Field of the Invention
[0001] This invention relates to a method for casting glassy or amorphous metal strips.
In particular, the invention describes a method of casting which eliminates the occurrence
of undesirable crystalline particles.
Background of the Invention
[0002] It is well established that ribbons of substantial length and varying cross section
can be cast into the glassy state by various rapid solidification methods. U.S. Patent
3,856,513 discloses broad compositions of materials which are suitable for casting
as glassy ribbons. These ribbons are usually cast on a moving chill surface as described,
for example, in U.S. Patent 4,142,571. It has been the practice when casting ribbon
alloys on moving metal substrate, to cool the substrate in order to maintain as low
a substrate temperature as possible. It has been found that when amorphous ribbons
are cast using the techniques described in the prior art, that the substantially glassy
metal ribbons often contain some crystalline particles, which for example in iron
base alloys are typically alpha (body centered cubic) iron. These crystal particles
are normally located near the ribbon surface which contacted the chill substrate during
casting. These particles can reduce the corrosion resistance of the ribbons since
they represent a chemical inhomogeneity and introduce grain boundaries which are preferential
corrosion sites. Crystalline particles may also reduce the thermal stability of the
amorphous phase by providing preferred nucleation sites.
[0003] The presence of the crystalline particles is evident from the X-ray diffraction pattern
of the ribbon surface. A broad diffraction band is characteristic of a glassy structure.
The X-ray diffraction pattern of a ribbon surface containing crystalline particles
shows a sharp peak which is superimposed over the broad diffraction band. The height
of the crystalline peak is generally proportional to the amount of crystalline material.
The X-ray diffraction patterns represent surface measurements since the penetration
depth of the radiation is generally only about 0.0003 in.
Summary of the Invention
[0004] It is an object of this invention to provide a method for casting rapidly quenched
metallic glass ribbons which are free from crystalline particles.
[0005] It is another object of this invention, to provide a method for casting glassy ribbons
with improved thermal stability.
[0006] Still another object of this invention is to provide a method for producing glassy
metal ribbons with superior corrosion resistance.
[0007] These and other objects of the invention will be readily apparent from the following
description and claims.
[0008] The present invention is an improved method for casting rapidly quenched metallic
glass ribbons. The improvement applies to all rapid solidification techniques where
metallic stream impinges upon a moving chill surface. The improvement comprises maintaining
the temperature of the moving chill surface above about 115°C.
[0009] It is preferred to maintain the relative velocity between the quench surface and
the metallic stream between about 100 m/sec. and 2000 m/sec.
BEST MODE OF CARRYING
THE INVENTION INTO PRACTICE
[0010] When a metallic stream impinges on a water- cooled wheel, the wheel is heated by
the liquid metal stream and cooled by the flow of a suitable coolant such as water.
By adjusting the coolant flow rate and temperature, it is possible to control the
temperature of the surface of the wheel. While it is not possible to monitor the instantaneous
temperature of the chill surface, it is possible to measure the average temperature
at a distance slightly below the surface. This temperature approximates the average
temperature of the chill surface. It has been found that the presence of crystalline
particles in the glassy ribbon can be substantially reduced or eliminated when this
monitored temperature is maintained at about 115°C, preferably above 120°C. Substrate
temperatures up to 250°C have been tested and found to effectively eliminate crystallinity.
However since as the temperature of wheel surface increases the wear of the surface
increases, it is preferred to keep the wheel temperature as low as possible consistant
with forming crystalline free ribbon. The following example illustrates the practice
of this invention.
Examples 1, 2 and 3
[0011] An alloy having the composition: 82 atom percent iron, 12 atom percent boron and
6 atom percent silicon was cast on a 380 mm diameter water cooled copper wheel rotating
at 764 rpm. The temperature of the cooling water was 22°C and the flow rate through
the wheel was 60 1/m. The metal impinging on the cooled wheel was ejected through
a rectangular orifice 0.5 mm wide by 5 mm long. The ejection pressure was 14 Kpa.
[0012] The initial wheel surface temperature measured by a thermalcouple located 2.5 mm
below the surface was 22°C. The surface temperature increased to 66°C after about
20 seconds of casting and thereafter remained constant. Three samples were taken from
the resulting ribbon: 1) near the beginning of the ribbon, after 6 seconds of casting;
2) after 42 seconds of casting; and 3) near the end of the ribbon after about 4 minutes
of casting. Each sample was examined to determine the presence of crystallinity on
the ribbon surface which had contacted the wheel. The relative amount of crystallinity
was gauged by measuring the height of the crystalline peak above the amorphous diffraction
band. The results of these tests which are the average of two casting runs are shown
in Table I. Note that all samples show appreciable surface crystallinity.
Examples 4, 5 and 6
[0013] The conditions for these examples were identical with the conditions for examples
1, 2 and 3 except that the wheel surface temperature was increased. This was achieved
by increasing cooling water temperature to 60°C and reducing the cooling water flow
rate to about 6.6 1/m. These changes resulted in an initial wheel surface temperature
of 60°C, and l16°C being established as the steady state surface temperature after
about 20 seconds of casting. Samples were selected and tested as in the previous examples.
The test results which are also summarized in Table 1 show appreciable surface crystallinity
for the ribbon cast when the wheel temperature was about 60°C, example 4. No surface
crystallinity is evident in the ribbon produced after the wheel surface temperature
reached 116°C, examples 5 and 6.
Examples 7, 8 and 9
[0014] The conditions for examples 7, 8 and 9 are the same as for previous examples, 1-6
except that the water temperature was 55°C and the flow rate was 3.3 1/m. These conditions
resulted in a steady state wheel surface temperature of 132
0C after about 20 seconds of casting. The test results summarized in Table I again
demonstrate the absence of surface crystallinity for the higher, 132°C, wheel surface
temperature.
Examples 10-19
[0015] Using the same nozzle configuration described in Example 1, a second type of casting
experiment was conducted to show the effect wheel temperature on ribbon structure.
This experimental procedure permitted a wider range of quenched surface temperatures
to be tested. Casting was initiated with no cooling water flow so that the casting
surface temperature gradually increased from 22°C to about 230°C. This occurred over
a time period of about 120 seconds. Cooling water was then gradually applied to reduce
surface temperature to 60°C. The total time of the experiment was about 6 minutes.
Samples were taken at time intervals throughout the experiment to represent the various
quench surface temperatures. Table II illustrates the results of this test. Crystallinity
was observed on the surface of the ribbon cast initially. The relative amount of crystallinity
gradually decreased and finally disappeared as the surface temperature of the wheel
increased. Decreasing the surface temperature by applying cooling water resulted in
the reappearance of crystallinity.
[0016] From examination of Tables I and II, it can be seen that the crystallinity in the
ribbon disappears when the chill substrate temperature is between about 98°C and 116°C.

1. In a method for rapidly quenching metallic glass ribbon where an impinging metallic
stream contacts a moving chill substrate, the improvement comprising the step of maintaining
the surface temperature of the chill substrate above about 115°C.
2. In the method of claim 1, wherein said temperature is maintained above about 120°C.
3. The method of claim 2 wherein said temperature is between 120°C and 250°C.
4. In the method of claim 3 wherein the chill substrate employed is a wheel.
5. In the method of Claim 3 wherein the chill substrate employed is a continuous belt.