IP Library › Granted Patent US 11,192,765
Granted Patent B1
US 11,192,765 · App. 17/333,335 · Granted Dec 7, 2021

Systems and methods for lanyard attachment detection on an aerial device

Inventors: Andrew W. Featherstone (Country Club, MO); Jordan Desmarais (Smithville, MO); Marques King (Saint Joseph, MO); Bryn Winger (Saint Joseph, MO); David Lindquist (Cameron, MO); Timothy M. Smiley (Wake Forest, NC); Connor Tripp (Durham, NC)
Assignee: Altec Industries, Inc.
B66F17/006G01V8/24
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Quick Facts
Patent No.
US 11,192,765
App. No.
17/333,335
Granted
Dec 7, 2021
Kind
B1
Abstract

Systems and methods for detecting attachment of a lanyard at a utility platform of an aerial device are described. In some embodiments, a lanyard attachment device is disposed on a utility platform. The lanyard attachment device may comprise a sensor detecting when a lanyard is attached to the lanyard attachment device. In some embodiments, the utility platform is separated from a base of the aerial device by a dielectric gap, and a light signal is indicative of the state of the lanyard attachment device. Furthermore, anti-tie-down functionality may be used to detect error or tampering of the lanyard attachment device.

Claims (75)

1. A system for detecting an attachment of a lanyard at a utility platform of an aerial device, the system comprising:

a processor;

a lanyard attachment device comprising:

a moveable element; and

a sensor connected to the moveable element for detecting a state of the moveable element;

wherein the moveable element is in a first state when the lanyard is not attached to the lanyard attachment device, and the moveable element is in a second state when the lanyard is attached to the lanyard attachment device; and

one or more non-transitory computer-readable media storing computer-executable instructions that, when executed by the processor, perform a method of detecting the state of the moveable element, the method comprising the steps of:

receiving a first signal from the sensor indicative of the state of the moveable element; and

transmitting a second signal to at least one actuator for controlling flow of a hydraulic fluid to control the utility platform based on the first signal indicative of the state of the moveable element.

2. The system of claim 1 ,

wherein the sensor is a first fiber optic switch,

wherein the first signal is a light signal,

wherein transmission of the first signal is accomplished by the first fiber optic switch actuating to allow the light signal to pass from a fiber optic transceiver disposed near a base of the aerial device through the first fiber optic switch and back to the fiber optic transceiver, and

wherein a receipt of the first signal is indicative of either the first state of the moveable element or the second state of the moveable element.

3. The system of claim 2 , further comprising:

a second fiber optic switch for detecting engagement of a single handle control moveable part,

wherein the hydraulic fluid flows to the utility platform when the first fiber optic switch is indicative of the second state of the moveable element and the second fiber optic switch is indicative of engagement of the single handle control moveable part.

4. The system of claim 1 , wherein when the lanyard is attached to the lanyard attachment device, the moveable element is moved from the first state to the second state against a force provided by a spring, thereby triggering the sensor to send the first signal, and

wherein when the lanyard is not attached to the lanyard attachment device, the spring restores the moveable element to the first state.

5. The system of claim 1 , wherein if the lanyard is attached to a boom implement attachment, the sensor is an electromechanical switch and the hydraulic fluid flows to the utility platform when the moveable element is in the second state.

6. The system of claim 1 , further comprising:

an alarm, wherein the alarm is activated when actuation of a utility platform motion input or aerial device mode change is received while the moveable element is in the first state.

7. The system of claim 1 , wherein when an input of at least one of a key switch, an outrigger selection, and an aerial unit selection, is received, the input is not allowed when the moveable element is in the first state.

8. The system of claim 1 , further comprising one or more manual override switches that, when activated by an operator, allow the hydraulic fluid to flow to the utility platform when the moveable element is in the first state.

9. A method for detecting attachment of a lanyard at a utility platform of an aerial device, the method comprising the steps of:

receiving a first signal at a base of the aerial device from the utility platform,

wherein the first signal is indicative of a state of a moveable element disposed at the utility platform,

wherein the moveable element is in a first state when the lanyard is not attached to a lanyard attachment device and the moveable element is in a second state when the lanyard is attached to the lanyard attachment device; and

transmitting a second signal to at least one actuator for controlling flow of a hydraulic fluid to control the utility platform based on the first signal indicative of the state of the moveable element.

