IP Library Granted Patent US 10,847,823
Granted Patent B2
US 10,847,823 · App. 15/724,736 · Granted Nov 24, 2020

Fuel cell stack inlet flow control

Inventors: Michael L. Quatannens (Chappaqua, NY); William Snyder (Ossining, NY); Quan Jin (Southbury, CT); Robert S. Fournier (West Hartford, CT)
Assignee: FuelCell Energy, Inc.
H01M8/04753B01F3/02B01F5/0451B01F5/0456B01F5/0463B01F5/0606B01F5/0648B01F5/0652H01M8/04089H01M8/04104H01M8/04201H01M8/0606H01M8/2485H01M8/04007
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Quick Facts
Patent No.
US 10,847,823
App. No.
15/724,736
Granted
Nov 24, 2020
Kind
B2
Abstract

A duct for a fuel cell module includes an upper duct hood having an inlet configured to receive reactant gas from a supply duct, the upper duct hood defining a first tapered portion and a second tapered portion. The duct further includes a lower duct hood fluidly coupled to the upper duct hood, the lower duct hood defining at least one outlet. In a side view, the second tapered portion is tapered inwardly in a downstream direction. In a top view, the first tapered portion is tapered inwardly in a downstream direction, and the second tapered portion is tapered outwardly moving downstream.

Claims (24)

1. A duct for a fuel cell module, the duct comprising:

an upper duct hood having an inlet configured to receive reactant gas from a supply duct, the upper duct hood defining a first tapered portion and a second tapered portion downstream from the first tapered portion;

a lower duct hood fluidly coupled to the upper duct hood, the lower duct hood including a first leg and a second leg, the first leg defining an outlet configured to output a gas mixture for use in a fuel cell stack, and the second leg being spaced apart from the first leg so as to provide access to the fuel cell module therebetween;

wherein, in a side view, the second tapered portion is tapered inwardly in a downstream direction such that the second tapered portion reduces in size in the side view; and

wherein, in a top view, the first tapered portion is tapered inwardly in a downstream direction; and

wherein, in the top view, the second tapered portion is tapered outwardly moving downstream.

2. The duct of claim 1 , wherein the second tapered portion defines a substantially constant cross-sectional area.

3. The duct of claim 1 , wherein in the side view, the first tapered portion is tapered inwardly in a downstream direction.

4. The duct of claim 1 further comprising a sparger assembly configured to sparge air from an air supply and feed the air to the upper duct hood.

5. The duct of claim 4 , wherein the sparger assembly includes an outlet configured to output the air at an angle offset from a direction of flow of reactant gas through the inlet of the upper duct hood.

6. The duct of claim 1 further comprising at least one plurality of vanes pivotably coupled to opposing sides of the outlet, the at least one plurality of vanes configured to direct the flow of the gas mixture.

7. The duct of claim 6 further comprising a first plurality of vanes and a second plurality of vanes configured to articulate independently from the first plurality of vanes.

8. A fuel cell module comprising:

a plurality of fuel cell stacks, each fuel cell stack defining an inlet configured to receive a gas mixture; and

a duct having an upper duct hood and a lower duct hood, the lower duct hood including at least one outlet;

wherein the at least one outlet of the lower duct hood is fluidly coupled to a corresponding inlet of a corresponding fuel cell stack;

wherein a first plurality of vanes is pivotably coupled to a first side of the outlet and a second plurality of vanes is pivotably coupled to a second side of the outlet independently from the first plurality of vanes such that the second plurality of vanes are configured to articulate independently from the first plurality of vanes, wherein the second side of the outlet is located opposite to the first side of the outlet, and wherein the first plurality of vanes and the second plurality of vanes are configured to direct the flow of the gas mixture to the inlet.

9. The fuel cell module of claim 8 , wherein a gap is provided between the outlet of the duct and the inlet of the fuel cell stack, the gap configured to prevent electrical contact therebetween.

10. The fuel cell module of claim 8 ,

wherein the lower duct hood includes two legs, each leg defining an outlet; and

wherein each outlet is fluidly coupled to a corresponding fuel cell stack.

11. The fuel cell module of claim 8 further comprising two ducts;

wherein the plurality of fuel cell stacks includes four fuel cell stacks, each duct configured to be fluidly coupled to two of the fuel cell stacks.

12. The fuel cell module of claim 8 , wherein the outlet is substantially the same height as the inlet.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Nov 30, 2020
From: ORION ENERGY PARTNERS INVESTMENT AGENT, LLC
To: FUELCELL ENERGY, INC.
Reel/Frame 054545/0803 →
SECURITY INTEREST Recorded Oct 31, 2019
From: FUELCELL ENERGY, INC.
To: ORION ENERGY PARTNERS INVESTMENT AGENT, LLC
Reel/Frame 050899/0262 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 9, 2018
From: QUATANNENS, MICHAEL L.; SNYDER, WILLIAM; JIN, QUAN; FOURNIER, ROBERT S.
To: FUELCELL ENERGY, INC.
Reel/Frame 044885/0320 →
Continuity (1)
Related Publication 20190103621A1 · Apr 4, 2019