EP3589435A1 - Shear induced grain refinement of a cast ingot - Google Patents
Shear induced grain refinement of a cast ingotInfo
- Publication number
- EP3589435A1 EP3589435A1 EP18710628.1A EP18710628A EP3589435A1 EP 3589435 A1 EP3589435 A1 EP 3589435A1 EP 18710628 A EP18710628 A EP 18710628A EP 3589435 A1 EP3589435 A1 EP 3589435A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- μηι
- molten metal
- jet
- μιη
- metal
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22D—CASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
- B22D17/00—Pressure die casting or injection die casting, i.e. casting in which the metal is forced into a mould under high pressure
- B22D17/20—Accessories: Details
- B22D17/2015—Means for forcing the molten metal into the die
- B22D17/2023—Nozzles or shot sleeves
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22D—CASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
- B22D11/00—Continuous casting of metals, i.e. casting in indefinite lengths
- B22D11/04—Continuous casting of metals, i.e. casting in indefinite lengths into open-ended moulds
- B22D11/049—Continuous casting of metals, i.e. casting in indefinite lengths into open-ended moulds for direct chill casting, e.g. electromagnetic casting
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22D—CASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
- B22D11/00—Continuous casting of metals, i.e. casting in indefinite lengths
- B22D11/10—Supplying or treating molten metal
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22D—CASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
- B22D21/00—Casting non-ferrous metals or metallic compounds so far as their metallurgical properties are of importance for the casting procedure; Selection of compositions therefor
- B22D21/002—Castings of light metals
- B22D21/007—Castings of light metals with low melting point, e.g. Al 659 degrees C, Mg 650 degrees C
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22D—CASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
- B22D7/00—Casting ingots, e.g. from ferrous metals
- B22D7/005—Casting ingots, e.g. from ferrous metals from non-ferrous metals
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22D—CASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
- B22D15/00—Casting using a mould or core of which a part significant to the process is of high thermal conductivity, e.g. chill casting; Moulds or accessories specially adapted therefor
- B22D15/04—Machines or apparatus for chill casting
Definitions
- the present disclosure relates to metal casting generally and more specifically to controlling delivery of molten metal to a mold cavity .
- Direct-Chill (DC) cast ingot due to the location-dependent solidification rate inherent to the process.
- the use of a turbulent jet as a metal entrance method has the potential to significantly reduce grain size and its variability upon location.
- Experiments have been conducted investigating the influence of jet power on the grain size and distribution in A34.5Cu DC cast ingots. The findings indicate that significantly increasing the jet power may not appreciably decrease the grain size. Instead, a threshold jet power required for grain refinement has been determined, beyond which only marginal improvements are anticipated.
- FIG. 1 is a top view schematic diagram depicting the location of samples taken for metallographic analysis from an ingot according to certain aspects of the present disclosure.
- FIG. 2 is a surface plot depicting gram size distribution in one quadrant of a standard-cast (SD cast) A14.5Cu alloy.
- FIG. 3 is a surface plot depicting grain size distribution in one quadrant of a jet-cast (JT cast) A14.5Cu alloy having a jet with a Reynolds number of 64,000.
- FIG. 4 is a surface plot depicting grain size distribution in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 69,000.
- FIG. 5 is a surface plot depicting grain size distribution in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 81,000.
- FIG. 6 is a surface plot depicting grain size distribution in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 97,000.
- FIG. 7 is a surface plot depicting grain size distribution in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 121,000.
- FIG. 8 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a standard-cast (SD cast) A14.5Cu alloy
- FIG. 9 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast (JT cast) A14,5Cu alloy having a jet with a Reynolds number of 64,000,
- FIG. 10 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 69,000.
- FIG. 11 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast A 14.5Cu alloy having a jet with a Reynolds number of 8.1 ,000.
- FIG. 12 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 97,000.
- FIG. 13 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 121,000.
- FIG. 14 is a chart depicting average grain size and dendrite arm spacing as a function of the jet Reynolds number (Rej).
