Abstract:
A method for disassembling a discarded refrigerator that uses a foamed resin as a heat insulator according to the present invention includes the processes of cutting and separating a heat-insulating housing of a refrigerator into pieces having a predetermined size and shape; obtaining the foamed resin by passing the pieces between a pair of compression rollers arranged so as to oppose each other and compressing the pieces, thereby peeling off and separating an incompressible plate-like object layered at least on one surface of the pieces; and collecting a foaming gas by passing the foamed resin (301) between a pair of compression rollers (331, 332) arranged so as to oppose each other and compressing the foamed resin, thereby allowing the foaming gas in the foamed resin to leak out. This makes it possible to collect a foaming gas in a heat insulator while maintaining a high concentration with small equipment at low cost.
Abstract:
Fiber reinforced perfluoroelastomer parts having high multidirectional tear strength are prepared by blending the fiber with the elastomer, pulverizing the blend into a powder, and molding and press-curing the powder into the desired shape.
Abstract:
A composition is provided for manufacturing contact lenses in a siloxane macromer represented by the following formula (I): wherein R1, R2 and R3 are independently C1-C4 alkyl groups, R4 is C1-C6 alkyl group, R5 is a residue obtained by removing NCO group from an aliphatic or aromatic diisocyanate, R6 and R7 are independently alkylene groups, and n is an integer of about 4-80, m is an integer of about 3-40; a crosslinking agent or a siloxane macromer represented by the following formula (II), wherein p is an integer of 4-80 and q is an integer of 3-40: and an initiator.
Abstract:
A headrest support rod includes a first hollow tubular portion and a second hollow tubular portion. The first hollow tubular portion includes a first end having a first opening configured to receive filler material from an injection pump, is configured to support a headrest, and is configured to be disposed at least partially outside of the headrest. The second hollow tubular portion includes an opening and is configured to be disposed at least partially inside the headrest. The first hollow tubular portion is configured to enable the filler material to be transmitted from the first opening to the second hollow tubular portion, and the second hollow tubular portion is configured so as to enable the filler material to pass through the second opening to form the headrest.
Abstract:
A method of producing a unitary curved structure having a honeycomb core by coating a mold with gel, applying a layer of reinforced fiberglass plastic to the gel to receive, after partial curing, a light layer of chopped glass fibers (about 3/4 ounces/sq. ft.) and a mixture of catalyzed resin and chopped fiber strand. The resulting surface may be rolled to remove bubbles and oversprayed with catalyzed resin. A Raw Kraft paper honeycomb is placed into the wet laminate and completely covered with wax paper weighted with sand bags to approximately 10 pounds per square foot to press the honeycomb into place and seal same. The resin is absorbed in and climbs the honeycomb walls, and heat and styrene gas are liberated into the cells. The bags and wax paper are removed after partial cure, excess styrene fumes are blown away, and the honeycomb is lightly oversprayed with a catalyzed resin. A layer (3/4 ounce of fibrous glass mat containing catalyzed resin) is carefully rolled over the top of the honeycomb core, the mat being sufficiently porous so that trapped styrene gas escapes from the honeycomb cells. After the styrene gas is completely vented, an outer skin of further fiberglass mat is applied, fully saturated with catalyzed resin, to seal the porous mat and allowed to cure. The result is a bondless unitary curved resin structure having parallel outer resin surfaces reinforced by fiberglass, and a honeycomb core of the same resin reinforced by paper.
Abstract:
An improved gas feed means adapted to accommodate and secure the lower end of a polymerization column for synchronous rotation therewith and adapted to supply a controlled amount of a gaseous medium, such as nitrogen, into and through the rotating polymerization column so as to purge any undesirable gas within the polymerization column that could adversely affect the quality of the objects being centrifugally casted.
Abstract:
The present invention relates to a method for manufacturing a low density inorganic powder insulator having a low density molded structure using expanded perlite without a binder and a mold machine for manufacturing the same, and more particularly, to a technology of uniformly dispersing perlite particles having a shape of irregular fragments of glass using expanded perlite to form a framework among synthetic silica to improve molding strength even at a low density, thereby reducing thermal conductivity (conduction and convection blocking) due to a low density and an increase in a specific surface area. Further, the present invention relates to a method for manufacturing a low density inorganic powder insulator having a molded structure using economical expanded perlite having excellent physical properties by compression-molding a clad sheet material using a mold machine having a porous plate and a filter so as to remove pressure and air, which are generated during compression due to the use of the clad sheet material having low specific gravity and a large specific surface area, from a molded product or manufacturing the clad sheet material into a compressed clad sheet using a compression roller, and a mold machine for manufacturing the same.
Abstract:
There is provided a manufacturing method of the three-dimensional shaped object, the method being capable of suitably reducing the local raised portion which can occur during the light beam irradiation under the condition of the divided sub-irradiation paths. The manufacturing method of the present invention is performed by repetition of a powder-layer forming and a solidified-layer forming, wherein an irradiation path of the light beam is divided into a plurality of sub-irradiation paths including a short sub-irradiation path with its length being shorter than a predetermined length and a long sub-irradiation path with its length being the predetermined length or longer, and wherein an irradiation mode of the light beam is changed depending on the lengths of the sub-irradiation paths.
Abstract:
A headrest support rod includes a first hollow tubular portion and a second hollow tubular portion. The first hollow tubular portion includes a first end having a first opening configured to receive filler material from an injection pump, is configured to support a headrest, and is configured to be disposed at least partially outside of the headrest. The second hollow tubular portion includes an opening and is configured to be disposed at least partially inside the headrest. The first hollow tubular portion is configured to enable the filler material to be transmitted from the first opening to the second hollow tubular portion, and the second hollow tubular portion is configured so as to enable the filler material to pass through the second opening to form the headrest.