Question
Download Solution PDFAn epicyclic gear train has 3 shafts A, B and C. A is the input shaft running at 100 r.p.m. clockwise. B is the output shaft running at 250 r.p.m. clockwise. The torque on A is 50 kN m (clockwise), C is a fixed shaft. The toque needed to fix C is
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFThe net torque applied to the gear train must be zero
T1 + T2 + T3 = 0
The net kinetic energy dissipated by the gear train must be zero.
T1ω1 + T2ω2 + T3ω2 = 0
Here NA = 100 rpm (cw) ; NB = 250 rpm (cω); TA = 50 kN.m (cw) ; Nc = 0
TANA + TBNB + TCNC = 0
50 × 100 + TB × 250 = 0
\({T_B} = - \frac{{50 \times 100}}{{250}} = - 20\;kNm\)
TC = - TA – TB = -50 - (-20) = -30 kN.m
i.e 30 kN.m ccwLast updated on Jun 23, 2025
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