IP Library Granted Patent US 10,611,545
Granted Patent B2
US 10,611,545 · App. 15/706,000 · Granted Apr 7, 2020

Container shock detection system

Inventors: Jens Henrik Agersbæk (Horsens, DK); Shekib Habbassy (Viby J, DK); Lissa Rose D'Arcy (Ebeltoft, DK); Richard Ulfarsson (Skjern, DK); Flemming Steffensen (Tilst, DK)
Assignee: Emerson Climate Technologie—Transportation Solutions ApS
B65D79/02B65D90/48G01L5/0052G01P1/127G01P15/0891B65D2590/0083G01P15/18
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Quick Facts
Patent No.
US 10,611,545
App. No.
15/706,000
Granted
Apr 7, 2020
Kind
B2
Abstract

Systems and methods are provided and include a modem control unit that is configured to receive a force signal from a force sensor representing an amount of impact force applied to a container. The modem is configured to determine based on the force signal, a bias value, a shock intensity of the force signal, and a shock severity of the force signal in response to a determination that the shock intensity is greater than a shock intensity threshold. The modem control unit is configured to determine an average shock severity based on a plurality of shock severity values and an absolute value indicator based on the bias value and the shock severity value, an average absolute value indicator based on the average shock severity and the bias value, and a presence of excessive mechanical shock based on the average absolute value indicator and based on the absolute value indicator.

Claims (36)

1. A method for detecting mechanical shock of a container, the method comprising:

receiving, using a processor of a modem, a force signal from a force sensor representing an amount of impact force applied to the container;

determining, based on instructions stored in a non-transitory memory component and executable by the processor and based on the force signal, a bias value, the bias value corresponding to an axis of gravity acting on the container;

determining, based on instructions stored on the non-transitory memory component and executable by the processor and based on the force signal, a shock intensity of the force signal, the shock intensity corresponding to an average of a difference between the force signal and the bias value over a first predetermined sample period;

determining, based on instructions stored on the non-transitory memory component and executable by the processor, a shock severity of the force signal in response to a determination that the shock intensity is greater than a shock intensity threshold, the shock severity corresponding to an average of an absolute value of the difference between the force signal and the bias value over a second predetermined sample period, the second predetermined sample period being longer than the first predetermined sample period;

determining, based on instructions stored on the non-transitory memory component and executable by the processor, an average shock severity based on a plurality of shock severity values;

determining, based on instructions stored on the non-transitory memory component and executable by the processor, an absolute value indicator based on a sum of an absolute value of the bias value and the shock severity value;

determining, based on instructions stored on the non-transitory memory component and executable by the processor, an average absolute value indicator based on the average shock severity and the absolute value of the bias value; and

determining, based on instructions stored on the non-transitory memory component and executable by the processor, a presence of excessive mechanical shock based on the average absolute value indicator and based on the absolute value indicator.

2. The method of claim 1 further comprising communicating, using a communication module of the modem, the presence of excessive mechanical shock to at least one of a local monitoring system and a server.

3. The method of claim 1 wherein the determination of the presence of excessive mechanical shock is based on the absolute value indicator exceeding a maximum threshold value.

4. The method of claim 1 wherein the bias value is an average value of multiple mechanical shock values.

5. The method of claim 1 wherein the shock intensity is an amount of energy measured in the first predetermined, the first predetermined sample period including ten samples.

6. The method of claim 1 wherein the shock severity is an amount of energy in the second predetermined sample period, the second predetermined sample period include four-hundred samples.

7. The method of claim 1 wherein the average shock severity is an average amount of energy measured in a predetermined number of a plurality of shock severity samples.

8. The method of claim 1 wherein the absolute value indicator is a normalized measure of energy of the mechanical shock.

9. The method of claim 1 wherein the average absolute value indicator is an average of a plurality of absolute value indicators after a time threshold has elapsed.

10. The method of claim 1 wherein the average absolute value indicator is an average impact force of the container under normal handling situations.

11. A system comprising:

a modem control unit that is configured to:

receive, using a processor of the modem control unit, a force signal from a force sensor representing an amount of impact force applied to a container;

determine, based on instructions stored in a non-transitory memory component and executable by the processor and based on the force signal, a bias value, the bias value corresponding to an axis of gravity acting on the container;

determine, based on instructions stored on the non-transitory memory component and executable by the processor and based on the force signal, a shock intensity of the force signal, the shock intensity corresponding to an average of a difference between the force signal and the bias value over a first predetermined sample period;

determine, based on instructions stored on the non-transitory memory component and executable by the processor, a shock severity of the force signal in response to a determination that the shock intensity is greater than a shock intensity threshold, the shock severity corresponding to an average of an absolute value of the difference between the force signal and the bias value over a second predetermined sample period, the second predetermined sample period being longer than the first predetermined sample period;

determine, based on instructions stored on the non-transitory memory component and executable by the processor, an average shock severity based on a plurality of shock severity values;

determine, based on instructions stored on the non-transitory memory component and executable by the processor, an absolute value indicator based on a sum of an absolute value of the bias value and the shock severity value;

determine, based on instructions stored on the non-transitory memory component and executable by the processor, an average absolute value indicator based on the average shock severity and the absolute value of the bias value; and

determine, based on instructions stored on the non-transitory memory component and executable by the processor, a presence of excessive mechanical shock based on the average absolute value indicator and based on the absolute value indicator.

12. The system of claim 11 wherein the force sensor is an accelerometer.

13. The system of claim 11 wherein the modem control unit further includes a position module that is configured to determine geospatial location data of a container.

14. The system of claim 11 wherein the modem control unit further includes a communication module that is configured to communicate operational and geospatial location data of a container to at least one of a local monitoring system and a server.

15. The system of claim 14 wherein the communication module is configured to communicate operational and geospatial location data of a container using at least one of a quad-band global system for mobile communication (quad-band GSM) module and a tri-band universal mobile telecommunications system communication (tri-band UMTS) module.

16. The system of claim 11 wherein the modem control unit is configured to receive operational data of a container from a container controller.

17. The system of claim 16 wherein the operational data includes at least one of an electric power consumption, suction, discharge temperature, pressure of a compressor, pressure of a condenser, and evaporator temperature data of the container.

18. The system of claim 11 wherein the absolute value indicator is a normalized measure of energy of the mechanical shock.

19. The system of claim 11 wherein the modem control unit further includes a plurality of LEDs that are configured to activate and deactivate based on at least one of an operating condition and a position of a container.

Assignments (2)
CHANGE OF NAME Recorded Jul 26, 2023
From: EMERSON CLIMATE TECHNOLOGIES - TRANSPORTATION SOLUTION APS
To: COPELAND TRANSPORTATION SOLUTIONS APS
Reel/Frame 064392/0907 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 19, 2017
From: AGERSBÆK, JENS HENRIK; HABASSY, SHEKIB; D'ARCY, LISSA ROSE; ULFARSSON, RICHARD; STEFFENSEN, FLEMMING
To: EMERSON CLIMATE TECHNOLOGIES - TRANSPORTATION SOLUTIONS APS
Reel/Frame 043899/0487 →
Continuity (2)
Provisional Application 62396625 · Sep 19, 2016
Related Publication 20180079578A1 · Mar 22, 2018