Flow modification in body lumens
The devices and methods described herein include an implantable body lumen fluid flow modulator including an upstream flow accelerator separated by a gap from a downstream flow decelerator. The gap is a pathway to entrain additional fluid from a branch lumen(s) into the fluid stream flowing from the upstream flow accelerator to the downstream flow decelerator.
1. A device for altering fluid flow through a body lumen coupled to a branch lumen, the device comprising:
a flow modulator comprising a frame configured to be positioned within the body lumen, the frame comprising a retrieval portion, an upstream nozzle, and a downstream diffuser, the upstream nozzle having an inlet, an outlet, and a cross-sectional flow area that converges from the inlet towards the outlet, the downstream diffuser having an entry, an exit, and a cross-sectional flow area that diverges from the entry towards the exit, the retrieval portion located upstream of the upstream nozzle and having a cross-sectional area that diverges toward the inlet of upstream nozzle, the flow modulator comprising a coating on the upstream nozzle and the downstream diffuser,
wherein the frame is uncoated at portions extending around a circumference of the downstream diffuser where the downstream diffuser is diverging to define a gap between the inlet of the upstream nozzle and the exit of the downstream diffuser, and
wherein the flow modulator is configured to receive a fluid stream through the retrieval portion, accelerate the fluid stream passing through the upstream nozzle towards the downstream diffuser to generate a low pressure region in a vicinity of the gap and to entrain additional fluid from the branch lumen into the fluid stream as the fluid stream passes into the entry of the downstream diffuser.
2. The device of claim 1 , wherein the cross-sectional flow area at the outlet of the upstream nozzle is less than the cross-sectional flow area at the entry of the downstream diffuser.
3. The device of claim 1 , wherein the outlet of the upstream nozzle is configured to be positioned downstream from where the branch lumen first intersects with the body lumen.
4. The device of claim 1 , wherein the gap is configured to begin downstream from where the branch lumen first intersects with the body lumen.
5. The device of claim 1 , wherein the upstream nozzle and the downstream diffuser are configured to share a common, collinear flow axis with the body lumen's flow axis.
6. The device of claim 1 , wherein the upstream nozzle and the downstream diffuser are formed from a single frame.
7. The device of claim 6 , wherein the coating comprises biocompatible material.
8. The device of claim 6 , wherein the flow modulator is formed from a metal frame.
9. The device of claim 1 , wherein the retrieval portion is configured to couple to a retrieval device that pulls the retrieval portion to compress the flow modulator into a collapsed delivery state.
10. The device of claim 9 , wherein the retrieval mechanism comprises a hook.
11. The device of claim 1 , wherein the downstream diffuser's length is greater than the upstream nozzle's length.
12. The device of claim 1 , wherein the upstream nozzle's average angle of convergence is greater than the downstream diffuser's average angle of divergence.
13. The device of claim 1 , wherein the outlet of the upstream nozzle is a distance less than 15 mm from the entry of the downstream diffuser.
14. A method for altering fluid flow through a body lumen coupled to a branch lumen, the method comprising:
positioning a flow modulator within a body lumen, the flow modulator comprising a frame comprising, an upstream nozzle and a downstream diffuser, the upstream nozzle being positioned in a first body lumen portion and having an inlet, an outlet, and a cross-sectional flow area that converges from the inlet towards the outlet, the downstream diffuser being positioned in a second body lumen portion and having an entry, an exit, and a cross-sectional flow area that diverges from the entry towards the exit, the flow modulator comprising a coating on the upstream nozzle and the downstream diffuser, wherein the frame is uncoated at portions extending around a circumference of the downstream diffuser where the downstream diffuser is diverging to define a gap between the inlet of the upstream nozzle and the exit of the downstream diffuser;
receiving a fluid stream through the inlet; and
accelerating the fluid stream passing through the upstream nozzle towards the downstream diffuser to generate a low pressure region in the vicinity of the gap and to entrain additional fluid from the branch lumen into the fluid stream as the fluid stream passes into the entry of the downstream diffuser.
15. The method of claim 14 , wherein positioning the flow modulator within the body lumen comprises positioning the upstream nozzle in an inferior vena cava such that the inlet is upstream from a branch off to a renal vein and the downstream diffuser in the inferior vena cava such that the exit is downstream from the branch off to the renal vein, wherein the gap is in a vicinity of the branch to the renal vein, thereby drawing blood from the renal vein and improving kidney functionality.
16. The method of claim 15 , wherein drawing the blood from the renal vein to improve kidney functionality further reduces excess fluid to treat heart failure.
17. The method of claim 14 , wherein the flow modulator modulates fluid flow without any input from an external energy source.
18. The method of claim 14 , wherein the flow modulator modulates fluid flow without any moving parts.
19. The method of claim 14 , wherein the flow modulator further comprises a retrieval portion located upstream of the upstream nozzle and having a cross-sectional area that diverges toward the inlet of upstream nozzle, the method further comprising pulling the retrieval portion to compress the flow modulator into a collapsed delivery state.
20. A device for altering fluid flow through a body lumen coupled to a branch lumen, the device comprising:
a frame configured to be positioned within the body lumen, the frame comprising an upstream nozzle and a downstream diffuser, the upstream nozzle having an inlet, an outlet, and a cross-sectional flow area that converges from the inlet towards the outlet, the downstream diffuser having an entry, an exit, and a cross-sectional flow area that diverges from the entry towards the exit; and
a biocompatible coating on the upstream nozzle and the downstream diffuser,
wherein the frame is uncoated at portions extending around a circumference of the downstream diffuser where the downstream diffuser is diverging to define a gap between the inlet of the upstream nozzle and the exit of the downstream diffuser, and
wherein the flow modulator is configured to receive a fluid stream through the inlet of the upstream nozzle, accelerate the fluid stream passing through the upstream nozzle towards the downstream diffuser to generate a lower pressure region in a vicinity of the gap and to entrain additional fluid from the branch lumen into the fluid stream as the fluid stream passes into the entry of the downstream diffuser.
21. The device of claim 20 , wherein the cross-sectional flow area at the outlet of the upstream nozzle is less than the cross-sectional flow area at the entry of the downstream diffuser.
22. The device of claim 20 , wherein the outlet of the upstream nozzle is configured to be positioned downstream from where the branch lumen first intersects with the body lumen.
23. The device of claim 20 , wherein the gap is configured to begin downstream from where the branch lumen first intersects with the body lumen.
24. The device of claim 20 , wherein the upstream nozzle and the downstream diffuser are configured to share a common, collinear flow axis with the body lumen's flow axis.
25. The device of claim 20 , wherein the frame comprises a metal frame.
26. The device of claim 20 , wherein the frame comprises a retrieval portion located upstream of the upstream nozzle and having a cross-sectional area that diverges toward the inlet of upstream nozzle.
27. The device of claim 26 , wherein the retrieval portion is configured to couple to a retrieval device that pulls the retrieval portion to compress the frame into a collapsed delivery state.
28. The device of claim 20 , wherein the downstream diffuser's length is greater than the upstream nozzle's length.
29. The device of claim 20 , wherein the upstream nozzle's average angle of convergence is greater than the downstream diffuser's average angle of divergence.
30. The device of claim 20 , wherein the outlet of the upstream nozzle is a distance less than 15 mm from the entry of the downstream diffuser.