Fabrication method for laminated-type secondary battery
09701056 ยท 2017-07-11
Assignee
Inventors
Cpc classification
B29C2949/0767
PERFORMING OPERATIONS; TRANSPORTING
Y02P70/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B29C49/00
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/0765
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/00
PERFORMING OPERATIONS; TRANSPORTING
B29C45/174
PERFORMING OPERATIONS; TRANSPORTING
H01M10/0585
ELECTRICITY
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B29C45/40
PERFORMING OPERATIONS; TRANSPORTING
H01M2220/20
ELECTRICITY
H01M10/0525
ELECTRICITY
International classification
B29C49/00
PERFORMING OPERATIONS; TRANSPORTING
H01M10/0585
ELECTRICITY
B29C45/17
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A compressed air is ejected from air ejector ports (14) to between a mold surface defining cavity (12) of mold (7) and a surface of a hot melt resin layer after starting to fill or inject the hot melt resin material into cavity (12) and before a temperature of the hot melt resin material becomes equal to or lower than a softening point thereof. Recesses (Q) are formed by positively generating a sink mark on a surface of edge protector (6) by ejection of the compressed air, and at the same time, gap (G) is formed between the surface of edge protector (6) and the mold surface. As a result, when bead-shaped edge protector (6) is integrally formed in long-side heat-fused portions (5c) of laminated-film exterior package case (5) by using a thermoplastic hot melt resin material, mold releasability of the molded edge protector from the mold can be enhanced.
Claims
1. A method for fabricating a laminate-type secondary battery, comprising: setting a laminated-film exterior package member as an insert in a mold, the laminated-film exterior package member accommodating cell elements; and integrally forming a bead-shaped edge protector in a peripheral edge of the laminated-film exterior package member by molding a hot melt resin material such that the hot melt resin material surrounds an end edge of the laminated-film exterior package member and both opposite surfaces of the laminated-film exterior package member in a vicinity of the end edge, wherein a compressed air is introduced between a mold surface defining a cavity of the mold and a surface of a hot melt resin layer formed of the hot melt resin material after starting to fill or inject the hot melt resin material into the cavity and before a temperature of the hot melt resin material becomes equal to or lower than a softening point thereof, wherein introduction of the compressed air is carried out by blowing the compressed air in a same direction as a direction in which a plurality of ejector pins are projected from a part of the mold surface defining the cavity, and wherein the direction in which the compressed air is blown is aligned with a direction in which the edge protector formed of the hot melt resin material is pressed onto one of the opposite surfaces of the laminated-film exterior package member or another of the opposite surfaces thereof.
2. The method for fabricating a laminate-type secondary battery as claimed in claim 1, wherein the surface of the hot melt resin layer is a portion directly exposed to the compressed air introduced, and a gap is formed between the portion exposed and the mold surface defining the cavity.
3. The method for fabricating a laminate-type secondary battery as claimed in claim 1, wherein the plurality of ejector pins are arranged to be exposed to the mold surface defining the cavity and spaced apart from each other at a predetermined pitch in a longitudinal direction of the edge protector to be molded, and compressed air blowing holes are respectively formed to open to the mold surface between respective adjacent two of the ejector pins, and wherein the compressed air is simultaneously blown from the compressed air blowing holes.
4. The method for fabricating a laminate-type secondary battery as claimed in claim 3, wherein the mold has a split-half structure comprising two mold elements, the cavity being formed between mating surfaces through which the mold elements are mated with each other, wherein the plurality of ejector pins are arranged to be exposed to a mold surface defining a cavity of each of the mold elements and spaced apart from each other at a predetermined pitch in the longitudinal direction of the edge protector to be molded, and compressed air blowing holes are respectively formed to open to the mold surface between respective adjacent two of the ejector pins, and wherein the compressed air is simultaneously blown from the compressed air blowing holes.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DESCRIPTION OF EMBODIMENTS
(8) The drawings following
(9) As shown in
(10) For the sake of simple illustration,
(11) The four peripheral portions of laminated-film exterior package case 5 are held in a sufficiently airtightly sealed state by sealing these portions by heat fusion as described above. In addition, in order to further enhance airtight properties, a sealability and a rigidity at peripheral edges of laminated-film exterior package case 5, edge protectors 6 made of a thermoplastic hot melt resin material are molded and integrally formed particularly at long-side heat-fused portions 5c thereof, along a longitudinal direction of laminated-film exterior package case 5 for the purpose of reinforcement and protection of long-side heat-fused portions 5c. More specifically, bead-shaped edge protectors 6 each having a rectangular shape in sectional view and being made of a hot melt resin material are molded and integrally formed so as to surround end edges of long-side heat-fused portions 5c of laminated-film exterior package case 5 and both opposite surfaces (upper and lower surfaces) in the vicinity of the end edges of long-side heat-fused portions 5c.
(12) Edge protectors 6 are molded as follows. After battery 1 is assembled by packing the above-described cell elements in laminated-film exterior package case 5, edge protectors 6 are molded in such a state that battery 1 including laminated-film exterior package case 5 is set as an insert in a mold.
