INJECTION MOLDING MACHINE AND THE MOLDING METHOD THEREOF
20190381711 ยท 2019-12-19
Assignee
Inventors
Cpc classification
B29C45/176
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/5068
PERFORMING OPERATIONS; TRANSPORTING
F15B2211/7052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/1404
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/1471
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C45/1775
PERFORMING OPERATIONS; TRANSPORTING
F15B2211/7128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B29C45/17
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An injection molding machine includes an injection apparatus having a screw rotation driving section for rotating a screw inserted to a heat sleeve and a screw forward/rear move driving section for forwardly or rearwardly moving the screw at least by a hydraulic cylinder, including a unique screw for which an L/D ratio between a screw length and a screw diameter is set as a specific value to the injection apparatus. The injection apparatus includes a cylinder attachment mechanism having a cylinder detachable section that provides the detachability of at least two or more different types of hydraulic cylinders adaptable to a molded piece that can be molded by the unique screw.
Claims
1. An injection molding machine, comprising: an injection apparatus having a screw rotation driving section for rotating a screw inserted to a heat sleeve and a screw forward/rear move driving section for forwardly or rearwardly moving the screw at least by a hydraulic cylinder; and a unique screw for which an L/D ratio between a screw length L and a screw diameter D is set as a specific value to the injection apparatus, wherein the injection apparatus includes a cylinder attachment mechanism having a cylinder detachable section that provides the detachability of at least two or more different types of hydraulic cylinders adaptable to a molded piece that can be molded by the unique screw.
2. The injection molding machine according to claim 1, wherein the specific value is selected from a range of 18-25.
3. The injection molding machine according to claim 1, wherein the respective hydraulic cylinders output different maximum pressures.
4. The injection molding machine according to claim 1, wherein the respective hydraulic cylinders output different maximum speeds.
5. The injection molding machine according to claim 1, wherein the respective hydraulic cylinder output different maximum pressures and maximum speeds.
6. The injection molding machine according to claim 1, wherein the respective hydraulic cylinders are a double rod-type hydraulic cylinder.
7. The injection molding machine according to claim 1, wherein the respective hydraulic cylinders are a single rod-type hydraulic cylinder.
8. The injection molding machine according to claim 1, wherein the cylinder attachment mechanism includes a fixed block section having a fixed position that has a heat sleeve fixation section to support a rear end of the heat sleeve and a pair of front detachable sections provided at both sides of the heat sleeve fixation section to provide the detachability of the hydraulic cylinders, respectively.
9. The injection molding machine according to claim 8, wherein the cylinder attachment mechanism includes the screw rotation driving section that is provided at the rear side of the fixed block section and that provides the rotation of the rear end of the unique screw inserted to the heat sleeve and a support block section having a pair of rear detachable sections that are provided at both sides of this screw rotation driving section and that constitute the cylinder detachable section providing the detachability of the tip ends of the piston rods protruding from the respective hydraulic cylinders, respectively.
10. A molding method of an injection molding machine, comprising: an injection apparatus having a screw rotation driving section for rotating a screw inserted to a heat sleeve and a screw forward/rear move driving section for forwardly or rearwardly moving the screw at least by a hydraulic cylinder; and a unique screw for which an L/D ratio between a screw length L and a screw diameter D is set as a specific value to the injection apparatus, wherein the injection apparatus includes a cylinder attachment mechanism having a cylinder detachable section that provides the detachability of at least two or more different types of hydraulic cylinders adaptable to a molded piece that can be molded by the unique screw, and wherein prior to a molding operation, a hydraulic cylinder is selected from among the respective hydraulic cylinders in advance that is adaptable to a to-be-molded piece and the unique screw and this selected hydraulic cylinder is attached to the cylinder attachment mechanism and a molding operation is performed.
11. The molding method of the injection molding machine according to claim 10, wherein the specific value is selected from a range of 18-25.
12. The molding method of the injection molding machine according to claim 10, wherein the respective hydraulic cylinders output different maximum pressures.
13. The molding method of the injection molding machine according to claim 10, wherein the respective hydraulic cylinders output different maximum speeds.
