Method of manufacturing metal castings
10898948 ยท 2021-01-26
Assignee
Inventors
- Qigui Wang (Rochester Hills, MI)
- Christopher D. Cogan (Clarkston, MI, US)
- Michael J. Walker (Shelby Township, MI, US)
- Garrold DeGrace (Frankenmuth, MI, US)
- Thomas Gustafson (Clarkston, MI, US)
- Dale Gerard (Bloomfield Hills, MI, US)
Cpc classification
B22D27/11
PERFORMING OPERATIONS; TRANSPORTING
B22D27/08
PERFORMING OPERATIONS; TRANSPORTING
B22C9/08
PERFORMING OPERATIONS; TRANSPORTING
B22C9/02
PERFORMING OPERATIONS; TRANSPORTING
B22D18/04
PERFORMING OPERATIONS; TRANSPORTING
B22C23/00
PERFORMING OPERATIONS; TRANSPORTING
B22D29/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22C9/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method of manufacturing an aluminum alloy cylinder head includes providing a precision sand core and mold assembly, a liquid aluminum alloy delivery system, and a mold manipulator system. The precision sand core and mold assembly is disposed in the mold manipulator system and the liquid aluminum alloy delivery system includes an in-furnace ultrasonic actuator and a launder tube having at least an ultrasonic actuator. The liquid aluminum alloy delivery system is sealed to the precision sand core and mold assembly and provides liquid aluminum alloy into a gating system of the precision sand core and mold assembly. The precision sand core and mold assembly is rotated approximately 180. The precision sand core and mold assembly is vibrated.
Claims
1. A method of manufacturing an aluminum alloy cylinder head, the method comprising: providing a precision sand core and mold assembly having a head deck face chill, a piston core, and a gate shut-off core, a liquid aluminum alloy delivery system, and a mold manipulator system, and wherein the precision sand core and mold assembly is disposed in the mold manipulator system; sealing the liquid aluminum alloy delivery system to the precision sand core and mold assembly and providing liquid aluminum alloy into a gating system of the precision sand core and mold assembly; rotating the precision sand core and mold assembly approximately 180; and vibrating the precision sand core and mold assembly.
2. The method of claim 1 wherein providing a precision sand core and mold assembly, a liquid aluminum alloy delivery system, and a mold manipulator system, and wherein the precision sand core and mold assembly is disposed in the mold manipulator system further comprises providing the precision sand core and mold assembly, the liquid aluminum alloy delivery system having an in-furnace ultrasonic actuator and a launder tube having an ultrasonic actuator, and the mold manipulator system, and wherein the precision sand core and mold assembly is disposed in the mold manipulator system.
3. The method of claim 1 wherein providing a precision sand core and mold assembly having a head deck face chill, a piston core, and a pate shut-off core, a liquid aluminum alloy delivery system, and a mold manipulator system, and wherein the precision sand core and mold assembly is disposed in the mold manipulator system further comprises providing the precision sand core and mold assembly having a head deck face chill, a piston core, and a gate shut-off core, the liquid aluminum alloy delivery system, and the mold manipulator system having a vibration mechanism, a gate shut-off core actuator and a piston core actuator, and wherein the precision sand core and mold assembly is disposed in the mold manipulator system.
4. The method of claim 3 further comprising energizing the gate shut-off core actuator to insert the gate shut-off core into the gating system of the precision sand core and mold assembly sealing the gating system.
5. The method of claim 4 further comprising actuating the piston core actuator to release the piston core to fall into the gating system applying pressure to the liquid aluminum alloy in the gating system.
6. The method of claim 5 further comprising removing the head deck face chill from the precision sand core and mold assembly.
7. The method of claim 6 further comprising quenching a head deck face of the aluminum alloy cylinder head with one of a water spray and a forced air.
8. A method of manufacturing an aluminum alloy cylinder head, the method comprising: providing a precision sand core and mold assembly having a head deck face chill, a piston core, and a gate shut-off core, a liquid aluminum alloy delivery system, and a mold manipulator system, and wherein the precision sand core and mold assembly is disposed in the mold manipulator system having a vibration mechanism, a gate shut-off core actuator and a piston core actuator and the liquid aluminum alloy delivery system includes an in-furnace ultrasonic actuator and a launder tube having at least an ultrasonic actuator; sealing the liquid aluminum alloy delivery system to the precision sand core and mold assembly and providing liquid aluminum alloy into a gating system of the precision sand core and mold assembly; rotating the precision sand core and mold assembly approximately 180; and vibrating the precision sand core and mold assembly.
9. The method of claim 8 further comprising energizing the gate shut-off core actuator to insert the gate shut-off core into the gating system of the precision sand core and mold assembly sealing the gating system.
10. The method of claim 9 further comprising actuating the piston core actuator to release the piston core to fall into the gating system applying pressure to the liquid aluminum alloy in the gating system.
11. The method of claim 10 further comprising removing the head deck face chill from the precision sand core and mold assembly.
12. The method of claim 11 further comprising quenching a head deck face of the aluminum alloy cylinder head with one of a water spray and a forced air.
