Electrical power generation system using renewable energy
09835133 · 2017-12-05
Assignee
Inventors
Cpc classification
Y02E10/74
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F03D3/0418
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F05B2240/133
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2220/708
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J4/00
ELECTRICITY
F03D3/0427
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H02J1/00
ELECTRICITY
F03D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J3/00
ELECTRICITY
H02J4/00
ELECTRICITY
F03D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The electrical power generation system using renewable energy is particularly adapted to provide electrical power to an independent or remotely situated electrical device such as a street light, emergency call box, or illuminated road sign. The system includes a pivotally mounted venturi with vanes assuring that the venturi is oriented into the prevailing wind. A vertical axis wind turbine is installed in the venturi throat, and drives a shaft extending through the column upon which the venturi is installed to a generator at the base of the column. The venturi and vanes may include photovoltaic cells thereon for further electrical power. The venturi may be heated from a geothermal source, and may include a variable diameter internal wall to adjust the cross-sectional area of the throat of the venturi. The use of functionally graded materials and other phase change materials may also improve the performance of the device.
Claims
1. An electrical power generation system using renewable energy, comprising: a venturi having an inner wall, an outer wall spaced from the inner wall, an inlet, and a throat, the throat having a smaller diameter than a diameter of the inlet, wherein the outer wall of the venturi is substantially rigid, the inner wall of the venturi is substantially flexible and diametrically adjustable, and the outer wall and the inner wall extend completely about the entire venturi; a vertical axis wind turbine disposed entirely within the smaller diameter throat of the venturi to generate electrical power by rotation of the wind turbine by air flowing through the throat of the venturi; and geothermal heating means communicating with the outer wall of the venturi to convectively heat the air flowing through the venturi to increase the velocity of the air flowing through the throat of the venturi to increase the rotational speed of the wind turbine to increase the electrical power generated by rotation of the wind turbine.
2. The electrical power generation system using renewable energy according to claim 1, wherein the flexible, diametrically adjustable inner wall of the venturi further comprises a phase change material (PCM) including a fabric substrate coated with microspheres, the microspheres including paraffinic hydrocarbons, a surfactant, a dispersant, an anti-foam agent, and a thickener.
3. The electrical power generation system using renewable energy according to claim 1, further including a plurality of adjustable struts disposed between the outer wall and the inner wall of the venturi substantially throughout the entirety thereof, the adjustable struts selectively adjusting the diameter of the entire inner wall of the venturi.
4. The electrical power generation system using renewable energy according to claim 1, further comprising: a functionally graded material (FGM) disposed within the venturi, the functionally graded material being adapted to vary the thermal insulation properties thereof according to variations in ambient temperature.
5. The electrical power generation system using renewable energy according to claim 1, further comprising: at least one wind vane extending from a rearward portion of the venturi; and a plurality of photovoltaic cells disposed upon the venturi and the at least one wind vane to additionally generate electrical power.
6. The electrical power generation system using renewable energy according to claim 1, further comprising; a plurality of photovoltaic cells disposed upon the venturi to additionally generate electrical power.
7. An electrical power generation system using renewable energy, comprising: a venturi having an outer wall, an inlet, and a throat, the throat having a smaller diameter than a diameter of the inlet, wherein the venturi has a substantially rigid outer wall and a substantially flexible, diametrically adjustable inner wall; a plurality of adjustable struts disposed between the outer wall and the inner wall of the venturi substantially throughout the entirety thereof, the adjustable struts selectively adjusting the diameter of the entire inner wall; a vertical axis wind turbine disposed entirely within the throat of the venturi; and a phase change material (PCM) disposed within the venturi, the PCM being adapted for varying the thermal insulation properties thereof according to variations in ambient temperature to adjust the rotational speed of the vertical axis wind turbine to increase electrical power generated by rotation of the wind turbine.
8. The electrical power generation system using renewable energy according to claim 7, further comprising: geothermal heating means communicating with the outer wall of the venturi to convectively heat the air flowing through the venturi to increase the velocity of the air flowing through the throat of the venturi to increase the rotational speed of the vertical axis wind turbine to increase the electrical power generated by rotation of the wind turbine.
