IP Library Granted Patent US 11,630,025
Granted Patent B2
US 11,630,025 · App. 17/221,192 · Granted Apr 18, 2023

Robotic inspection device

Inventors: Dwayne E. McDaniel (Miramar, FL); Mackenson Telusma (Miami, FL); Leonel E. Lagos (Miami, FL)
Assignee: THE FLORIDA INTERNATIONAL UNIVERSITY BOARD OF TRUSTEES
G01M5/0025B25J5/007B25J9/0009B25J13/006B60B19/003
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Quick Facts
Patent No.
US 11,630,025
App. No.
17/221,192
Granted
Apr 18, 2023
Kind
B2
Abstract

Robotic devices that can be utilized on pipes of any material and of a variety of pipe diameters are provided. The robotic device utilizes a ducted fan to create the normal forces needed to adhere to any part of a pipe. The chassis of the device can be segmented to allow for application on various diameter pipes.

Claims (57)

1. A robotic inspection device, comprising:

a body chassis;

a plurality of wheels attached to the body chassis and disposed lower than a lower surface of the body chassis, in a first direction perpendicular to the lower surface of the body chassis; and

at least one electronic ducted fan (EDF) disposed on the body chassis and configured to blow air in a second direction opposite to the first direction, thereby providing thrust in the first direction to the robotic inspection device,

the body chassis being curved such that the robotic inspection device is configured to navigate on an external surface of a pipe, and

each wheel of the plurality of wheels being a two-degree-of-freedom (2-DOF) wheel.

2. The robotic inspection device according to claim 1 , the body chassis being curved such that the robotic inspection device is configured to navigate on an external surface of a pipe having a diameter in a range of from 13 inches to 16 inches.

3. The robotic inspection device according to claim 1 , the body chassis being curved such that the robotic inspection device is configured to navigate on an external surface of a pipe having a diameter of at least 32 inches.

4. The robotic inspection device according to claim 1 , the at least one EDF comprising a first EDF disposed in a center area of the body chassis.

5. The robotic inspection device according to claim 4 , at least one EDF further comprising a second EDF, a third EDF, a fourth EDF, and a fifth EDF respectively disposed at four corner areas of the body chassis.

6. The robotic inspection device according to claim 1 , the body chassis being a single, monolithic structure.

7. The robotic inspection device according to claim 1 , further comprising at least one nondestructive examination (NDE) sensor disposed on the body chassis.

8. The robotic inspection device according to claim 1 , further comprising an omnidirectional drive mechanism disposed on each wheel of the plurality of wheels.

9. The robotic inspection device according to claim 1 , further comprising a radio receiver and transmitter configured to remotely communicate with a controller for controlling at least one of a speed of the at least one EDF, an orientation of the plurality of wheels, and a speed of the plurality of wheels.

10. A robotic inspection device, comprising:

a body chassis;

a plurality of wheels attached to the body chassis and disposed lower than a lower surface of the body chassis, in a first direction perpendicular to the lower surface of the body chassis;

at least one electronic ducted fan (EDF) disposed on the body chassis and configured to blow air in a second direction opposite to the first direction, thereby providing thrust in the first direction to the robotic inspection device, and

an omnidirectional drive mechanism disposed on each wheel of the plurality of wheels,

the omnidirectional drive mechanism comprising a planetary gear drive setup, an absolute encoder rod mount, and a design for large force distribution along a bottom motor enclosure unit.

11. A method of inspecting a pipe or wall, the method comprising:

providing a robotic inspection device on the pipe or wall, the robotic inspection device comprising:

a body chassis;

a plurality of wheels attached to the body chassis and disposed lower than a lower surface of the body chassis, in a first direction perpendicular to the lower surface of the body chassis;

at least one electronic ducted fan (EDF) disposed on the body chassis and configured to blow air in a second direction opposite to the first direction, thereby providing thrust in the first direction to the robotic inspection device; and

a receiver for receiving control signals from a controller; and

controlling, using the controller, at least one of a speed of the at least one EDF, an orientation of the plurality of wheels, and a speed of the plurality of wheels such that the robotic inspection device navigates on the pipe or wall,

the body chassis being curved such that the robotic inspection device is configured to navigate on an external surface of the pipe, and

each wheel of the plurality of wheels being a two-degree-of-freedom (2-DOF) wheel.

