An entrance is only as reliable as its worst day. Power goes out, and suddenly the bollards that control your site have to behave predictably: either they keep running, or someone has to intervene. How a bollard handles a blackout is one of the most overlooked specs in a purchase, and it divides dri...
Bollard marketing loves a big number. A system that stops a 4,500 lb vehicle at 20 mph sounds impressive, and for the right site it is exactly what you need. But the rating that protects a government perimeter is not the rating that belongs in front of a neighborhood clinic or a riverside promenade....
When you start comparing automatic bollards, one spec gets buried under impact ratings and finish options: the drive system. Two technologies dominate the market. Pneumatic bollards run on compressed air delivered through a power unit with a compressor, air lines, and valves. Electromechanical bolla...
Not every entrance needs the same answer. A government forecourt, an airport staff gate, a commercial loading bay, and a riverside promenade each face different threats and different constraints. Here is how bollards map to those sites, and why the same three features keep showing up as the safe def...
The biggest hidden cost of an automatic bollard is not the unit. It is the hole. Most heavy-duty bollards need a foundation 800 to 1130mm deep, a gravel and sand seepage layer, and a dedicated drainage pipe, or water pools around the mechanism and destroys it. UPARK's drainage-free design removes th...
When teams specify bollards for a site, safety usually means impact rating and intercept height. There is a quieter risk most specifiers overlook: the drive voltage. Traditional heavy-duty automatic bollards run on 380V three-phase power. UPARK uses a 36V low-voltage electromechanical drive. The dif...