Guest
I have just started studying the design of a fabric membrane roof with membrane and cable prestressing. It's not clear to me that:
1) From an architectural drawing of the final shape of a membrane structure, how to get an undeformed (stress-free or cutting) shape of the membrane? I'm understanding that
the specified final shape is under the action of membrane selfweight, membrane prestress, and cable prestress.
From the calculation of a fabricator, it seems to me that they starts from the projected shape of the structure. Then, using their inhouse geometry-analysis software, a geometry is obtained under uniform
tension that matches a set of specified geometric constraints. All the subsequent stress analyses are on the obtained geometry. Is this the usual practice? If it is, then
2) What is the theory behind the form-finding to get the uniform tension geometry that matches the specified constraints?
3) Varying the constraints will produce different stress-free shapes, which then under selfweight and prestressing will give different final shapes. How to obtain the constraints that give the stress-free shape which deforms to the required configuration under selfweight and prestressing?
1) From an architectural drawing of the final shape of a membrane structure, how to get an undeformed (stress-free or cutting) shape of the membrane? I'm understanding that
the specified final shape is under the action of membrane selfweight, membrane prestress, and cable prestress.
From the calculation of a fabricator, it seems to me that they starts from the projected shape of the structure. Then, using their inhouse geometry-analysis software, a geometry is obtained under uniform
tension that matches a set of specified geometric constraints. All the subsequent stress analyses are on the obtained geometry. Is this the usual practice? If it is, then
2) What is the theory behind the form-finding to get the uniform tension geometry that matches the specified constraints?
3) Varying the constraints will produce different stress-free shapes, which then under selfweight and prestressing will give different final shapes. How to obtain the constraints that give the stress-free shape which deforms to the required configuration under selfweight and prestressing?