Claims
- 1. A die-casting method comprising:
- a first step of relatively moving dies into close contact so as to form therebetween die cavity for casting a product, a runner through which molten metal is injected into said die cavity, and a substantially non-narrowing squeeze passage having a cross-sectional area S and connected at open end directly to said die cavity at a point other than the point of connection between said die cavity and said runner;
- a second step of injecting, by forwardly moving an injection plunger to effect a predetermined injection pressure, the molten metal from said runner via a gate into said die cavity and said squeeze passage to fill said die cavity and said squeeze passage with the molten metal;
- a third step of starting a squeezing displacement of the molten metal in said non-narrowing squeeze passage by moving a squeeze plunger through said squeeze passage from a retracted position, wherein the squeeze plunger end which faces the die cavity is spaced a distance L from said end of said squeeze passage, toward said die cavity and at a predetermined squeezing pressure greater than said injection pressure and at a time before said gate is blocked by solidified molten metal, said squeeze plunger being moved a distance greater than one-half of said distance L;
- a fourth step of continuing the squeezing on said molten metal by said squeeze plunger in said passage at said predetermined squeezing pressure until said cavity is filled voidlessly and, during said continued squeezing, forcing molten metal out of said die cavity through said gate into said runner by the molten metal displaced out of said squeeze passage by said squeeze plunger and until the molten metal is completely solidified at least in said die cavity while retaining said squeeze plunger substantially fully inside said passage to produce a solidified voidless die-cast product;
- a fifth step of retracting said squeeze plunger to remove said squeezing pressure from said squeeze passage after the molten metal is solidified in said die cavity;
- a sixth step of relatively moving said dies away from one another for the removal of said die-cast product which has been solidified in said die cavity; and
- preventing said injection plunger from being moved backward during said third and fourth steps by the effect of said greater pressure applied by said squeeze plunger;
- wherein said area S and said distance L are related by S.gtoreq.0.35L.sup.2.
- 2. A die-casting method according to claim 1, wherein said squeeze plunger is moved with a ring-like fin of a thin solidified layer of the molten metal interpopsed between said squeeze passage and said squeeze plunger.
- 3. A die-casting method comprising:
- a first step of relatively moving dies into close contact so as to form therebetween a die cavity for casting a product, a runner connected to said die cavity by a gate and through which molten metal is injected into said die cavity, and a non-narrowing squeeze passage having a cross-sectional area S and directly connected at one end to said die cavity at a point other than the point of connection between said die cavity and said runner;
- a second step of injecting, by forward movement of an injection plunger operated in a sleeve connected to said die cavity by said runner and gate and at a predetermined injection pressure, the molten metal from said runner via said gate into said die cavity and said squeeze passage to fill said die cavity and said squeeze passage with the molten metal;
- a third step of starting a squeezing displacement of the molten metal in said non-narrowing squeeze passage by moving a squeeze plunger through said squeeze passage from a retracted position, wherein the squeeze plunger end which faces the die cavity is spaced a distance L from said end of said squeeze passage, toward said die cavity and at a predetermined squeezing pressure greater than said injection pressure and at a time before the molten metal is solidified to block said gate, said squeeze plunger being moved a distance greater than one-half of said distance L;
- a fourth step of continuing the squeezing on said molten metal by said squeeze plunger in said passage at said predetermined squeezing pressure until said cavity is filled voidlessly and, during said continued squeezing, forcing molten metal out of said die cavity through said gate into said runner by the molten metal displaced out of said squeeze passage by said squeeze plunger and until the molten metal is completely solidified at least in said die cavity while retaining said squeeze plunger substantially fully inside said passage to produce a solidified voidless die-cast product;
- a fifth step of retracting said squeeze plunger to remove said squeezing pressure from said squeeze passage after the molten metal is solidified in said die cavity;
- a sixth step of relatively moving said dies away from one another for the removal of the die-cast product which has been solidified in said die cavity; and
- preventing said injection plunger from being moved backward during said third and fourth steps by the effect of said greater pressure applied by said squeeze plunger,
- wherein said first to sixth steps are carried out in sequence;
- wherein said area S and said distance L are related by S.gtoreq.0.35L.sup.2 ;
- wherein the amount V of molten metal actually displaced by said squeeze plunger is given by: ##EQU12## where Va represents the amount of molten metal in said die cavity and said squeeze passage;
- Vb represents the amount of molten metal in said runner and said sleeve;
- .rho. represents the density of a product obtained by a die-casting method which does not include a squeezing step;
- .rho.o represents the true density of the cast metal; and
- K represents a practical squeeze factor which ranges from 0.3 to 1; and
- wherein said predetermined squeezing pressure is:
- (A) greater than the sum of the injection pressure, a sliding frictional resistance generated during the movement of said squeeze plunger and a resistance generated during a shearing deformation of a solidified layer formed at the forward end of the inner peripheral surface of said squeeze passage, but is
- (B) less than the total of said sum and a resistance generated during a shearing deformation of a solidified layer formed in front of said injection plunger.
