Titanium Alloy 200Khz Ultrasonic Transducer for Ultrasonic Gas Flowmeter

Product Description

Titanium Alloy 200Khz Ultrasonic Transducer for Ultrasonic Gas Flowmeter



Technical parameters:


Items

Technical Parameters

Image

Name

200KHz Ultrasonic transducer

 

 

 

Model

PHA-200-01J   

Frequency

200KHz±5%

Detection Distance

0.101.5m

Minimum

Parallel lmpedance

550Ω±20

Capacitance

530pF±20@1KHz

 

Sensitivity

Driving Voltage800VppDistance:0.3m

Echo Amplitude30mV

Operating Voltage

Peak Voltage1000 Vpp

Operating Temperature

-40+80℃

Pressure

≤8Kilos or 0.8MPa

 

Angle

(Beamwidth) Half-power Beam Width@-3dB:6°±10%

Sharp Angle:15°±10%

Housing Material

stainless steel

 

Usage

Ultrasonic level gauge, monitoring, anti - collision

size

threadM27*1.5

Protection Level

IP68

Weight

195g±5%(Length20cm

Wiring instruction

Integrated interfaceRed+White-Black: shielded wire

  temperature sensor is optional

Admittance Curve

Product Structure Diagram

 

 

 

 

 

 




Block diagram of ultrasonic distance transducer :



Schematic Diagram of Temperature Sensor (model: MF58_502F3470):


Integrated type Cable instruction:   
1.Wiring instruction of transducer: interface (3pin, 2.54mm terminal)
Red: transducer +      
White: transducer -         
Black: shielding



2.Cable Instruction of Temperature Sensor: interface (3pin, 2.0mm terminal)

Red and black are temperature sensor wiring



Split type: standard 10m cable, with each additional 50m of cable, the signal attenuation is 6dB

Three-core wiring instructions:                
                        
    Red: Transducer +
     Blue: temperature sensor +
     Black: Public-


 Four-core wiring instructions:

Red: Transducer +                      
Yellow: Transducer-
Blue, black: temperature sensor



Application for Ultrasonic Gas Flowmeter :


Industrial gas flow meters are widely utilised for liquid and water applications, it has long been accepted that clamp on gas flowmeter technology could not be applied to mass gas flow measurement primarily due to fundamental theoretical measurement limits. the transmitted sound energy is received by traditional ultrasonic transducers. However, advances in clamp on gas flow measurement technology and processing have meant that despite lower acoustic impedance levels and higher attenuation levels in most gases, a clamp on gas flow meter can now measure transit times in gases where signal-to-noise ratios are extremely low. It is now possible to measure natural gas, steam, compressed air, hydrogen, compressed air and many more using clamp on flow meters.


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