IP Library Granted Patent US 12,510,049
Granted Patent B1
US 12,510,049 · App. 18/759,638 · Granted Dec 30, 2025

Low flow microbial fuel cell and hydro-kinetic turbine

Inventors: Yolanda Meriah Arias-Thode (San Diego, CA); Alexander G. Stevens-Bracy (San Diego, CA); Bashar Dhurgham Ameen (San Diego, CA); Halah S. Ramzi (San Diego, CA); Matthew Lanford Bond (San Diego, CA)
F03B17/063F03B13/10F05B2220/7064F05B2240/97F05B2250/25
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Quick Facts
Patent No.
US 12,510,049
App. No.
18/759,638
Granted
Dec 30, 2025
Kind
B1
Abstract

The present invention is an underwater power generation system engineered for operation in a low-flow environment on a seafloor or riverbed. Features of the system include a hybrid Savonius C foil and Darrieus helical foil hydro-kinetic (HK) turbine for primary power generation and a microbial fuel cell (MFC) for secondary power generation. Both power generation sources are secured to a base frame and may be used to charge a rechargeable battery. Anodes from the MFC preferably rest in anoxic sediment on the seafloor or riverbed. The rechargeable battery may be used to power target electrical equipment that may include sensors, data-logging, communications and other electronic functionality operating underwater.

Claims (52)

1 . An underwater power generation system, comprising:

a hybrid hydro-kinetic (HK) turbine;

a shaft rotationally coupled to the HK turbine, the shaft having an axis of rotation;

a generator rotationally coupled to the shaft for generating alternating current (AC) electricity;

an electronics module for converting the AC electricity into direct current (DC) electricity;

a battery for storing the DC electricity;

a base frame configured to support the HK turbine, the shaft, the generator, the electronics module and the battery on a seafloor or riverbed with the axis of rotation perpendicular to the seafloor or the riverbed;

a microbial fuel cell (MFC) with at least one anode affixed to a bottom of the base frame and configured to rest in anoxic conditions in sediment and at least one cathode attached to the base frame above the sediment, the MFC in communication with the battery via the electronics module.

2 . The underwater power generation system according to claim 1 , further comprising a water-tight housing for containing and protecting the generator, the electronics module and the battery.

3 . The underwater power generation system according to claim 1 , wherein the hybrid HK turbine comprises a plurality of Savonius C foils surrounded by a plurality of Darrieus helical foils arranged to provide rotation to the shaft under low flow conditions on the seafloor or the riverbed.

4 . The underwater power generation system according to claim 3 , wherein the plurality of Savonius C foils comprises two vertically stacked and orthogonally oriented Savonius C foils.

5 . The underwater power generation system according to claim 3 , wherein the plurality of Darrieus helical foils comprise three Darrieus helical foils arranged in a 120° phased relationship to one another.

6 . The underwater power generation system according to claim 4 , further comprising a top plate, an intermediate plate and a bottom plate, wherein the two vertically stacked and orthogonally oriented Savonius C foils are disposed between the top and the bottom plates and the intermediate plate is disposed between the two vertically stacked and orthogonally oriented Savonius C foils.

7 . The underwater power generation system according to claim 1 , further comprising a gearbox connected between the shaft and the generator for increasing rotational speed provided by the shaft to the generator.

8 . The underwater power generation system according to claim 1 , wherein the electronics module converts the output of the generator into direct current (DC) electricity suitable for charging the battery.

9 . The underwater power generation system according to claim 1 , wherein the MFC further comprises a flyback converter for conditioning the electrical output of the MFC into direct current (DC) electricity for charging the battery.

10 . The underwater power generation system according to claim 1 , wherein the MFC further comprises a plurality of horizontal surface and vertical blade anodes configured to rest on or within the sediment.

11 . The underwater power generation system according to claim 1 , wherein the base frame has a cross-shaped cross-section perpendicular to the axis of rotation, wherein each arm of the cross extends from a central cavity configured for securing a water-tight housing for containing and protecting the generator, the electronics module and the battery.

12 . The underwater power generation system according to claim 11 , wherein each of the arms includes a foot at a bottom end, the feet configured to rest in sediment on the seafloor or the riverbed.

13 . A method of generating electricity underwater, comprising:

providing an underwater power generation system, the system comprising:

a base frame;

a hybrid hydro-kinetic (HK) turbine;

a shaft rotationally coupled to the HK turbine, the shaft having an axis of rotation;

a generator rotationally coupled to the shaft for generating alternating current (AC) electricity;

an electronics module in communication with the generator and configured to convert the AC electricity into primary direct current (DC) electricity;

a microbial fuel cell (MFC) with at least one anode affixed to a bottom of the base frame and configured to rest in anoxic conditions in sediment and at least one cathode affixed to the base frame above the sediment, the MFC in communication with the electronics module and configured for gathering secondary DC electricity;

a battery in communication with the electronics module and configured for storing the primary and the secondary DC electricity; and

the base frame configured to support the HK turbine, the shaft, the generator, the electronics module, the MFC and the battery on a seafloor or riverbed with the axis of rotation perpendicular to the seafloor or the riverbed;

placing the underwater power generation system on the seafloor or the riverbed at a location exhibiting low flow water moving horizontally through the HK turbine with the MFC resting on or in the sediment;

the low flow water rotating the HK turbine and the shaft;

the generator generating AC electricity;

the electronics module converting the AC electricity to the primary DC electricity; and

the primary DC electricity charging the battery.

14 . The method of generating electricity underwater according to claim 13 , further comprising:

the MFC gathering low voltage electricity from the sediment;

the MFC converting the gathered low voltage electricity into the secondary DC electricity; and

the secondary DC electricity charging the battery.