14. The molding method of the injection molding machine according to claim 10, wherein the respective hydraulic cylinders output different maximum pressures and maximum speeds.
15. The injection molding machine according to claim 3, wherein the respective hydraulic cylinders are a double rod-type hydraulic cylinder.
16. The injection molding machine according to claim 4, wherein the respective hydraulic cylinders are a double rod-type hydraulic cylinder.
17. The injection molding machine according to claim 5, wherein the respective hydraulic cylinders are a double rod-type hydraulic cylinder.
18. The injection molding machine according to claim 3, wherein the respective hydraulic cylinders are a single rod-type hydraulic cylinder.
19. The injection molding machine according to claim 4, wherein the respective hydraulic cylinders are a single rod-type hydraulic cylinder.
20. The injection molding machine according to claim 5, wherein the respective hydraulic cylinders are a single rod-type hydraulic cylinder.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0033] Next, the following section will describe a preferred embodiment according to this invention in detail based on the drawings.
[0034] First, the following section will specifically describe the configuration of the injection molding machine 1 according to this embodiment with reference to
[0035] In the drawing, the reference numeral 1 denotes an injection molding machine in which a clamping apparatus is omitted (i.e., an injection apparatus 1i). The injection apparatus 1i includes a base frame 21 functioning as a pair of left and right guide rails 21r. This base frame 21 is provided on a molding machine bed (not shown) via a slide mechanism. Thus, the base frame 21 is supported on a molding machine bed to be slidably displaced in a front-and-rear direction Fs and is caused by a nozzle touch cylinder (not shown) to move in the front-and-rear direction Fs.
[0036] The base frame 21 has thereon the cylinder attachment mechanism 5m. This cylinder attachment mechanism 5m includes a pair of front and rear units (i.e., a fixed block section 11 as a front unit and a support block section 14 as a rear unit).
[0037] The fixed block section 11 is fixed by being positioned at an intermediate position of the base frame 21. In an embodiment, as shown in
[0038] At both of the left and right sides of the heat sleeve fixation section 12, a pair of left and right front detachable sections 13p and 13q are provided in an integrated manner that constitute the front side (one side) of a cylinder detachable section 7m. A front detachable section 13p at the right side is configured by an upper-front detachable section 13pu provided at the upper side and a lower-the front detachable section 13qd provided at the lower side so that the former and the latter are parallelly protruded to the right side in the horizontal direction, respectively. The front detachable section 13q at the left side is configured by an upper-front detachable section 13qu provided at the upper side and a lower-the front detachable section 13qd provided at the lower side that are parallelly protruded to the left side in the horizontal direction, respectively.
[0039] In this manner, the four front detachable sections 13pu, 13pd, 13qu, and 13qd are provided at the left and right sides in the upper and lower directions, respectively. The respective front detachable sections 13pu, 13pd, 13qu, and 13qd, which have faces orthogonal to the front-and-rear direction Fs, have front end faces each of which includes a plurality of (or exemplarily four) screw holes 27 . . . . In this case, one front detachable section 13p and the other front detachable section 13q are formed to have the same configuration except for being symmetric in the left-and-right direction and have sufficient strength and rigidity.
[0040] Thus, the respective hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . (which will be described later) can be attached and fixed to the front end faces of the respective front detachable sections 13pu, 13pd, 13qu, and 13qd by a plurality of bolts 28 . . . (see
[0041] As described above, one side (front side) of the cylinder attachment mechanism 5m is configured by the fixed block section 11 having a fixed position that has the heat sleeve fixation section 12 supporting the rear end 2r of the heat sleeve 2 and a pair of the front detachable sections 13p and 13q constituting the cylinder detachable section 7m that is provided at both sides of this heat sleeve fixation section 12 and that provides the detachability of the hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . , respectively. Thus, the respective hydraulic cylinders 6a, 6b, and 6c may be attached to the front detachable sections 13p and 13q functioning as the attachment base of the cylinder body. Thus, the simplified attachment structure can advantageously provide an easier attachment and can contribute to a smaller size and a lower cost.
