ALLOY-COATED STEEL SHEET AND MANUFACTURING METHOD THEREFOR
Provided are an alloy coating steel plate and a method of manufacturing the same, and in this case, the alloy coating steel plate includes a steel, and an Al—Mg—Si alloy layer positioned on the steel plate, wherein the Al—Mg—Si alloy layer is formed to include Mg—Si alloy grains in an alloy layer configured in an Al—Mg alloy phase.
1 .- 28 . (canceled)
29 . An alloy coating steel plate comprising:
a steel plate; and
an Al—Mg—Si alloy layer positioned on the steel plate,
wherein the Al—Mg—Si alloy layer is formed to include Mg—Si alloy grains in an alloy layer configured in an Al—Mg alloy phase.
30 . The alloy coating steel plate of claim 29 , wherein the Al—Mg alloy phase includes Al 3 Mg 2 .
31 . The alloy coating steel plate of claim 29 , wherein the Mg—Si alloy grains include Mg 2 Si, and the Mg—Si alloy grains are amorphous.
32 . The alloy coating steel plate of claim 29 , wherein content of Mg—Si alloy grains in the Al—Mg—Si alloy layer is 1 wt % or more and 70 wt % or less based on 100 wt % of the total weight of the Al—Mg—Si alloy layer.
33 . The alloy coating steel plate of claim 29 , further comprising: an Mg layer or an Al—Mg alloy layer positioned on the Al—Mg—Si alloy layer.
34 . An alloy coating steel plate comprising:
a steel plate;
a plating layer including Al positioned on one surface or opposite surfaces of the steel plate; and
a coating layer positioned on the plating layer,
wherein the coating layer is divided into two or three layers; and
wherein the coating layer includes a phase of one of Al, Si, and Mg or an alloy phase including two or more thereof.
35 . The alloy coating steel plate of claim 34 , wherein the coating layer is divided into three layers; and
wherein the three layers include:
an Al—Si alloy layer positioned on the plating layer,
an Al—Mg—Si alloy layer positioned on the Al—Si alloy layer, and
an Mg layer positioned on the Al—Mg—Si alloy layer.
36 . The alloy coating steel plate of claim 34 , wherein the coating layer is divided into three layer; and
wherein the three layers include:
an Al—Si alloy layer positioned on the plating layer,
an Al—Mg—Si alloy layer positioned on the Al—Si alloy layer, and
an Al—Mg layer positioned on the Al—Mg—Si alloy layer.
37 . The alloy coating steel plate of claim 34 , wherein the coating layer is divided into two layers; and
wherein the two layers include:
an Al—Si alloy layer positioned on the plating layer, and
an Al—Mg—Si alloy layer positioned on the Al—Si alloy layer.
38 . A method of manufacturing an alloy coating steel plate, the method comprising:
preparing an aluminum plating steel plate including a plating layer including AI positioned on one surface or opposite surfaces of a steel plate;
forming an Mg coating layer by coating Mg on the aluminum plating steel plate; and
performing heat treatment on the aluminum plating steel plate with Mg coated thereon to diffuse Mg into the plating layer.
39 . The method of claim 38 , wherein preparing an aluminum plating steel plate including a plating layer including AI positioned on one surface or opposite surfaces of a steel plate includes preparing an aluminum plating steel plate including a plating layer including Al and Si positioned on a steel plate,
wherein the plating layer includes an Al—Mg—Si alloy layer positioned on the steel plate; and
wherein the Al—Mg—Si alloy layer is formed to include Mg—Si alloy grains in an alloy layer configured in an Al—Mg alloy phase.
40 . The method of claim 39 , wherein the Al—Mg alloy phase includes Al 3 Mg 2 .
41 . The method of claim 40 , wherein the Mg—Si alloy grains include Mg 2 Si, and the Mg—Si alloy grains are amorphous.
42 . The method of claim 41 , wherein content of Mg—Si alloy grains in the Al—Mg—Si alloy layer is 1 wt % or more and 70 wt % or less based on 100 wt % of the total weight of the Al—Mg—Si alloy layer.
43 . The method of claim 38 , wherein the performing of the heat treatment on the aluminum plating steel plate with Mg coated thereon to diffuse Mg into the plating layer includes forming a coating layer divided into two or three layers on a plating layer including Al positioned on one surface or opposite surfaces of the steel plate; and
wherein the coating layer includes a phase of one of Al, Si, and Mg or an alloy phase including two or more thereof.
44 . The method of claim 43 , wherein the coating layer is divided into three layers formed on a plating layer including AI positioned on one surface or opposite surfaces of the steel plate; and
wherein the coating layer divided into three layers formed on the plating layer includes:
an Al—Si alloy layer positioned on the plating layer,
an Al—Mg—Si alloy layer positioned on the Al—Si alloy layer, and
an Mg layer positioned on the Al—Mg—Si alloy layer.
45 . The method of claim 43 , wherein the coating layer is divided into three layers formed on a plating layer including AI positioned on one surface or opposite surfaces of the steel plate; and
wherein the coating layer divided into three layers formed on the plating layer includes:
an Al—Si alloy layer positioned on the plating layer,
an Al—Mg—Si alloy layer positioned on the Al—Si alloy layer, and an Al—Mg alloy layer positioned on the Al—Mg—Si alloy layer.
46 . The method of claim 43 , wherein the coating layer is divided into two layers formed on a plating layer including AI positioned on one surface or opposite layers of the steel plate; and
wherein the coating layer divided into two layers formed on the plating layer includes:
an Al—Si alloy layer positioned on the plating layer, and
an Al—Mg—Si alloy layer positioned on the Al—Si alloy layer.