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Computer Science Question 1 : Structural Analysis of a Truss Part A: Determine the reactions at the supports of a truss with a span of

Computer Science
Question 1: Structural Analysis of a Truss
Part A: Determine the reactions at the supports of a truss with a span of 10 meters and a height of 5 meters. The truss is subjected to a uniform load of 2 kN/m.
Part B: Use the method of joints to find the forces in each member of the truss.
Part C: Identify the zero-force members in the truss.
Part D: Calculate the deflection at the midpoint of the truss using the virtual work method.
Part E: Determine the maximum compressive and tensile forces in the truss members.
Question 2: Concrete Mix Design
Part A: Design a concrete mix for an M40 grade concrete using the IS method. Specify the proportions of cement, sand, aggregate, and water.
Part B: Calculate the amount of materials required for 1 cubic meter of concrete.
Part C: Determine the slump value for the designed mix and describe the procedure to measure it.
Part D: Perform a mix design adjustment for a specific workability requirement.
Part E: Calculate the 28-day compressive strength of the concrete.
Question 3: Soil Mechanics and Foundation Design
Part A: Calculate the bearing capacity of a shallow foundation on a sandy soil using Terzaghis bearing capacity theory. Given: cohesion =0, angle of internal friction =30, unit weight of soil =18 kN/m, foundation width =2 m, and depth of foundation =1 m.
Part B: Determine the settlement of the foundation if the elastic modulus of the soil is 25 MPa and the Poissons ratio is 0.3.
Part C: Calculate the factor of safety against shear failure.
Part D: Design a rectangular footing for a column carrying a load of 1000 kN. Specify the dimensions and reinforcement details.
Part E: Perform a stability analysis of the footing against sliding and overturning.
Question 4: Hydraulics and Fluid Mechanics
Part A: Calculate the flow rate through a rectangular open channel with a width of 3 meters and a flow depth of 2 meters. The slope of the channel is 0.001, and the Mannings coefficient is 0.015.
Part B: Determine the critical depth and critical flow rate for the given channel.
Part C: Calculate the energy loss due to friction for a 500-meter length of the channel.
Part D: Perform a hydraulic jump analysis and determine the sequent depths.
Part E: Design a suitable spillway for the channel to manage excess flow.
Question 5: Environmental Engineering
Part A: Design a sedimentation tank for a water treatment plant with a flow rate of 5000 m/day. Specify the dimensions and detention time.
Part B: Calculate the efficiency of the sedimentation tank using the removal rate of particles with a specific gravity of 2.65 and a diameter of 0.01 mm.
Part C: Determine the sludge volume produced in the tank per day.
Part D: Design the sludge removal mechanism for the sedimentation tank.
Part E: Evaluate the overall treatment efficiency of the water treatment plant.
Question 6: Transportation Engineering
Part A: Design a horizontal curve for a highway with a design speed of 100 km/h and a superelevation rate of 6%. Calculate the radius of the curve and the length of the transition curve.
Part B: Determine the stopping sight distance for the given design speed.
Part C: Calculate the required sight distance for a vertical curve with a grade of +3% and -2%.
Part D: Design the pavement thickness for the highway using the AASHTO method. Specify the layer thicknesses and materials.
Part E: Perform a traffic analysis to determine the level of service for the
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