Problem 3. Shown below is a figure of a landing gear configuration on the VS and...
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Problem 3. Shown below is a figure of a landing gear configuration on the VS and VD planes (for landing gear the directions V, D, and S are often used instead of x, y and z) This gear unit is assumed to represent one side of the main gear on a tricycle type of the landing gear system. The loading assumed corresponds to a condition of nose wheel up or tail down. The design load on the wheel is vertical and it s magnitude for this problem is 15,000 lbf. Determine the reactions at F, H, and G. The fittings at F and H are pinned and therefore cannot transmit any bending moments. The fitting at G is also a pinned fitting. Axle po" f G 3 Fig. A2. 55 16" Side Brace22 Strut Oleo Strut 26" top v 3" 120 Brace Strut -RD-15000 sin 120 = 3119 lb. R=15000 lb. Ry 15000 xcos 120 14672 lb. Problem 3. Shown below is a figure of a landing gear configuration on the VS and VD planes (for landing gear the directions V, D, and S are often used instead of x, y and z) This gear unit is assumed to represent one side of the main gear on a tricycle type of the landing gear system. The loading assumed corresponds to a condition of nose wheel up or tail down. The design load on the wheel is vertical and it s magnitude for this problem is 15,000 lbf. Determine the reactions at F, H, and G. The fittings at F and H are pinned and therefore cannot transmit any bending moments. The fitting at G is also a pinned fitting. Axle po" f G 3 Fig. A2. 55 16" Side Brace22 Strut Oleo Strut 26" top v 3" 120 Brace Strut -RD-15000 sin 120 = 3119 lb. R=15000 lb. Ry 15000 xcos 120 14672 lb.
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a figure of a landing gear configuration on the Vs and VD planes 1 This gear unit is assumed to represent one side of the main gear on a tricycle type of landing gear system 1 The fittings at F and H ... View the full answer
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