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Industrial chilled water systems are often treated as mature, predictable infrastructure—until they are not. In practice, large chilled water networks behave less like steady hydraulic circuits and more like dynamic, interacting systems where pumps, control valves, sensors, and thermal loads continuously negotiate equilibrium. When this balance is disrupted, the result is rarely a single-point failure; it is typically instability—oscillations, hunting, flow redistribution, and in severe cases, system-wide collapse of hydraulic control. This book was written to address a gap that exists in both design practice and operational experience. While most HVAC literature explains how to size pumps, select pipes, and balance systems under steady-state assumptions, far fewer resources explain what happens when those assumptions break down at scale. Industrial systems—data centers, semiconductor plants, hospitals, district cooling networks, and large manufacturing facilities—operate in conditions where load variability, control interactions, and long distribution loops introduce complex hydraulic behavior that cannot be fully captured by static calculations alone. The focus here is deliberately practical and failure-oriented. Pump hunting, hydraulic imbalance, and large loop oscillations are not treated as isolated faults, but as interconnected symptoms of system design, control logic, commissioning quality, and operational strategy. The objective is to help engineers move from reactive troubleshooting to predictive understanding—recognizing instability before it propagates into operational disruption. Rather than relying solely on idealized theory, this book integrates field behavior, commissioning observations, and system-level thinking. It emphasizes how real systems behave under part load, transient conditions, and control interaction—where most instability actually originates. Ultimately, this is not just a book about chilled water hydraulics. It is a book about system behavior.
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