How do you evaluate the integral of #int x/6 dx# from 0 to 2?

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Answer 1 · 2018-03-17T14:57:50

#1/3#

Ok first the #1/6# is a constant so it can be pulled out of the integral and be re-written like so
#1/6int_0^2xdx#

The integral of #x# is #1/2x^2#

Now we multiply the #1/6# to the integral which is #1/2x^2#

Giving us
#1/12x^2#

Now we plug in the #x# values which were #2# and #0# and subtract them

#1/12(2)^2 - 1/12(0)^2#

Equals
#4/12-0/12#

#4/12#

Simplifying to
#1/3#

Answer 2 · 2018-03-17T14:58:24

#int_0^2 x/6 dx = 1/3#

#int_0^2 x/6 dx = 1/6 int_0^2 xdx#

#int_0^2 x/6 dx = 1/6 [x^2/2]_0^2#

#int_0^2 x/6 dx = 1/6 (2^2/2-0)#

#int_0^2 x/6 dx = 1/3#