1 / 16

Problem 4.1 Applied Loads & Reactions

Problem 4.1 Applied Loads & Reactions. Loading up that pickup truck!. A 1400-kg pickup truck is loaded with two crates, each having a mass of 350 kg. Determine the reactions at each of the two rear wheels and front wheels. Consider just the pickup truck.

jaguar
Download Presentation

Problem 4.1 Applied Loads & Reactions

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Problem 4.1Applied Loads & Reactions Loading up that pickup truck! Use spacebar or mouse to advance slides.

  2. A 1400-kg pickup truck is loaded with two crates, each having a mass of 350 kg. Determine the reactions at each of the two rear wheels and front wheels.

  3. Consider just the pickup truck.

  4. Its weight is concentrated at its center of gravity. A B 1.8 m 1.2 m 0.75 m

  5. This weight is distributed over the two axles, at RA and RB. A B RA 1.8 m 1.2 m 0.75 m RB

  6. SUGGESTION: Since the loads are given in kilograms with even numbers, it might be best to calculate with kg and convert to Newtons at the end.

  7. Analyze as though a simple beam.F = 0 = -1400 kg + RA + RBMB = 1400(1.2 m) - RA(3.0 m) RA = 560 kg x 9.81m/sec2and RB = 840 kg x 9.81m/sec2 A B RA 1.8 m 1.2 m 0.75 m RB

  8. The reactions at the wheels are:RA = 5.49 kNRB = 8.24 kN A B RA 1.8 m 1.2 m 0.75 m RB

  9. Now let’s add some crates to the bed of the truck and determine the reactions at the wheels. A B RA 1.8 m 1.2 m 0.75 m RB

  10. Each crate has a mass of 350 kg and is positioned as shown. 1.7 m 2.8 m C D A B RA 1.8 m 1.2 m 0.75 m RB

  11. Repeat the same calculations with the added loads as shown. 1.7 m 2.8 m C D A B RA 1.8 m 1.2 m 0.75 m RB

  12. F= 0 = -350 -350 -1400 + RA + RB 1.7 m 2.8 m C D 350 kg 350 kg 1400 kg A B RA 1.8 m 1.2 m 0.75 m RB

  13. MB = 1400(1.2 m) - RA(3.0 m) + 350(2.05 m) + 350(3.75 m) 1.7 m 2.8 m 2.05 m C D 350 kg 350 kg 1400 kg A B RA 1.8 m 1.2 m 0.75 m RB

  14. MB = 1400(1.2 m) - RA(3.0 m) + 350(2.05 m) + 350(3.75 m) 1,6800 + 717.5 +1,312.5 = RA(3.0 m) 3,7100 kg-m = RA(3.0 m)3,7100 kg-m = RA (3.0 m) RA = 1,236.67 kg x 9.81 m/sec2 RA = 12.13 kN

  15. F= 0 = -350 -350 -1400 + RA + RBRB = 350 + 350 + 1400 - RA RB = 2100 kg - 1236.67 kg RB = 863.33 kg x 9.81 m/sec2 RB = 8.47 kN 350 kg 350 kg 1400 kg A B RA = 12.13 kN RB = 8.47 kN

  16. Final results are shown.Each rear wheel = 6.07 kNEach front wheel = 4.24 kN 350 kg 350 kg 1400 kg A B RA = 12.13 kN RB = 8.47 kN

More Related