- 4. A die-casting method according to claim 3, wherein said squeeze plunger is moved with a ring-like fin of a thin solidified layer of the molten metal interposed between said squeeze passage and said squeeze plunger.
- 5. A method for die-casting a product,
- wherein relatively movable dies are used to form a die cavity which corresponds to said product, a sleeve is connected with said die cavity to introduce a molten metal to said die cavity, an injection plunger is fitted in said sleeve to inject said molten metal in said sleeve into said die cavity at a predetermined injection pressure, a non-narrowing squeeze passage having a cross-sectonal areas S is connected to one end directly to said die cavity, a squeeze plunger is fitted in said squeeze passage to force received molten metal back into said die cavity, said cavity having a cross-sectional area larger than the transverse cross-sectional area of said squeeze passage, a runner is provided to connect said sleeve with said die cavity, and a gate is formed at the connection between said runner and said die cavity to throttle said molten metal to be injected into said die cavity,
- comprising the steps of:
- driving said injection plunger to inject said molten metal in said sleeve into said die cavity through said runner and said gate at said predetermined injection pressure to fill said die cavity and said squeeze passage,
- driving said squeeze plunger through said non-narrowing squeeze passage from a retracted position, wherein the squeeze plunger end which faces the die cavity is spaced a distance L from said end of said squeeze passage, toward said die cavity to press out said molten metal in said squeeze passage into said die cavity to apply a predetermined squeezing pressure to said molten metal in said die cavity continuously until said molten metal therein is completely solidified thereby to obtain a void free product in said die cavity, said squeeze plunger being moved a distance greater than one-half of said distance L,
- retaining said squeeze plunger substantially fully inside said squeeze passage while said squeezing pressure is being applied,
- said area S and said distance L being related by S.gtoreq.0.35L.sup.2,
- said squeeze plunger being driven before said molten metal solidifies substantially in said gate to ensure that thick solidified layers do not grow at peripheral portions of said molten metal in said die cavity and said squeeze passage,
- said predetermined squeezing pressure being larger than the sum of said predetermined injection pressure and the pressure to shear a solidified layer grown around an outlet of said squeeze passage and to slide out said molten metal in said squeeze passage and any solidifed layer grown at a circumferential portion thereof, but smaller than a pressure which moves back said injection plunger in said sleeve,
- said molten metal in said die cavity being forced back through said gate into said runner,
- said squeeze plunger being driven in said passage in such a manner as to push a tubular solidified layer in said squeeze passage at least partially out of said non-narrowing squeeze passage into said cavity.
