IP Library Granted Patent US 10,680,269
Granted Patent B2
US 10,680,269 · App. 15/751,420 · Granted Jun 9, 2020

Variably segmented fuel cell stack, and fuel cell system and vehicle comprising same

Inventors: Jan-Philipp Brinkmeier (Braunschweig, DE); Dirk Jenssen (Braunschweig, DE)
Assignees: VOLKSWAGEN AG; AUDI AG
H01M8/24B60L50/72H01M8/0258H01M8/04089H01M8/0494H01M8/241H01M8/249H01M8/2465B60L1/003B60L50/51B60L58/40H01M2250/20Y02T90/32
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,680,269
App. No.
15/751,420
Granted
Jun 9, 2020
Kind
B2
Abstract

The invention relates to a fuel cell stack having at least two segments of individual fuel cells arranged in parallel in terms of fluid, said segments being arranged in series relative to one another in terms of fluid. It is provided that the fuel cell stack is set up to vary the number of individual fuel cells in at least one segment.

Claims (26)

1. A fuel cell stack comprising:

at least two stack segments of individual fuel cells arranged in parallel with respect to fluid flow, said stack segments being arranged in series relative to one another with respect to fluid flow, wherein the fuel cell stack is set up to vary a number of individual fuel cells in at least one stack segment; and

a first operating medium channel and a second operating medium channel in fluid connection with each other via the individual fuel cells, said operating medium channels penetrating the individual fuel cells and extending along a stack direction;

wherein, in the first operating medium channel, at least one plunger is arranged that can be moved in the stack direction to vary the number of individual fuel cells in the at least one stack segment, which plunger is configured to interrupt an operating medium flow through the first operating medium channel between two adjacent individual fuel cells at a plurality of locations along a range of motion of the at least one plunger in the stack direction.

2. The fuel cell stack according to claim 1 , wherein the fuel cell stack includes a plurality of plungers, the plungers being moveable in the stack direction to vary a number of stack segments.

3. The fuel cell stack according to claim 1 , wherein another plunger that can be moved in the stack direction is arranged in the second operating medium channel, which plunger interrupts the operating medium flow through the second operating medium channel between two adjacent individual fuel cells.

4. The fuel cell stack according to claim 3 wherein the plungers are designed so as to be movable independently of one another in the stack direction.

5. The fuel cell stack according to claim 3 wherein the plungers are arranged alternately in the stack direction in the first and second operating medium channels.

6. The fuel cell stack according to claim 1 wherein at least one of the said operating medium channels is connected with an anode supply.

7. A fuel cell system comprising:

a fuel cell stack including at least two stack segments of individual fuel cells arranged in parallel with respect to fluid flow, said stack segments being arranged in series relative to one another with respect to fluid flow, wherein the fuel cell stack is set up to vary a number of individual fuel cells in at least one stack segment;

a first operating medium channel and a second operating medium channel in fluid connection with each other via the individual fuel cells, said operating medium channels penetrating the individual fuel cells and extending along a stack direction;

wherein, in the first operating medium channel, at least one plunger is arranged that can be moved in the stack direction to vary the number of individual fuel cells in the at least one stack segment, which plunger is configured to interrupt an operating medium flow through the first operating medium channel between two adjacent individual fuel cells at a plurality of locations along a range of motion of the at least one plunger in the stack direction; and

a control device, which control device is set up to vary the number of individual fuel cells of at least one stack segment depending on an operating state of the fuel cell system.

8. The fuel cell system of claim 7 wherein the fuel cell stack includes a plurality of plungers, the plungers being moveable in the stack direction to vary a number of stack segments.

9. A vehicle comprising:

a fuel cell stack including at least two stack segments of individual fuel cells arranged in parallel with respect to fluid flow, said stack segments being arranged in series relative to one another with respect to fluid flow, wherein the fuel cell stack is set up to vary a number of individual fuel cells in at least one stack segment; and

a first operating medium channel and a second operating medium channel in fluid connection with each other via the individual fuel cells, said operating medium channels penetrating the individual fuel cells and extending along a stack direction;

wherein, in the first operating medium channel, at least one plunger is arranged that can be moved in the stack direction to vary the number of individual fuel cells in the at least one stack segment, which plunger is configured to interrupt an operating medium flow through the first operating medium channel between two adjacent individual fuel cells at a plurality of locations along a range of motion of the at least one plunger in the stack direction.

10. The vehicle of claim 9 wherein the fuel cell stack includes a plurality of plungers, the plungers being moveable in the stack direction to vary a number of stack segments.

11. A vehicle comprising a fuel cell system, the fuel cell system including:

a fuel cell stack including at least two stack segments of individual fuel cells arranged in parallel with respect to fluid flow, said stack segments being arranged in series relative to one another with respect to fluid flow, wherein the fuel cell stack is set up to vary a number of individual fuel cells in at least one stack segment;

a first operating medium channel and a second operating medium channel in fluid connection with each other via the individual fuel cells, said operating medium channels penetrating the individual fuel cells and extending along a stack direction;

wherein, in the first operating medium channel, at least one plunger is arranged that can be moved in the stack direction to vary the number of individual fuel cells in the at least one stack segment, which plunger is configured to interrupt an operating medium flow through the first operating medium channel between two adjacent individual fuel cells at a plurality of locations along a range of motion of the at least one plunger in the stack direction; and

a control device, which control device is set up to vary the number of individual fuel cells of the at least one stack segment depending on an operating state of the fuel cell system.

12. The vehicle of claim 11 wherein the fuel cell stack includes a plurality of plungers, the plungers being moveable in the stack direction to vary a number of stack segments.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 3, 2019
From: VOLKSWAGEN AG
To: AUDI AG
Reel/Frame 049349/0944 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2018
From: BRINKMEIER, JAN-PHILIPP; JENSSEN, DIRK
To: VOLKSWAGEN AG
Reel/Frame 045833/0663 →
Priority Claims (1)
DE 10 2015 215 497 · Aug 13, 2015 · national
Continuity (1)
Related Publication 20180233764A1 · Aug 16, 2018