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A heavy, inverted cylinder of length L and radius R is initially held above the surface of the ocean (density of sea water is 1030 kg/m3). The interior of the cylinder is filled with air (at a pressure of 101.3 kPa and at a temperature of 15oC). As the cylinder is lowered into the ocean (as shown in the sketch) the air within the cylinder is trapped and compressed. You may assume that the temperature of the air and of the sea water are 15oC and that they remain constant during the cylinder's lowering into the ocean. (1) Determine the mass of air within the cylinder before the air is compressed when the cylinder is submerged in the sea water. (2) Determine the distance, H, that the sea water rises within the cylinder as a function of the depth, D, of the lower edge of the cylinder. (3) Perform calculations to determine H for depths of 0, 0.25L, 0.50L and 0.75L.
Package Design Brief: Assume you are the packaging engineer for a large consumer products company. In this company, the Packaging Design Briefs are initiated by the marketing group and forwarded to the Package Engineering group.
Define dynamic viscosity, Determine the centroid, Pressure due to the height of liquid, Advantage of changing the liquid, Calculate the total moment about the hinge of the seal gate.
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8 x product engineering and design review (week 2 – 12), ~3 pages per item which must contain a brief description of the product then delve into concepts such as materials selection, manufacturing methods, life cycle analysis, recyclability and overa..
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Determine the magnitude of the horizontal and vertical components of the force of the water on the gate.
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