- FIG. 15 is a chart depicting the spread (e.g., range) of grain sizes and dendrite arm spacing as a function of the jet Reynolds number (Rej).
- FIG. 16 is a series of micrographs depicting samples taken from ingots cast using a jet-cast technique and a standard-cast technique
- FIG. 17 is a partial cross-sectional view of a metal casting system with a single nozzle according to certain aspects of the present disclosure.
- FIG. 18 is a partial cross-sectional view of a metal casting system with multiple nozzles according to certain aspects of the present disclosure.
- Certain aspects and features of the present disclosure relate to the application of a turbulent mixing jet as a method to homogenize and refine the gram structures found within Direct-Chill (DC) cast aluminum ingots.
- a turbulent mixing jet as a method to homogenize and refine the gram structures found within Direct-Chill (DC) cast aluminum ingots.
- jet e.g., shear
- grain refinement and homogeneity in cast aluminum products such as A14.5Cu rolling slab ingots
- a fine and uniform grain structure is desirable for optimum formability and homogenous mechanical properties in wrought aluminum products.
- Grain structure size, distribution, and morphology
- the grain structure depends on numerous factors, including the alloy composition, the introduction of heterogeneous nucleation sites (e.g., grain refiner), growth conditions, and cooling rate. Due to the shape of the solidifying interface (e.g., sump) formed during DC casting, the solidification rate of an individual gram is extremely position dependent. This variation in solidification rates can lead to large variances in grain size and structure through large rolling slab ingots.
- non-dendritic structures are beneficial for the structural homogeneity of DC cast products, improving their mechanical properties in the vicinity of the solidus, diminishing macrosegregation, and decreasing cracking susceptibility.
- An important feature of the non-dendritic grams that are formed during solidification is the unique dependence of the non-dendritic grain size on the cooling rate. The size of a non-dendritic grain at a certain cooling rate is the same as the dendrite arm spacing of a dendritic grain formed at the same cooling rate.
- the dendrite fragmentation mechanism attempts to rationalize the final microstructural features observed in the solid, but the important remaining question is how likely is it that shearing can exert such a high bending moment to small dendrite arms to fracture them.
- the microscale of turbulence has to be of the order of particle size for the viscous forces to be active on bending the dendrite arms, and that is possible only at a very high shear rate.
- fragmented dendrite arms are expected to grow dendritically in the melt, at least during the initial period of growth, until impingement of diffusion fields occur. This understanding is not compatible with some experimental observations, where primary particles can be seen to be few in number but exhibit a degenerated dendritic or spherical microstructure.
- FIG. 1 is a top view schematic diagram depicting the location of samples 102 taken for metallographic analysis from an ingot 100 according to certain aspects of the present disclosure. Notations A, C, and E correspond to micrograph images depicted in FIG. 16.
- the ingot 100 can be considered as having four quadrants, including quadrants 1 (not labeled), quadrant 2, quadrant 3, and quadrant 4.
- the metallographic samples were etched with a dilute solution of hydrofluoric acid and analyzed for grain size and dendrite arm spacing using an optical microscope according to the established line-intercept method.
- FIGs. 2-7 are surface plots depicting grain size distribution in one quadrant of cast ingots prepared using standard cast techniques or various jet stirring techniques (e.g., high-velocity jet techniques or jet-cast ingots) according to certain aspects of the present disclosure.
- the surface plots can be taken at a length of approximately I SOOmm along the cast length of the ingots.
- the surface plots depict grain size distributions using color bars at an identical scale, ranging from approximately 50 micrometers (e.g., dark blue) up to at or over 250 micrometers (e.g., dark red).
- the grain size can vary from about 50 ⁇ at the short face (e.g., far left of the plot), where solidification is most rapid, to over 250 ⁇ near the center where the sump is steepest and solidification rates are the slowest.
- FIG. 2 is a surface plot depicting gram size distribution in one quadrant of a standard-cast (SD cast) A14.5Cu alloy.