13. A method of manufacturing an aluminum alloy cylinder head, the method comprising: providing a precision sand core and mold assembly, a liquid aluminum alloy delivery system, and a mold manipulator system, and wherein the precision sand core and mold assembly is disposed in the mold manipulator system, the precision sand core and mold assembly includes a head deck face chill, a piston core, and a gate shut-off core, the liquid aluminum alloy delivery system includes an in-furnace ultrasonic actuator and a launder tube having at least an ultrasonic actuator, and the mold manipulator system includes a vibration mechanism, a gate shut-off core actuator and a piston core actuator; sealing the liquid aluminum alloy delivery system to the precision sand core and mold assembly and providing liquid aluminum alloy into a gating system of the precision sand core and mold assembly; rotating the precision sand core and mold assembly approximately 180; vibrating the precision sand core and mold assembly; energizing the gate shut-off core actuator to insert the gate shut-off core into the gating system of the precision sand core and mold assembly sealing the gating system; and actuating the piston core actuator to release the piston core to fall into the gating system applying pressure to the liquid aluminum alloy in the gating system.
14. The method of claim 13 further comprising removing the head deck face chill from the precision sand core and mold assembly.
15. The method of claim 14 further comprising quenching a head deck face of the aluminum alloy cylinder head with one of a water spray and a forced air.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
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DESCRIPTION
(13) Referring to the drawings, wherein like reference numbers refer to like components, in
(14) Turning now to
(15) Turning now to
(16) The sand cores 32 form part of the exterior features and all the interior features of the cylinder head 10 casting and include, for example, two end cores 36, two side cores 38, two center cores 40, two head cover cores 42, two exhaust port cores 44, two intake port cores 46, two water jacket cores 48, and two oil drain cores 50. The molds 34 include a lower or drag mold 62, an upper or cope mold 64, two head deck chills 74, and two piston cores 76. During assembly of the mold assembly 30, the sand cores 32 are inserted in a specified order into the drag mold 62 or the cope mold 64. In the example shown in FIGS. 4, 5, and 6, the sand cores 32 are placed in the drag mold 62 with the cope mold 64 placed on top of the assembled sand cores 32 thus securing the sand cores 32 in place. In some examples, the sand cores 32 are assembled into a core package prior to placing the core package into the drag mold 62. In other examples, the sand cores 32 may require adhesive, screws, and other retention mechanisms to hold the sand cores 32 in place. However, such practices are within the scope of the present disclosure. Details regarding the piston core 76 are explained in more detail below.
(17) In the present disclosure, the included features of the drag mold 62 are of particular interest. The drag mold 62 includes a gating system 66 formed for receiving liquid metal from a pressurized liquid metal alloy source and quiescently directing the liquid metal alloy to the cavities formed therein by the sand cores 32 and sand molds 34 of the mold assembly 30. While a portion of the gating system 66 is viewable in
(18) Referring back to
(19) A third step 206 of the method includes providing a mold manipulator 100 for holding and transferring the precision sand and mold assembly 30. The mold manipulator 100, as shown in
(20) In a fourth step 208 of the method 200, the precision sand core and mold assembly 30 is sealed to a mouthpiece 110 of the launder tube 96 of the furnace 90. Liquid aluminum alloy is pumped or otherwise presented to the precision sand core and mold assembly 30 at low pressure. The furnace 90 can be a mechanical, an electromagnetic or a compressed gas furnace without departing from the scope of the disclosure. The precision sand core and mold assembly 30 is oriented with the risers 72 on the bottom of the precision sand core and mold assembly 30 and the head deck chills 74 on top.
(21) The fifth step 210 of the method 200, activates the mold manipulator 100 to roll the precision sand core and mold assembly 30 placing the risers 72 on top of the precision sand core and mold assembly 30 and the head deck chills 74 on the bottom. Next, a sixth step 212 activates the vibration mechanism 102 on the mold manipulator 100. Vibrating the precision sand core and mold assembly 30 as it solidifies helps in degassing the liquid aluminum alloy and improve grain refinement. The seventh step 214 actuates the gate shut-off core actuator 104 to move the gate shut-off core 71 into position to stop the backflow of liquid aluminum out of the precision sand core and mold assembly 30.
(22) Once the gate shut-off core 71 is in position, an eighth step 216 releases the piston core 76 to fall into the risers 72 or gating system 66 applying pressure to the liquid aluminum alloy in the gating system 66. The piston core actuator 106 may also apply a force to the piston core 76 into the risers 72.
(23) The ninth step 218 removes the head deck chills 74 from the precision sand core and mold assembly 30 and is followed by a tenth step 220 of quenching the head deck 12 and combustion chambers 14 of the casting with a water spray or a force air. More particularly, the head deck chills 74 are removed from the drag mold 62 creating an access 120 to the solidified surface of the head deck 12 and combustion chambers 14. The head deck chills 74 are cooled, cleaned, and reinserted in a new precision sand core and mold assembly 30. The precision sand core and mold assembly 30 is positioned over a quench system 122 as shown in
(24) While the best modes for carrying out the disclosure have been described in detail, those familiar with the art to which this disclosure relates will recognize various alternative designs and examples for practicing the disclosure within the scope of the appended claims.