hydraulic line (25) for the differential mold clamping cylinder (6) are connected to one another via a communication passage (27), and a volume of hydraulic oil which is discharged into the hydraulic lines as the movable mold is opened and closed and as the core moves into and out of the stationary mold is alternately supplied to the mold opening oil chamber (42) of the mold opening/closing cylinder (4) and the differential mold clamping cylinder (6).
18

2. The mold clamping apparatus as claimed in claim 1, wherein a pressure/flow
control valve (28) is arranged in the communication passage (27) for controlling the
pressure as well as the flow of the hydraulic oil which flows out into the hydraulic lines.
3. The mold clamping apparatus as claimed in claim 1, wherein the amount of
hydraulic oil that is discharged from the mold opening/closing cylinder (4) is
substantially the same as the amount of hydraulic oil that is discharged from the
differential mold clamping cylinder (6).
4. A mold clamping apparatus, substantially as herein described, particularly with
reference to and as illustrated in the accompanying drawings.
4.

Dated this 29th day of May, 2000.

(S. CHAKRABORTY) of D. P. AHUJA & CO. APPLICANTS' AGENT

19
A mold clamping apparatus comprises : a bed (1) for supporting a stationary mold (12) ; a pair of tie bars (3) vertically arranged on the bed and extending through a movable platen (2), the movable platen having on its lower surface a movable mold
(11) closable with respect to the stationary mold (12) ; a mold opening/closing
cylinder (4) arranged between the bed and the platen (2), wherein - the cylinder (4)
is provided with mold opening and closing oil chambers (42, 43) each oil chamber
being defined by a piston (41), and the cylinder (4) has a hydraulic tine (21, 22) for
supplying/discharging hydraulic oil to/from each of the oil chambers ; a mold clamping
platen (11) having a core (14) movable into and out of the mold (12) through the
platen (2); and a differential mold clamping cylinder (6) arranged on the upper end of
the tie bars and having a mold clamping ram (5) having a booster ram (7), the mold
clamping ram being connected to the upper surface of the platen (11) and having a
hydraulic line for supplying/discharging oil to/from the booster ram (7) and a hydraulic
line for supplying/discharging oil to/from the differential cylinder (6) ; characterized in
that - the hydraulic lines (21) are connected to one another via a communication
passage (27), a volume of oil which is discharged into the hydraulic lines as the
movable mold is opened and closed and as the core moves into and out of the mold
(12) being alternately supplied to the oil chamber (42) and the differential cylinder (6).

Documents:

00304-cal-2000-abstract.pdf

00304-cal-2000-claims.pdf

00304-cal-2000-correspondence.pdf

00304-cal-2000-description(complete).pdf

00304-cal-2000-drawings.pdf

00304-cal-2000-form-1.pdf

00304-cal-2000-form-18.pdf

00304-cal-2000-form-2.pdf

00304-cal-2000-form-3.pdf

00304-cal-2000-form-5.pdf

00304-cal-2000-gpa.pdf

00304-cal-2000-priority document.pdf

304-CAL-2000-CORRESPONDENCE 1.1.pdf

304-CAL-2000-FORM 27_.pdf

304-CAL-2000-FORM-27.pdf

304-cal-2000-granted-abstract.pdf

304-cal-2000-granted-acceptance publication.pdf

304-cal-2000-granted-claims.pdf

304-cal-2000-granted-correspondence.pdf

304-cal-2000-granted-description (complete).pdf

304-cal-2000-granted-drawings.pdf

304-cal-2000-granted-form 1.pdf

304-cal-2000-granted-form 19.pdf

304-cal-2000-granted-form 2.pdf

304-cal-2000-granted-form 3.pdf

304-cal-2000-granted-form 5.pdf

304-cal-2000-granted-gpa.pdf

304-cal-2000-granted-letter patent.pdf

304-cal-2000-granted-priority document.pdf

304-cal-2000-granted-reply to examination report.pdf

304-cal-2000-granted-specification.pdf

304-cal-2000-granted-translated copy of priority document.pdf


Patent Number 194780
Indian Patent Application Number 304/CAL/2000
PG Journal Number 30/2009
Publication Date 24-Jul-2009
Grant Date 09-Sep-2005
Date of Filing 29-May-2000
Name of Patentee A. K. TECHNICAL LABORATORY, INC.
Applicant Address 4963-3, OHAZAMINAMIJO, SAKAKIMACHI, HANISHINA-GUN, NAGANO-KEN
Inventors:
# Inventor's Name Inventor's Address
1 KOBAYASHI SENTARO C/O A. K. TECHNICAL LABORATORY, INC. 4963-3 OHAZAMINAMIJO SAKAKIMACHI, HANISHINA-GUN, NAGANO-KEN 389-0603
PCT International Classification Number B29C 45/67
PCT International Application Number N/A
PCT International Filing date
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 11-152888 1999-05-31 Japan