Single-use stationary bioreactors and mixing vessels
Stationary bioreactors and mixing vessels fitted with single-use flexible bags utilizing wave hydrodynamic principle are described for use in every type of biological process and products.
1. A method of inducing a wave-type mixing motion inside a flexible container comprising:
a. supplying a flat, horizontal stationary surface;
b. placing a flexible container comprising a top and bottom surface on the stationary surface, wherein the flexible container is capable of containing a liquid medium;
c. pivotally attaching at least one movable flap to the stationary surface, wherein the movable flap comprises a rigid surface attached to the stationary surface by a hinge that allows the rigid surface to pivot to apply sufficient force to compress the top surface of the flexible container along an edge and then reverse direction of movement of the flap;
d. operating the at least one movable flap periodically such that a wave type mixing motion of the liquid medium occurs within the flexible container; and
e. wherein the at least one movable flap includes a first moveable flap and a second moveable flap, the first moveable flap mechanically connected to the second moveable flap such that movement of the first moveable flap causes movement of the second moveable flap.
2. A method of inducing a reciprocal mixing motion inside a flexible container comprising:
a. supplying a flat, horizontal stationary surface;
b. placing a flexible container comprising a top and bottom surface on the stationary surface, wherein the flexible container is capable of containing a liquid medium;
c. pivotally attaching at least two movable flaps at opposite ends of the stationary surface, wherein the movable flaps each comprise a rigid surface attached to the stationary surface by a hinge that allows the rigid surface to pivot to apply sufficient force to compress the top surface of the flexible container along an edge and then reverse direction;
d. operating the at least two movable flaps periodically such that a reciprocal mixing motion of the liquid medium occurs within the flexible container; and
e. wherein the at least two movable flaps are mechanically connected such that movement of one of the at least two movable flaps causes movement of the other of the at least two movable flaps.
3. A method of inducing an orbital mixing motion inside a flexible container comprising:
a. supplying a flat, horizontal stationary surface;
b. placing a flexible container comprising a top and bottom surface on the stationary surface, wherein the flexible container is capable of containing a liquid medium;
c. pivotally attaching four movable flaps to the stationary surface, wherein the flaps are attached to the stationary surface by hinges that allow the flaps to pivot to apply sufficient force to compress the top surface of the flexible container sequentially along each edge and then reverse direction;
d. operating the four movable flaps periodically such that an orbital mixing motion of the liquid medium occurs within the flexible container; and
e. wherein opposite flaps of the four movable flaps are mechanically connected such that movement of one of the opposite flaps causes movement of the other of the opposite flaps.
4. A method of inducing a vertical mixing motion inside a flexible container comprising:
a. supplying a flat, horizontal stationary surface;
b. placing a flexible container comprising a top and bottom surface on the stationary surface, wherein the flexible container is capable of containing a liquid medium;
c. pivotally attaching two movable flaps at opposite ends of the stationary surface, wherein the flaps are attached to the stationary surface by hinges that allow the flaps to pivot to apply sufficient force to compress the top surface of the flexible container simultaneously along an edge and then reverse direction
d. operating the two movable flaps periodically such that a vertical mixing motion of the liquid medium occurs within the flexible container; and
e. wherein the two movable flaps are mechanically connected such that movement of one of the two movable flaps causes movement of the other of the two movable flaps.
5. The method of any one of claims 1 to 4 , wherein the movable flap(s) are controlled by an automated mechanism.
6. The method of claim 1 , wherein the at least one movable flap further acts as a sidewall to prevent the flexible container from tipping or falling off of the stationary surface.
7. The method of claim 2 , wherein the at least two movable flaps further act as sidewalls to prevent the flexible container from tipping or falling off of the stationary surface.
8. The method of claim 3 , wherein the four movable flaps further act as sidewalls to prevent the flexible container from tipping or falling off of the stationary surface.
9. The method of claim 4 , wherein the two movable flaps further act as sidewalls to prevent the flexible container from tipping or falling off of the stationary surface.
10. The method of claim 1 , wherein the at least one movable flap is horizontally adjustable along the stationary surface to accommodate flexible bags of different sizes.
11. The method of claim 2 , wherein the at least two movable flaps are horizontally adjustable along the stationary surface to accommodate flexible bags of different sizes.
12. The method of claim 3 , wherein the four movable flaps are horizontally adjustable along the stationary surface to accommodate flexible bags of different sizes.
13. The method of claim 4 , wherein the two movable flaps are horizontally adjustable along the stationary surface to accommodate flexible bags of different sizes.