[0042] On the other hand, the support block section 14 is supported on the rear part of the base frame 21 functioning as a guide rail 21r to be displaced in a slidable manner in the direction shown by the arrow Fs (front-and-rear direction).
[0043] As shown in
[0044] In this case, one rear detachable section 15p and the other the rear detachable section 15q have the same configuration except for being symmetric in the left-and-right direction. Thus, the respective rod bolt insertion holes 32p and 32q are inserted with the rod bolt sections 6arn . . . , 6brn . . . , and 6crn . . . formed at the tip end side of the piston rods 6ar . . . , 6br . . . , and 6cr . . . protruded from the respective hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . (which will be described later) and can be attached and fixed by nuts 33 . . . . Specifically, the respective piston rods 6ar . . . , 6br . . . , and 6cr . . . (the rear sides of the respective hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . ) are detachable to the support block section 14 by tightening or detaching the respective nuts 33 . . . . The reference numeral 34 denotes a slider base that is supported by the guide rail 21r to be displaced in a slidable manner in the front-and-rear direction Fs and that is integrated with the rear detachable sections 15p and 15q and the lower part of the motor attachment section 31.
[0045] As described above, the other side (rear side) of the cylinder attachment mechanism 5m is configured by the support block section 14 that has the screw rotation driving section 4 provided at the rear side of the fixed block section 11 to rotate the rear end of the unique screw 3s inserted with the heat sleeve 2 and a pair of rear detachable sections 15p and 15q. The rear detachable sections 15p and 15q are provided at both sides of this screw rotation driving section 4 and provide the detachability of the tip ends of the piston rods 6ar . . . , 6br . . . , and 6cr . . . protruding from the respective hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . , respectively. Thus, the piston rods 6ar . . . , 6br . . . , and 6cr . . . of the respective hydraulic cylinders 6a, 6b, and 6c may be attached to the rear detachable sections 15p and 15q. Thus, the simplified attachment structure can provide an easier attachment and can contribute to a smaller size and a lower cost.
[0046] The configuration as described above provides the detachability of a pair of selected left and right hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . between the fixed block section 11 and the support block section 14. As a result, the attachment of the hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . allows at least selected hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . to provide the screw forward/rear move driving section 5 that forwardly or rearwardly moves the unique screw 3s. It is noted that the injection apparatus base 1im is configured when the injection apparatus 1i shown in
[0047] The injection molding machine 1 according to this invention having the configuration as described above has two important components shown below. The following section will describe the respective components with reference to
[0048] First, the unique screw 3s is used for which the L/D ratio between the screw length L and the screw diameter D is set as the specific value Ns to the injection apparatus 1i. Thus, this unique screw 3s is a screw unique to the injection molding machine 1 and is prevented from being changed together with the heat sleeve 2. The use of this the unique screw 3s is the first component important in this invention.
[0049] In this case, the L/D ratio shows a value representing the characteristic of the shape of the screw. As shown in
[0050] Thus, the size of the unique screw 3s can be selected in consideration of the resin volume (resin cubic volume) Qm by which the assumed maximum large-sized molded piece can be measured. For example, when it is assumed that the resin volume Qm is 400 liters, then the injection molding machine can be set with the maximum large-sized molded piece of 400 liters as a grade. When assuming that the resin volume Qm is 600 liters, then the injection molding machine can be set with the maximum large-sized molded piece of 600 liters as a grade.
[0051] The screw forward/rear move driving section 5 is configured by at least two (or exemplarily three) different types of hydraulic cylinders 6a, 6b, and 6c that can be adapted to a molded piece moldable by the unique screw 3s. The use of different types of selectable hydraulic cylinders 6a, 6b, and 6c is the second important component.
[0052] In the embodiment, as shown in
[0053] By the above configuration, when the hydraulic cylinder 6a is used as shown in
[0054] As described above, when the different hydraulic cylinders 6a, 6b, and 6c are used, the hydraulic cylinders 6a, 6b, and 6c are allowed to output different maximum pressures. This eliminates the need to change the unique screw 3s and the heat sleeve 2 and allows the resin volume Qm to be fixed. Thus, the respective hydraulic cylinders 6a, 6b, and 6c can be selected by merely selecting the maximum pressure, thus advantageously providing an easy selection of the respective hydraulic cylinders 6a, 6b, and 6c.
