CONFINED PLUNGING LIQUID JET REACTOR WITH ENERGY RECOVERY
20220176327 ยท 2022-06-09
Inventors
Cpc classification
F15B11/072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F23/23413
PERFORMING OPERATIONS; TRANSPORTING
B01F23/2322
PERFORMING OPERATIONS; TRANSPORTING
F04F1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/53
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23231
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The confined plunging liquid jet reactor with energy recovery includes a downcomer having an upper end, an open lower end, and a gas inlet for receiving gas, the downcomer extending into a liquid reservoir in a tank. A nozzle is mounted on the upper end of the downcomer for receiving a pressurized liquid to generate a liquid jet. The liquid jet impinges on liquid contained within the downcomer, creating turbulence and bubbles to entrain gas introduced through the gas inlet into the liquid reservoir as the jet travels downward in the downcomer. A riser is disposed around the downcomer and defines an annular air lift column. Unentrained gas and liquid exiting the downcomer rises in the air lift column with significant energy, the upper end of the riser being connected to a turbine coupled to a generator to recover energy from the air lift column.
Claims
1. A confined plunging liquid jet reactor with energy recovery, comprising: a tank adapted for holding a reservoir of liquid; a downcomer, the downcomer being a pipe having an upper end and having an open lower end extending into the tank, the downcomer further having a gas inlet for receiving gas from an external source, the downcomer defining a hollow column; a nozzle mounted on the upper end of the downcomer, the nozzle being adapted for receiving a pressurized liquid from an external source and configured to generate a liquid jet directed downward in the hollow column; a riser. the riser being a pipe having opposed upper and lower ends, the riser having a greater diameter than the downcomer and being coaxially disposed around the downcomer, the riser extending deeper into the tank than the downcomer, the lower end of the riser being open so that liquid from the liquid reservoir rises into the riser and into the downcomer, the liquid jet creating turbulence in the liquid in the downcomer to entrain at least some of the gas introduced through the gas inlet into the liquid as the jet travels downward through the downcomer, the riser defining an annular air lift column between the riser and the downcomer, liquid and unentrained gas bubbles exiting the downcomer and rising in the air lift column with significant energy; a turbine in fluid communication with the upper end of the riser, such that movement of the liquid and unentrained gas in the air lift column drives the turbine; and an electrical generator coupled to the turbine, the generator being driven by the turbine to recover energy from the flow of liquid and unentrained gas in the air lift column.
2. The confined plunging liquid jet reactor as recited in claim 1, wherein the tank has a lower end and at least one port is disposed in the lower end of the tank.
3. The confined plunging liquid jet reactor as recited in claim 2, further comprising a pump in fluid communication with the lower end of the tank through the at least one port, the pump being the external source for delivering the pressurized liquid to the nozzle.
4. A confined plunging liquid jet reactor, comprising: a tank adapted for holding a reservoir of liquid; a downcomer, the downcomer being a pipe having an upper end and having an open lower end extending into the tank, the downcomer further having a gas inlet for receiving gas from an external source, the downcomer defining a hollow column; a nozzle mounted on the upper end of the downcomer, the nozzle being adapted for receiving a pressurized liquid from an external source and configured to generate a liquid jet directed downward in the hollow column; a riser. the riser being a pipe having opposed upper and lower ends, the riser having a greater diameter than the downcomer and being coaxially disposed around the downcomer, the riser extending deeper into the tank than the downcomer, the lower end of the riser being open so that liquid from the liquid reservoir rises into the riser and into the downcomer, the liquid jet creating turbulence in the liquid in the downcomer to entrain at least some of the gas introduced through the gas inlet into the liquid as the jet travels downward through the downcomer, the riser defining an annular air lift column between the riser and the downcomer, liquid and unentrained gas bubbles exiting the downcomer and rising in the air lift column with significant energy; and an annular mesh sieve disposed in the annular air lift column and extending between the downcomer and the riser, the annular mesh sieve breaking up the gas bubbles in the air lift column into finer bubbles for entraining the gas bubbles into the liquid in the liquid reservoir.
5. The confined plunging liquid jet reactor as recited in claim 4, wherein the tank has a lower end and at least one port is disposed in the lower end of the tank.
6. The confined plunging liquid jet reactor as recited in claim 5, further comprising a pump in fluid communication with the lower end of the tank through the at least one port, the pump being the external source for delivering the pressurized liquid to the nozzle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
[0012]
[0013]
[0014]
[0015] Similar reference characters denote corresponding features consistently throughout the attached drawings.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0016] As shown in
[0017] The nozzle 12 is vertically oriented and creates a high velocity jet of liquid 14 that impinges into a body of liquid 16 located beneath the nozzle 12. Gas G is drawn into the process near the point of impingement through gas inlet 26, or the gas may be air from the headspace in the downcomer above the liquid 16. The plunging jet 14 impinges into the body of liquid 16, which is confined by the downcomer 18. The downward force of the plunging jet 14 fights buoyancy forces of the entrained gas G within a mixing zone 20. The gas-liquid mixture (G+L) flows down through a pipe flow zone 22, such that the liquid and excess gas both flow downward to exit the downcomer 18 at its open lower end 28 into a riser 30. As shown, the riser 30 is a tube of pipe positioned within tank 24 and having a greater diameter than the downcomer 18. The riser 30 is coaxially disposed around the downcomer 18, which serves as a liquid reservoir, the reservoir serving as the source of the liquid 16 in the downcomer 18 that the jet 14 of pressurized liquid impacts. The open lower end 31 of riser 30 is in open communication with the reservoir of liquid 16 contained in the tank 24. The riser 30 extends deeper into the tank 24 than the downcomer 18. The riser 30 defines an annular air lift column between the downcomer 18 and the riser 30 that provides a path for any gas bubbles exiting the downcomer to rise to the surface of the reservoir of liquid 16 in the tank 24.
[0018] As further shown in
[0019] Since the two-phase gas and liquid mixture (L+G) rises within the riser 30, it carries energy, which, in a conventional CPLJR, is simply lost to fluid resistance, friction and convection. However, as shown in
[0020] The apparatus 10 of
[0021] In the embodiment of
[0022] It is to be understood that the confined plunging liquid jet reactor with energy recovery is not limited to the specific embodiments described above, but encompasses any and all embodiments within the scope of the generic language of the following claims enabled by the embodiments described herein, or otherwise shown in the drawings or described above in terms sufficient to enable one of ordinary skill in the art to make and use the claimed subject matter.