IP Library › Granted Patent US 12,607,742
Granted Patent B2
US 12,607,742 · App. 18/065,774 · Granted Apr 21, 2026

Beamforming sonar systems for side live sonar, and associated methods

Inventors: Alan Lee Proctor (Owasso, OK); Jeremiah D. Clark (Tulsa, OK); Dustyn P. Pendergraft (Claremore, OK)
Assignee: Navico, Inc.
G01S15/96G01S7/521G01S15/8902G10K11/006G10K11/34
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Quick Facts
Patent No.
US 12,607,742
App. No.
18/065,774
Granted
Apr 21, 2026
Kind
B2
Abstract

A system is provided for imaging an underwater environment. The system includes two or more arrays of transducer elements. Each array is operated at a fixed phase shift and varies in frequency so as to beamform multiple sonar return beams of a first range of angles and a second range of angles. The arrays can be oriented to create arcs of sonar coverage extending forward from a watercraft, from each side of the watercraft, and downward of the watercraft. Accordingly, multiple 2D live sonar images can be formed. One or more of the multiple sonar return beams can be selected and used to form sonar images that anglers are used to, without requiring separate transducer elements.

Claims (80)

1 . A system for generating and presenting sonar imagery of an underwater environment, the system comprising:

a sonar transducer assembly mountable to a watercraft, the sonar transducer assembly comprising:

one or more first sonar transducer arrays positioned and aimed outwardly and downwardly from a first side of the watercraft, wherein each of the one or more first sonar transducer arrays comprises a plurality of first transducer elements, wherein at least one of the one or more first sonar transducer arrays are oriented with a longitudinal axis defining a first angle within a mounting plane dimension relative to a vertical centerline plane of the watercraft, wherein the mounting plane dimension is parallel to a waterline of the underwater environment, wherein the first angle is between 10°-40° from the vertical centerline plane; and

one or more second sonar transducer arrays positioned and aimed outwardly and downwardly from a second side of the watercraft, wherein each of the one or more second sonar transducer arrays comprises a plurality of second transducer elements, wherein the second side of the watercraft is opposite the first side of the watercraft, wherein at least one of the one or more second sonar transducer arrays are oriented with a longitudinal axis defining a second angle within the mounting plane dimension relative to the vertical centerline plane of the watercraft, wherein the second angle is between 10°-40° from the vertical centerline plane;

a display;

a processor; and

a memory including computer executable instructions, the computer executable instructions configured to, when executed by the processor, cause the processor to:

receive first sonar return data at substantially a same time from the one or more first sonar transducer arrays;

receive second sonar return data at substantially the same time from the one or more second sonar transducer arrays;

filter the first sonar return data based on frequency to form multiple first sonar return beams corresponding to different horizontal angles within a range of angles extending from the first side of the watercraft from a fore-to-aft direction of the watercraft, wherein each of the multiple first sonar return beams is formed using frequency steered beamforming and correspond to substantially the same time;

filter the second sonar return data based on frequency to form multiple second sonar return beams corresponding to different horizontal angles within a range of angles extending from the second side of the watercraft from the fore-to-aft direction of the watercraft, wherein each of the multiple second sonar return beams is formed using frequency steered beamforming and correspond to the same time;

generate a first sonar image of the underwater environment that is off to the first side of the watercraft, wherein the first sonar image is a first two-dimensional live sonar image that is formed of the first sonar return data from the multiple first sonar return beams from the one or more first sonar transducer arrays, and wherein the first sonar return data used to form the first two-dimensional live sonar image was received at substantially the same time by the plurality of first transducer elements;

generate a second sonar image of the underwater environment that is off to the second side of the watercraft, wherein the second sonar image is a second two-dimensional live sonar image that is formed of second sonar return data from the multiple second sonar return beams from the one or more second sonar transducer arrays, and wherein the second sonar return data used to form the second two-dimensional live sonar image was received at substantially the same time by the plurality of second transducer elements;