(13) The above-described thermoplastic hot melt resin material for edge protectors 6 is required to have sufficiently high bonding properties relative to laminated films 5a, 5b that form laminated-film exterior package case 5. Also, it is desirable that the thermoplastic hot melt resin material has water resistance, moisture resistance, dust-proof properties, electrical insulation properties, chemical resistance, etc. For this reason, in this embodiment, a polyamide-based or polyolefin-based thermoplastic hot melt resin material is used, and more specifically, a solvent-free one-component thermoplastic hot melt resin material, Macromelt (a registered trademark of Henkel, Inc.), is used.
(14)
(15) As shown in
(16) The mold structure shown in
(17) Further, as shown in
(18)
(19) Subsequently, a molten hot melt resin material is injected (filled) from filling nozzle 18 toward cavity 12 in such a state that filling nozzle 18 is contacted with sprue 17. Immediately after a predetermined amount of the hot melt resin material is injected, a shift to a dwelling step is carried out, and a step of simultaneously blowing and ejecting a compressed air from respective air ejector ports 14 of upper and lower molds 8, 9 is carried out in an overlapping relation to the dwelling step before the hot melt resin material is solidified or cured in the mold, in other words, before the temperature of the hot melt resin material becomes equal to or lower than a softening point thereof. Then, the hot melt resin material filled is allowed to stand until the hot melt resin material filled is cooled and solidified (cured), so that edge protector 6 is integrally formed on each long-side heat-fused portion 5c of laminated-film exterior package case 5 as shown in
(20) Meanwhile, the molding method using the specific thermoplastic hot melt resin material as described above is also called a hot melt molding that is one of low pressure injection molding methods. One of advantages of the molding method resides in that an injection pressure is extremely low as compared to that in the existing injection molding methods.
(21) As shown in
(22) After that, upper and lower molds 8, 9 are opened before stopping air ejection from air ejector ports 14, and then battery 1 having integrally formed edge protector 6 is taken out from mold 7. At this time, as upper mold 8 is upwardly moved, ejector pins 13 on the side of upper mold 8 are projected out. Owing to this projecting movement of ejector pins 13 on the side of upper mold 8 and the blow of the compressed air from air ejector ports 14 on the side of upper mold 8, battery 1 including laminated-film exterior package case 5 with molded edge protector 6 is projected out from upper mold 8.
(23) Further, ejector pins 13 on the side of lower mold 9 is projected out simultaneously with the projecting movement of ejector pins 13 on the side of upper mold 8 or with a slight delay therefrom. Owing to this projecting movement of ejector pins 13 on the side of lower mold 9 and the blow of the compressed air from air ejector ports 14 on the side of lower mold 9, battery 1 including laminated-film exterior package case 5 with molded edge protector 6 is projected out from lower mold 9, and then left on lower mold 9.
(24) In the following, there is a discussion on a function attained by ejection of the compressed air which is carried out after the hot melt resin material is filled or injected into cavity 12 and before the hot melt resin material filled or injected is solidified or cured in the mold, in other words, before the temperature of the hot melt resin material becomes equal to or lower than a softening point thereof.
(25)
(26) As shown in (A) in
(27) Specifically, owing to ejection of the compressed air into cavity 12 which is carried out after the hot melt resin material is filled or injected into cavity 12 and before the hot melt resin material filled or injected is solidified or cured in the mold, as shown in (B) in
(28) Accordingly, as described above, when the mold edge protector 6 is projected by projecting ejector pins 13 of both molds 8,9 after opening upper and lower molds 8,9, a mold release resistance of the mold edge protector 6 relative to mold recesses 12a, 12b of both molds 8,9 becomes extremely small so that the mold edge protector 6 can be remarkably smoothly released and taken out from upper and lower molds 8,9. As a result, both mold releasability and moldability of edge protector 6 can be enhanced without using a release agent to thereby shorten a molding cycle time upon mass-producing battery 1.
(29) Further, the compressed air is ejected in a same direction as the direction in which ejector pins 13 are projected. Therefore, an ejecting force of the compressed air acts to positively release the mold edge protector 6 while projecting the mold edge protector 6 from lower mold 9 in cooperation with the projecting force of ejector pins 13. As a result, the mold releasability can be enhanced.
(30) Further, the direction in which the compressed air is ejected is aligned with a direction in which edge protector 6 formed of the hot melt resin material is pressed onto one surface or an opposite surface (the upper surface or the lower surface) of each of long-side heat-fused portions 5c of laminated-film exterior package member 5. Therefore, bonding properties of edge protector 6 relative to laminated-film exterior package member 5 can be significantly enhanced.
(31) Incidentally, it would be considered that the positive generation of the sink mark in a portion of the molded article as described in the above-described embodiment means deterioration of accuracy in original shape of the molded article, particularly, in many cases, the sink mark may not be generated in the molded article from a viewpoint of design. However, edge protector 6 as described above does not strictly require a design characteristic owing to the function, and suffers no adverse influence of the sink mark. More specifically, when single battery 1 as shown in