- the standard cast ahoy can be performed without a high-velocity jet (e.g., with a jet having a Reynolds number at or below 15,000, or with a combination bag).
- the range of grain sizes seen in the standard-cast ingot ranged from approximately 50 micrometers to at or above approximately 250 micrometers.
- the region of approximately -500 to 0 mm from center along the x axis and approximately 50 to 150 mm from center along the y axis shows large grain size distributions (e.g., distributions of large grains).
- the region near the bottom left corner of the surface plot shows small gram size distributions (e.g., distribution of smaller grains).
- the region at the bottom left corner of the surface plot represents the region near the middle of the short face of the ingot.
- FIG. 3 is a surface plot depicting grain size distribution in one quadrant of a jet-cast (JT cast) A14.5Cu alloy having a jet with a Reynolds number of 64,000.
- the regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle of the plot.
- FIG. 4 is a surface plot depicting grain size distribution in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 69,000.
- the regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle-right of the plot.
- FIG. 5 is a surface plot depicting grain size distribution in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 8 ,000.
- the regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle-right of the plot.
- FIG. 6 is a surface plot depicting gram size distribution in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 97,000.
- the regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle-right of the plot.
- FIG. 7 is a surface plot depicting grain size distribution in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 121,000.
- the regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle-right of the plot.
- FIGs. 2-7 it is apparent that the grain size pattern from each of the jet-cast ingot trials appears to be fairly similar in its distortion of the standard result. Regardless of the amount of jet power (e.g., Reynolds number), a trend towards slower cooling - and thus larger grain sizes - towards the center of the ingot is obsen'ed similar to that obsen'ed in the standard-cast trials.
- the range of grain sizes observed is greatly- reduced. While the standard-cast ingot had gram sizes up to at or above approximately 250 micrometers, the grain sizes of the jet-cast ingots were much smaller, with the majority of grains at approximately 100 micrometers and the largest grains at, around, or under 150 micrometers in diameter.
- FIGs. 8-13 are surface plots depicting the spatial secondary dendrite arm spacing (DAS) profile in one quadrant of cast ingots prepared using standard cast techniques or various jet stirring techniques (e.g., high-velocity jet techniques or jet-cast ingots) according to certain aspects of the present disclosure.
- the surface plots can be taken at a length of approximately 1800mm along the cast length of the ingots.
- the ingots used for the surface plots of FIGs. 8-13 can be the same ingots used for respective surface plots of FIGs. 2-7.
- FIG. 8 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a standard-cast (SD cast) A14.5Cu alloy.
- the standard cast alloy can be performed without a high-velocity jet (e.g., with a jet having a Reynolds number at or below 15,000, or with a combination bag).
- the range of grain sizes seen in the standard-cast ingot ranged from approximately 50 micrometers to at or above approximately 250 micrometers.
- the region of approximately -500 to 0 mm from center along the x axis and approximately 50 to 150 mm from center along the y axis shows large grain size distributions (e.g., distributions of large grains).
- the region near the bottom left corner of the surface plot shows small grain size distributions (e.g., distributions of smaller grains).
- the region at the bottom left corner of the surface plot represents the region near the middle of the short face of the ingot.
- FIG. 9 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast (JT cast) A34.5Cu alloy having a jet with a Reynolds number of 64,000. The regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle of the plot.
- FIG. 10 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 69,000. The regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle-right of the plot.
- FIG. 11 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 81,000.
- the regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle-right of the plot.
- FIG. 12 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 97,000.
- the regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle-right of the plot.
- FIG. 13 is a surface plot depicting spatial secondary dendrite arm spacing in one quadrant of a jet-cast A14.5Cu alloy having a jet with a Reynolds number of 121 ,000.
- the regions near the edges of the plot show smaller grain size distributions (e.g., distributions of smaller grains) than regions near the middle-right of the plot.