generate a third sonar image of the underwater environment that is a current and historical view of the underwater environment off to both the first side and the second side of the watercraft, wherein the third sonar image is formed of a first current image slice of sonar image data corresponding to a first subset of the multiple first sonar return beams and a second current image slice of sonar image data corresponding to a second subset of the multiple second sonar return beams, wherein the first subset is at least one of multiple first sonar return beams and less than or equal to ten of the multiple first sonar return beams, wherein the second subset is at least one of multiple second sonar return beams and less than or equal to ten of the multiple second sonar return beams, wherein the first current image slice is positioned at a top of the third sonar image on a right side of the third sonar image, wherein the second current image slice is positioned at the top of the third sonar image on a left side of the third sonar image, and wherein the remainder of the third sonar image is formed of historical slices of sonar image data from prior captured sonar return data from the one or more first sonar transducer arrays and the one or more second sonar transducer arrays; and

cause presentation of the first sonar image and the second sonar image on the display, wherein the first sonar image is presented on the display to the right of the second sonar image from a viewer's perspective, or cause presentation of the third sonar image on the display.

2 . The system of claim 1 , wherein each of the first subset and the second subset covers a beam-shaped area of a horizontal plane that is less than five degrees in width.

3 . The system of claim 1 , wherein the third sonar image is presented on the display below the first sonar image and the second sonar image.

4 . The system of claim 3 , wherein the first sonar image includes a first emphasis feature overlaying and indicating the first subset of the multiple first sonar return beams that corresponds to the first current image slice of sonar image data for the third sonar image, and wherein the second sonar image includes a second emphasis feature overlaying and indicating the second subset of the multiple second sonar return beams that corresponds to the second current image slice of sonar image data for the third sonar image.

5 . The system of claim 4 , wherein the first emphasis feature is movable on the display, wherein the second emphasis feature is movable on the display, wherein the first current image slice of sonar image data for the third sonar image changes according to the placement of the first emphasis feature on the first subset of the multiple first sonar return beams, and wherein the second current image slice of sonar image data for the third sonar image changes according to the placement of the second emphasis feature on the second subset of the multiple second sonar return beams.

6 . The system of claim 4 , wherein the third sonar image includes a third emphasis feature overlaying and indicating the first current image slice that is positioned at the top of the third sonar image on the right side of the third sonar image, and wherein the third sonar image includes a fourth emphasis feature overlaying and indicating the second current image slice that is positioned at the top of the third sonar image on the left side of the third sonar image.

7 . The system of claim 1 , wherein the system further comprises one or more third sonar transducer arrays positioned and aimed forwardly and downwardly from a front of the watercraft, wherein each of the one or more third sonar transducer arrays comprises a plurality of third transducer elements, wherein the front of the watercraft is generally perpendicular to the first side and the second side, and wherein the processor is further configured to:

receive third sonar return data from the one or more third sonar transducer arrays;

filter the third sonar return data based on frequency to form multiple third sonar return beams corresponding to the front of the watercraft; and

generate a fourth sonar image of the underwater environment that is either off of the front the watercraft or below the watercraft, wherein the fourth sonar image is a third two-dimensional live sonar image that is formed of at least third sonar return data from at least some of the multiple third sonar return beams from the one or more third sonar transducer arrays, and wherein the third sonar return data used to form the two-dimensional live sonar image was received at substantially a same time by the plurality of third transducer elements.

8 . The system of claim 7 , wherein the third sonar image is presented on the display below the first sonar image and the second sonar image, and wherein the fourth sonar image is presented on the display above the first sonar image and the second sonar image.

9 . The system of claim 7 , wherein a representation of the watercraft is presented on the display, wherein the first sonar image is presented on the display to a right side of the representation corresponding to the first side of the watercraft, wherein the second sonar image is presented on the display to a left side of the representation corresponding to the second side of the watercraft, and wherein the fourth sonar image is presented on the display to a top of the representation corresponding to the front of the watercraft.

