HIGH‑RISE FIRE SAFETY: KNOW YOUR OPTIONS — EVACUATE OR SHELTER IN PLACE ✅ HIGH-RISE FIRE SAFETY: KNOW YOUR OPTIONS EVACUATE OR SHELTER IN PLACE 1. Introduction Fire emergencies in high-rise buildings present unique challenges due to the building height, large number of occupants, vertical movement, smoke migration, limited evacuation routes, and potential difficulties for people requiring assistance. During a fire emergency, there is no single response that is appropriate for every situation . The correct action depends on the location of the fire, the presence of smoke, the availability of safe escape routes, the building's fire protection systems, and instructions provided by trained emergency personnel. The two principal response options are: EVACUATE — when a safe evacuation route is available. SHELTER IN PLACE — when evacuation is unsafe or the designated emergency plan instructs occupants to remain in a protected location. The priority in every situation is to protect lif...
When fluid velocity increases, its pressure tends to decrease (for the ideal-flow conditions under which Bernoulli’s equation applies). P = pressure ρ = density of fluid v = velocity g = acceleration due to gravity h = height above a reference level This is the Bernoulli principle , which is very important in fluid mechanics and HVAC/MEP systems. Bernoulli’s Equation P + 1 2 ρ v 2 + ρ g h = constant P + \frac{1}{2}\rho v^2 + \rho gh = \text{constant} It means that, along a streamline for ideal, steady, incompressible flow: P = Static pressure ρ = Fluid density v = Fluid velocity g = Acceleration due to gravity h = Height above the reference level Simple understanding If the velocity of the fluid increases , its pressure tends to decrease , provided the other conditions remain appropriate. For example, when water flows through a smaller pipe section , its velocity increases. To maintain the energy balance, the static pressure generally decreases. Example: ...