40KHz Ultrasonic Transducer Downhole Drilling Transducer for Downhole Sensors
Product Description
40KHz Ultrasonic Transducer Downhole Drilling Transducer for Downhole Sensors
Technical parameters:
Items | Technical Parameters | Image | |
Name | 40KHz ultrasonic transducer |
| |
Model | PHW-40-500A | ||
Frequency | 40KHz±10% | ||
Minimum Parallel lmpedance | 150Ω±20% | ||
39000pF±20% @1KHz | |||
Sensitivity | no-load Peak Voltage:500Vpp,Distance 0.7m, Echo Amplitude :15V | ||
-40~+80℃ | |||
≤10Kilos or 1MPa | |||
(Beamwidth) Half-power Beam Width@-3dB:15.6°±10%, Sharp Angle:37°±10% | |||
Housing Material | 304+PI | ||
Usage | Downhole drilling transducer | ||
Checking product structure diagram | |||
Protection Level | IP68 | ||
Weight | 7000g±5%(Length:20m) | ||
wiring instructions | (third line) : red: transducer +, green: temperature sensor +, black: public -; | ||
Admittance Curve | Product Structure Diagram | ||
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Block diagram of ultrasonic 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
Downhole Sensors Application:
A downhole ultrasonic transducer to acquire a high-resolution borehole surface image in the harsh environmental operating conditions experienced while drilling. The ultrasonic transducer was designed and developed to be incorporated into a downhole drilling tool to acquire a pulse-echo signal from the borehole wall, known in the industry as imaging while drilling. The design of the transducer incorporated acoustic modeling to achieve the desired sensitivity and bandwidth using a composite piezoelectric element, two impedance matching layers, and a high impedance backing. Mechanical design techniques, including a manufacturing procedure that produces reliable bonds between layers, a ruggedized housing, and impact-resistant transducer packaging, were chosen to ensure the transducer's reliability in the downhole environment.