How would you find the sides of a triangle given angle A=50, angle B=30, and side a=1?

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Answer 1 · 2018-05-02T05:52:15

#a = 1# (given)
#b = 0.65#
#c = 1.29#

To solve this, we use the Law of Sines

#b/sinB = a/sinA#

#b/(sin30^@) = 1/sin50^@#

#b = sin30^@/sin50^@#

#b ~~ 0.65#

#-------------------#

We can find angle C by doing #180^@ - 50^@ - 30^@ = 100^@#

Now let's find side c:
#c/sinC = a/sinA#

#c/(sin100^@) = 1/sin50^@#

#c = sin100^@/sin50^@#

#c ~~ 1.29#

Therefore, the lengths of the sides of the triangle are:
#a = 1# (given)
#b = 0.65#
#c = 1.29#

(#b# and #c# are rounded to the nearest hundredth)

Hope this helps!