10 . The system of claim 1 , wherein the processor is further configured to generate the third sonar image of the underwater environment as a combined sidescan sonar image that includes sonar imagery based on the first subset of the multiple first sonar return beams, a second subset of the multiple first sonar return beams, the second subset of the multiple second sonar return beams, and a second subset of the multiple second sonar return beams, wherein the right side of the third sonar image includes sonar imagery from the first subset of the multiple first sonar return beams and the second subset of the multiple first sonar return beams, wherein the left side of the third sonar image includes sonar imagery from the second subset of the multiple second sonar return beams and the second subset of the multiple second sonar return beams, wherein the first subset of the multiple first sonar return beams includes less sonar return beams than the second subset of the multiple first sonar return beams, and wherein the first subset of the multiple second sonar return beams includes less sonar return beams than the second subset of the multiple second sonar return beams.

11 . The system of claim 1 , wherein the one or more first sonar transducer arrays are configured to operate at a fixed phase shift and vary in frequency so as to beamform the multiple first sonar return beams between a first range of angles and a second range of angles relative to a first emitting face, wherein a gap of a third range of angles separates the first range of angles and the second range of angles, wherein the one or more second sonar transducer arrays are configured to operate at a fixed phase shift and vary in frequency so as to beamform the multiple second sonar return beams between a fourth range of angles and a fifth range of angles relative to a second emitting face, wherein a gap of a sixth range of angles separates the fourth range of angles and the fifth range of angles, wherein the first sonar image is formed of first sonar return data from the first range of angles of the multiple first sonar return beams from the one or more first sonar transducer arrays, and wherein the second sonar image is formed of second sonar return data from the fourth range of angles of the multiple second sonar return beams from the one or more second sonar transducer arrays.

12 . The system of claim 11 , wherein a third sonar image is formed by combining:

first sonar return data from the second range of angles of the multiple first sonar return beams from the one or more first sonar transducer arrays; and

second sonar return data from the fifth range of angles of the multiple second sonar return beams from the one or more second sonar transducer arrays.

13 . The system of claim 11 , wherein each of the first, second, fourth, and fifth ranges of angles covers a volume of water in a horizontal plane outside of the watercraft that is between 20 and 40 degrees in width.

14 . The system of claim 11 , wherein the second range of angles and the fifth range of angles are either nearly adjacent, adjacent, or overlapping and generally directed in a forward or backward direction.

15 . The system of claim 12 , wherein the third sonar image is a forward scan image.

16 . The system of claim 1 , wherein the one or more first sonar transducer array is a single first sonar transducer array, and wherein the one or more second sonar transducer array is a single second sonar transducer array.

17 . The system of claim 1 , wherein the first angle and the second angle are each approximately 30 degrees.

18 . A marine electronic device for generating and presenting sonar imagery of an underwater environment relative to a watercraft, the marine electronic device comprising:

a display;

a processor; and

a memory including computer executable instructions, the computer executable instructions configured to, when executed by the processor, cause the processor to:

receive first sonar return data at substantially a same time from one or more first sonar transducer arrays, wherein the one or more first sonar transducer arrays are positioned and aimed outwardly and downwardly from a first side of the watercraft, and wherein each of the one or more first sonar transducer arrays comprises a plurality of first transducer elements, wherein at least one of the one or more first sonar transducer arrays are oriented with a longitudinal axis defining a first angle within a mounting plane dimension relative to a vertical centerline plane of the watercraft, wherein the mounting plane dimension is parallel to a waterline of the underwater environment, wherein the first angle is between 10°-40° from the vertical centerline plane;

receive second sonar return data at substantially the same time from one or more second sonar transducer arrays, wherein the one or more second sonar transducer arrays are positioned and aimed outwardly and downwardly from a second side of the watercraft, wherein each of the one or more second sonar transducer arrays comprises a plurality of second transducer elements, and wherein the second side of the watercraft is opposite the first side of the watercraft, wherein at least one of the one or more second sonar transducer arrays are oriented with a longitudinal axis defining a second angle within the mounting plane dimension relative to the vertical centerline plane of the watercraft, wherein the second angle is between 10°-40° from the vertical centerline plane;