9. The electrical power generation system using renewable energy according to claim 7, wherein the flexible, diametrically adjustable inner wall of the venturi further comprises the PCM, the PCM including a fabric substrate coated with microspheres, the microspheres including paraffinic hydrocarbons, a surfactant, a dispersant, an anti-foam agent, and a thickener.
10. The electrical power generation system using renewable energy according to claim 7, further comprising: at least one wind vane extending from a rearward portion of the venturi; and a plurality of photovoltaic cells disposed upon the venturi and the at least one wind vane to additionally generate electrical power.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3) Unless otherwise indicated, similar reference characters denote corresponding features consistently throughout the attached drawings.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(4) Embodiments of an electrical power generation system using renewable energy can provide electrical power for an independent or remotely located device, such as a street light, traffic information sign, emergency call box, lighting for a campground, and/or other similar installations, such as where the delivery of electrical power from a centralized power station can be impractical or unavailable.
(5) The venturi 16 includes the central throat portion 26 having a narrower diameter than a diameter of the inlet portion 20. A wind turbine 28 is installed in the throat 26, to take advantage of the greater velocity of air flowing through the narrower throat 26 of the venturi 16. The wind turbine 28 is affixed, such as by being mechanically linked by a mechanical linkage 27 (e.g., conventional gearing, etc.), to a vertical shaft 30 to rotate about an axis, such as the vertical axis Y, with the shaft 30 rotating with the wind turbine 28, such as by the mechanical linkage 27. In this configuration, it will be see that the rotational axis of the wind turbine 28 is perpendicular to the axis of the venturi 16. The wind turbine 28 can also be affixed to the vertical shaft 30, such as by being mechanically linked by the mechanical linkage 27 (e.g., conventional gearing, etc.), to rotate about an axis X, such as a horizontal axis, with the shaft 30 rotating with the wind turbine 28, such as by the mechanical linkage 27. The shaft 30 extends down the pole or column 12 and is mechanically linked, such as by a mechanical linkage 31 (e.g., conventional gearing, etc.) to a generator, alternator, or dynamo 32 at the base of the pole or column 12 to transfer the rotational power from the shaft 30 to the generator, alternator, or dynamo 32. The generator, alternator, or dynamo 32 in turn generates and supplies electrical current to an electrical storage device 34, such as electrical storage battery or batteries 34, to supply electrical energy to the light 14, or other electrically powered device, such as when the wind turbine 28 is not in operation.
(6) The electrical power generation system 10 can provide additional electrical energy when sufficient light is available, by means of a plurality of photovoltaic cells 36 disposed upon the body of the venturi 16 and upon the wind vanes 22 thereof. The photovoltaic cells 36 may be connected to the electrical storage battery 34 by conventional wiring (not shown).
(7) Heat energy can also be provided to the venturi 16, such as by means of a geothermal supply line 38a and return line 38b that connect conventionally to a subterranean source of heat 39, for example, such as to provide and circulate the heat through the venturi 16, such as between an outer wall 40 and an inner wall 42 of the venturi 16, as illustrated in
(8) The venturi 16 is free to pivot or rotate to face the prevailing wind, in accordance with the vanes 22 at the trailing end 24 of the venturi 16. The upper ends of the two pipes 38a, 38b connect to one another at the top of the stationary pole 12, as shown more clearly in
(9) The addition of heat to the air flowing through the venturi 16 can serve to increase air velocity through the venturi throat 26 due to the expansion of the air in the venturi throat 26 as it is heated. The heated air can increase the speed of rotation, or the rotational speed, of the wind turbine 28 as can increase the electrical power generated, such as by increasing rotation of the shaft 30, by enhancing an increase in the velocity of the airflow, or the air flowing, in the venturi throat 26 over the case with air in the venturi throat 26 at ambient temperature. Further, the heat provided by the geothermal supply lines 38a and 38b can serve to reduce or substantially prevent the accumulation of ice in the electrical power generation system 10 during freezing conditions, thereby assisting the wind turbine 28 to continue to operate in such freezing conditions. The supply lines 38a, 38b may be formed of high density polyethylene (HDPE) plastic, or other suitable material as desired. The working fluid is preferably water mixed with a suitable percentage of glycol or other agent to lower the freezing temperature of the mixture. A heat exchanger, preferably made from HDPE, can be used for heat exchange. It should be noted that there is no mixing or dispersal of the geothermal working fluid into the venturi 16.
