KINETIC PUMPING SYSTEM
20230358203 · 2023-11-09
Inventors
Cpc classification
F05B2260/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/4021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/301
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a kinetic pumping system that transforms the kinetic energy contained in fluid waves to generate a positive reciprocating displacement flow with control modulation with controlled flow modulation. This system is one more alternative in the green technologies market that contributes to solving the problem of climate change and provides an alternative to eliminate the carbon footprint by replacing traditional fluid pumping systems. Its objective is to provide a pumping system with a positive reciprocating kinetic displacement, capable of generating flow and pressure that can be used or the desalination of seawater and for the generation of electrical energy and that, due to its configuration, overcomes the limitations of conventional systems, including those categorized as land, as well as maritime or coastal. Said system comprises a container tank, a support or chassis, a mobile ramp, an electromechanical activation module, a turntable, a mobile part made up of two positive displacement pumps and a sphere for pressure regulation and fluid storage.
Claims
1. A kinetic pumping system comprising: a container tank (100) for the storage of the fluid and where the oscillating column is generated; a support or chassis (200), to which the various components that are placed inside and on top of the container tank (100) are attached; a mobile ramp (240) for the impulse of fluids with which the movement of masses of water is generated during the operation of the system; an electromechanical activation module (250) that provides the initial effort with which the oscillating column of fluid is generated inside the container tank (100); a rotating plate (260) with which the circular movement is transformed into linear-horizontal movement with which the mobile ramp (240) works; a horizontal tank for the equalization of fluids (320) where the flows generated during the operation of the system are mixed; two positive displacement pumps (340), which drive the fluids with a determined flow and pressure; a sphere for pressure regulation and fluid storage (330), which stabilizes the necessary flows and pressures;
2. The pumping system of claim 1 wherein the container tank (100) comprises a base (120) which provides stability and a central body (110) with rigid walls high enough to contain the components of the system and the necessary fluid for its operation.
3. The pumping system of claim 2 wherein the central body (110) comprises a series of orifices (130, 150, 160, 170) on the surface of its walls, a first orifice (130) is arranged, preferably in the lower lateral part of the central body (110) and its function is to regulate the fluid level inside the container tank (100), a valve is attached to said orifice (130); In the upper part of the walls of the central body (110) there are some orifices (150, 160, 170) that allow the securing of other components of the system, preferably two (170) are arranged at the shorter ends of the central body (110).) and one (150) in one of the longest walls; the other orifices (160) are arranged in pairs, at each of the ends of the longest walls of the central body (110), so that they coincide in position and height; for their part, the orifices (170) allow the entry of fluids and these are coupled, preferably pipe assembly flanges (180).
4. The pumping system of claim 1 wherein the support or chassis (200) is made up of rigid bars or profiles, which in turn comprises a base (210) attached to the interior of the central part (110) of the container tank (100); a central frame (220) that provides rigidity and joins the base (210) of the support with an upper part (230), which has a length similar to that of the base (210).
5. The pumping system of claim 1 wherein the electromechanical activation module (250) comprises an electric motor (251) preferably one-third horsepower (⅓ hp), which is coupled to a transmission (252) of low revolutions and high torque by means of a belt (253) and a date (254) in charge of transmitting the circular movement generated in the transmission (252).
6. The pumping system of claim 5 wherein the electromechanical activation module (250) is fastened to the bars or profiles of the upper part (230) of the support or chassis (200) through mechanical fastening means (231) in the orifices (160) arranged in the upper part of the longest walls of the central body (110) of the container tank (100).
7. The pumping system of claim 1 wherein the turntable (260) on one of its faces is attached to the axis (254) and on the other it has points that facilitate fixing and allow the amount of horizontal displacement to be adjusted.
8. The pumping system of claim 1 wherein the mobile ramp (240) is attached at its lower end to the base of the support or chassis (210) and inside the central body (110) of the container tank (100) through rigid profiles; its upper end joins a slotted arm (242), which is fastened to the turntable (260) through its fixing points, preferably by means of a bolt.
