- #1
mersecske
- 186
- 0
I have a trivial question:
Let assume a world sheet of a time-like spherical shell in Minkowski space-time.
On the 2D-Minkowski diagram (R,T), where R is the radius and T is the time,
the world line is represented by a time-like curve.
Let assume that the shell collapse and its 4-velocity is
u^\alpha=(\dot{T},\dot{R},0,0)
where \dot{T}=\mathrm{d}T/\mathrm{d}\tau >0 and \dot{R}=\mathrm{d}R/\mathrm{d}\tau <0.
Let n^\alpha be an orthogonal vector to the 4-velocity and the surface.
With the metric diag(-1,1,1,1) we get:
n_\alpha=s (-\dot{R},\dot{T},0,0)
n^\alpha=s (\dot{R},\dot{T},0,0)
where s is the sign depending on the orientation.
I expect that n^\alpha is orthogonal to u^\alpha on the Minkowski diagram, and its space-like. For example, I expect that the outward oriented normal vector has positive coordinates. But since \dot{T}>0 and \dot{R}<0 this is not true, and for example for s=+1, n^\alpha is a past directed vector on the diagram!?
Let assume a world sheet of a time-like spherical shell in Minkowski space-time.
On the 2D-Minkowski diagram (R,T), where R is the radius and T is the time,
the world line is represented by a time-like curve.
Let assume that the shell collapse and its 4-velocity is
u^\alpha=(\dot{T},\dot{R},0,0)
where \dot{T}=\mathrm{d}T/\mathrm{d}\tau >0 and \dot{R}=\mathrm{d}R/\mathrm{d}\tau <0.
Let n^\alpha be an orthogonal vector to the 4-velocity and the surface.
With the metric diag(-1,1,1,1) we get:
n_\alpha=s (-\dot{R},\dot{T},0,0)
n^\alpha=s (\dot{R},\dot{T},0,0)
where s is the sign depending on the orientation.
I expect that n^\alpha is orthogonal to u^\alpha on the Minkowski diagram, and its space-like. For example, I expect that the outward oriented normal vector has positive coordinates. But since \dot{T}>0 and \dot{R}<0 this is not true, and for example for s=+1, n^\alpha is a past directed vector on the diagram!?
