Rectilinear Motion Problems And Solutions Mathalino Upd Page

Displacement from t=2 to t=6: [ \int_2^6 (2t-4) dt = [t^2 - 4t]_2^6 = (36-24) - (4-8) = 12 - (-4) = 16 \ \textm ] Distance part 2 = ( 16 ) m (positive, no absolute needed).

Find when ( v(t)=0 ): ( 2t-4=0 \implies t=2 ) s. rectilinear motion problems and solutions mathalino upd

[ v(t) = \fracdsdt = 3t^2 - 12t + 9 \quad (\textm/s) ] [ a(t) = \fracdvdt = 6t - 12 \quad (\textm/s^2) ] Displacement from t=2 to t=6: [ \int_2^6 (2t-4)

Total distance = ( 4 + 16 = 20 ) m.

Given ( a(t) = \fracdvdt = 6t + 4 ). Integrate: [ v(t) = \int (6t + 4) , dt = 3t^2 + 4t + C_1 ] Using ( v(0)=5 ): ( 5 = 0 + 0 + C_1 \implies C_1 = 5 ). Thus, ( v(t) = 3t^2 + 4t + 5 ). Given ( a(t) = \fracdvdt = 6t + 4 )

( s(t) = t^3 + 2t^2 + 5t + 2 ). Problem 3: Distance from Velocity Graph (Conceptual) Statement: The velocity of a particle is ( v(t) = 2t - 4 ) m/s for ( 0 \le t \le 6 ). Find the total distance traveled.

– Need to account for direction changes at t=1 and t=3. From t=0 to 1: ( |s(1)-s(0)| = |6-2| = 4 ) m. From t=1 to 3: ( |s(3)-s(1)| = |2-6| = 4 ) m. From t=3 to 5: ( |s(5)-s(3)| = |22-2| = 20 ) m. Total distance = ( 4 + 4 + 20 = 28 ) m.