- the periphery of the ingot exemplifies DAS of only approximately 25 micrometers and grows to perhaps 50 micrometers in the center. While the profiles may be similar to the standard case in some respects, the average DAS is smaller for these casts than the other samples.
- FIG. 14 is a chart depicting average grain size and dendrite arm spacing as a function of the jet Reynolds number (Rej).
- Rej jet Reynolds number
- Certain aspects and features of the present disclosure can result in a cast product having an average grain size at or below approximately 150 um, 149 urn, 148 ⁇ , 147 ⁇ , 146 ⁇ , 145 ⁇ , 144 ⁇ , 143 ⁇ , 142 ⁇ , 141 ⁇ , 140 ⁇ , 139 ⁇ , 138 ⁇ , 137 ⁇ , 136 ⁇ , 135 ⁇ , 134 ⁇ , 133 ⁇ , 132 ⁇ , 131 ⁇ , 130 ⁇ , 129 ⁇ , 128 ⁇ , 127 ⁇ , 126 ⁇ , 125 ⁇ , 124 ⁇ , 123 ⁇ , 122 ⁇ , 121 ⁇ , 120 ⁇ , 119 ⁇ , 1 18 ⁇ , 117 ⁇ , 116 ⁇ , 1 15 ⁇ , 1 14 ⁇ , 113 ⁇ , 1 12 ⁇ , 1 11 ⁇ , 110 ⁇ , 109 ⁇ , 108 ⁇ , 107 ⁇ , 106 ⁇ , 105 ⁇ , 104
- FIG. 15 is a chart depicting the spread (e.g., range) of grain sizes and dendrite arm spacing as a function of the jet Reynolds number (Re/).
- the standard-cast ingot is identified with a Reynolds number of 15,000.
- the spread of DAS is not affected much by the introduction of a turbulent jet.
- the grain size exhibited a drastic change.
- the standard-cast ingot had a grain size distribution of approximately 200 micrometers (e.g., from approximately 100 micrometers to approximately 300 micrometers), while the introduction of a turbulent jet reduced this range to only approximately 75 micrometers (e.g., from approximately 100 micrometers to approximately 175 micrometers).
- Certain aspects and features of the present disclosure can result in a cast product having a maximum grain size at or below approximately 290 ⁇ , 285 ⁇ , 280 ⁇ , 275 ⁇ , 270 ⁇ , 265 ⁇ , 260 ⁇ , 255 ⁇ , 250 ⁇ , 245 ⁇ , 240 ⁇ , 235 ⁇ , 230 ⁇ , 225 ⁇ , 220 ⁇ , 215 ⁇ , 210 ⁇ , 205 ⁇ , 200 ⁇ , 195 ⁇ , 190 ⁇ , 185 ⁇ , 180 ⁇ , 175 ⁇ , 170 ⁇ , 165 ⁇ , 160 ⁇ , 155 ⁇ , 150 ⁇ , 145 ⁇ , 140 ⁇ , 135 ⁇ , or 130 ⁇ .
- Certain aspects and features of the present disclosure can result in a cast product having a grain size spread (e.g., range between minimum and maximum grain sizes) at or less than approximately 200 ⁇ , 195 ⁇ , 190 ⁇ , 185 ⁇ , 180 ⁇ , 175 ⁇ , 170 ⁇ , 165 ⁇ , 160 ⁇ , 155 ⁇ , 150 ⁇ , 145 ⁇ , 140 ⁇ , 135 ⁇ , 130 ⁇ , 125 ⁇ , 120 ⁇ , 115 ⁇ , 1 10 ⁇ , 105 ⁇ , 100 ⁇ , 95 ⁇ , 90 ⁇ , 85 ⁇ , 80 ⁇ , 75 ⁇ , 70 ⁇ , 65 ⁇ , 60 ⁇ , or 55 ⁇ .
- a cast product having a smaller grain size spread can be considered to have a more homogenous grain size distribution
- a cast product having a larger grain size spread can be considered to have a less homogenous grain size distribution.
