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1 RF RF2 Wte Wth d ET, = 0 = (RF2) (1) - (W)(d) - (Wto)('/21) A 75 kg, 1.75 m tall person lays on a 3 kg, 2 m long board

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1 RF RF2 Wte Wth d ET, = 0 = (RF2) (1) - (W)(d) - (Wto)('/21) A 75 kg, 1.75 m tall person lays on a 3 kg, 2 m long board

Posted: Tue May 17, 2022 9:37 pm
by answerhappygod
1 Rf Rf2 Wte Wth D Et 0 Rf2 1 W D Wto 21 A 75 Kg 1 75 M Tall Person Lays On A 3 Kg 2 M Long Board 1
1 Rf Rf2 Wte Wth D Et 0 Rf2 1 W D Wto 21 A 75 Kg 1 75 M Tall Person Lays On A 3 Kg 2 M Long Board 1 (34.52 KiB) Viewed 62 times
1 RF RF2 Wte Wth d ET, = 0 = (RF2) (1) - (W)(d) - (Wto)('/21) A 75 kg, 1.75 m tall person lays on a 3 kg, 2 m long board. The reaction force reading on the scale is 400 N. At what percent of body height is the person's center of mass located? 57% 63% 60% 54%
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