S scaryshark09 ∞∆ who let 'em cook dis long ∆∞ Joined Oct 20, 2022 Messages 1,618 Gender Undisclosed HSC 1999 Oct 19, 2023 #2 BA = -1i + 2j BC = -1i - 3j BA.BC = |BA||BC|cosABC (-1)(-1) + (2)(-3) = (root5)(root10) cosABC -5/root50 = cosABC angle ABC = 135 degrees Last edited: Oct 19, 2023
BA = -1i + 2j BC = -1i - 3j BA.BC = |BA||BC|cosABC (-1)(-1) + (2)(-3) = (root5)(root10) cosABC -5/root50 = cosABC angle ABC = 135 degrees
U user18181818 Active Member Joined Sep 12, 2023 Messages 228 Gender Female HSC 2023 Oct 19, 2023 #3 the answer is 135
U user18181818 Active Member Joined Sep 12, 2023 Messages 228 Gender Female HSC 2023 Oct 19, 2023 #4 ohh i get it it's the same as what u did but just considering cos being negative thanks
p711 Member Joined Apr 30, 2023 Messages 20 Gender Male HSC 2023 Oct 19, 2023 #5 ur supposed to do BA.BC thats how u get 135
p711 Member Joined Apr 30, 2023 Messages 20 Gender Male HSC 2023 Oct 19, 2023 #6 same thing as using AB.CB (the vectors should be both pointing to B or both away from B) im pre sure
S scaryshark09 ∞∆ who let 'em cook dis long ∆∞ Joined Oct 20, 2022 Messages 1,618 Gender Undisclosed HSC 1999 Oct 19, 2023 #7 user18181818 said: the answer is 135 Click to expand... sorry, i just edited my answer