- FIG. .16 is a series of micrographs depicting samples taken from ingots cast using a jet-cast technique and a standard-cast technique.
- the jet-cast technique was performed using a jet having a Reynolds number of approximately 97,000.
- the samples were taken at locations A, C, and E of the ingot of FIG. I.
- Location A corresponds to a center region of the ingot
- C corresponds to a mid-thickness region
- E corresponds to an edge region.
- the most turbulent jets (e.g., 97,000 and 121,000) generated the most homogenous grain profile, with the smallest homogenous dendrite arm. spacing profile. While the lower Reynolds number jets de-stratified the molten pool enough to generate uniform solidification rates (e.g., as apparent by similar microstructure), the most turbulent jets segregated microstructure while generating homogenous grain size. Further, the most turbulent jets from the investigations into macrosegregation were designed to suspend grains from the center and inhibit preferential sedimentation by redistributing ''superfluous" floating grains. While this trend seems to be observed by the homogenous grain size, there does seem to be a disconnect from the D AS.
- FIG. 17 is a partial cross-sectional view of a metal casting system 1700 with a single nozzle 1708 according to certain aspects of the present disclosure.
- the metal casting system 1700 can be used to cast a metal product as described herein, such as casting using a nozzle shaped to generate a jet 1734 of molten metal 1726 having a sufficiently high Reynolds numbers, such as those described with reference to FIGs. 3-7 and 9-13.
- other casting systems can be used.
- a metal source 1702 such as a tundish, can supply molten metal 1726 down a feed tube 1736.
- a bottom block 1722 may be lifted by a hydraulic cylinder 1724 to meet the walls of the mold cavity 1716. As molten metal begins to solidify within the mold, the bottom block 1722 can be steadily lowered.
- the cast metal 1712 can include sides 1720 that have solidified, while molten metal 1726 added to the cast can be used to continuously lengthen the cast metal 1712.
- the wails of the mold cavity 1716 define a hollow space and may contain a coolant 1718, such as water.
- the coolant 1718 can exit as jets from the hollow space and flow down the sides 1720 of the cast metal 1712 to help solidify the cast metal 1712.
- the ingot being cast can include solidified metal 1730, transitional metal 1728, and molten metal 1726.
- Molten metal 1726 can exit the feed tube 1736 at a nozzle 1708 that is submerged in the molten metal 1726,
- the nozzle 1708 can be a part of the feed tube 1736 or can be a separable part.
- the nozzle 1708 can have parameters designed to provide flow of the molten metal 1726 (e.g., a jet 1734 of molten metal 1726 ⁇ at or approximately at a desired Reynolds number.
- the Reynolds number can be approximated using the equation
- Re C, where Re is the Revnolds number, Lmoid is the length of the moid at the rolling
- Djet is the diameter of the jet
- C is a constant.
- the constant C can be alloy dependent and can be experimentally determined.
- the constant C can be a function of mold width (e.g., the length of the mold at the short face of the resulting ingot, such as the "Short Face” of the ingot 100 depicted in FIG. 1), casting speed, kinematic viscosity, and other numerical constants which account for the cross sectional shape of the jet. This example for approximating the Reynolds number is given for casting a rectangular ingot in a rectangular mold.
- Reynolds number can be a function of jet diameter and effective hydraulic perimeter, or can be otherwise approximated.
- the diameter of the jet can be the at or approximately the diameter of the opening of the nozzle (e.g., nozzle 1708).
- the Reynold's number for a particular metal casting system e.g., metal casting system 1700
- the Reynold's number for a particular metal casting system will decrease as the diameter of the opening of the nozzle (e.g., nozzle 1708) increases and/or as the length of the moid decreases (e.g., decreases towards a round billet the same size as the diameter of the jet).
- the constants which define the Reynolds number for a particular casting system and alloy can be determined by one of ordinary skill in the art.
- Molten metal 1726 exiting the nozzle 1708 can create a jet 1734 of molten metal 1726 having a particular Reynolds number.