filter the first sonar return data based on frequency to form multiple first sonar return beams corresponding to different horizontal angles within a range of angles extending from the first side of the watercraft from a fore-to-aft direction of the watercraft, wherein each of the multiple first sonar return beams is formed using frequency steered beamforming and correspond to substantially the same time;

filter the second sonar return data based on frequency to form multiple second sonar return beams corresponding to different horizontal angles within a range of angles extending from the second side of the watercraft from the fore-to-aft direction of the watercraft, wherein each of the multiple second sonar return beams is formed using frequency steered beamforming and correspond to substantially the same time;

generate a first sonar image of the underwater environment that is off to the first side of the watercraft, wherein the first sonar image is a two-dimensional live sonar image that is formed of the first sonar return data from the multiple first sonar return beams from the one or more first sonar transducer arrays, and wherein the first sonar return data used to form the two-dimensional live sonar image was received at substantially the same time by the plurality of first transducer elements;

generate a second sonar image of the underwater environment that is off to the second side of the watercraft, wherein the second sonar image is a two-dimensional live sonar image that is formed of second sonar return data from the multiple second sonar return beams from the one or more second sonar transducer arrays, and wherein the second sonar return data used to form the two-dimensional live sonar image was received at substantially the same time by the plurality of second transducer elements;

generate a third sonar image of the underwater environment that is a current and historical view of the underwater environment off to both the first side and the second side of the watercraft, wherein the third sonar image is formed of a first current image slice of sonar image data corresponding to a first subset of the multiple first sonar return beams and a second current image slice of sonar image data corresponding to a second subset of the multiple second sonar return beams, wherein the first subset is at least one of multiple first sonar return beams and less than or equal to ten of the multiple first sonar return beams, wherein the second subset is at least one of multiple second sonar return beams and less than or equal to ten of the multiple second sonar return beams, wherein the first current image slice is positioned at a top of the third sonar image on a right side of the third sonar image, wherein the second current image slice is positioned at the top of the third sonar image on a left side of the third sonar image, and wherein the remainder of the third sonar image is formed of historical slices of sonar image data from prior captured sonar return data from the one or more first sonar transducer arrays and the one or more second sonar transducer arrays; and

cause presentation of the first sonar image and the second sonar image on the display, wherein the first sonar image is presented on the display to the right of the second sonar image from a viewer's perspective, or cause presentation of the third sonar image on the display.

19 . The marine electronic device of claim 18 , wherein the processor is further configured to:

receive third sonar return data from one or more third sonar transducer arrays, wherein the one or more third sonar transducer arrays are positioned and aimed forwardly and downwardly from a front of the watercraft, wherein each of the one or more third sonar transducer arrays comprises a plurality of third transducer elements, and wherein the front of the watercraft is generally perpendicular to the first side and the second side;

filter the third sonar return data based on frequency to form multiple third sonar return beams corresponding to the front of the watercraft; and

generate a fourth sonar image of the underwater environment that is either off of the front the watercraft or below the watercraft, wherein the fourth sonar image is a two-dimensional live sonar image that is formed of at least third sonar return data from at least some of the multiple third sonar return beams from the one or more third sonar transducer arrays, and wherein the third sonar return data used to form the two-dimensional live sonar image was received at substantially a same time by the plurality of third transducer elements.

20 . The marine electronic device of claim 18 , wherein the one or more first sonar transducer arrays are configured to operate at a fixed phase shift and vary in frequency so as to beamform the multiple first sonar return beams between a first range of angles and a second range of angles relative to a first emitting face, wherein a gap of a third range of angles separates the first range of angles and the second range of angles, wherein the one or more second sonar transducer arrays are configured to operate at a fixed phase shift and vary in frequency so as to beamform the multiple second sonar return beams between a fourth range of angles and a fifth range of angles relative to a second emitting face, wherein a gap of a sixth range of angles separates the fourth range of angles and the fifth range of angles, wherein the first sonar image is formed of first sonar return data from the first range of angles of the multiple first sonar return beams from the one or more first sonar transducer arrays, and wherein the second sonar image is formed of second sonar return data from the fourth range of angles of the multiple second sonar return beams from the one or more second sonar transducer arrays.

