HELIOSPANSolar mounting / demo

DEMO — fictional range. Local brief only, NOT SENT. No personal data is collected or transmitted.

LOAD

Wind pushes up as well as down.

The load on an array is not the weight of the modules. Wind acts on the underside and lifts, and it is the uplift that removes arrays from roofs.

Dead load
The weight of the modules, rails and fixings · the easiest case and rarely the one that governs
Wind uplift
Pressure on the underside, highest at edges and corners · usually the governing case
Wind downward
Pressure on the face, which the roof structure must carry
Snow
Ground load adjusted for roof pitch and exposure, held for months in some regions
Thermal
Expansion and contraction over the day, which moves rails and loosens fixings
Seismic
Horizontal, and relevant in some regions more than wind

Illustrative load record

Illustrative values — fictional example
CaseComes fromWhat it decides
Wind upliftRegional speed, height, exposure, roof zoneFixing centres and clamp count
SnowGround load, pitch, exposureRail span and section
ThermalDaily range and rail lengthWhether the rail is fixed or floating
DeadComponent weightsThe structure beneath, rarely the array itself
Close view of a mid-clamp seated on an extruded rail, showing the wings and the bolt.
Original 3D render · fictional appearance concept
Why the edge zone governs.

Because wind accelerates over a roof edge and separates, producing pressures several times the field value. An array designed on the field pressure and installed to the edge is under-designed exactly where it matters.

The question worth asking instead.

Which load case governs, and what the fixing centres are in the edge zone. A supplier who can answer that has calculated the array rather than quoted a rail.