- the desirable characteristics of the jet 1734 as described herein e.g., to improve metallurgical properties, such as grain refinement
- a nozzle 1708 designed or shaped to produce a jet having a desirable Reynolds number e.g., at or above a threshold number.
- FIG. 18 is a partial cross-sectional view of a metal casting system 1800 with multiple nozzles 1807, 1808, 1809 according to certain aspects of the present disclosure.
- the metal casting system 1800 can be similar to metal casting system 1700 except for the presence of multiple nozzles 1807, 1808, 1809 in place of a single nozzle.
- the metal castmg system 1800 is depicted with three nozzles, although any number of nozzles can be used.
- multiple nozzles 1807, 1808, 1809 can each be supplied from a metal source 1802 by respective, individual feed tubes 1835, 1836, 1837. However, in some cases, multiple nozzles can be fed from a single feed tube (e.g., a branching feed tube). Flow of molten metal 1826 through the multiple nozzles 1807, 1808, 1809 can generate respective jets 1833, 1834, 1835.
- the desirable metallurgical effects described herein when metal is cast using a nozzle designed to produce a jet having a Reynolds number at or above a particular threshold Reynolds number can be similarly achieved by using multiple nozzles, wherein the sum of the Reynolds numbers of the multiple jets produced by the multiple nozzles is at or above the particular threshold Reynolds number.
- each of the multiple nozzles may generate a jet having a Reynolds number below the threshold Reynolds number, yet if the sum of the Reynolds numbers of the multiple jets from the multiple nozzles is above that threshold, the desirable metallurgical effects can be obtained.
- the sum of the Reynolds numbers of the jets being generated by the multiple nozzles at a particular point in time can be above the threshold Reynolds number.
- a casting system with multiple nozzles may have fewer than all nozzles running simultaneously, such as during different stages of casting (e.g., a start-up phase, a steady state phase, and ending phase). Therefore, as long as the sum of the Reynolds numbers of those jeis being generated is at or above the threshold Reynolds number, the desirable results may be achieved.
- promoted grain refinement can be achieved in direct chill casting when using a jet having a Reynolds number at or above a threshold Reynolds number of at or approximately 14000, 15000, 16000, 17000, 18000, 19000, 20000, 21000, 22000, 23000, 24000, 25000, 26000, 27000, 28000, 29000, 30000, 31000, 32000, 33000, 34000, 35000, 36000, 37000, 38000, 39000, 40000, 41000, 42000, 43000, 44000, 45000, 46000, 47000, 48000, 49000, 50000, 51000, 52000, 53000, 54000, 55000, 56000, 57000, 58000, 59000, 60000, 61000, 62000, 63000, or 64000.
- promoted gram refinement can be achieved in a multi-nozzle direct chill casting sy stem when the sum of the Reynolds numbers of the multiple jets from the multiple nozzles is at or above any of the aforementioned threshold Reynolds number
- any reference to a series of examples is to be understood as a reference to each of those examples disjunctively (e.g., "Examples 1 -4" is to be understood as “Examples I, 2, 3, or 4").
- Example 1 is a casting system, comprising: a feed tube couplable to a source of molten metal; and a nozzle located at a distal end of the feed tube, the nozzle submersible in a molten sump for delivering the molten metal to the molten sump, wherein the nozzle is designed to supply the molten metal at a Reynolds number of at least 14,000.
- Example 2 is the casting system, of example(s) 1, wherein the nozzle is designed to supply the molten metal at a Reynolds number of at least 64,000,
- Example 3 is the casting system of example(s) 1, wherein the nozzle is designed to supply the molten metal at a Reynolds number of at least 15000, 16000, 17000,
- Example 4 is the casting system of example(s) 1 -3, further comprising a mold for receiving the molten metal, wherein the mold comprises one or more mold walls and a bottom block lowerable to support a solidifying ingot.
