ZINC ALLOY-PLATED STEEL MATERIAL HAVING EXCELLENT CORROSION RESISTANCE AND SURFACE QUALITY, AND METHOD FOR PRODUCING SAME
Provided is a zinc alloy-plated steel material used in automobiles, building materials, home appliances, or the like, and more specifically, to a zinc alloy-plated steel material having excellent corrosion resistance and surface quality, and a method for producing same.
1 . A zinc alloy-plated steel material having excellent corrosion resistance and surface qualities, the zinc alloy-plated steel material comprising:
base steel and a zinc alloy-plating layer formed on the base steel,
wherein the zinc alloy-plating layer includes, by weight %, 8 to 25% of aluminum (Al), 4 to 12% of magnesium (Mg), and a balance of zinc (Zn) and inevitable impurities, and
an area fraction, occupied by a polygonal solidification phase observed on a surface of the zinc alloy-plating layer, is 20 to 90%.
2 . The zinc alloy-plated steel material of claim 1 , wherein a ratio (b/a) of a major axis ‘b’ to a minor axis ‘a’ of the polygonal solidification phase is 1 to 3.
3 . The zinc alloy-plated steel material of claim 1 , wherein a microstructure of the zinc alloy-plating layer includes at least one of MgZn 2 and Mg 2 Zn 11 in an area fraction of 20 to 45%.
4 . The zinc alloy-plated steel material of claim 1 , wherein Al and Mg satisfy the following relational expression 1,
Mg≤−0.0186*Al 2 +1.0093*Al+4.5 [Relational Expression 1]
where each of Mg and Al denotes a content (weight %) of a corresponding element.
5 . The zinc alloy-plated steel material of claim 1 , wherein the zinc alloy-based layer further includes, by weight %, 0.0005 to 0.009% of at least one of beryllium (Be), calcium (Ca), cerium (Ce), lithium (Li), scandium (Sc), strontium (Sr), vanadium (V), and yttrium (Y).
6 . A method of manufacturing a zinc alloy-plated steel material having excellent corrosion resistance and surface qualities, the method comprising:
preparing base steel;
dipping the prepared base steel in a plating bath to be plated, the plating bath including, by weight %, 8 to 25% of aluminum (Al), 4 to 12% of magnesium (Mg), and a balance of zinc (Zn) and inevitable impurities;
wiping the plated base steel; and
forming a polygonal solidification phase on a surface of a hot-dip galvanized layer after the wiping.
7 . The method of claim 6 , wherein the forming of the polygonal solidification phase includes spraying a gas, containing nitrogen having a concentration of 78 to 99% in a volume fraction, primary gas spraying, and then spraying a gas having a dew point of −5 to 50° C., secondary gas spraying.
8 . The method of claim 7 , further comprising:
adding vibrations of 100 Hz to 5 MHz after the secondary gas spraying.
9 . The method of claim 6 , wherein Al and Mg satisfy the following relational expression 1,
Mg≤−0.0186*Al 2 +1.0093*Al+4.5 [Relational Expression 1]
where each of Mg and Al denotes a content (weight %) of a corresponding element.
10 . The method of claim 6 , wherein the plating bath further includes, by weight %, 0.0005 to 0.009% of at least one of beryllium (Be), calcium (Ca), cerium (Ce), lithium (Li), scandium (Sc), strontium (Sr), vanadium (V), and yttrium (Y).