21 . The marine electronic device of claim 20 , wherein a third sonar image is formed by combining:

first sonar return data from the second range of angles of the multiple first sonar return beams from the one or more first sonar transducer arrays; and

second sonar return data from the fifth range of angles of the multiple second sonar return beams from the one or more second sonar transducer arrays.

22 . A method for generating and presenting sonar imagery of an underwater environment relative to a watercraft, the method comprising:

receiving first sonar return data at substantially a same time from one or more first sonar transducer arrays, wherein the one or more first sonar transducer arrays are positioned and aimed outwardly and downwardly from a first side of a watercraft, and wherein each of the one or more first sonar transducer arrays comprises a plurality of first transducer elements, wherein at least one of the one or more first sonar transducer arrays are oriented with a longitudinal axis defining a first angle within a mounting plane dimension relative to a vertical centerline plane of the watercraft, wherein the mounting plane dimension is parallel to a waterline of the underwater environment, wherein the first angle is between 10°-40° from the vertical centerline plane;

receiving second sonar return data at substantially the same time from one or more second sonar transducer arrays, wherein the one or more second sonar transducer arrays are positioned and aimed outwardly and downwardly from a second side of the watercraft, wherein each of the one or more second sonar transducer arrays comprises a plurality of second transducer elements, and wherein the second side of the watercraft is opposite the first side of the watercraft, wherein at least one of the one or more second sonar transducer arrays are oriented with a longitudinal axis defining a second angle within the mounting plane dimension relative to the vertical centerline plane of the watercraft, wherein the second angle is between 10°-40° from the vertical centerline plane;

filtering the first sonar return data based on frequency to form multiple first sonar return beams corresponding to different horizontal angles within a range of angles extending from the first side of the watercraft from a fore-to-aft direction of the watercraft, wherein each of the multiple first sonar return beams is formed using frequency steered beamforming and correspond to substantially the same time;

filtering the second sonar return data based on frequency to form multiple second sonar return beams corresponding to different horizontal angles within a range of angles extending from the second side of the watercraft from the fore-to-aft direction of the watercraft, wherein each of the multiple second sonar return beams is formed using frequency steered beamforming and correspond to substantially the same time;

generating a first sonar image of the underwater environment that is off to the first side of the watercraft, wherein the first sonar image is a two-dimensional live sonar image that is formed of the first sonar return data from the multiple first sonar return beams from the one or more first sonar transducer arrays, and wherein the first sonar return data used to form the two-dimensional live sonar image was received at substantially the same time by the plurality of first transducer elements;

generating a second sonar image of the underwater environment that is off to the second side of the watercraft, wherein the second sonar image is a two-dimensional live sonar image that is formed of second sonar return data from the multiple second sonar return beams from the one or more second sonar transducer arrays, and wherein the second sonar return data used to form the two-dimensional live sonar image was received at substantially the same time by the plurality of second transducer elements;

generate a third sonar image of the underwater environment that is a current and historical view of the underwater environment off to both the first side and the second side of the watercraft, wherein the third sonar image is formed of a first current image slice of sonar image data corresponding to a first subset of the multiple first sonar return beams and a second current image slice of sonar image data corresponding to a second subset of the multiple second sonar return beams, wherein the first subset is at least one of multiple first sonar return beams and less than or equal to ten of the multiple first sonar return beams, wherein the second subset is at least one of multiple second sonar return beams and less than or equal to ten of the multiple second sonar return beams, wherein the first current image slice is positioned at a top of the third sonar image on a right side of the third sonar image, wherein the second current image slice is positioned at the top of the third sonar image on a left side of the third sonar image, and wherein the remainder of the third sonar image is formed of historical slices of sonar image data from prior captured sonar return data from the one or more first sonar transducer arrays and the one or more second sonar transducer arrays; and

causing presentation of the first sonar image and the second sonar image on a display, wherein the first sonar image is presented on the display to the right of the second sonar image from a viewer's perspective, or causing presentation of the third sonar image on the display.