- Example 5 is a casting system, comprising; at least one feed tube couplable to a source of molten metal: and a set of nozzles comprising one or more nozzles, wherein each of the one or more nozzles is located at a distal end of the at least one feed tube and is submersible in a molten sump for delivering the molten metal to the molten sump, wherein each of the one or more nozzles has an opening sized to achieve a jet of molten metal within the molten sump at a Reynolds number, wherein a sum of the Reynolds numbers of each jet of molten metal is at least 14,000.
- Example 6 is the casting system, of example(s) 5, wherein the openings of the one or more nozzles are sized such that the sum of the Reynolds numbers of each jet of molten metal is at least 64,000
- Example 7 is the casting system of example(s) 5, wherein the openings of the one or more nozzles are sized such that the sum of the Reynolds numbers of each jet of molten metal is at least 15000, 16000, 17000, 18000, 19000, 20000, 21000, 22000, 23000, 24000, 25000, 26000, 27000, 28000, 29000, 30000, 31000, 32000, 33000, 34000, 35000, 36000, 37000, 38000, 39000, 40000, 41000, 42000, 43000, 44000, 45000, 46000, 47000, 48000, 49000, 50000, 51000, 52000, 53000, 54000, 55000, 56000, 57000, 58000, 59000, 60000, 61000, 62000, or 63000
- Example 8 is the casting system of example(s) 5-7, wherein the set of nozzles includes at least two nozzles.
- Example 9 is the casting system of example(s) 5-8, further comprising a mold for receiving the molten metal, wherein the mold comprises one or more mold walls and a bottom block lowerable to support a solidifying ingot.
- Example 10 is a method, comprising: delivering molten metal from a metal source to a metal sump through a feed tube, wherein the molten metal generates one or more jets of molten metal within the metal sump upon exiting the feed tube, wherein each of the one or more jets of molten metal has a Reynolds number, and wherein a sum of the Reynolds numbers of each of the one or more jets of molten metal is at least 14,000.
- Example 1 1 is the method of example(s) 10, wherein the sum of the Reynolds numbers of each of the one or more jets of molten metal is at least 64,000,
- Example 12 is the method of example(s) 10, wherem the sum of the Reynolds numbers of each of the one or more jets of molten metal is at least 15000, 16000, 17000, 18000, 19000, 20000, 21000, 22000, 23000, 24000, 25000, 26000, 27000, 28000, 29000, 30000, 31000, 32000, 33000, 34000, 35000, 36000, 37000, 38000, 39000, 40000, 41000, 42000, 43000, 44000, 45000, 46000, 47000, 48000, 49000, 50000, 51000, 52000, 53000, 54000, 55000, 56000, 57000, 58000, 59000, 60000, 61000, 62000, or 63000.
- Example 13 is the method of example(s) 10-12, further comprising solidifying the molten metal into an ingot using a mold comprising one or more moid walls and a bottom block lowerable to support the solidifying ingot.
- Example 14 is a metal product cast according to the method of example(s) 10-
- Example 15 is the metal product of example(s) 14, wherein an average grain size of the metal product is at or below approximately 130 ⁇ .
- Example 16 is the metal product of example(s) 14, wherein an average grain size of the metal product is at or belo approximately 129 ⁇ , 128 ⁇ , 127 ⁇ , 126 ⁇ , 125 ⁇ , 124 ⁇ , 123 ⁇ , 122 ⁇ , 121 ⁇ , 120 ⁇ , 119 ⁇ , 118 ⁇ , 117 ⁇ , 1 16 ⁇ , 115 ⁇ , 114 ⁇ , 113 ⁇ , 112 um. 111 ⁇ , 110 ⁇ , 109 ⁇ , 108 um, 107 um, 106 ⁇ , 105 ⁇ , 104 ⁇ , 103 ⁇ , 102 ⁇ , 101 ⁇ , or 100 ⁇ .
- Example 17 is the metal product of example(s) 14-16, wherein a maximum grain size of the metal product is at or below approximately 250 ⁇ .