[0055] The illustrated respective hydraulic cylinders 6a, 6b, and 6c are double rod-type hydraulic cylinders. Thus, one hydraulic cylinder (e.g., the hydraulic cylinder 6b) includes a cylinder body 51b as shown in
[0056] Although one the hydraulic cylinder 6b has been described, other hydraulic cylinders 6a and 6c have the same basic configuration as that of the hydraulic cylinder 6b. In the hydraulic cylinder 6a, the reference numeral 51a denotes a cylinder body, the reference numeral 53a denotes an attachment flange, the reference numeral 6ar denotes a piston rod, and the reference numeral 6arn denotes a rod bolt section, respectively. In the hydraulic cylinder 6c, the reference numeral 51c denotes a cylinder body, the reference numeral 53c denotes an attachment flange, the reference numeral 6cr denotes a piston rod, and the reference numeral 6crn denotes a rod bolt section, respectively. Each of the hydraulic cylinders 6a, 6b, and 6c has two identical hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . . Even when the respective hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . are changed, no change is required for a hydraulic circuit 46 including a hydraulic pump 45 shown in
[0057] Next, the following section will describe the use method and function of the injection molding machine 1 including the molding method according to this embodiment with reference to
[0058] Now, a case is assumed where the production is performed by a standard system (Step S1). The standard system uses the hydraulic cylinder 6b shown in
[0059] In this case, the hydraulic cylinder 6b . . . can be attached to and detached from the cylinder attachment mechanism 5m in the manner as described below.
[0060] First, as shown in
[0061] As shown in
[0062] Next, a nut 33 screwed with the rod bolt section 6brn inserted to the rod bolt insertion hole 32q of a rear detachable section 15q is rotated and operated. As shown in
[0063] As a result, the attachment to the left position of the cylinder attachment mechanism 5m of the hydraulic cylinder 6b at one side (left side) is completed. Furthermore, the attachment to the cylinder attachment mechanism 5m of the hydraulic cylinder 6b of the other side (right side) also can be performed by performing the above-described attachment procedure and operation to attach one hydraulic cylinder 6b. During this, the fixed block section 11 and the support block section 14 are both have a fixed position. However, the front detachable section 13p at the fixed block section 11 provided at the right side of the cylinder attachment mechanism 5m (i.e., between the upper-front detachable section 13pu and the lower-front detachable section 13pd) is configured to have a laterally-opened state. Thus, the rod bolt section 6brn of the hydraulic cylinder 6b can be inserted to the rod bolt insertion hole 32p at the right side the rear detachable section 15p of the support block section 14 and the cylinder body 51b of the hydraulic cylinder 6b can be stored in the front detachable section 13p of the fixed block section 11 (i.e., between the upper-front detachable section 13pu and the lower-front detachable section 13pd).
[0064] Therefore, this standard system supplies molding material (pellet) from the hopper 26 into the heat sleeve 2 to use the measurement motor 4m of the screw rotation driving section 4 to rotate the unique screw 3s, thereby plasticizing and melting the molding material. The molten resin is measured and accumulated in the heat sleeve 2 at the front side of the unique screw 3s. Then, a pair of the hydraulic cylinders 6b and 6b constituting the screw forward/rear move driving section 5 is driven-controlled by the hydraulic circuit 46 including the hydraulic pump 45 to forwardly move the unique screw 3s. This allows the measured resin to be injected through the injection nozzle 2n, thereby performing a series of molding steps to fill a metal mold cavity (not shown) with the resin.
[0065] A case is assumed where the injection molding machine 1 of this standard system requires a system change because a change of the metal mold causes such a molded piece that cannot be molded by this standard system or that causes a compromised molding operation (Step S2). In this case, the hydraulic cylinders 6b and 6b are firstly removed from the injection apparatus base 1im (Step S3). The hydraulic cylinders 6b and 6b can be easily removed by performing the above-described procedure and operation of the hydraulic cylinders 6b and 6b in a reverse order.