- 6. A method for die-casting a product,
- wherein relatively movable dies are used to form a die cavity which corresponds to said product, a sleeve is connected with said die cavity to introduce a molen metal to said die cavity, an injection plunger is fitted in said sleeve to inject said molten metal in said sleeve into said die cavity at a predetermined injection pressure, a non-narrowing squeeze passage having a cross-sectional area S is connected at one end directly to said die cavity, a squeeze plunger is fitted in said squeeze passage to force molten metal received in said passage back into said die cavity, said cavity having a cross-sectional area larger than the transverse cross-sectional area of said squeeze passage, a runner is provided to connect said sleeve with said die cavity, and a gate is formed at the connection between said runner and said die cavity to throttle said molten metal to be injected into said die cavity,
- comprising the steps of:
- driving said injection plunger to inject said molten metal in said sleeve into said die cavity through said runner and said gate at said predetermined injection pressure to fill said die cavity and said squeeze passage,
- driving said squeeze plunger through said non-narrowing squeeze passage from a retracted position, wherein the squeeze plunger end which faces the die cavity is spaced a distance L from said end of said squeeze passage, toward said die cavity to press out said molten metal in said squeeze passage into said die cavity to apply a predetermined squeezing pressure to said molten metal in said die cavity continuously until said molten metal therein is completely solidified thereby to obtain a void free product in said die cavity, said squeeze plunger being moved a distance greater than one-half of said distance L,
- retaining said squeeze plunger substantially fully inside said squeeze passage while said squeezing pressure is being applied,
- said area S and said distance L being related by S.gtoreq.0.35L.sup.2,
- said squeeze plunger being driven before said molten metal solidifies substantially in said gate to ensure that thick solidified layers do not grow at peripheral portions of said molten metal in said die cavity and said squeeze passage,
- said predetermined squeezing pressure being larger than said injection pressure but smaller than the pressure which moves back said injection plunger, and
- said molten metal pressed out of said squeeze passage and into said die cavity to fill up said die cavity being forced back through said gate into said runner and at least toward said sleeve.
- 7. A die-casting method comprising:
- a first step of relatively moving dies into close contact with one another so as to form therebetween a die cavity for casting a product, a runner connected to said die cavity by a gate, and a substantially non-narrowing squeeze passage having a cross-sectional area S and communicated at one end with said die cavity at a point other than the point of connection between said die cavity and said runner;
- a second step of injecting, by an injection plunger and at a predetermined injection pressure, the molten metal from said runner via said gate into said die cavity and said squeeze passage to fill said die cavity and said squeeze passage with the molten metal;
- a third step of starting a squeezing displacement of the molten metal in said squeeze passage by moving a squeeze plunger from a retracted position, wherein the squeeze plunger end which faces the die cavity is spaced a distance L from said end of said squeeze passage, toward said die cavity and at a predetermined squeezing pressure greater than said predetermined injection pressure and at a time before said gate is blocked by solidified molten metal, said squeeze plunger being moved a distance greater than one-half of said distance L;
- a fourth step of continuing the squeezing on said molten metal by said squeeze plunger at said predetermined squeezing pressure to fill said cavity with molten metal and, during said continued squeezing, forcing molten metal out of said die cavity through said gate into said runner until the molten metal is completely solidified at least in said die cavity while retaining said squeeze plunger substantially fully inside said passage to produce a solidified voidless die-cast product;
- preventing said injection plunger from being moved backward by the effect of said greater pressure applied by said squeeze plunger during said third and fourth steps;
- a fifth step of retracting said squeeze plunger to remove said squeezing pressure from said squeeze passage after the molten metal is solidified in said die cavity; and
- a sixth step of relatively moving said dies away from one another for the removal of said die-cast product which has been soldified in said die cavity;
- wherein said area S and said distance L are related by S.gtoreq.0.35L.sup.2.
- 8. A die-casting method according to claim 7, wherein said squeeze plunger is moved with a ring-like fin of a thin solidified layer of the molten metal interposed between said squeeze passage and said squeeze plunger.
