IP Library Granted Patent US 9,417,359
Granted Patent B2
US 9,417,359 · App. 14/420,509 · Granted Aug 16, 2016

Ocean bottom seismic node system

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Quick Facts
Patent No.
US 9,417,359
App. No.
14/420,509
Granted
Aug 16, 2016
Kind
B2
Abstract

The invention relates to a seismic node ( 100 ), comprising at least one seismic sensor with associated electronics, a primary oscillator ( 106 ) for timing sensor signals, a reference oscillator ( 104 ), a memory, a power source, a switch ( 102 ) for turning the reference oscillator on and off, and a processor ( 112 ) for digitizing sensor signals and storing them in the memory, calibrating a frequency of the primary oscillator ( 106 ) based on the frequency of the reference oscillator ( 104 ), and turning the reference oscillator on and off.

Claims (33)

1. An ocean bottom seismic node comprising:

at least one seismic sensor with associated electronics;

a primary oscillator configured to time sensor signals;

a memory;

a power source;

a reference configured to receive power from the power source;

a power switch between the power source and the reference oscillator; and

a processor configured to control a frequency calibration of the primary oscillator using a frequency calibration value based on a frequency provided by the reference oscillator, and configured to turn the reference oscillator on and off using the power switch, wherein the memory is in communication with the processor and the ocean bottom seismic node is constructed for use at a bottom of an ocean, wherein the reference oscillator is switched off when the frequency calibration is performed.

2. The ocean bottom seismic node of claim 1 , wherein the reference oscillator is placed outside the primary oscillator.

3. The ocean bottom seismic node of claim 1 , wherein the processor calibrates the frequency of the primary oscillator after a time interval.

4. The ocean bottom seismic node of claim 1 , wherein the frequency error of the primary oscillator and the calibration data is stored in the memory.

5. The ocean bottom seismic node of claim 1 , wherein the processor turns the reference oscillator on or off according to a predetermined algorithm used to optimize power consumption in relation to total system accuracy requirement.

6. The ocean bottom seismic node of claim 1 , further comprising at least one sensor for monitoring environmental conditions.

7. The ocean bottom seismic node of claim 1 , further comprising at least one sensor for monitoring movement of the seismic node.

8. The ocean bottom seismic node of claim 1 , further comprising a digital to analog converter configured to receive a digital signal and operable to generate an analog signal for application to the primary oscillator.

9. The ocean bottom seismic node of claim 1 , wherein calibrating a frequency of the primary oscillator based on the frequency of the reference oscillator, and turning the reference oscillator on and off is performed by a frequency controller employing a phase locked loop.

10. The ocean bottom seismic node of claim 1 , further comprising a wireless access point for external communication with the processor.

11. A method for calibrating an oscillation frequency of a primary oscillator of an ocean bottom seismic node, the method comprising:

turning on a reference oscillator using a switch, wherein the reference oscillator is connected to the switch and the switch is connected to a power source;

stabilizing the frequency of the primary oscillator of the ocean bottom seismic node located at a bottom of an ocean, based on the frequency of the reference oscillator, calculating a frequency calibration value for calibrating the frequency of the primary oscillator, wherein the primary oscillator configured to time sensor signals;

based on the frequency calibration value, adjusting the frequency of the primary oscillator;

turning off the reference oscillator using the switch after the calibration was performed; and

after a time interval, repeating the above steps.

12. The method of claim 11 , wherein the reference oscillator is turned on and off by a signal external to the primary oscillator.

13. The method of claim 12 , wherein the external signal is sent from a central control system.

14. The method of claim 11 , wherein the time interval for start and stop signals to the reference oscillator is predetermined by an algorithm regarding the optimum power consumption in relation to total system time accuracy.

15. The method of claim 11 , wherein the time interval is determined based on the expected degree of weather standby.

16. The method of claim 11 , wherein the time interval is determined based on information related to the environment and/or the geology at the location of the seismic node.

17. The method of claim 11 , wherein, if the seismic node is being deployed at an ocean bottom, the reference oscillator is turned on during deployment, and turned off after the seismic node has come to rest at the ocean bottom and the internal and/or external temperature has stabilized, as measured by sensors of the seismic node.

18. The method of claim 11 , wherein, when the seismic node is being recovered from the ocean bottom, the reference oscillator can be turned on during the operation.

19. The method of claim 11 , wherein, if a sensor of the seismic node senses a movement of the seismic node or an internal or external temperature change, a calibration of the oscillation frequency of the primary oscillator is carried out.

20. The method of claim 11 , wherein, in all or part of the time interval between calibrations of the primary oscillator, the primary oscillator and the reference oscillator are run simultaneously, the frequency difference is registered, and, based on the frequency difference, a decision is made whether to continue to run the primary oscillator and the reference oscillator simultaneously, to maintain, reduce or increase the time interval between calibrations, or to carry out a calibration.

21. The method of claim 11 , wherein the seismic node is part of an array of seismic nodes that rests on the ocean bottom and is used for data acquisition, each seismic node in the array is part of a set of seismic nodes, there are at least two sets of seismic nodes, wherein the reference oscillators for the seismic nodes of each set are sequentially turned on while the reference oscillators for the seismic nodes of the other sets are turned off.

Assignments (6)
RELEASE OF SECURITY INTEREST Recorded Apr 3, 2023
From: DNB BANK ASA, AS AGENT
To: MAGSEIS FF LLC
Reel/Frame 063237/0695 →
CHANGE OF ADDRESS Recorded Dec 16, 2022
From: MAGSEIS FAIRFIELD ASA
To: MAGSEIS FAIRFIELD ASA
Reel/Frame 062140/0843 →
CHANGE OF NAME Recorded Dec 16, 2022
From: MAGSEIS AS
To: MAGSEIS FAIRFIELD ASA
Reel/Frame 062146/0782 →
SECURITY INTEREST Recorded May 5, 2020
From: MAGSEIS FF LLC
To: DNB BANK ASA
Reel/Frame 052576/0445 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 25, 2016
From: GATEMAN, JAN B; GATEMAN, NILS P
To: MAGSEIS AS
Reel/Frame 038372/0069 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2015
From: GATEMAN, JAN B; GATEMAN, NILS P
To: MAGSEIS AS
Reel/Frame 035762/0098 →