10. The method of claim 9 , further comprising:

receiving the first signal from a first fiber optic switch, wherein the first signal is a light signal; and

actuating the fiber optic switch causing the light signal to pass from a fiber optic transceiver disposed at a base of the aerial device through the fiber optic switch and back to the fiber optic transceiver,

wherein receipt of the first signal is indicative of either the first state of the moveable element or the second state of the moveable element.

11. The method of claim 10 , further comprising:

detecting engagement of a single handle control moveable part; and

causing the hydraulic fluid to flow to the utility platform when the first fiber optic switch is indicative of the second state of the moveable element and a second fiber optic switch is indicative of engagement of the single handle control moveable part.

12. The method of claim 9 , further comprising:

triggering a sensor to send the first signal when the moveable element is moved to the second state against a force provided by a spring, and

restoring the movable element to the first state by the spring when the lanyard is removed from the lanyard attachment device.

13. The method of claim 9 , wherein if the lanyard is attached to a boom implement attachment,

receiving the first signal from an electromechanical switch and allowing the hydraulic fluid to flow to the utility platform when the moveable element is in the second state.

14. The method of claim 9 , further comprising:

receiving actuation of a utility platform motion input or aerial device mode change while the moveable element is in the first state; and

activating an alarm based on receiving the actuation of the utility platform motion input.

15. The method of claim 9 , further comprising:

receiving an input of at least one of a key switch, an outrigger selection, and an aerial unit selection; and

denying the input when the moveable element is in the first state.

16. The method of claim 9 , further comprising:

receiving a manual override input by a manual override switch; and

causing the hydraulic fluid to flow to the utility platform when the moveable element is in the first state.

17. A system for detecting attachment of a lanyard at a utility platform of an aerial device, the system comprising:

a processor;

a lanyard attachment device comprising:

a moveable element; and

a first sensor connected to the moveable element detecting a movable element state,

wherein the moveable element is in a first state when the lanyard is not attached to the lanyard attachment device, and the moveable element is in a second state when the lanyard is attached to the lanyard attachment device;

a single handle controller;

a second sensor detecting a single handle control state; and

one or more non-transitory computer-readable media storing computer-executable instructions that, when executed by the processor, perform a method of detecting the moveable element state and the single handle control state, the method comprising the steps of:

receiving a first signal from the first sensor indicative of the moveable element state;

receiving a second signal from the second sensor indicative of the single handle control state; and

transmitting a third signal to at least one actuator for controlling flow of a hydraulic fluid to control the utility platform based on the first signal and the second signal.

18. The system of claim 17 ,

wherein the first sensor is a first fiber optic switch,

wherein the second sensor is a second fiber optic switch,

wherein the computer-executable instructions are further executed to perform the steps of:

actuating the first fiber optic switch to allow a first light signal to pass from a fiber optic transceiver disposed near a base of the aerial device through the first fiber optic switch and back to the fiber optic transceiver; and

actuating the second fiber optic switch to allow a second light signal to pass from the fiber optic transceiver disposed near the base of the aerial device through the second fiber optic switch and back to the fiber optic transceiver.

19. The system of claim 17 ,

wherein the lanyard attachment device is attached to either the utility platform or a boom implement attachment,

wherein the first sensor is a first electromechanical sensor, and

wherein the second sensor is a second electromechanical sensor.

20. The system of claim 17 ,

further comprising at least one alarm,

wherein the at least one alarm is activated when actuation of a utility platform motion input or aerial device mode change is received while the moveable element is in the first state.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 28, 2021
From: FEATHERSTONE, ANDREW W.; DESMARAIS, JORDAN; KING, MARQUES; WINGER, BRYN; LINDQUIST, DAVID; SMILEY, TIMOTHY M.; TRIPP, CONNOR
To: ALTEC INDUSTRIES, INC.
Reel/Frame 056382/0776 →
Cited By (2)
US 12,629,547 US 12,673,859