- 9. A die-casting method comprising:
- a first step of relatively moving dies into close contact with one another so as to form therebetween a die cavity for casting a product, a runner connected to said die cavity by a gate and through which molten metal is injected into said die cavity, and a substantially non-narrowing squeeze passage having a cross-sectional area S and communicated at one end with said die cavity at a point other than the point of connection between said die cavity and said runner;
- a second step of injecting, by an injection plunger operated in a sleeve connected to said die cavity by said runner and gate and at a predetermined injection pressure, the molten metal from said runner via said gate into said die cavity and said squeeze passage to fill said cavity and passage with the molten metal;
- a third step of starting a squeezing displacement of the molten metal in said squeeze passage by moving a squeeze plunger from a retracted position, wherein the squeeze plunger end which faces the die cavity is spaced a distance L from said end of said squeeze passage, toward said die cavity and at a predetermined squeezing pressure and at a time before said gate is blocked by solidified molten metal, said squeeze plunger being moved a distance greater than one-half of said distance L;
- a fourth step for continuing the squeezing on said molten metal by said squeeze plunger at said predetermined squeezing pressure to fill said cavity with molten metal and, during said continued squeezing, forcing molten metal out of said die cavity through said gate into said runner until the molten metal is completely solidified at least in said die cavity to produce a solidified die-cast product;
- preventing said injection plunger from being moved back by the effect of the pressure applied by said squeeze plunger during said third and fourth steps;
- a fifth step of retracting said squeeze plunger to remove said squeezing pressure from said squeeze passage after the molten metal is solidified in said die cavity; and
- a sixth step of relatively moving said dies away from one another for the removal of said die-cast product which has been solidified in said die cavity;
- wherein said first to sixth steps are carried out in sequence;
- wherein said area S and said distance L are related by S.gtoreq.0.35L.sup.2 ;
- wherein the amount V of molten metal actually displaced by said plunger is given by ##EQU13## where Va represents the amount of molten metal in said die cavity and said squeeze passage;
- Vb represents the amount of molten metal in said runner and said sleeve;
- .rho. represents the density of a product obtained by a die-casting method which does not include a squeezing step;
- .rho.o represents the true density of the cast metal;
- K represents a practical squeeze factor which ranges from 0.3 to 1; and
- wherein the squeezing pressure is:
- (A) greater than the sum of the injection pressure, a sliding frictional resistance generated during the movement of said squeeze plunger and a resistance generated during a shearing deformation of a solidified layer formed at the forward end of the inner peripheral surface of said squeeze passage, but
- (B) less than the total of said sum and a resistance generated during a shearing deformation of a solidified layer formed in front of said injection plunger.
- 10. A die-casting method according to claim 9, wherein said squeeze plunger is moved with a ring-like fin a thin solidified layer of the molten metal interposed between said squeeze passage and said squeeze plunger.
- 11. A die-casting method comprising:
- a first step of relatively moving dies into close contact so as to form therebetween a die cavity for casting a product, a runner through which molten metal is injected into said die cavity, and a substantially non-narrowing squeeze passage connected directly to said die cavity at a point other than the point of connection between said die cavity and said runner, said squeeze passage having an enlarged inner end portion;
- a second step of injecting, by forwardly moving an injection plunger to effect a predetermined injection pressure, the molten metal from said runner via a gate into said die cavity and squeeze passage to fill said die cavity and said squeeze passage with the molten metal;
- a third step of starting a squeezing displacement of the molten metal in said non-narrowing squeeze passage by moving a squeeze plunger through said squeeze passage from a position therein remote from said die cavity toward said die cavity and at a predetermined squeezing pressure greater than said injection pressure and at a time before said gate is blocked by solidified molten metal and, during the squeeze plunger movement, maintaining a ring-like fin of a thin solidified layer of the molten metal between said enlarged squeeze passage inner end portion and said squeeze plunger;
- a fourth step of continuing the squeezing on said molten metal by said squeeze plunger in said passage at said predetermined squeezing pressure until said cavity is filled voidlessly and, during said continued squeezing, forcing molten metal out of said die cavity through said gate into said runner by the molten metal displaced out of said squeeze passage by said squeeze plunger and until the molten metal is completely solidified at least in said die cavity while retaining said squeeze plunger substantially fully inside said passage to produce a solidified voidless die-cast product;
- a fifth step of retracting said squeeze plunger to remove said squeezing pressure from said squeeze passage after the molten metal is solidified in said die cavity;
- a sixth step of relatively moving said dies away from one another for the removal of said die-cast product which has been solidified in said die cavity; and
- preventing said injection plunger from being moved backward during said third and fourth steps by the effect of said greater pressure applied by said squeeze plunger.