(10)
(11) Using such PCM FGM material 41, such as including a suitable metal layer and ceramic layer, for example, when the trigger temperature is reached, the PCM FGM material 41 “remembers” its initial composition, such as forcing migration of carbides from the mostly metal layer towards the ceramic layer. This can result in a change in the distribution of the different thermal insulating materials, with a change in the thermal insulation capabilities of the material 41 on the inner wall 42. To reverse the process a lower trigger temperature can be selected, for example, for the PCM FGM material 41.
(12) Also, embodiments can include a PCM FGM material 41 that enables the flow of thermal energy therethrough. The venturi 16, such as the inner wall 42, can be desirably constructed with, or have disposed thereon, such PCM FGM material 41, such as oriented to allow heat to pass from the outer, ambient air into the interior of the venturi 16 when the ambient air is warmer than the interior of the venturi 16 in order to enhance the heating of the air flowing through the venturi 16. However, such PCM FGM material 41 can substantially block heat transfer in the opposite direction, i.e., from the interior of the venturi 16 to the ambient air, when the temperature within the venturi 16 is warmer than the ambient air external to the venturi 16. In this manner, the temperature within the venturi 16 can remain elevated to maximize the effect of the heated air to enhance increasing the velocity of the airflow in the venturi throat 16. An example of such PCM FGM material 41 is a material typically formed of a metal and ceramic laminate, and has a predetermined “trigger temperature” causing the migration of carbides from the metal layer toward the ceramic layer to alter the thermal conductivity of the material. Such types of functionally graded material are conventional and known in the art.
(13) Embodiments of the electrical power generation system 10 can also include an inner wall 42 formed of a flexible or substantially flexible material as the material 41 to facilitate adjustment of the inner area of the venturi 16 as a temperature controlled variable inner area of the venturi 16. The inner area of the venturi 16 can be varied, such as to control or adjust the velocity of the air flowing through the venturi 16, depending on type or amount of flow of the air, such as by using struts 44. The struts 44 can selectively adjust the diameter of the inner wall 42 to provide a diametrically adjustable inner wall 42, such as to adjust the velocity of air flowing through the throat 26 of the venturi 16, for example, to selectively increase, maintain or decrease the electrical power generated by rotation of the wind turbine 28 by adjusting the rotational speed of the wind turbine 28, for example. Where the inner area of the venturi 16 is varied, the flexible material as the material 41 can include another type of PCM material that includes a flexible fabric substrate coated with microspheres, with the microspheres containing a PCM of paraffinic hydrocarbons, a surfactant, a dispersant, an anti-foam agent, and a thickener. Such flexible PCM material 41 can also be adapted for varying the thermal insulation properties thereof according to variations in ambient temperature, for example. Also, such flexible PCM material 41, as part of or in conjunction with a substantially flexible inner wall 42, can permit the internal diameter and, thus, the inner area of the venturi 16 to be adjusted, such as by means of the typically relatively small actuator struts 44 disposed between the substantially rigid outer wall 40 and the inner wall 42. In this regard, the flexible fabric PCM material 41 can form the inner wall 42 or can be located on or can be a part of the inner wall 42, and the struts 44 can selectively adjust the diameter of the inner wall 42, for example. The struts 44 can be conventionally operated, e.g., electrical screw jacks or solenoids, hydraulic or pneumatic operation, thermal operation, etc.
(14) Also, a hybrid Functionally Graded Material (FGM) adapted for varying the thermal insulation properties thereof according to variations in ambient temperature, which can respond to a certain trigger temperature, as discussed, can be used as the PCM FGM material 41 on or for all or part of the inner wall 42 when the venturi 16 includes and uses the struts 44 to selectively adjust the diameter of the inner wall 42, for example. In the example illustrated in
(15) It is to be understood that the present invention is not limited to the embodiments described above, but encompasses any and all embodiments within the scope of the following claims.