Claims
- 1. In a method for making an optical disk of polycarbonate by injection molding comprising the steps of:filling a mold cavity having a formed surface with a gas; filling said polycarbonate in a molten state into said mold cavity; cooling and solidifying said polycarbonate thereby forming an optical disk of said polycarbonate; and taking the optical disk of said polycarbonate out of the mold, the improvement comprising the steps of using carbon dioxide as said gas, thereby dissolving carbon dioxide that is at the surface of the polycarbonate in the mold cavity and reducing the solidification temperature of the polycarbonate surface which contacts with the mold; and pressing said polycarbonate to the surface of the mold for transferring the form of the surface of the mold to the surface of said polycarbonate, before the step of cooling and solidifying said polycarbonate.
- 2. A method according to claim 1, wherein said gas with which the mold cavity is filled is at a pressure at which at least 0.1% by weight of the gas is dissolved in the polycarbonate at the glass transition temperature of the polycarbonate.
- 3. A method according to claim 1, wherein said gas with which the mold cavity is filled is at a pressure at which at least 0.5% by weight of the gas is dissolved in the polycarbonate at the glass transition temperature of the polycarbonate.
- 4. In a method for making an optical disk of polymethyl methacrylate by injection molding comprising the steps of:filling a mold cavity having a formed surface with a gas; filling said polymethyl methacrylate in a molten state into said mold cavity; cooling and solidifying said polymethyl methacrylate thereby forming an optical disk of said polymethyl methacrylate; and taking the optical disk of said polymethyl methacrylate out of the mold, the improvement comprising the steps of using carbon dioxide as said gas, thereby dissolving carbon dioxide that is at the surface of the polymethyl methacrylate in the mold cavity and reducing the solidification temperature of the polymethyl methacrylate surface which contacts with the mold; and pressing said polymethyl methacrylate to the surface of the mold for transferring the form of the surface of the mold to the surface of said polymethyl methacrylate, before the step of cooling and solidifying said polymethyl methacrylate.
- 5. A method according to claim 4, wherein said gas with which the mold cavity is filled is at a pressure at which at least 0.1% by weight of the gas is dissolved in the polymethyl methacrylate at the glass transition temperature of the polymethyl methacrylate.
- 6. A method according to claim 4, wherein said gas with which the mold cavity is filled is at a pressure at which at least 0.5% by weight of the gas is dissolved in the polymethyl methacrylate at the glass transition temperature of the polymethyl methacrylate.
Priority Claims (1)
Number |
Date |
Country |
Kind |
8-232818 |
Sep 1996 |
JP |
|
Parent Case Info
This application is a divisional of co-pending application Ser. No. 08/922,482, filed on Sep. 3, 1997, the entire contents of which are hereby incorporated by reference.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
4164523 |
Hanning et al. |
Aug 1979 |
A |
4627809 |
Okbayashi et al. |
Dec 1986 |
A |
Foreign Referenced Citations (7)
Number |
Date |
Country |
4314869 |
May 1993 |
DE |
A2-0276763 |
Aug 1988 |
EP |
A3-0276763 |
Aug 1988 |
EP |
61-213111 |
Sep 1986 |
JP |
62-231715 |
Oct 1987 |
JP |
05-318541 |
Dec 1993 |
JP |
9425242 |
Nov 1994 |
WO |
Non-Patent Literature Citations (2)
Entry |
Chiou J S et al: “Plasticization of Glassy Polymers by CO2” Journal of Applied Polymer Science, 1985, pp. 2633-2642. |
Gosei Jushi, 42(1) 48(1996), “Approach to High Quality Level Injection Molding From Heat Transfer Viewpoint” “Precision Injection Molding Process Assisted by Infrared Radiation” (Partial Translation). |