- 12. A die-casting method comprising:
- a first step of relatively moving dies into close contact so as to form therebetween a die cavity for casting a product, a runner connected to said die cavity by a gate and through which molten metal is injected into said die cavity, and a non-narrowing squeeze passage directly connected to said die cavity at a point other than the point of connection between said die cavity and said runner, said squeeze passage having an enlarged inner end portion;
- a second step of injecting, by forward movement of an injection plunger operated in a sleeve connected to said die cavity by said runner and gate and at a predetermined injection pressure, the molten metal from said runner via said gate into said die cavity and said squeeze passage to fill said die cavity and said squeeze passage with the molten metal;
- a third step of starting a squeezing displacement of the molten metal in said non-narrowing squeeze passage by moving a squeeze plunger through said squeeze passage from a position therein remote from said die cavity toward said die cavity and at a predetermined squeezing pressure greater than said injection pressure and at a time before the molten metal is solidified to block said gate and, during the squeeze plunger movement, maintaining a ring-like fin of a thin solidified layer of the molten metal between said enlarged squeeze passage inner end portion and said squeeze plunger;
- a fourth step of continuing the squeezing on said molten metal by said squeeze plunger in said passage at said predetermined squeezing pressure until said cavity is filled voidlessly and, during said continued squeezing, forcing molten metal out of said die cavity through said gate into said runner by the molten metal displaced out of said squeeze passage by said squeeze plunger and until the molten metal is completely solidified at least in said die cavity while retaining said squeeze plunger substantially fully inside said passage to produce a solidified voidless die-cast product;
- a fifth step of retracting said squeeze plunger to remove said squeezing pressure from said squeeze passage after the molten metal is solidified in said die cavity;
- a sixth step of relatively moving said dies away from one another for the removal of the die-cast product which has been solidified in said die cavity; and
- preventing said injection plunger from being moved backward during said third and fourth steps by the effect of said greater pressure applied by said squeeze plunger;
- wherein sid first to sixth steps are carried out in sequence;
- wherein the amount V of molten metal actually displaced by said squeeze plunger is given by: ##EQU14## where Va represents the amount of molten metal in said die cavity and said squeeze passage;
- Vb represents the amount of molten metal in said runner and said sleeve;
- .rho. represents the density of a product obtained by a die-casting method which does not include a squeezing step;
- .rho.o represents the true density of the cast metal; and
- K represents a practical squeeze factor which ranges from 0.3 to 1; and
- wherein said predetermined squeezing pressure is:
- (A) greater than the sum of the injection pressure, a sliding frictional resitance generated during the movement of said squeeze plunger and a resistance generated during a shearing deformation of a solidified layer formed at the forward end of the inner peripheral surface of said squeeze passage, but is
- (B) less than the total of said sum and a resistance generated during a shearing deformation of a solidified layer formed in front of said injection plunger.
