The vertex of the right isosceles triangle is the center of the square. What is the area of the overlapping region?
+9466 
Note that area in question = area of △UYZ + area of trapezoid UYXW
m∠VUW + m∠WUY = 90°
m∠ZUY + m∠WUY = 90°
So
m∠VUW = m∠ZUY
By ASA congruence, △UVW is congruent to △UYZ.
area of △UVW + area of trapezoid UYXW = area of square UVXY = 5 * 5 = 25 sq units
Since △UVW is congruent to △UYZ,
area of △UYZ + area of trapezoid UYXW = area of △UVW + area of trapezoid UYXW = 25 sq units
(Also, I made this to help me figure it out because I was very lost on this problem for awhile! You can see that as the value of a changes, the area in question stays the same, at 25 sq units.)
+9466
Note that area in question = area of △UYZ + area of trapezoid UYXW
m∠VUW + m∠WUY = 90°
m∠ZUY + m∠WUY = 90°
So
m∠VUW = m∠ZUY
By ASA congruence, △UVW is congruent to △UYZ.
area of △UVW + area of trapezoid UYXW = area of square UVXY = 5 * 5 = 25 sq units
Since △UVW is congruent to △UYZ,
area of △UYZ + area of trapezoid UYXW = area of △UVW + area of trapezoid UYXW = 25 sq units
(Also, I made this to help me figure it out because I was very lost on this problem for awhile! You can see that as the value of a changes, the area in question stays the same, at 25 sq units.)
+4609 We have to place an isosceles triangle, 45-45-90 triangle such that the center of the isosceles triangle is the center of the square. The only way to do this is by rotating the isosceles triangles, such that the side is opposite the 90-degree angle. This is 1/4 of the total square or 1/4*100-25 square units.
Welcome back, hectictar!
