Find the moment and product of inertia of the area with respect to x and y axes about through

Answer to Problem 9.192RP
The moment of inertia of the area with respect to x about through
The moment of inertia of the area with respect to y about through
The product of inertia of the area with respect to x and y axes about through
Explanation of Solution
Sketch the cross section as shown in Figure 1.
Refer to Figure 9.13.
The moment of inertia
The moment of inertia
Refer to Problem 9.191.
Sketch the cross section as shown in Figure 2.
Express the product of inertia as shown below:
Here,
Applying parallel axis theorem,
When the x and y axis is symmetry.
Refer to Figure 1.
Find the area of semicircle section 1 as shown below:
Here,
Substitute
Find the area of rectangle section 2 as shown below:
Here,
Substitute
Find the centroid for section 1 about x axis
Find the centroid for section 1 about x axis
Find the centroid for section 1 about y axis
Find the centroid for section 2 about x axis
Find the product of inertia of the area with respect to x and y axes by using parallel axis theorem as shown below:
Substitute
The Mohr circle is defined by the diameter XY, where
Find the average moment of inertia
Here,
Substitute
Find the radius (R) using the relation as shown below:
Here, R is radius and
Substitute
Sketch the Mohr circle as shown in Figure 3.
Refer to Figure 2.
Substitute
Find the angle
Find the moment of inertia of the area with respect to x about through
Here,
Substitute
Thus, the moment of inertia of the area with respect to x about through
Find the moment of inertia of the area with respect to y about through
Substitute
Thus, the moment of inertia of the area with respect to y about through
Find the product of inertia of the area with respect to y about through
Substitute
Thus, the product of inertia of the area with respect to x and y axes about through
(b)
Find the orientation of the principal axes through the centroid and corresponding values.
(b)

Answer to Problem 9.192RP
The orientation of the principal axes at the origin is
The maximum moment of inertia is
The minimum moment of inertia is
Explanation of Solution
Calculation:
Find the orientation of the principal axes through at origin as shown below.
Refer part a.
Thus, the orientation of the principal axes at the origin is
Sketch the orientation axis as shown in Figure 4.
Find the maximum moment
Substitute
Thus, the maximum moment of inertia is
Find the minimum moment
Substitute
Thus, the minimum moment of inertia is
Want to see more full solutions like this?
Chapter 9 Solutions
VECTOR MECHANICS FOR ENGINEERS: STATICS
- Auto Controls A union feedback control system has the following open loop transfer function where k>0 is a variable proportional gain i. for K = 1 , derive the exact magnitude and phase expressions of G(jw). ii) for K = 1 , identify the gaincross-over frequency (Wgc) [where IG(jo))| 1] and phase cross-overfrequency [where <G(jw) = - 180]. You can use MATLAB command "margin" to obtain there quantities. iii) Calculate gain margin (in dB) and phase margin (in degrees) ·State whether the closed-loop is stable for K = 1 and briefly justify your answer based on the margin . (Gain marginPhase margin) iv. what happens to the gain margin and Phase margin when you increase the value of K?you You can use for loop in MATLAB to check that.Helpful matlab commands : if, bode, margin, rlocus NO COPIED SOLUTIONSarrow_forwardThe 120 kg wheel has a radius of gyration of 0.7 m. A force P with a magnitude of 50 N is applied at the edge of the wheel as seen in the diagram. The coefficient of static friction is 0.3, and the coefficient of kinetic friction is 0.25. Find the acceleration and angular acceleration of the wheel.arrow_forwardAuto Controls Using MATLAB , find the magnitude and phase plot of the compensators NO COPIED SOLUTIONSarrow_forward
- 4-81 The corner shown in Figure P4-81 is initially uniform at 300°C and then suddenly exposed to a convection environment at 50°C with h 60 W/m². °C. Assume the = 2 solid has the properties of fireclay brick. Examine nodes 1, 2, 3, 4, and 5 and deter- mine the maximum time increment which may be used for a transient numerical calculation. Figure P4-81 1 2 3 4 1 cm 5 6 1 cm 2 cm h, T + 2 cmarrow_forwardAuto Controls A union feedback control system has the following open loop transfer function where k>0 is a variable proportional gain i. for K = 1 , derive the exact magnitude and phase expressions of G(jw). ii) for K = 1 , identify the gaincross-over frequency (Wgc) [where IG(jo))| 1] and phase cross-overfrequency [where <G(jw) = - 180]. You can use MATLAB command "margin" to obtain there quantities. iii) Calculate gain margin (in dB) and phase margin (in degrees) ·State whether the closed-loop is stable for K = 1 and briefly justify your answer based on the margin . (Gain marginPhase margin) iv. what happens to the gain margin and Phase margin when you increase the value of K?you You can use for loop in MATLAB to check that.Helpful matlab commands : if, bode, margin, rlocus NO COPIED SOLUTIONSarrow_forwardAuto Controls Hand sketch the root Focus of the following transfer function How many asymptotes are there ?what are the angles of the asymptotes?Does the system remain stable for all values of K NO COPIED SOLUTIONSarrow_forward
- Please draw the section view of the following problemsarrow_forward7) Please draw the front, top and side view for the following object. Please cross this line outarrow_forwardA 10-kg box is pulled along P,Na rough surface by a force P, as shown in thefigure. The pulling force linearly increaseswith time, while the particle is motionless att = 0s untilit reaches a maximum force of100 Nattimet = 4s. If the ground has staticand kinetic friction coefficients of u, = 0.6 andHU, = 0.4 respectively, determine the velocityof the A 1 0 - kg box is pulled along P , N a rough surface by a force P , as shown in the figure. The pulling force linearly increases with time, while the particle is motionless at t = 0 s untilit reaches a maximum force of 1 0 0 Nattimet = 4 s . If the ground has static and kinetic friction coefficients of u , = 0 . 6 and HU , = 0 . 4 respectively, determine the velocity of the particle att = 4 s .arrow_forward
- Elements Of ElectromagneticsMechanical EngineeringISBN:9780190698614Author:Sadiku, Matthew N. O.Publisher:Oxford University PressMechanics of Materials (10th Edition)Mechanical EngineeringISBN:9780134319650Author:Russell C. HibbelerPublisher:PEARSONThermodynamics: An Engineering ApproachMechanical EngineeringISBN:9781259822674Author:Yunus A. Cengel Dr., Michael A. BolesPublisher:McGraw-Hill Education
- Control Systems EngineeringMechanical EngineeringISBN:9781118170519Author:Norman S. NisePublisher:WILEYMechanics of Materials (MindTap Course List)Mechanical EngineeringISBN:9781337093347Author:Barry J. Goodno, James M. GerePublisher:Cengage LearningEngineering Mechanics: StaticsMechanical EngineeringISBN:9781118807330Author:James L. Meriam, L. G. Kraige, J. N. BoltonPublisher:WILEY