[0066] If a new molded piece after the system change is a relatively large-sized molded piece that does not require s significantly-high molding accuracy (e.g., everyday goods), a high injection pressure is not required. Thus, molding conditions having a higher injection speed can be used and a high-speed system can be used in this case (Step S4).
[0067] Thus, the high-speed system can use the hydraulic cylinder 6a (small diameter cylinder) shown in
[0068] On the other hand, if a new molded piece after the system change requires a high molding accuracy (e.g., CD), a high injection pressure is required. In this case, the injection pressure can be changed to a high pressure system having a higher pressure (Step S7). Thus, the high pressure system can use the hydraulic cylinder 6c (large diameter cylinder) shown in
[0069] A case will be assumed in which the production by the high-speed system or high pressure system is completed and another system change is required (Step S10). In this case, the hydraulic cylinders 6a and 6a or the hydraulic cylinders 6c and 6c are firstly removed from the cylinder attachment mechanism 5m of the injection apparatus base 1im (Step S11). Then, when the current system is returned to the standard system, the hydraulic cylinders 6b and 6b are attached to the cylinder attachment mechanism 5m (Steps S12 and S13). This allows the current system to be returned to the injection molding machine 1 of the standard system (Step S1). When the current system is changed from a high-speed system to a high pressure system on the other hand, the hydraulic cylinders 6c and 6c are attached to the cylinder attachment mechanism 5m (Steps S12, S4, S7, and S8). This consequently can provide a change to the injection molding machine 1 functioning as a high pressure system (Step S9). A system change from a high pressure system to a high-speed system is performed by attaching the hydraulic cylinders 6a and 6a to the cylinder attachment mechanism 5m (Steps S12, S4, and S5). This can provide a change to the injection molding machine 1 functioning as a high-speed system (Step S6).
[0070] Thus, according to the injection molding machine 1 according to this embodiment or the molding method thereof, the unique screw 3 having the L/D ratio of the screw length L and the screw diameter D as the specific value Ns to the injection apparatus 1i is basically used. The injection apparatus 1i includes the cylinder attachment mechanism 5m having the cylinder detachable section 7m that provides the detachability of at least two different types of hydraulic cylinders 6a, 6b, and 6c that can be adapted by the unique screw 3s to a moldable molded piece. In order to perform a molding operation, a hydraulic cylinder 6a (or 6b, 6c) is selected from among the respective hydraulic cylinders 6a, 6b, and 6c in advance that is adaptable to the to-be-molded piece and the unique screw 3s. This selected hydraulic cylinder 6a (or 6b, 6c) is attached to the cylinder attachment mechanism 5m and a molding operation is performed. Thus, even when various products or molded pieces such as parts are produced, no change is required for the unique screw section 3s and the heat sleeve 2 and the selected hydraulic cylinder 6a (or 6b, 6c) can be merely exchanged. In particular, the exchange of the general-purpose commercially-available hydraulic cylinder 6a (or 6b, 6c) is only required, thus achieving the significantly-reduced cost for the part exchange. Furthermore, only parts having a relatively-smaller size than those of the screw and the heat sleeve can be exchanged, thus realizing an exchange operation in a relatively easy and simple manner.
[0071] Furthermore, the use of the unique screw 3s having the L/D ratio set as the specific value Ns to the injection apparatus 1i can provide the selection of the unique screw 3s in advance that can widely cover the molding of various molded pieces. Thus, such a hydraulic cylinder 6a (or 6b, 6c) can be selected optimal to a large-sized molded piece or a precision molded piece for example to thereby provide appropriate molding conditions to various molded pieces. Furthermore, no need to change the unique screw 3s and the heat sleeve 2 can provide a fixed plasticization environment (plasticization performance). Thus, a wasteful plasticization variation having an influence on the molded piece quality (e.g., insufficient plasticization) can be avoided, thus contributing to the improvement of the qualities of various molded pieces.
