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Guided learning journeys that build knowledge step by step.
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7819 Paths · page 682 / 782
This learning path guides high school students from fundamental fluid mechanics concepts to the analysis and application of pumps and turbines. It covers momentum conservation, the Euler turbomachine equation, and performance characteristics, enabling learners to understand how these machines convert energy.
This learning path systematically guides high school students through the physics of pressure-driven flow in pipes. Starting with fluid properties and pressure concepts, it builds up to the Hagen-Poiseuille equation, the Darcy-Weisbach equation, the Moody chart, and minor losses, enabling learners to analyze real-world pipe flow problems.
This learning path guides high school students through the principles of analyzing open-channel flows, starting from fundamental fluid mechanics and conservation laws. It covers specific energy, critical flow, hydraulic jumps, and weirs, building a systematic understanding of free-surface flow behavior.
A structured path for high school students to learn dimensional analysis and apply it to fluid mechanics. Starting from fundamental fluid properties, the path covers the Buckingham Pi theorem, dimensionless numbers, and scaling laws, enabling learners to non-dimensionalize fluid equations and design scale models.
This learning path guides high school students from the fundamentals of fluid kinematics to the analysis of irrotational flow using potential theory. Learners will master velocity potential and stream function, explore elementary flows, and apply superposition to model realistic flow patterns.
This learning path systematically introduces the concept of boundary layers in fluid flow, starting from the fundamental equations of fluid mechanics and progressing through the derivation of the boundary layer equations, the Blasius solution for laminar boundary layers, and the phenomenon of flow separation. It is designed for high school students with a background in physics and calculus, providing a structured approach to understanding near-wall flow.
This learning path guides high school students through the physics of laminar and turbulent flow. It covers viscosity, Reynolds number, flow transition, and turbulent characteristics, building a systematic understanding of flow regimes.
This learning path guides high-school students from the fundamental principles of fluid statics and calculus through to the derivation and understanding of the Navier-Stokes equations. It covers the necessary mathematical tools, the concept of a continuum, conservation laws, and the physical meaning of each term, including simplifications and boundary conditions.
This learning path introduces the concept of viscosity and its role in fluid mechanics, starting from fluid statics and building up to dynamic flows. Learners will explore Newtonian fluids, shear stress, and practical methods of viscosity measurement, culminating in an understanding of how viscosity affects flow behavior.
This learning path guides high school students from the fundamentals of momentum to its application in fluid mechanics, covering the linear momentum equation, forces on surfaces, jet forces, and thrust. It integrates Bernoulli's equation where relevant, ensuring a systematic understanding of fluid momentum.