12. The method according to claim 11 , the at least one EDF comprising:

a first EDF disposed in a center area of the body chassis; and

a second EDF, a third EDF, a fourth EDF, and a fifth EDF respectively disposed at four corner areas of the body chassis.

13. The method according to claim 11 , the robotic inspection device further comprising at least one nondestructive examination (NDE) sensor disposed on the body chassis, and

the method further comprising receiving data from the at least one NDE sensor.

14. The method according to claim 11 , the receiver being a radio receiver that remotely receives control signals from the controller, and

the robotic inspection device further comprising a radio transmitter configured to remotely transmit signals to the controller.

15. A method of inspecting a pipe or wall, the method comprising:

providing a robotic inspection device on the pipe or wall, the robotic inspection device comprising:

a body chassis;

a plurality of wheels attached to the body chassis and disposed lower than a lower surface of the body chassis, in a first direction perpendicular to the lower surface of the body chassis;

at least one electronic ducted fan (EDF) disposed on the body chassis and configured to blow air in a second direction opposite to the first direction, thereby providing thrust in the first direction to the robotic inspection device; and

a receiver for receiving control signals from a controller, and

controlling, using the controller, at least one of a speed of the at least one EDF, an orientation of the plurality of wheels, and a speed of the plurality of wheels such that the robotic inspection device navigates on the pipe or wall,

the robotic inspection device further comprising an omnidirectional drive mechanism disposed on each wheel of the plurality of wheels, and

the omnidirectional drive mechanism comprising a planetary gear drive setup, an absolute encoder rod mount, and a design for large force distribution along a bottom motor enclosure unit.

16. A robotic inspection device, comprising:

a body chassis;

a plurality of wheels attached to the body chassis and disposed lower than a lower surface of the body chassis, in a first direction perpendicular to the lower surface of the body chassis, the plurality of wheels comprising four wheels respectively disposed at corner areas of the body chassis;

at least one electronic ducted fan (EDF) disposed on the body chassis and configured to blow air in a second direction opposite to the first direction, thereby providing thrust in the first direction to the robotic inspection device;

at least one nondestructive examination (NDE) sensor disposed on the body chassis;

an omnidirectional drive mechanism disposed on each wheel of the plurality of wheels; and

a radio receiver and transmitter configured to remotely communicate with a controller for controlling at least one of a speed of the at least one EDF, an orientation of the plurality of wheels, and a speed of the plurality of wheels,

the body chassis being curved such that the robotic inspection device is configured to navigate on an external surface of a pipe having a diameter of at least 13 inches,

each wheel of the plurality of wheels being a two-degree-of-freedom (2-DOF) wheel,

the at least one EDF comprising a first EDF disposed in a center area of the body chassis, and

the omnidirectional drive mechanism comprising a planetary gear drive setup, an absolute encoder rod mount, and a design for large force distribution along a bottom motor enclosure unit.

17. The robotic inspection device according to claim 16 , the at least one EDF further comprising a second EDF, a third EDF, a fourth EDF, and a fifth EDF respectively disposed at the four corner areas of the body chassis.

Assignments (2)
CONFIRMATORY LICENSE Recorded Nov 7, 2022
From: FLORIDA INTERNATIONAL UNIVERSITY
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 061885/0553 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2021
From: MCDANIEL, DWAYNE E.; TELUSMA, MACKENSON; LAGOS, LEONEL E.
To: THE FLORIDA INTERNATIONAL UNIVERSITY BOARD OF TRUSTEES
Reel/Frame 056263/0364 →
Continuity (2)
Provisional Application 63004279 · Apr 2, 2020
Related Publication 20210310895A1 · Oct 7, 2021