- 13. A method for die-casting a product,
- wherein relatively movable dies are used to form a die cavity which corresponds to said product, a sleeve is connected with said die cavity to introduce a molten metal to said die cavity, an injection plunger is fitted in said sleeve to inject said molten metal in said sleeve into said die cavity at a predetermined injection pressure, a non-narrowing squeeze passage having an enlarged inner end portion is connected directly to said die cavity, a squeeze plunger is fitted in said squeeze passage to force received molten metal back into said die cavity, said cavity having a cross-sectional area larger than the transverse cross-sectional area of said squeeze passage, a runner is provided to connect said sleeve with said die cavity, and a gate is formed at the connection between said runner and said die cavity to throttle said molten metal to be injected into said die cavity,
- comprising the steps of:
- driving said injection plunger to inject said molten metal in said sleeve into said die cavity through said runner and said gate at said predetermined injection pressure to fill said die cavity and said squeeze passage,
- driving said squeeze plunger through said non-narrowing squeeze passage from a position therein remote from said die cavity toward said die cavity to press out said molten metal in said squeeze passage into said die cavity to apply a predetermined squeezing pressure to said molten metal in said die cavity continuously until said molten metal therein is completely solidified thereby to obtain a void free product in said die cavity, said squeeze plunger being moved with a ring-like fin of a thin solidified layer of the molten metal interposed between said enlarged squeeze passage inner end portion and said squeeze plunger,
- retaining said squeeze plunger substantially fully in said squeeze passage while said squeezing pressure is being applied,
- said squeeze plunger being driven before said molten metal solidifies substantially in said gate to ensure that thick solidified layers do not grow at peripheral portions of said molten metal in said die cavity and said squeeze passage,
- said predetermined squeezing pressure being larger than the sum of said predetermined injection pressure and the pressure to shear a solidified layer grown around an outlet of said squeeze passage and to slide out said molten metal in said squeeze passage and any solidified layer grown at a circumferential portion thereof, but smaller than a pressure which moves back said injection plunger in said sleeve,
- said molten metal in said die cavity being forced back through said gate into said runner,
- said squeeze plunger being driven in said passage in such a manner as to push a tubular solidified layer in said squeeze passage at least partially out of said non-narrowing squeeze passage into said cavity.
- 14. A method for die-casting a product,
- wherein relatively movable dies are used to form a die cavity which corresponds to said product, a sleeve is connected with said die cavity to introduce a molten metal to said die cavity, an injection plunger is fitted in said sleeve to inject said molten metal in said sleeve into said die cavity at a predetermined injection pressure, a non-narrowing squeeze passage having an enlarged inner end portion is connected directly to said die cavity, a squeeze plunger is fitted in said squeeze passage to force molten metal received in said passage back into said die cavity, said cavity having a cross-sectional area larger than the transverse cross-sectional area of said squeeze passage, a runner is provided to connect said sleeve with said die cavity, and a gate is formed at the connection between said runner and said die cavity to throttle said molten metal to be injected into said die cavity,
- comprising the steps of:
- driving said injection plunger to inject said molten metal in said sleeve into said die cavity through said runner and said gate at said predetermined injection pressure to fill said die cavity and said squeeze passage,
- driving said squeeze plunger through said non-narrowing squeeze passage from a position therein remote from said die cavity toward said die cavity to press out said molten metal in said squeeze passage into said die cavity to apply a predetermined squeezing pressure to said molten metal in said die cavity continuously until said molten metal therein is completely solidified thereby to obtain a void free product in said die cavity, said squeeze plunger being moved with a ring-like fin of a thin solidified layer of the molten metal interposed between said enlarged squeeze passage inner end portion and said squeeze plunger,
- retaining said squeeze plunger substantially fully inside said squeeze passage while said squeezing pressure is being applied,
- said squeeze plunger being driven before said molten metal solidifies substantially in said gate to ensure that thick solidified layers do not grow at peripheral portions of said molten metal in said die cavity and said squeeze passage,
- said predetermined squeezing pressure being larger than said injection pressure but smaller than the pressure which moves back said injection plunger, and
- said molten metal pressed out of said squeeze passage and into said die cavity to fill up said die cavity being forced back through said gate into said runner and at least toward said sleeve.
- 15. A die-casting method comprising:
- a first step of relatively moving dies into close contact with one another so as to form therebetween a die cavity for casting a product, a runner connected to said die cavity by a gate, and a substantially non-narrowing squeeze passage communicated with said die cavity at a point other than the point of connection between said die cavity and said runner;
- a second step of injecting, by an injection plunger and at a predetermined injection pressure, the molten metal from said runner via said gate into said die cavity and said squeeze passage to fill said die cavity and said squeeze passage with the molten metal;
- a third step of starting a squeezing displacement of the molten metal in said squeeze passage by moving a squeeze plunger from a position in said passage remote from said die cavity toward said die cavity and at a predetermined squeezing pressure greater than said predetermined injection pressure and at a time before said gate is blocked by solidified molten metal, said squeeze plunger being moved with a ring-like fin of a thin solidified layer of the molten metal held between said squeeze passage and said squeeze plunger;
- a fourth step of continuing the squeezing on said molten metal by said squeeze plunger at said predetermined squeezing pressure to fill said cavity with molten metal and, during said continued squeezing, forcing molten metal out if said die cavity through said gate into said runner until the molten metal is completely solidified at least in said die cavity while retaining said squeeze plunger substantially fully inside said passage to produce a solidified voidless die-cast product;
- preventing said injection plunger from being moved backward by the effect of said greater pressure applied by said squeeze plunger during said third and fourth steps;
- a fifth step of retracting said squeeze plunger to remove said squeezing pressure from said squeeze passage after the molten metal is solidified in said die cavity; and
- a sixth step of relatively moving said dies away from one another for the removal of said die-cast product which has been solidified in said die cavity.
