IP Library Granted Patent US 9,592,321
Granted Patent B2
US 9,592,321 · App. 14/206,586 · Granted Mar 14, 2017

Apparatus and method for hydrating a particulate biomaterial with a liquid biomaterial

Inventors: Benjamin B. Anderson (Wheeling, IL); Kevin C. Geppert (Eagan, MN); Thomas A. Kirk (Hastings, MN); Huadong Lou (Plymouth, MN); Mark Stevenson (Cottage Grove, MN)
Assignee: NORDSON CORPORATION
A61L27/3691A61B17/8827A61J1/2096A61M39/223B01F3/2021B01F5/0685B01F13/0023B01F15/0225B01F15/0258A61J1/2062A61M2039/229B01F2215/0029
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Quick Facts
Patent No.
US 9,592,321
App. No.
14/206,586
Granted
Mar 14, 2017
Kind
B2
Abstract

An apparatus and method for hydrating a particulate biomaterial with a liquid biomaterial includes a vacuum device and a valve for withdrawing a gas from the particulate biomaterial and introducing the liquid biomaterial. The valve includes a hub, a valve body, a particulate port, a vacuum port, and a liquid port. The valve body selectively moves between first and second positions. The valve body at least partially defines a first passage and a second passage. The particulate port, the vacuum port, and the liquid port are each configured to fluidly connect to a particulate container, the vacuum device, and the liquid container, respectively. In the first position, the first passage fluidly connects the vacuum port to the particulate port for withdrawing the gas from the particulate container. In the second position, the second passage fluidly connects the liquid port to the particulate port for hydrating the particulate biomaterial.

Claims (37)

1. An apparatus for hydrating a particulate biomaterial with a liquid biomaterial, the apparatus comprising:

a vacuum device configured to generate a vacuum therein; and

a valve for withdrawing a gas from the particulate biomaterial and introducing the liquid biomaterial to the particulate biomaterial, the valve comprising:

a hub;

a valve body movably coupled to said hub and configured to selectively move between a first position and a second position, said valve body at least partially defining a first passage and a second passage;

a particulate port configured to fluidly connect to a particulate container holding the particulate biomaterial therein;

a vacuum port configured to fluidly connect to said vacuum device such that said first passage fluidly connects said vacuum port to said particulate port when said valve body is in said first position for withdrawing the gas from the particulate container, said vacuum port and said particulate port further defining said first passage when said valve body is in said first position;

a liquid port configured to fluidly connect to a liquid container holding the liquid biomaterial therein such that said second passage fluidly connects said liquid port to said particulate port when said valve body is in said second position for withdrawing the liquid biomaterial from the liquid container, through said second passage, and to the particulate container for hydrating the particulate biomaterial; and

a first check valve provided within said valve body and configured to open under influence of the vacuum within said vacuum port for withdrawing the gas from said particulate container and further configured to close in an absence of the vacuum within said vacuum port to maintain a vacuum within said particulate container.

2. The apparatus of claim 1 wherein said valve body is rotatably coupled with said hub and configured to selectively rotate about a rotational axis between said first position and said second position.

3. The apparatus of claim 2 wherein said valve body defines said vacuum port, at least a portion of said vacuum port extends parallel to said rotational axis, and said vacuum port is configured to rotatably connect to said vacuum device in a first direction for rotatably disconnecting said vacuum device in a second direction opposite from said first direction.

4. The apparatus of claim 3 wherein said valve body rotates in said second direction from said first position to said second position, and said vacuum port is configured to rotatably disconnect from said vacuum device in said second direction and move said valve body from said first position to said second position while disconnecting said vacuum device therefrom.

5. The apparatus of claim 1 wherein said valve body is linearly coupled with said hub and configured to selectively translate between said first position and said second position.