9. The pumping system of claim 1 wherein the aforementioned two positive displacement pumps (340) comprise a piston (314) and a compensator (310), where the compensator (310) in turn comprises three orifices, one for fluid filling (315), a valve for the supply of air that regulates the amount of ballast (317) and a orifice for draining fluid from the compensator (315); for its part, the piston (314) comprises two parts, a hollow outer guide (312) and an inner hollow piston (311), in the center of which is a first valve actuator (318); the hollow outer guide (312) comprises a second valve actuator (313) in which the fluid inlet orifice is located; positive displacement pumps.
10. The pumping system of claim 9, wherein the valve actuators (318 and 313) comprise a bolt and a ball for sealing, the first obstructs the relative movement of the second, while the latter opens and closes the valve actuator inlet to the rhythm of the fluid's oscillating column.
11. The pumping system of claim 1 wherein the horizontal tank for equalization (320) is attached to the upper part (230) of the support or chassis (200) and preferably has four orifices, two of which are connected to the positive displacement pumps through a third valve actuator (323), which in turn comprises a pressure gauge (322), and the pipe (321); a third orifice allows the integration of a manometer for measuring the pressure of the fluid inside (325); the fourth orifice connects it to the sphere (330) for pressure regulation and fluid storage through tubing (324).
12. The pumping system of claim 11, wherein the valve actuator (323) comprise a bolt and a ball for sealing, the first obstructs the relative movement of the second, while the latter opens and closes the valve actuator inlet to the rhythm of the fluid's oscillating column.
13. The pumping system of claim 1 wherein the sphere for pressure regulation and fluid storage (330) comprises a lower orifice (333), through which it is connected to the horizontal tank for pressure and flow equalization (320) by means of a flange system; Likewise, it comprises three orifices in the upper part which house a high pressure air valve (337) that constitutes the pneumatic part of the pumping system, a safety valve (338) that allows compensating the pressure in the sphere and a pressure gauge (339) registering air pressure; on its sides the sphere (330) comprises two sensors (334 and 335) to identify the fluid level inside the sphere, preferably electro levels, and a fluid level viewer (336) for visual monitoring of the fluid level inside the sphere.
14. The pumping system of claim 13 wherein the flange system is made up of a first flange (332), which holds the lower central orifice (333) of the sphere (330) to the upper orifice of a cross flange (331) to allow the integration of the system to other processes or the connection with other systems depending on the application or the purpose for which it is intended to be used, through the lateral orifices of said cross flange (331); the lower orifice of the cross flange (331) is attached to the upper orifice of a duct with two flanges (327), which in turn is connected to a piping system (326 and 324) attached to the lower orifice of the horizontal tank (320).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] A preferred implementation of the invention is illustrated by the following drawings, which are for illustrative purposes only and are in no way intended to be an exhaustive description of the invention.
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0022] The kinetic pumping system (400) comprises: a container tank (100), made of durable, rigid and resistant materials, preferably metallic, which houses all the components of the pumping system of the present invention, while fulfilling the function of storage of the fluid that will be pumped during its operation, more preferably water to process, in addition to said container tank (100) is where the oscillating column is generated from which the kinetic energy with which the pumping system operates is extracted; a support or chassis (200), made of rigid and resistant materials, preferably metallic, to which the various components that are placed inside and on top of the container tank (100) of the system are attached, which are secured through mechanical fastening, preferably by means of flanges or screws; a mobile ramp (240) for the impulse of fluids with which the movement of water masses is generated during the operation of the system, said movement is useful for the generation of kinetic energy; an electromechanical activation module (250) whose function is to provide the initial effort, generating the oscillating column of fluid is generated inside the container tank (100) during the operation of the pumping system; a rotating plate (260), of rigid materials, preferably metallic, with which the circular movement is transformed into a rotative movement with which the mobile ramp (240) works for the impulse of fluids, said a rotative movement displaces the mass of water inside of the container tank (100) and makes it possible for the oscillating column to occur; a horizontal tank for the equalization of fluids (320) where the flows generated during the operation of the system of the present invention are mixed, in an intermittent fashion, said tank gives this system the characteristic of continuous flow; two positive displacement pumps (340), performing the function of driving the fluids in the system with a certain flow and a certain pressure, which in turn is established in the design of each unit depending on its purpose and need; a sphere for pressure regulation and fluid storage (330), fulfilling the function of stabilizing the flows and pressures that are necessary depending on the use made of the pumping system of the present invention; the horizontal tank (320), the two pumps (340) and the sphere (330) are joined by means of rigid and/or flexible tubes, as well as through other means of connection existing in the state of the art, preferably through flanges.