23 . A system for generating and presenting sonar imagery of an underwater environment, the system comprising:

a sonar transducer assembly mountable to a watercraft, the sonar transducer assembly comprising:

one or more first sonar transducer arrays positioned and aimed outwardly and downwardly from a first side of the watercraft, wherein each of the one or more first sonar transducer arrays comprises a plurality of first transducer elements; and

one or more second sonar transducer arrays positioned and aimed outwardly and downwardly from a second side of the watercraft, wherein each of the one or more second sonar transducer arrays comprises a plurality of second transducer elements, wherein the second side of the watercraft is opposite the first side of the watercraft;

a display;

a processor; and

a memory including computer executable instructions, the computer executable instructions configured to, when executed by the processor, cause the processor to:

receive first sonar return data from the one or more first sonar transducer arrays;

receive second sonar return data from the one or more second sonar transducer arrays;

filter the first sonar return data based on frequency to form multiple first sonar return beams corresponding to the first side of the watercraft;

filter the second sonar return data based on frequency to form multiple second sonar return beams corresponding to the second side of the watercraft;

generate a first sonar image of the underwater environment that is off to the first side of the watercraft, wherein the first sonar image is a first two-dimensional live sonar image that is formed of the first sonar return data from the multiple first sonar return beams from the one or more first sonar transducer arrays, and wherein the first sonar return data used to form the first two-dimensional live sonar image was received at substantially a same time by the plurality of first transducer elements;

generate a second sonar image of the underwater environment that is off to the second side of the watercraft, wherein the second sonar image is a second two-dimensional live sonar image that is formed of second sonar return data from the multiple second sonar return beams from the one or more second sonar transducer arrays, and wherein the second sonar return data used to form the second two-dimensional live sonar image was received at substantially a same time by the plurality of second transducer elements;

generate a third sonar image of the underwater environment that is a current and historical view of the underwater environment off to both the first side and the second side of the watercraft, wherein the third sonar image is formed of a first current image slice of sonar image data corresponding to a first subset of the multiple first sonar return beams and a second current image slice of sonar image data corresponding to a second subset of the multiple second sonar return beams, wherein the first subset is at least one of multiple first sonar return beams and less than or equal to ten of the multiple first sonar return beams, wherein the second subset is at least one of multiple second sonar return beams and less than or equal to ten of the multiple second sonar return beams, wherein the first current image slice is positioned at a top of the third sonar image on a right side of the third sonar image, wherein the second current image slice is positioned at the top of the third sonar image on a left side of the third sonar image, and wherein the remainder of the third sonar image is formed of historical slices of sonar image data from prior captured sonar return data from the one or more first sonar transducer arrays and the one or more second sonar transducer arrays; and

cause presentation of the first sonar image, the second sonar image, and the third sonar image on the display, wherein the first sonar image is presented on the display to the right of the second sonar image from a viewer's perspective.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 29, 2023
From: PROCTOR, ALAN LEE; CLARK, JEREMIAH D.; PENDERGRAFT, DUSTYN P.
To: NAVICO, INC.
Reel/Frame 064108/0443 →
CORRECTIVE ASSIGNMENT TO CORRECT THE APPLICATION NUMBER 18/065,775 PREVIOUSLY RECORDED ON REEL 063623 FRAME 0117. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jun 29, 2023
From: PROCTOR, ALAN LEE; CLARK, JEREMIAH D.; PENDERGRAFT, DUSTYN P.
To: NAVICO HOLDING AS
Reel/Frame 064254/0114 →
NUNC PRO TUNC ASSIGNMENT Recorded May 12, 2023
From: NAVICO HOLDING AS
To: NAVICO, INC.
Reel/Frame 063623/0126 →
Continuity (2)
Continuation In Part 16944186 · Jul 31, 2020
Related Publication 20230111196A1 · Apr 13, 2023
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