Method and apparatus for spectral noise logging
View Patent ↗In the present invention that considerable advantage is to be gained in the provision of apparatus and methods for spectral noise logging that exhibit improved frequency resolution and thus sensitivity over those systems known in the art since this would allow for improved detection and characterization of fluid flow through, or behind, a casing of a well penetrating subsurface formations.
1. A spectral noise logging (SNL) tool, said tool comprising:
an acoustic detector configured to generate an electrical output signal;
a first frequency channel comprising a first gain stage arranged to receive and amplify the electrical output signal to produce a first channel output in a first frequency range;
a second frequency channel comprising a filter and a second gain stage arranged to receive, filter and amplify the electrical output signal to produce a second channel output in a second frequency range, wherein the first and second frequency channels are separate electrical paths producing separate channel outputs, and wherein the second frequency range is a subset of the first frequency range;
an analogue to digital convertor configured to digitize the first and second channel outputs to produce first and second digitized outputs, respectively;
a computer processing unit (CPU) configured to process the first and second digitized outputs from said analogue to digital convertor to generate a power frequency spectrum data set, wherein the power frequency spectrum data set comprises a frequency component from the first frequency channel in the first frequency range and a low frequency component from the second frequency channel in the second frequency range; and
an internal memory configured to store said power frequency spectrum data set.
2. The tool of claim 1 , wherein said acoustic detector is configured to detect acoustic noise in a range from 8 Hz to 60 kHz.
3. The tool of claim 1 , wherein said acoustic detector comprises a pressure pulse sensor or a hydrophone.
4. The tool of claim 3 , wherein said hydrophone comprises a piezo electric material mounted within a chamber.
5. The tool of claim 4 , wherein said piezo electric material comprises a piezoceramic.
6. The tool of claim 4 , wherein said chamber is oil filled.
7. The tool of claim 1 , wherein said analogue to digital convertor is configured to sample said first frequency channel at a first sampling rate and said second frequency channel at a second sampling rate.
8. The tool of claim 7 , wherein said first sampling rate is at least 120 kHz.
9. The tool of claim 1 , wherein said filter is a low-pass frequency filter.
10. The tool of claim 9 , wherein said low-pass frequency filter is configured to remove frequencies higher than 4 kHz.
11. The tool of claim 7 , wherein said second sampling rate is at least 8 kHz.
12. The tool of claim 1 , wherein said power-frequency spectrum data set comprises digitized time data.
13. The tool of claim 1 , wherein the CPU processes the first and second digitized outputs using a Fast Fourier Transform (FFT) to produce first and second power frequency spectrum data sets, respectively.
14. The tool of claim 13 , wherein the power frequency spectrum data set is a single power frequency spectrum data set, and wherein the CPU processes the first and second power frequency spectrum data sets by performing numerical averaging to produce the single power frequency spectrum data set.
15. The tool of claim 1 , wherein the CPU processes the frequency component from the first frequency channel in the first frequency range by performing wavelet numerical filtering to remove low-frequency noise.