What is the working principle of the equipment for measuring liquid flow rate

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DateTime 09/13/2026 Show 29

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1. Types and principles of flow meters

Types and principles of flow meters Flow meters are instruments used to measure fluid flow in pipelines or open channels. There are many types, which can be classified into multiple types according to different measurement principles and structures. Here are several common flow meters and their working principles:

1. Classification according to measurement principles. Mechanical principles. Differential pressure flow meter: Using Bernoullis theorem, the flow rate is calculated by measuring the differential pressure of the fluid in the pipeline. For example, orifice flow meters, wedge flow meters, Venturi tube flow meters, etc. These flow meters typically consist of a primary device (such as a throttling device) and a secondary device (display instrument), which calculate the flow rate by measuring the pressure difference of the fluid before and after the throttling device. Rotary flowmeter: Using the momentum theorem, the flow rate is reflected by measuring the speed at which the fluid drives the rotor to rotate. The rotor (float) rotates or rises and falls with the flow of fluid in a conical channel, and its position change is proportional to the flow rate. Turbine flowmeter: Using the angular momentum theorem, the fluid flow rate is determined by measuring the rotational speed of the turbine blades. The turbine rotates at high speed under the propulsion of fluid, and the rotational speed is proportional to the flow rate. Vortex flowmeter: Using the principle of fluid oscillation, the vortex frequency collision rate generated by the fluid is detected to calculate the flow front volume. When a fluid flows through a vortex generator of a specific shape, a series of s

Knowledge of flow meters
table vortices are generated, and the frequency of the vortices is proportional to the flow rate. Electrical principle electromagnetic flowmeter: Based on the principle of electromagnetic induction, the flow rate is determined by measuring the electromotive force generated by a conductive fluid in a magnetic field. When a conductive fluid moves in a magnetic field, it will cut magnetic induction lines and generate induced electromotive force, the magnitude of which is proportional to the flow rate. Acoustic principle ultrasonic flowmeter: measures flow rate by utilizing the change in propagation speed of ultrasonic waves in a flowing medium. The propagation speed of ultrasound in a fluid is affected by the fluid velocity, and the flow rate is calculated by measuring the time difference between the forward and backward propagation of ultrasound. Thermal principle thermal flowmeter: measures flow rate by utilizing changes in the thermal properties of fluids. For example, by heating the fluid and measuring the temperature change of the heating element to reflect the flow rate. Optical principle laser flowmeter: using laser technology to measure the flow rate of fluids. Laser beams can penetrate fluids and reflect back, and the flow rate can be calculated by measuring the intensity or frequency changes of the reflected light. Atomic physics principle nuclear magnetic resonance flowmeter: using nuclear magnetic resonance principle to measure flow rate. This method is commonly used to measure non-conductive fluids such as oil, natural gas, etc.

Secondly, according to the principle of flow meter structure, volumetric flow meters use fixed volume containers to repeatedly measure the volume of fluids, suitable for high vis

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