6. The apparatus of claim 1 further comprising:

a second check valve in fluid communication with said first passage and an ambient environment, said second check valve configured to close under influence of the vacuum within said vacuum port for withdrawing the gas from the particulate container and configured open to the ambient environment under influence of a pressurized gas for discharging the pressurized gas from said first passage and into the ambient environment.

7. The apparatus of claim 6 further comprising:

a plurality of vent passages at least partially defined by at least one of said hub and said valve body, said plurality of vent passages fluidly connected between said second check valve and the ambient environment for venting the pressurized gas to the ambient environment.

8. The apparatus of claim 1 wherein said vacuum device is a first syringe including a first syringe body and a first piston such that withdrawing said first piston within said first syringe body generates the vacuum within said first syringe body.

9. The apparatus of claim 1 further comprising said particulate container.

10. The apparatus of claim 9 wherein said particulate container is a second syringe configured to hold the particulate biomaterial.

11. The apparatus of claim 1 further comprising said liquid container.

12. The apparatus of claim 11 wherein said liquid container is a third syringe configured to hold the liquid biomaterial.

13. A valve for withdrawing a gas from a particulate biomaterial and introducing a liquid biomaterial to the particulate biomaterial, the valve comprising:

a hub;

a valve body movably coupled to said hub and configured to selectively move between a first position and a second position, said valve body at least partially defining a first passage and a second passage;

a particulate port configured to fluidly connect to a particulate container holding the particulate biomaterial therein;

a vacuum port configured to fluidly connect to a vacuum device for generating a vacuum such that said first passage fluidly connects said vacuum port to said particulate port when said valve body is in said first position for withdrawing the gas from the particulate container, said vacuum port and said particulate port further defining said first passage when said valve body is in said first position;

a liquid port configured to fluidly connect to a liquid container holding the liquid biomaterial therein such that said second passage fluidly connects said liquid port to said particulate port when said valve body is in said second position for withdrawing the liquid biomaterial from the liquid container, through said second passage, and to the particulate container for hydrating the particulate biomaterial; and

a first check valve provided within said valve body and configured to open under influence of the vacuum within said vacuum port for withdrawing the gas from said particulate container and further configured to close in an absence of the vacuum within said vacuum port to maintain a vacuum within said particulate container.

14. The valve of claim 13 wherein said valve body is rotatably coupled with said hub and configured to selectively rotate about a rotational axis between said first position and said second position.

15. The valve of claim 14 wherein said valve body defines said vacuum port, at least a portion of said vacuum port extends parallel to said rotational axis, and said vacuum port is configured to rotatably connect to the vacuum device in a first direction for rotatably disconnecting said vacuum device in a second direction opposite from said first direction.

16. The valve of claim 15 wherein said valve body rotates in said second direction from said first position to said second position, and said vacuum port is configured to rotatably disconnect from the vacuum device in said second direction and move said valve body from said first position to said second position while disconnecting the vacuum device therefrom.

17. The valve of claim 13 wherein said valve body is linearly coupled with said hub and configured to selectively translate between said first position and said second position.

18. The valve of claim 13 further comprising:

a second check valve in fluid communication with said first passage and an ambient environment, said second check valve configured to close under influence of the vacuum within said vacuum port for withdrawing the gas from the particulate container and configured open to the ambient environment under influence of a pressurized gas for discharging the pressurized gas from said first passage and into the ambient environment.

19. The valve of claim 18 further comprising:

a plurality of vent passages at least partially defined by at least one of said hub and said valve body, said plurality of vent passages fluidly connected between said second check valve and the ambient environment for venting the pressurized gas to the ambient environment.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 3, 2014
From: ANDERSON, BENJAMIN B.; GEPPERT, KEVIN C.; KIRK, THOMAS A.; LOU, HUADONG; STEVENSON, MARK
To: NORDSON CORPORATION
Reel/Frame 032596/0112 →
Continuity (2)
Provisional Application 61794743 · Mar 15, 2013
Related Publication 20140261082A1 · Sep 18, 2014