15 . The method of generating electricity underwater according to claim 14 , wherein the MFC further comprises a flyback converter for converting the gathered low voltage DC electricity into the secondary DC electricity.

16 . The method of generating electricity underwater according to claim 13 , wherein the MFC further comprises a plurality of horizontally oriented surface anodes and vertically oriented anodes configured to rest on or within the sediment.

17 . The method of generating electricity underwater according to claim 13 , wherein the hybrid HK turbine comprises two Savonius C foils surrounded by three Darrieus helical foils, wherein all of the foils are arranged to provide rotation to the shaft under low flow conditions during operation on the seafloor or the riverbed.

18 . The method of generating electricity underwater according to claim 13 , wherein the base frame further comprises a 3-dimensional cross-shape with four arms, each arm extending outward from a central cavity, and extending upward toward the HK turbine from a bottom end of the base frame, the central cavity configured for holding a water-tight housing for containing and protecting the generator, the electronics module and the battery.

19 . A renewable energy underwater power generation system, the system comprising:

a hydro-kinetic (HK) turbine;

a shaft driven by the HK turbine, the shaft having an axis of rotation;

a gearbox driven by the shaft for increasing rotational speed of the shaft;

a generator driven by the gearbox outputting alternating current (AC) electricity;

an electronics module converting the AC electricity into primary direct current (DC) electricity;

a base frame supporting the HK turbine, the shaft, the generator, the gearbox, the electronics module and the battery on a seafloor or riverbed with the axis of rotation perpendicular to the seafloor or the riverbed;

a microbial fuel cell (MFC) with at least one anode affixed to a bottom of the base frame for placement on or within sediment on the seafloor or the riverbed and at least one cathode affixed to the base frame above the sediment, the MFC configured for gathering low voltage electricity from the sediment;

a flyback converter for converting the low voltage electricity into secondary DC electricity; and

a battery for selectively storing the primary and the secondary DC electricity.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 30, 2024
From: ARIAS-THODE, YOLANDA MERIAH; STEVENS-BRACY, ALEXANDER G.; AMEEN, BASHAR DHURGHAM; RAMZI, HALAH S.; BOND, MATTHEW LANFORD
To: THE UNITED STATES OF AMERICA, AS REPRESENTED BY THE SECRETARY OF THE NAVY
Reel/Frame 067877/0605 →
References Cited (29)
US 1697574A · Savonius · 1929 [cited by examiner]
US 3918839A · Blackwell · 1975 [cited by examiner]
US 8790069B2 · Anderson · 2014 [cited by examiner]
US 8916299B1 · Liu et al. · 2014 [cited by applicant]
US 9484589B1 · Hsu et al. · 2016 [cited by applicant]
US 9496577B2 · Arias-Thode et al. · 2016 [cited by applicant]
US 10374235B2 · Chadwick et al. · 2019 [cited by applicant]
US 11563227B2 · Kartalov et al. · 2023 [cited by applicant]
US 11563228B2 · Bond et al. · 2023 [cited by applicant]
US 11784571B2 · Kerber et al. · 2023 [cited by applicant]
US 20090261595A1 · Poo · 2009 [cited by examiner]
US 20140268931A1 · Vogel · 2014 [cited by examiner]
US 20150249257A1 · Liu · 2015 [cited by examiner]
US 20180291868A1 · Moloney · 2018 [cited by examiner]
US 20200106116A1 · Bond · 2020 [cited by examiner]
US 20200332764A1 · Yu et al. · 2020 [cited by applicant]
US 20210273251A1 · Bond et al. · 2021 [cited by applicant]
US 20220252151A1 · Zhu et al. · 2022 [cited by applicant]
US 20230052264A1 · Kerber et al. · 2023 [cited by applicant]
US 20230382500A1 · Arias-Thode et al. · 2023 [cited by applicant]
ABB Inc., “WRE-113-1 Power Electronics for Hydrokinetics and Fuel Cells”, ABB Automation & Power World, Apr. 18-21, 2011. [cited by applicant]
Babauta et al., “Scaling up benthic microbial fuel cells using flyback converters”, Space and Naval Warfare Systems Center Pacific, San Diego, CA, 2018. [cited by applicant]
Birjandi et al., “Wake Measurement Behind a Loaded Vertical Axis Hydrokinetic Turbine in Field Test”, IEEE Xplore, 978-1-4799-8736-8/15, 2015. [cited by applicant]
Girguis et al., Fundamentals of Benthic Microbial Fuel Cells: Theory, Development and Application, In Bioelectrochemical Systms., 1st edition, Springer Verlag Press, 2010. [cited by applicant]
Guerra et al., “Wake measurements from a hydrokinetic river turbine”, Elsevier, Renewable Energy, vol. 139, pp. 483-495, 2019. [cited by applicant]
Maldar et al., “A Review of the Hybrid Darrieus-Savonius Turbine for Hydrokinetic Applications”, 2021 Third International Sustainability and Resilience Conference. [cited by applicant]
Polagye, et al., “Tidal energy resource characterization . . . ”, Proceedings of the Institution of Mech. Eng., Journal of Power and Energy, vol. 227, Issue 3, pp. 352-367, 2013. [cited by applicant]
Saini et al., “Numerical Investigations on Hybrid Hydrokinetic Turbine for Electrification in Remote Area”, ResearchGate, Conference Paper, Oct. 2018. [cited by applicant]
Umar et al.,“Insights into Advancements and Electrons Transfer Mechanism of Electrogens in Benthic Microbial Fuel Cells”, MDPI, Membranes 2020, 10, 205, Aug. 28, 2020. [cited by applicant]