Tools and Sensors Deployed by Unmanned Underwater Vehicles
US-2016264223-A1 · Sep 15, 2016 · US
US10989529B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10989529-B2 |
| Application number | US-201715685807-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 24, 2017 |
| Priority date | Sep 15, 2016 |
| Publication date | Apr 27, 2021 |
| Grant date | Apr 27, 2021 |
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This application discloses magnetically coupled integrated probes and probe systems, attachable to the robotic arms of a remotely operated vehicle to perform both cathodic protection (CP) voltage measurements and ultrasonic testing (UT) thickness measurements at an underwater surface. The integrated probe system can include a spring for coupling to an ROV end effector. An ultrasonic probe is disposed within and extends from the sleeve housing. A magnetic carrier, flux concentrator, and gimbal surround a portion of the ultrasonic probe, and one or more electrically conductive legs extend from the front surface of the gimbal to function as a CP probe. The legs are arranged about the ultrasonic probe, which has a flexible membrane exposed at the front surface of the gimbal, such that during inspection, at least one leg contacts the surface and the ultrasonic probe is sufficiently proximate to provide substantially simultaneous CP and UT measurements.
Opening claim text (preview).
What is claimed: 1. An integrated probe system for performing cathodic protection (CP) voltage readings and ultrasonic testing (UT) thickness measurements of an underwater surface at the same time, comprising: a ring-shaped CP probe having an electrically conductive ring disposed at a periphery of a front surface of the ring-shaped CP probe, the electrically conductive ring being configured to perform the CP voltage readings of the underwater surface while contacting the underwater surface; one or more magnets embedded within the ring-shaped CP probe and generating a magnetic field; a flux concentrator embedded within the ring-shaped CP probe, configured to direct the magnetic field towards the front surface of the ring-shaped CP probe for magnetic attachment of the front surface of the ring-shaped CP probe to the underwater surface during the CP voltage readings and the UT thickness measurements of the underwater surface at the same time, supported by the one or more magnets, and adjacent to the electrically conductive ring; a flexible membrane seated in a center of the front surface of the ring-shaped CP probe, the electrically conductive ring being arranged about the flexible membrane; a sleeve housing; an ultrasonic probe for performing the UT thickness measurements of the underwater surface at the same time as the electrically conductive ring contacts the underwater surface and performs the CP voltage readings, the ultrasonic probe having a transducer crystal, the ultrasonic probe being partially disposed within the sleeve housing and extending through the center of the ring-shaped CP probe to be adjacent to the flexible membrane, the flexible membrane being arranged about the transducer crystal; and a spring coupled to a free end of the sleeve housing and configured to provide two degrees of freedom to the ring-shaped CP probe in response to a force imparted when the electrically conductive ring contacts the underwater surface. 2. The integrated probe system according to claim 1 , wherein the electrically conductive ring comprises a serrated rim. 3. The integrated probe system according to claim 1 , wherein the flux concentrator is a ring-shaped layer of magnetically conductive material. 4. The integrated probe system according to claim 1 , wherein the flux concentrator comprises one or more magnetically conductive rods embedded within the ring-shaped CP probe. 5. The integrated probe system according to claim 1 , wherein the flux concentrator is made of iron. 6. The integrated probe system according to claim 1 , wherein the sleeve housing is a hollow, cylindrically-shaped tube. 7. The integrated probe system according to claim 1 , further comprising a couplant disposed within a gap between the flexible membrane and the transducer crystal.
Controlling or regulating desired parameters · CPC title
Transducer mounting in underwater equipment, e.g. sonobuoys · CPC title
Immersed structures, e.g. submarine structures · CPC title
Monitoring arrangements therefor · CPC title
Underwater vessels adapted for special purposes, e.g. unmanned underwater vessels; Equipment specially adapted therefor, e.g. docking stations (self-propelled or direction controlled diving chambers with mechanical link to a base B63C11/42) · CPC title
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