Create 1 Program,  in C++, to Solve Engineering Problems.
Your programs must include the following elements:
1. Welcome Message
2. Problem Description Message
(background, required inputs & expected results)
3. Set/Capture Input Data
4. Perform the Main Process
(corresponds to the Engineering Problem)
5. Display Results, feedback, and Comments
(Based on results)
6. Goodbye Message
Rules:
- You can select your Engineering Problems from the Engineering Problems Source document
- You must select two different Problems from the source document.
- You can select only available problems that were not already selected by another group,
selection is on first-come, first-serve basis.
- Problems Selection (booking) will be done in the Telegram Group.
- After 7 days, groups that did not select problems, will be assigned problems at random
Bonuses:
- Include Validation (whenever User input is involved)
- Solve Multiple Engineering Problems in one program (user can select from main menu)
- Add export data option to write results/findings into an external document
- Include Plotting/Visualization in your program (using graphics libraries)
- Add main menu options, i.e. select program, export data, plot data, restart, quit, etc.
- Use advanced/new concepts not taught in class
- Any other feature (code readability, good UI, Processing effects, etc.) 

Transcribed Image Text:

Cartesian Vector Notation : 1.2i – 0.6j – 3k FAB = FAB /1.2² + (-0.6)² + (-3)² = 0.3578Fgi – 0.2683F,j – 0.8944FAK 0.6і - 0.9ј — 3k FAC = FAC = 0.1881F,ci+ 0.2822Fxcj – 0.9407F,k V0.6? + 0.9² + (-3)² F= 17.5 kN 0.3 m -1.2i + 0.3j – 3k FAD = FAD =-0.3698Faņi + 0.09245F,pj – 0.9245F,,K |(-1.2)² + 0.3² + (-3)² F= {17.5k} kN 1.2 m 0.9 m Equations of Equilibrium : 0.9 m EF = 0; FAg + FAc + FAn + F = 0 Fae (0.3578FA5 + 0.1881FAC – 0.3698FAD)i 3 m + (-0.2683FAB + 0.2822F,C + 0.09245FAD)j ac+ +(-0.8944FAg – 0.9407F,c – 0.9245FAD + 17.5)k = 0 Equating the i, j and k components, we have 0.3578FAn + 0.1881F,c – 0.3698F,p = 0 -0.2683F + 0.2822F,c + 0.09245F,Ap = 0 -0.8944FA – 0.9407F,c – 0.9245F,p + 17.5 = 0 [1] [2] [3] Solving Eqs. [1], [2] and [3] yields F, = 6.848 kN Fxc = 3.721 kN FAD = 8.518 kN Ans Ans AC Ans

Transcribed Image Text:

3-50. Determine the force in each cable needed to support the 17.5-kN platform. Set d = 0.6 m. 17.5 kN 3 m * 0.6 m 1.2 m 0.9 m 0.9 m 1.2 m Cartesian Vector Notation : 1.2i – 0.6j – 3k FAn = FAB = 0.3578F,µi – 0.2683F,nj – 0.8944F,„k 1.2² + (-0,6)² + (-3)² 0.6i – 0.9j – 3k FAC = FAc 0.6² = 0.1881F,ci+ 0.2822F,cj – 0.9407F,k %3D F= 17.5 kN + 0.9² + (-3)² 0.3 m -1.2i + 0.3j – 3k FAD = FAD = -0.3698Fapi + 0.09245FApj – 0.9245F,Apk %3D (-1,2)² + 0.3² + (-3)² F = {17.5k) kN 1.2 m 3 m 0.9 m Equations of Equilibrium : 0.9 m EF = 0; FAn + FẠc+ FAp + F = 0 Fae (0.3578FAH + 0.1881F,¢ – 0.3698Fµp)i 3 m + (-0.2683F,g + 0.2822Fxc + 0.09245FAD)j + (-0.8944FAB – 0.9407F¾C – 0.9245FAD + 17.5)k = 0 %3D