Truss Bridge Builder & Load Tester
Build a truss bridge from a template or from scratch, drive a truck over it and watch real tension, compression, stress, buckling and collapse from a stiffness-method solver.
About the Truss Bridge Builder & Load Tester
Free truss bridge builder & load tester. Build a truss bridge from a template or from scratch, drive a truck over it and watch real tension, compression, stress, buckling and collapse from a stiffness-method solver. Drag, change the sliders and see the result live. No sign-up, works on phone and computer. Built for engineering, the truss bridge builder & load tester runs instantly in your browser: change a setting or drag an object and the result updates at once, so you learn by trying things out rather than only reading about them.
Build a truss bridge from a template or from scratch, drive a truck over it and watch real tension, compression, stress, buckling and collapse from a stiffness-method solver. Use it to explore engineering ideas at your own pace, then check what you found against the key ideas further down this page.
How to use the Truss Bridge Builder & Load Tester
- Use the controls to change Guide me: tell me what to do next, Truck weight, Span, Height, Panels, and more. The simulation reacts instantly.
- Pick an option such as Simple, Engineering, Instructor, Tension / compression to switch modes or load an example.
- Press "Test to failure", "Drive truck across", "Run analysis", "Reset test" to start, reset or change what is happening.
- Where you see a glowing handle, object, weight or atom, drag it with your mouse or finger. Everything responds in real time.
- Watch the readouts and graphs update as you experiment, and compare what you see with the key ideas below.
Things to try
- Drag the truck along the deck and watch which members swap between tension and compression.
- Press Test to failure, see which member buckles first, then thicken only that member.
- Compare Warren, Pratt and Howe with identical members and read the maximum truck load and mass.
- Cut one member with the Cut tool and see whether the truss turns into a mechanism.
- Try the Featherweight challenge by hand, then compare with Auto-size.
Key ideas you can learn
- Members in tension are pulled and members in compression are pushed: a truss carries load only through axial force in its members.
- A stable truss is built from triangles. Remove or cut a member and it can become a mechanism that collapses.
- Stress is force divided by cross-section area, and the factor of safety compares it with the material's yield strength.
- Long slender members in compression fail by Euler buckling long before the steel yields, so length and section shape matter as much as strength.
- The worst place for a moving load is not always the middle: the truck sweep and influence lines show where each member is most stressed.
- Every member adds weight and cost, so good design balances strength, stiffness, mass and cost.
Where this is used in the real world
Highway and railway bridges, roof trusses, cranes, transmission towers and aircraft structures are analysed with the same stiffness method, member checks for yield and buckling, and moving-load studies used here.
Who is this simulation for?
Engineering and technology students, makers, robotics clubs and teachers of design and technology. It gives a hands-on feel for how machines behave before you build a real one.
For teachers: project it on the board, let students predict what will happen, then run it together. For students: change one thing at a time and write down what changes.
Frequently asked questions
Why are trusses made of triangles?
A triangle cannot change shape without changing the length of a side, so it is rigid. A four-sided frame can fold flat like a chair, which is why the solver reports a mechanism when triangles are missing.
How does the simulator calculate the forces?
It uses the direct stiffness method used by structural analysis software. Each member gets an axial stiffness EA/L, these are assembled into K u = F, the supports are applied, and the solver finds the joint displacements, then the member forces, stresses and support reactions. It was checked against a NumPy solution and agrees to rounding error.
What is the difference between yielding and buckling?
Yielding is the material giving way under stress, which depends on cross-section area. Buckling is a slender member in compression bowing sideways at the Euler load, which depends on stiffness EI and length. A long thin compression member buckles first.
Which is stronger, a Warren, Pratt or Howe truss?
It depends on span, height and loading, so use the Compare designs tab to test them under the same load. A Pratt truss puts its long diagonals in tension and a Howe in compression, so with identical members the Pratt is usually the stronger.
Can I use this for an engineering class?
Yes. There are Beginner, Engineering and Instructor levels, design challenges with mass, safety factor and deflection limits, a show-your-working calculation view, influence lines, and a printable report. It is an educational simulation, not a certification for a real bridge.
Is the Truss Bridge Builder & Load Tester free to use?
Yes. It is completely free, with no signup, no download and no ads inside the simulation. It runs in your web browser.
Does the Truss Bridge Builder & Load Tester work on a phone or tablet?
Yes. It uses touch as well as the mouse, so you can drag objects with your finger. A larger screen makes the controls easier to see.