- Example 18 is the metal product of example(s) 14-16, wherein a maximum grain size of the metal product is at or below approximately 245 ⁇ , 240 ⁇ , 235 ⁇ , 230 ⁇ , 225 ⁇ , 220 ⁇ , 215 ⁇ , 210 ⁇ m, 205 ⁇ , 200 ⁇ , 195 ⁇ , 190 ⁇ , 185 ⁇ m, 180 ⁇ , 175 ⁇ m, 170 ⁇ m, 165 ⁇ , 160 m, 155 ⁇ , 150 m, 145 ⁇ , 140 ⁇ , 135 ⁇ , or 130 ⁇ ,
- Example 19 is the metal product of example(s) 14-18, wherein a grain size spread of the metal product is at or below approximately 130 ⁇ .
- Example 20 is the metal product of example(s) 14-18, wherein a grain size spread of the metal product is at or below approximately 125 ⁇ , 120 ⁇ , 1 15 ⁇ , 1 10 ⁇ , 105 ⁇ , 100 ⁇ , 95 ⁇ , 90 ⁇ , 85 ⁇ , 80 ⁇ , 75 ⁇ , 70 ⁇ , 65 ⁇ m, 60 ⁇ , or 55 ⁇ .
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
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Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201762465014P | 2017-02-28 | 2017-02-28 | |
| PCT/US2018/019812 WO2018160508A1 (en) | 2017-02-28 | 2018-02-27 | Shear induced grain refinement of a cast ingot |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP3589435A1 true EP3589435A1 (en) | 2020-01-08 |
Family
ID=61622717
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP18710628.1A Withdrawn EP3589435A1 (en) | 2017-02-28 | 2018-02-27 | Shear induced grain refinement of a cast ingot |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20180243822A1 (en) |
| EP (1) | EP3589435A1 (en) |
| CN (1) | CN110382136A (en) |
| WO (1) | WO2018160508A1 (en) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2022020490A1 (en) | 2020-07-22 | 2022-01-27 | GAF Energy LLC | Photovoltaic modules |
| JP7732286B2 (en) | 2021-09-03 | 2025-09-02 | 株式会社レゾナック | Aluminum alloy ingot and manufacturing method thereof |
| WO2025111355A1 (en) * | 2023-11-21 | 2025-05-30 | Novelis Inc. | Systems and methods for controlling cracks in cast ingots and increasing casting speed |
Family Cites Families (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB1097186A (en) * | 1965-03-11 | 1967-12-29 | Reynolds Metals Co | Continuous casting system |
| JPS61162254A (en) * | 1985-01-11 | 1986-07-22 | Sumitomo Metal Ind Ltd | Method of pouring to mold for continuous casting |
| JPH11277219A (en) * | 1998-03-30 | 1999-10-12 | Itsuo Onaka | Stirring and transporting device for conductive high-temperature liquid |
| JP2011115812A (en) * | 2009-12-02 | 2011-06-16 | Reizu Eng:Kk | Method for producing light alloy vehicle wheel |
| US8418748B2 (en) * | 2010-02-11 | 2013-04-16 | Novelis Inc. | Casting composite ingot with metal temperature compensation |
| WO2015179680A2 (en) * | 2014-05-21 | 2015-11-26 | Novelis Inc. | Mixing eductor nozzle and flow control device |
-
2018
- 2018-02-27 CN CN201880013971.6A patent/CN110382136A/en active Pending
- 2018-02-27 WO PCT/US2018/019812 patent/WO2018160508A1/en not_active Ceased
- 2018-02-27 US US15/906,327 patent/US20180243822A1/en not_active Abandoned
- 2018-02-27 EP EP18710628.1A patent/EP3589435A1/en not_active Withdrawn
Also Published As
| Publication number | Publication date |
|---|---|
| WO2018160508A1 (en) | 2018-09-07 |
| US20180243822A1 (en) | 2018-08-30 |
| CN110382136A (en) | 2019-10-25 |
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