Technical Paper

Addressing Low Pressure Transients

Sep 03, 2025
1 minute read
Scott Lang, P.E.
Scott Lang, P.E.
Scott Lang is the Development Manager for the Flow Simulation team in the Datacor Engineering Software Group, where he directs the implementation of algorithms and architecture for the simulation of thermal fluid systems. Previously lead developer and solution engine architect for xStream, Datacor's tool for analyzing transient flow in real-gas piping networks, he supports the fluids industry by publishing technical papers at a variety of conferences and serving on committees for the Hydraulic Institute and ASME PVP — including as Vice-Chair of HI's Viscosity Corrections committee and Technical Program Representative for the PVP Fluid-Structure Interaction committee. Scott is a licensed Professional Engineer and holds a Bachelor of Science in Engineering with Mechanical and Electrical specialties from the Colorado School of Mines.

Amy Marroquin, BLACOH Surge Control; Scott Lang, Applied Flow Technology, Presented at the ASME 2020 Pressure Vessels and Piping Conference (Virtual)

Low transient pressures in piping systems are different in many ways to high transient pressures. While high pressures can obviously burst pipes or damage components, low pressures can collapse pipes, pull in environmental contaminants, bring components out of solution, or induce transient cavitation, a particular concern for hydrocarbon liquids. This paper will use examples of computer modeling to reveal how common system events such as pump trips or valve closures induce low-pressure transient waves that have potential to be just as destructive as more intuitive high-pressure waves.

Fluid transient studies and literature often focus on high pressures, or do not clearly demonstrate how liquids with low vapor pressures (such as many hydrocarbons) can be affected. Even discerning a pipe’s negative pressure rating through codes and standards can be a challenge. It is shown that low-pressure transients are a potential issue in any liquid system. It is further demonstrated that “Rule of Thumb” or typical simplified calculations are not sufficient to capture these effects, and cannot be used to properly locate and size equipment.

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