Loop the Loop a “Fifth Gear” stunt special

1. Loop the Loopa “Fifth Gear” stunt special Hugh Hunt Cambridge University Engineering Department

2. At C (top of the loop) centrifugal force exactly balances weight, so mg= mV22 / R or V2 = gR From B to C, conserve KE+PE ½mV12= ½mV22 + 2mgR so V12 = V22 + 4gR . or V1 = 5gR . Simple physics From A to B, conserve KE+PE mgh= ½mV12 so h = V12/2g = 5R/2 G-forces are V2/R : At B : 5g + g = 6g At C : g – g = 0

3. bad assumptions: • particle • no friction • rigid suspension • perfect tyres • short wheelbase • G-force not important • ignore transients • engine not powering • planar – no steering • rigid structure Fifth-gear Stunt Special: R = 6m  V1 = 17.2 ms-1 (39 mph) V2 = 7.7 ms-1 (17 mph) and G-force at B = 6g

4. Optimum shape for the loop (not a circle!) It all depends on the criteria. For these rollercoasters, height is not an issue. Fifth-gear could have constructed such a shape, but it would somehow have been less impressive… CONSTRAINT: entry and exit horizontal and coincident

6. The line drawn in here is correct – no steering would be required The line actually painted has a kink in it – steering is needed ! Steering

7. Transient What happens to the suspension and tyres when the weight of the car goes from 1000kg to 6000kg ? Here is a notional graph of the motion of a simple vehicle subject suddenly to a change in g to 6g . The tyre and suspension behave non-linearly. 1/6 ? The suspension bottoms out, the vehicle grinds out, the tyre blows out – all pretty undesirable. solutions: stiffen suspension increase tyre pressure from 30psi to …. ???

8. Engine power and friction Toyota Aygo: 67bhp, say 40kW PE increase = 110 kJ If time to complete loop = 4.5 seconds then engine provides 90kJ on the way up Friction:  = 1 , mean “G-force” = 3g, energy lost to friction = 1000 kJ Conclude: Most important to avoid “grinding out” – friction (even as low as  = 0.1) may cause the stunt to fail.