METHOD FOR THE INJECTION MOLDING OF INTERNALLY HOLLOW PARTS
20200016808 ยท 2020-01-16
Inventors
Cpc classification
B29C45/37
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/1726
PERFORMING OPERATIONS; TRANSPORTING
B29C45/1711
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/173
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A method for the injection molding of internally hollow parts includes the steps of: injecting melt of thermoplastic material in the inner space between a punch and a matrix; opening a valve in order to place the inner space in communication with a secondary compartment; stopping the injection of the melt and opening a valve for supplying nitrogen in the inner space in order to create a cavity within the part being molded; stopping the supply of nitrogen and simultaneous perforation of the part being molded in the section of the connecting duct for the outflow of nitrogen from the mold and the subsequent possible collection thereof; and supplying pressurized air for washing towards the atmosphere after stopping the supply of nitrogen and the simultaneous perforation of the part being molded in the section of the connecting duct.
Claims
1. Method for the injection molding of internally hollow parts (P) by means of an apparatus comprising a mold consisting of a matrix (1) and a cooperating punch (2), both of which delimiting an inner space (3) communicating, on one side, with a nozzle (4) for the injection of melt (F) of thermoplastic material and with a pressurized gas supplying pipe (5), controlled by a first valve (6) for supplying nitrogen (N), and on the other side with a connecting duct (7) that places said inner space (3) in communication with a secondary compartment (8), a second valve (9) acting on the connecting duct (7) for the closure and opening thereof and a perforating element (10) that perforates a part (P) in the connecting duct (7), the method comprising the steps of: injecting melt (F) of thermoplastic material in said inner space (3) between the punch (2) and matrix (1), opening the second valve (9) in order to place said inner space (3) in communication with the secondary compartment (8), stopping the injection of the melt (F) and opening the first valve (6) for supplying nitrogen (N) in said inner space (3) in order to create a cavity (13), until the passage of the nitrogen (N) in the secondary compartment (8), stopping the supply of nitrogen (N) and simultaneously perforating the part (P) being molded in the section of the connecting duct (7) by means of the perforating element (10) for the outflow of nitrogen (N) from the mold and the subsequent possible collection thereof. characterized in that it also comprises a supply (A) of pressurized air into said gas pipe (5) for washing towards the atmosphere after stopping the supply of nitrogen (N) and the simultaneous perforation of the part (P) being molded in the section of the connecting duct (7).
2. Method according to claim 1, wherein the pressurized air supply (A) is achieved through a supply duct (11) controlled by means of a third gas supply valve (12) and converging into said gas pipe (5).
Description
[0008] The present invention will now be described as a non-limiting example with reference to the enclosed drawings, in which:
[0009]
[0010] With reference to the figures, an apparatus is shown comprising a mold consisting of a matrix 1 and of a cooperating punch 2, both of which delimit inner space 3 which has the shape of the molded part indicated with P in
[0011] The method according to the invention comprises the injection in the inner space 3 (
[0012] For a description of the method according to the present invention ore detail, reference is made to
[0013] In this manner, the thermoplastic material, after having completely occupied the inner space 3, passes through the connecting duct 7, into the secondary compartment 8. Before this step finishes, the valve 6 is opened and pressurized nitrogen is made to flow through the supply pipe 5; such pressurized nitrogen in the inner space 3 pushes the material still in the softened state towards the walls of the inner space 3 and into the connecting duet 7 up to the compartment 8. This step, also called emptying, leads to the formation of the cavity 13 inside the part P being molded.
[0014] At the end of the emptying, as shown in
[0015] Subsequently, there is a washing step by means of opening the valve 12 for air. Due to this opening, pressurized air is made to flow into the cavity 13 of the part P being molded. The opening of the air valve 12 makes pressurized air A flow through the air duet 11 in the cavity 13 of the part being molded P, cooling it. The air passes through the perforation previously created by means of the perforating element 10 in step 4 and exits outside the mold by means of a channel 14 passing through the perforating element 10. It must be clear that a two-way valve could be provided that switches the supply of nitrogen and air.
[0016] At the end of the washing step, the air valve 12 is closed, while the valve 6 of the nitrogen is closed and the valve 9 of the connecting duct is opened.
[0017] The extraction of the molded part P is shown in side view in
[0018] The further finishing of the part P is not described.
[0019] It must be understood that the object of the invention is attained: the molding of internally hollow parts is enabled with considerable savings due to the combined use of pressurized air and nitrogen.
[0020] The protective scope of the invention is not limited to the preceding description, given only as an example, but is defined by the enclosed claims.