IP Library Granted Patent US 11,867,140
Granted Patent B1
US 11,867,140 · App. 17/940,389 · Granted Jan 9, 2024

Evaporative emissions canister with layered carbon

Inventors: Michal Osmeda (Slomniki, PL); Arkadiusz Wiatr (Cracow, PL)
Assignee: DELPHI TECHNOLOGIES IP LIMITED
F02M25/0854B01D53/0415F02M35/10222B01D2253/102B01D2257/702B01D2259/402B01D2259/4516B01D2259/4566
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 11,867,140
App. No.
17/940,389
Granted
Jan 9, 2024
Kind
B1
Abstract

An evaporative emissions canister is provided. The canister includes a casing defining an internal volume therein, and an inlet and outlet in fluid communication with the internal volume. The internal volume includes a layer of first adsorbent material and a layer of second adsorbent material. The first adsorbent material has a flow restriction that is lower than the flow restriction of the second adsorbent material. A fluid flow path is defined from the inlet through the internal volume of the casing to the outlet. The fluid flow path includes a transition zone of changing cross-sectional area in the direction from the inlet to the outlet. The layer of first adsorbent material is disposed at or directly adjacent to the transition zone, and the layer of first adsorbent material is disposed adjacent to and immediately upstream from the layer of second adsorbent material in the direction.

Claims (35)

1. An evaporative emissions canister comprising:

a casing defining an internal volume therein;

the casing including an inlet and an outlet in fluid communication with the internal volume;

the internal volume including a layer of first adsorbent material and a layer of second adsorbent material, the first adsorbent material having a flow restriction that is lower than the flow restriction of the second adsorbent material;

a fluid flow path defined from the inlet through the internal volume of the casing to the outlet;

the fluid flow path having a cross-sectional area that varies in a direction from the inlet to the outlet, the fluid flow path including a transition zone of changing cross-sectional area in the direction from the inlet to the outlet;

wherein the layer of first adsorbent material is disposed at or directly adjacent to the transition zone, the layer of first adsorbent material is disposed adjacent to and immediately upstream from the layer of second adsorbent material in said direction, and wherein the layer of first adsorbent material spreads a flow of fluid along the fluid flow path into the layer of second adsorbent material.

2. The evaporative emissions canister of claim 1 , wherein the first adsorbent material has a mean particle diameter that is at least 1.2 times larger than the mean particle diameter of the second adsorbent material.

3. The evaporative emissions canister of claim 2 , wherein the first adsorbent material is a pellet carbon, and the second adsorbent material is a granular carbon.

4. The evaporative emissions canister of claim 1 , wherein the internal volume includes the transition zone of changing cross-sectional area.

5. The evaporative emissions canister of claim 4 , wherein the internal volume includes a first zone having a first cross-sectional area, the first zone being at the inlet end of the casing; the internal volume further including a second zone having a second cross-sectional area, the second zone being at the outlet end of the casing, and the second cross-sectional area being larger than the first cross-sectional area; and

wherein the transition zone of changing cross-sectional area is disposed between the first and second zones; the transition zone including the layer of first adsorbent material, and the second zone including the layer of second adsorbent material.

6. The evaporative emissions canister of claim 5 , wherein the first zone includes a layer of third adsorbent material, the third adsorbent material having a flow restriction that is higher than the flow restriction of the first adsorbent material.

7. The evaporative emissions canister of claim 6 , wherein the third adsorbent material is the same as the second adsorbent material.

8. The evaporative emissions canister of claim 5 , wherein the first zone includes a volume of void space.

9. The evaporative emissions canister of claim 1 , wherein a height of the layer of first adsorbent material in the direction from the inlet to the outlet is smaller than a height of the layer of second adsorbent material in said direction.

10. The evaporative emissions canister of claim 1 , wherein the change in cross-sectional area in the transition zone is stepped in the direction from the inlet to the outlet.

11. A fuel vapor storage canister for adsorbing fuel evaporated in a fuel tank of an automotive vehicle, the fuel vapor storage canister comprising:

a casing forming a main body defining at least one chamber therein;

a vent port in the main body, the vent port being open to atmosphere;

a purge port in the main body, the purge port being on an opposite end of the main body than the vent port, and the purge port being in fluid communication with an air intake system of the vehicle;

the at least one chamber having a cross-sectional area that varies in a direction from the vent port to the purge port; and

the at least one chamber including a bed of first adsorbent material and a bed of second adsorbent material, the first adsorbent material having a flow restriction that is lower than the flow restriction of the second adsorbent material;

wherein the bed of first adsorbent material is disposed at or directly adjacent to a transition zone of changing cross-sectional area of the at least one chamber in the direction from the vent port to the purge port, and the bed of first adsorbent material is disposed adjacent to and immediately upstream from the bed of second adsorbent material in said direction.

12. The fuel vapor storage canister of claim 11 , wherein the first adsorbent material has a mean particle diameter that is at least 1.2 times larger than the mean particle diameter of the second adsorbent material.

13. The fuel vapor storage canister of claim 12 , wherein the first adsorbent material is a pellet carbon, and the second adsorbent material is a granular carbon.

14. The fuel vapor storage canister of claim 11 , wherein the change in cross-sectional area in the transition zone is stepped in the direction from the vent port to the purge port.

15. A method of making an evaporative emissions canister, the method comprising the steps of:

providing a casing having an internal volume, an inlet and an outlet in fluid communication with the internal volume, and a fluid flow path defined from the inlet through the internal volume of the casing to the outlet, the fluid flow path having a cross-sectional area that varies in a direction from the inlet to the outlet, the fluid flow path including a transition zone of changing cross-sectional area in the direction from the inlet to the outlet;

disposing a layer of first adsorbent material at or directly adjacent to the transition zone;

disposing a layer of second adsorbent material adjacent to and immediately downstream from the layer of first adsorbent material in said direction;

wherein the first adsorbent material has a flow restriction that is lower than the flow restriction of the second adsorbent material, and the layer of first adsorbent material spreads a flow of fluid along the fluid flow path into the layer of second adsorbent material.

16. The method of claim 15 , wherein the first adsorbent material has a mean particle diameter that is at least 1.2 times larger than the mean particle diameter of the second adsorbent material.

17. The method of claim 16 , wherein the first adsorbent material is a pellet carbon, and the second adsorbent material is a granular carbon.

18. The method of claim 15 , wherein the change in cross-sectional area in the transition zone is stepped in the direction from the inlet to the outlet.

Assignments (6)
SECURITY INTEREST Recorded Aug 1, 2024
From: PHINIA JERSEY HOLDINGS LLC
To: BANK OF AMERICA, N.A.
Reel/Frame 068324/0623 →
SECURITY INTEREST Recorded Aug 1, 2024
From: PHINIA JERSEY HOLDINGS LLC
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION
Reel/Frame 068324/0658 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2024
From: PHINIA HOLDINGS JERSEY LTD
To: PHINIA JERSEY HOLDINGS LLC
Reel/Frame 067592/0662 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2024
From: PHINIA DELPHI LUXEMBOURG SARL
To: PHINIA HOLDINGS JERSEY LTD
Reel/Frame 067592/0801 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 11, 2024
From: DELPHI TECHNOLOGIES IP LIMITED
To: PHINIA DELPHI LUXEMBOURG SARL
Reel/Frame 067865/0695 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 8, 2022
From: OSMEDA, MICHAL; WIATR, ARKADIUSZ
To: DELPHI TECHNOLOGIES IP LIMITED
Reel/Frame 061027/0593 →
Cited By (1)
US 12,523,190