ABCD is a square piece of paper. M and N are the respective midpoints of AB and CD. P is a point on AM such that if the piece of paper is folded along DP, then A lands on a point Q on the segment MN. What is the degree of #angle#ADP ?

1 Answer
CW
Mar 21, 2018

#angle ADP=15^@#

Explanation:

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As shown in the figure #ABCD# is a square with side length #=x#,
given #M and N# are the midpoints of #AB and CD#, respectively,
#=> DN=1/2x#
if the paper is folded along #DP#, #A# lands on #Q# on segment #MN#,
#=> AP=PQ#
#=> DQ=AD=x#
#DeltaDAP and DeltaDQP# are congruent
and #cos alpha=(DN)/(DQ)=(1/2x)/x=1/2#
#=> alpha=cos^-1(1/2)=60^@#
#=> angleADQ=2beta=90-60=30^@#
#=> angleADP=beta=1/2*30=15^@#

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