로그인

Bernoulli's equation incorporates how fluid pressure changes across a static, incompressible fluid by equating the kinetic energy contribution to zero. It is also helpful in analyzing horizontal flows in which the gravitational energy density is constant throughout. The latter equation is so useful that it is called Bernoulli's principle. According to Bernoulli's principle, the fluid pressure drops if the speed increases and vice versa.

Bernoulli's principle has several applications. It is used to implement a phenomenon called entrainment, wherein one fluid is used to change the pressure of a region accessible to another fluid. This pressure difference then affects the motion of the second fluid. Bernoulli's principle is also helpful in measuring the unknown speed of a fluid.

Consider a manometer, which is a tube with two openings. One opening directly opposes the fluid flow, causing it to come to rest abruptly in front of it. The other is along the fluid flow. The tube contains a liquid of known density. Since the speed of the incoming fluid is different across its ends, the pressure is also different. By applying Bernoulli's principle, it can be shown that the pressure difference is proportional to the square of the speed of the incoming fluid. This pressure difference, in turn, causes the liquid inside the manometer to have different heights on the two ends. Since the height difference is proportional to the pressure difference across the two ends, it is proportional to the square of the incoming fluid's speed. Thus, by measuring the height difference of the liquid inside the manometer, the speed of the incoming fluid is determined.

This text is adapted from Openstax, University Physics Volume 1, Section 14.6: Bernoulli's Equation.

Tags
Bernoulli s PrincipleFluid PressureKinetic EnergyStatic Incompressible FluidHorizontal FlowsGravitational Energy DensityEntrainmentPressure DifferenceFluid MotionManometerLiquid DensitySpeed MeasurementHeight DifferencePressure Difference Equation

장에서 13:

article

Now Playing

13.19 : Bernoulli's Principle

Fluid Mechanics

8.5K Views

article

13.1 : 유체의 특성

Fluid Mechanics

3.4K Views

article

13.2 : 밀도

Fluid Mechanics

11.5K Views

article

13.3 : 유체의 압력

Fluid Mechanics

11.9K Views

article

13.4 : 대기압의 변화

Fluid Mechanics

1.8K Views

article

13.5 : 파스칼의 법칙

Fluid Mechanics

7.7K Views

article

13.6 : 파스칼의 법칙의 적용

Fluid Mechanics

7.6K Views

article

13.7 : 압력 게이지

Fluid Mechanics

2.7K Views

article

13.8 : 부 력

Fluid Mechanics

5.8K Views

article

13.9 : 아르키메데스의 원리

Fluid Mechanics

7.4K Views

article

13.10 : 밀도와 아르키메데스의 원리

Fluid Mechanics

6.4K Views

article

13.11 : 가속 유체

Fluid Mechanics

945 Views

article

13.12 : 표면 장력 및 표면 에너지

Fluid Mechanics

1.2K Views

article

13.13 : 방울과 기포 내부의 과도한 압력

Fluid Mechanics

1.5K Views

article

13.14 : 접촉각

Fluid Mechanics

11.3K Views

See More

JoVE Logo

개인 정보 보호

이용 약관

정책

연구

교육

JoVE 소개

Copyright © 2025 MyJoVE Corporation. 판권 소유