For front radius arms, assume we are looking at any (left/right, or normal/hinged) arm from the right side of the vehicle - then vehicle forward direction is left to right.
During forward acceleration front radius arms will be in tension (in order to pull the vehicle from their chassis mounts). To resist anti-clockwise rotation of the axle housing (reaction to torque at the tyres) normal radius arms will pull down on the chassis mounts. If one arm is of the hinged type then the normal radius arm alone must supply practically all of the torque resistance (greater pull down on the chassis mount that side) - hinged radius arms can resist a little rotation by virtue of the resistance to rotation provided by the flexible bush, but this can be ignored for practical purposes.
The hinge joint of hinged radius arms is usually (when made from a stock radius arm) a considerable distance behind the axle housing. Given the direction of the tension force acts along a line from the chassis mount to the hinge, the tension tends to resist the torque on the axle housing when the axle is articulated so the side with the hinged arm has drooped down while that with the normal radius arm is near the bump stop. When the axle articulates in the other direction, the tension in the hinged arm can (depending on suspension geometry) add to the torque acting on the axle housing, and the normal arm then has to provide more resistance (greater pull down on the chassis mount that side).
During axle articulation, if either type of arm is inclined upward from chassis to axle mount (or hinge joint), there will be a component of this tension acting upward at the chassis mount and downward at the axle mount. This will be opposite when the arm is inclined downward - this component will then subtract or add to the downward force on the chassis mount by the normal radius arm.


 
					
					 Originally Posted by Bush65
 Originally Posted by Bush65
					
 
				
				
				
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