Tham khảo Nguyên_lý_Bernoulli

  1. Clancy, L.J., Aerodynamics, Chapter 3.
  2. 1 2 Batchelor, G.K. (1967), Section 3.5, pp. 156–64.
  3. “Hydrodynamica”. Britannica Online Encyclopedia. Truy cập ngày 30 tháng 10 năm 2008. 
  4. Streeter, V.L., Fluid Mechanics, Example 3.5, McGraw–Hill Inc. (1966), New York.
  5. "If the particle is in a region of varying pressure (a non-vanishing pressure gradient in the x-direction) and if the particle has a finite size l, then the front of the particle will be ‘seeing’ a different pressure from the rear. More precisely, if the pressure drops in the x-direction (dp/dx < 0) the pressure at the rear is higher than at the front and the particle experiences a (positive) net force. According to Newton’s second law, this force causes an acceleration and the particle’s velocity increases as it moves along the streamline... Bernoulli’s equation describes this mathematically (see the complete derivation in the appendix)."Babinsky, Holger (tháng 11 năm 2003), “How do wings work?” (PDF), Physics Education 
  6. "Acceleration of air is caused by pressure gradients. Air is accelerated in direction of the velocity if the pressure goes down. Thus the decrease of pressure is the cause of a higher velocity." Weltner, Klaus; Ingelman-Sundberg, Martin, Misinterpretations of Bernoulli's Law 
  7. “ 3  Airfoils and Airflow”
  8. Resnick, R. and Halliday, D. (1960), section 18-4, Physics, John Wiley & Sons, Inc.
  9. 1 2 Batchelor, G.K. (1967), §5.1, p. 265.
  10. Mulley, Raymond (2004). Flow of Industrial Fluids: Theory and Equations. CRC Press. ISBN 0-8493-2767-9. , 410 pages. See pp. 43–44.
  11. Chanson, Hubert (2004). Hydraulics of Open Channel Flow: An Introduction. Butterworth-Heinemann. ISBN 0-7506-5978-5. , 650 pages. See p. 22.
  12. Oertel, Herbert; Prandtl, Ludwig; Böhle, M.; Mayes, Katherine (2004). Prandtl's Essentials of Fluid Mechanics. Springer. tr. 70–71. ISBN 0-387-40437-6

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