- 16. A die-casting method comprising:
- a first step of relatively moving dies into close contact with one another so as to form therebetween a die cavity for casting a product, a runner connected to said die cavity by a gate and through which molten metal is injected into said die cavity, and a substantially non-narrowing squeeze passage communicated with said die cavity at a point other than the point of connection between said cavity and said runner;
- a second step of injecting, by an injection plunger operated in a sleeve connected to said die cavity by said runner and gate and at a predetermined injection pressure, the molten metal from said runner via said gate into said die cavity and said squeeze passage to fill said cavity and passage with the molten metal;
- a third step of starting a squeezing displacement of the molten metal in said squeeze passage by moving a squeeze plunger from a position in said passage remote from said die cavity toward said die cavity and at a predetermined squeezing pressure and at a time before said gate is blocked by solidified molten metal, said squeeze plunger being moved with a ring-like fin of a thin solidified layer of the molten metal maintained between said squeeze passage and said squeeze plunger;
- a fourth step of continuing the squeezing on said molten metal by said squeeze plunger at said predetermined squeezing pressure to fill said cavity with molten metal and, during said continued squeezing, forcing molten metal out of said die cavity through said gate into said runner until the molten metal is completely solidified at least in said die cavity to produce a solidified die-cast product;
- preventing said injection plunger from being moved back by the effect of the pressure applied by said squeeze plunger during said third and fourth steps;
- a fifth step of retracting said squeeze plunger to remove said squeezing pressure from said squeeze passage after the molten metal is solidified in said die cavity; and
- a sixth step of relatively moving said dies away from one another for the removal of said die-cast product which has been solidified in said die cavity;
- wherein said first to sixth steps are carried out in sequence;
- wherein the amount V of molten metal actually displaced by said plunger is given by ##EQU15## where Va represents the amount of molten metal in said die cavity and said squeeze passage;
- Vb represents the amount of molten metal in said runner and said sleeve;
- .rho. represents the density of a product obtained by a die-casting method which does not include a squeezing step;
- .rho.o represents the true density of the cast metal;
- K represents a practical squeeze factor which ranges from 0.3 to 1; and
- wherein the squeezing pressure is:
- (A) greater than the sum of the injection pressure, a sliding frictional resistance generated during the movement of said squeeze plunger and a resistance generated during a shearing deformation of a solidified layer formed at the forward end of the inner peripheral surface of said squeeze passage, but
- (B) less than the total of said sum and a resistance generated during a shearing deformation of a solidified layer formed in front of said injection plunger.
Parent Case Info
This is continuation of application Ser. No. 209,705, filed Oct. 14, 1980, abandoned.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
102e Date |
371c Date |
PCT/JP79/00032 |
2/14/1979 |
|
|
5/7/1979 |
10/14/1980 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO80/01655 |
8/21/1980 |
|
|
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
3106002 |
Bauer |
Oct 1963 |
|
Foreign Referenced Citations (3)
Number |
Date |
Country |
51-129817 |
Nov 1976 |
JPX |
51-130631 |
Nov 1976 |
JPX |
558691 |
Feb 1975 |
CHX |
Continuations (1)
|
Number |
Date |
Country |
Parent |
209705 |
Oct 1980 |
|