[0023]
[0024] The base (120) can take any shape that allows it to fulfill its function and secure the other elements of the container tank (100), preferably the base (120) is rectangular and has orifices (140) to facilitate its transfer. The central body (110) can take any shape that allows it to fulfill its function, preferably it takes the shape of a state or disc-rectangle (rectangular with rounded corners), and is attached to the base (120), through the means known or to be known in the state of the art, preferably through the welding technique, with which both elements are joined in a single body.
[0025] The central body (110) comprises a series of orifices (130, 150, 160, 170) on the surface of its walls, a first orifice (130) is arranged, preferably in the lower lateral part of the central body (110) and its function is to regulate the level of the fluid inside the container tank (100), allowing the fluid to be emptied or maintained up to the level required for the proper functioning of the system; whereby a valve, preferably of the ball type, is attached to said orifice (130) through known or unknown means. Preferably in the upper part of the walls of the central body (110) some orifices (150, 160, 170) are arranged that allow the securing of some components of the pumping system of the present invention, preferably said orifices are arranged, two (170) at the shorter ends of the central body (110) and one (150) at one of the longer walls. Out of those orifices, some (150) (170) and (180) are at different heights. The remaining orifices (160) are arranged in pairs, at each of the ends of the longest walls of the central body (110), so that they coincide in position and height. In the orifices (170) they allow the entry of fluids and to these are attached, preferably pipe assembly flanges (180).
[0026]
[0027]
[0028] Preferably, the motor (251) is chosen from those known or to be known in the state of the art and its power will depend on the dimensions of the pumping system of the present invention, as well as the needs of the process implemented by it. More preferably, motor (251) is one-third horsepower (⅓ hp) and is coupled to transmission (252) via belt (253). The transmission (252) is a low-revolution, high-torque unit that gives the system the necessary effort to generate the energy-based oscillating column of this system. The rotary axis (254) is made of rigid and resistant materials known or to be known, preferably steel, its function is to transmit the relative circular movement that is generated in the transmission (252) The electromechanical activation module (250) is subject to the structure of the upper part (230) of the support or chassis (200) through known or to be known mechanical fastening means; preferably said module (250) is fixed on a base of bars or profiles secured to the upper part of the central body (110) of the container tank (100) through mechanical fastening means (231) in the orifices (160) arranged in the upper part of the longest walls of said central body (110).
[0029]
[0030]
[0031]
[0032] The components that make up the pumps and their technical characteristics allow the generation of the flow and the pressure of the pumping system through its up and down movement, which is induced by the fluid filling-emptying-filling sequence at the rate of flow. oscillating column, which acts as a fluid load unit. The positive displacement pumps are connected through a third valve actuator (323) and a piping system (321) to a horizontal tank for pressure and flow equalization (320) located between said pumps.
[0033] Preferably, the horizontal tank for equalization (320) is attached to the upper part of the support or chassis and preferably has four orifices, two of which are connected to the positive displacement pumps through the third valve actuator (323) and the pipe (321); in turn, the third valve actuator (323) comprises inside a bolt and a ball for sealing, the first obstructs the relative movement of the second, while the latter opens and closes the valve actuator inlet to the rhythm of the oscillating column of the fluid; as well as a pressure gauge (322) for registering the pressure generated by the positive displacement pumps; a third orifice of the horizontal tank (320) allows the integration of a manometer for measuring the pressure of the fluid inside (325); Finally, the fourth orifice of the tank connects it to the sphere (330) for pressure regulation and fluid storage through the pipe (324).
[0034]
[0035] The flange system that connects the sphere (330) with the horizontal tank (320), preferably consists of a first flange (332), which holds the lower central orifice (333) of the sphere (330) to the upper orifice of an integrated cross flange (331) with the objective that the pumping system of the present invention could be integrated into further processes or connected to other systems depending on the application or the purpose for which it is intended to be used, through the side orifices of said cross flange (331); the lower orifice of the cross flange (331) is attached to the upper orifice of a duct with two flanges (327), which in turn is connected to a piping system (326 and 324) attached to the lower orifice of the horizontal tank (320), preferably in the duct with two flanges (327) a fourth valve actuator can be integrated.