[0072] Next, the following section will describe the modification example of the hydraulic cylinder 6a . . . used in the injection molding machine 1 according to this embodiment with reference to
[0073]
[0074] On the other hand, the hydraulic cylinder 6a . . . shown in
[0075] As described above, the hydraulic cylinders 6a, 6b, and 6c used is not limited to any hydraulic cylinder type and may be a double rod-type hydraulic cylinder or a single rod-type hydraulic cylinder for example. Thus, the hydraulic cylinders 6a, 6b, and 6c can be selected with an increased freedom degree. The hydraulic control system also can be designed with an increased freedom degree. Thus, an appropriate hydraulic control system can be structured in consideration of the advantages of the double rod-type one and the single rod-type one, respectively.
[0076]
[0077] On the other hand, in the case of the hydraulic cylinder 6a . . . shown in
[0078] The attachment 65 shown in
[0079] In
[0080] A preferred embodiment including a modification example has been described in detail. However, this invention is not limited to such an embodiment. Thus, an arbitrary change, addition, or deletion can be made in the configuration, shape, material, number, or numerical value for example in detail within a scope not deviating from the intention of this invention.
[0081] For example, three or more types of hydraulic cylinders 6a, 6b, and 6c have been illustrated as two or more different types of hydraulic cylinders. However, two or more or four or more types of the hydraulic cylinders 6a, 6b, and 6c also may be provided. The specific value Ns is desirably selected from a range of 18-25 but also may be other values. A technical importance is placed on the use of a specific value. Furthermore, a case has been shown in which different maximum pressures are outputted from the respective hydraulic cylinders 6a, 6b, and 6c, respectively. However, other cases also may be considered where characteristic values other than the maximum pressure are different or another characteristic value (e.g., the maximum stroke) is used in addition to the maximum pressure. A case has been shown with the use of the fixed block section 11 having a fixed position that has the heat sleeve fixation section 12 supporting the rear end 2r of the heat sleeve 2 and a pair of the front detachable sections 13p and 13q constituting the cylinder detachable section 7m that is provided at both sides of this heat sleeve fixation section 12 and that provides the detachability of the hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . , respectively. However, another configuration having a similar function also may be used. A case has been shown with the use of the cylinder attachment mechanism 5m configured to include the screw rotation driving section 4 that is provided at the rear side of the fixed block section 11 and that provides the rotation of the rear end of the unique screw 3s inserted to the heat sleeve 2 and the support block section 14 having a pair of rear detachable sections 15p and 15q that are provided at both sides of this screw rotation driving section 4 and that constitute the cylinder detachable section 7m providing the detachability of the tip ends of the piston rods 6ar . . . , 6br . . . , and 6cr . . . protruding from the respective hydraulic cylinders 6a . . . , 6b . . . , and 6c . . . , respectively.
INDUSTRIAL APPLICABILITY
[0082] This invention can be applied to various injection molding machines including a screw forward/rear move driving section to forwardly or rearwardly move a screw at least by a hydraulic cylinder and can be applied to a molding method using the injection molding machine.
REFERENCE SIGNS LIST
[0083] 1: Injection molding machine, 1i: Injection apparatus, 2: Heat sleeve, 2r: Heat sleeve rear end, 3s: Unique screw, 4: Screw rotation driving section, 5: Screw forward/rear move driving section, 5m: Cylinder attachment mechanism, 6a: Hydraulic cylinder, 6b: Hydraulic cylinder, 6c: Hydraulic cylinder, 6ar: Piston rod, 6br: Piston rod, 6cr: Piston rod, 7m: Cylinder detachable section, 11: Fixed block section, 12: Heat sleeve fixation section, 13p: Front detachable section, 13q: Front detachable section, 14: Support block section, 15p: Rear detachable section, 15q: Rear detachable section, L: Screw length, D: Screw diameter, Ns: Specific value
CITATION LIST
Patent Literature
[0084] Patent Literature 1
[0085] Japanese Unexamined Patent Application Publication No. H10(1998)-146864 0073
[0086] Patent Literature 2
[0087] Japanese Unexamined Patent Application Publication No. H8(1996)-318551