SYSTEM AND METHOD FOR PRODUCING CLEAN, SUSTAINABLE, AND ACCESSIBLE ENERGY WITH AIR, SAND, AND WATER (ASW) AS POWER SOURCES, A SOYOS ENVIRONMENT CLEAN ENGINE (SECE)
20230400014 · 2023-12-14
Inventors
Cpc classification
F05B2260/4022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/40312
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G7/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A system and method for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power source a soyos environment clean engine (SECE) having a clean stroke maker system (CSM) mounted on a solid upraise structure (SUS), to produce continuous mechanical energy for inner work and input to a plurality of rotary table systems (RTS), transforming to rotational energy for more power and coupled to the clean energy collector (CEC) with a plurality of retract clutch system (RCS). The clean energy collector (CEC) is connected to a customized Torque-Speed builder (CTS) for stable power, generating continuous clean, sustainable, and available energy for various carbon-zero emissions activities. A plurality of internal control using air, sand, and water (ASW) interconnected and interacted with the air force, gravity force and water force creating compressed air energy, hydro energy, mechanical energy for internal exchange and clean power delivery.
Claims
1. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) comprises: a solid upraise structure (SUS); a clean stroke maker (CSM) system; a plurality of automatic internal command system (ICS); the solid upraise structure (SUS) wherein a plurality of solid horizontal support is aligned vertically, a plurality of left-wing attached in serial with a plurality of right-wing forming the main structure size receiving the clean stroke maker (CSM) system, an upward tank is attached at the top to be at the center, a downward tank mounted at the bottom, located bellow the upward tank and seated on top of a plurality of strong customized footing aligned equally on left and right side forming a quadrilateral wherein solid vertical stand support being attached and can be detached; the clean stroke maker (CSM) system being attached to the solid upraise structure (SUS) comprises a plurality of soyos drop piston (SDP) being aligned and mounted parallelly wherein a plurality of rotary table system (RTS), a plurality of principal capsule catcher system (CCS) attached to the top of the solid upraise structure (SUS); the plurality of automatic internal command system (ICS) being communicating in order with a mechanical motion of a plurality of soyos drop piston (SDP) to a plurality of mechanical actuator controls activating and deactivating a plurality of a clutch system, opened and closed water in the upward tank.
2. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) comprising: a solid upraise structure (SUS); a clean stroke maker (CSM) system; a plurality of automatic internal command system (ICS); a clean energy collector (CEC); a customized Torque-Speed builder (CTS); the solid upraise structure (SUS) with a left-wing extended with a right-wing both aligned parallelly and elevated mounted with the clean stroke maker (CSM) system vertically attached supporting the total structure of the soyos environment clean engine (SECE) in elevation; the plurality of automatic internal command system (ICS) connected with internal command line attached to a plurality of soyos drop piston (SDP) in serial of two with the motion of both capsules, air force created in chamber, and water flow of both discharge tanks; the plurality of rotary table system (RTS) located at the bottom is at the center of both capsules connected with a chain wire system coupled at the center to at least a clean energy collector (CEC) outputting clean energy collected to the customized Torque-Speed builder (CTS).
3. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 1, wherein the clean strokes maker system (CSM) comprises a plurality of soyos drop piston (SDP), each plurality of the soyos drop piston comprises at least: one principal vertical travel line (VTL); one secondary vertical travel line (VTL); one rotary table system (RTS); one principal capsule catcher system (CCS); two ahead angle extender system; the principal vertical travel line (VTL) is elevated parallelly with the secondary vertical travel line (VTL), both aligned and connected with a power transmission chain drive with at least one rotary table system (RTS); the principal capsule catcher system (CCS) is mounted on top of the principal vertical travel line (VTL) with a capsule arm elongated with a finger; the two ahead angle extender system wherein: at least one is mounted at the top of the principal vertical travel line (VTL), and the second is mounted at the top of the secondary vertical travel line (VTL); both vertical travel line (VTL) comprises at least one main solid support located at the top of each connected with an angle adjuster block mounted with hand customized angle on the main solid support, the ahead angle extender system being adjusted giving angle alignment orientation to the capsules size change, and rotary table system (RTS) size change.
4. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 1, wherein an upward tank attached to the top at the center of the solid upraise structure (SUS) comprising: at least one tank body connected at the center on top with at least one drop control case facing the bottom, at least one pipe air control connected to the opposite side both being extended to the left and right with a fill-up manifold elongated and being connected to a plurality of a discharge line of the main water pump (MWP) system; the at least one bottom booster tank installed at the bottom of the front upward tank at the center connected to the discharge manifold on the left and right side and extended to be connected with a plurality of wye filler system (WFS).
5. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 1, wherein a downward tank attached to the bottom comprising: at least one tank body; a fill up manifold connected to a plurality of drop control pipe mounted to a plurality of drop containment tank, two open maintenance access system being installed at the left end and right end of drop fill up manifold; the at least one discharge manifold connected with a plurality of water pulling control, two open maintenance access system being installed at the end on left and right discharge manifold; the at least one bottom booster tank installed and opened inside the bottom center of the main tank and connected to a left discharge manifold pipe and to a right discharge manifold pipe; the at least one drop control pipe installed on top at the center of the tank comprising at least one left main pipe, at least one right main pipe both connected to a plurality of drop reservoir discharge, at least one left two way drop pipe oriented to the bottom of the tank, at least one right two way drop pipe oriented to the bottom of the tank both horizontally attached to the left main pipe and right main pipe; at least two antifreeze reservoir tank both installed on top of the tank body and connected together at the bottom with one communication pipe, a closure cap with a thermostat is installed on top of the right antifreeze reservoir to control the downward tank filling with temperature, the left antifreeze reservoir comprising a second closure cap with an extend pipe to the communication pipe connected to the right antifreeze reservoir, one discharge pipe with at least one valve oriented on the bottom of the tank installed on the middle of the communication pipe.
6. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) of claim 1, wherein a plurality of soyos drop piston (SDP) comprises a plurality of a principal capsule catcher system (CCS) attached to the top of solid upraise structure (SUS); wherein each principal capsule catcher system (CCS) comprising at least one left arm with a finger, at least one right arm with a finger; a spring stabilizer installed between both arms, a solid extend bar elevated on top of the spring stabilizer, a mechanical wire support attached to a solid extend bar, a left swivel pulley attached to the left and a right swivel pulley attached to the right both being attached to the solid extend bar, a strong mechanical wire attached to the bottom of the left arm and the right arm, a mechanical wire pipe juxtaposed the bottom of both left and right mechanical wire to one mechanical wire going through a mechanical wire pipe to mechanicals control switches.
7. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 2, comprising a clean energy collector (CEC) comprising: a main shaft wherein the main sprocket is mounted at the center; a plurality of input sprocket being horizontally aligned on both sides of the main sprocket with a left flywheel and a right flywheel; the plurality of input sprocket is connected with a chain to a plurality of a retract clutch system (RCS) receiving a sequential mechanical rotational energy output driving the input sprocket; the main sprocket at the center receiving continuous clean energy to be coupled with a chain to a driven sprocket of a customized Torque-Speed builder (CTS).
8. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 2, comprising the customized Torque-Speed builder (CTS) wherein: a plurality of driving gear are connected to a plurality of driver gear forming a plurality of output delivery, coupled with a plurality of compound gear and a plurality of idle gear allowing change in rpm and power output; a plurality of gear ratio adjuster outputting a high torque shaft delivery and a high rpm shaft delivery; a plurality of flywheel are mounted and connected to form an adjusted system to install different size of the component customizing output to low torque shaft delivery and to low rpm shaft delivery for soyos environment clean engine (SECE) being multifunction clean power output.
9. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) of claim 3, comprising a plurality of soyos drop piston (SDP) wherein each soyos drop piston (SDP) comprise: a principal vertical travel line (VTL); a secondary vertical travel line (VTL); a principal capsule tank (PCT) retainer; the principal vertical travel line (VTL) mounted with a wye filler system (WFS) at the top, at least two solid bars mounted vertically connecting the entry to the interior of a brake-pump chamber (BPC) to the principal capsule tank (PCT), at the bottom; the secondary vertical travel line (VTL) is mounted at least with two spring absorbers both attached to the top being aligned with at least two spring absorber seats, and at least one solid tube actuator aligned with the secondary capsule tank (SCT) is connected to a mechanical cable to deactivate a lower pyramidal long tube and upper pyramidal long tube disengaging a retract clutch system (RCS) from a rotary table system (RTS), at least two solid bars mounted vertically wherein the secondary capsule tank (SCT) being attached with wheel system to be at the opposite position of the principal capsule tank (PCT); the principal capsule tank (PCT) retainer being installed proximate to the final top position of the principal capsule tank (PCT) elongated with two arms, using the upper-end movement of the principal capsule tank (PCT) to set fingers to retain, in opposite using a second soyos drop piston (SDP) engaging at the entry of brake-pump chamber (BPC) a long flat tube to release fingers.
10. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) of claim 3, comprising a plurality of rotary table system (RTS), each plurality of the rotary table system (RTS), comprise a strong drive central sprocket being mounted at the center with wire bearing and a retract clutch system (RCS), communicatively with the automatic internal command system (ICS) engaging and disengaging the rotary table to the clean energy collector (CEC), all attached to the top of a plurality of solid support, the driving sprocket being at the center-aligned with the two solid elevated bar on each side being connected with principal capsule tank (PCT) to be in opposite position with secondary capsule tank (SCT), the rotary table is connected to both capsules with a solid power transmission long chain wire drive traversing the central sprocket and wire baring.
11. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 9, the principal capsule tank (PCT) comprising the main tank, a cone-shaped on the bottom, a square pyramid with a least one principal filling hole and a secondary filling hole located on the top, the bottom is mounted with the left retainer seat and the right retainer seat, a quick drop valve being mounted at the bottom of the main tank wherein a disc with a spring forming a seal is attached, an extender opener mounted to be aligned with solid tube actuator on brake-pump chamber (BPC), a floater mounted inside of the tank, a filler head located on top of the tank and aligned with the two filling hole, the principal capsule tank is mounted on the principal vertical travel line (VTL) with left and right wheel system.
12. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 4, comprising the secondary capsule tank (SCT) comprising a body cylinder located at the center, a top cone mounted with a loading door oriented to the top, a bottom cone mounted with an offload door oriented to the bottom, a level meter mounted with sign glass, a left spring absorber seat mounted with a right spring absorber seat to be aligned with both the spring absorber located at the top, a chain cable attaches is mounted on the top cone, a sand retainer elongated to exterior with the tight throttle, the secondary capsule tank (SCT) is mounted on the secondary vertical travel line (VTL) with left and right wheel system being operated at the opposite direction of the principal capsule tank (PCT).
13. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 5, wherein a plurality of the wye filler system (WFS) attached to the top, each wye filler system (WFS) comprising a main one-way valve comprises a disc mounted with a spring to a disc seat, a tube extender with a wire, connected the floater extender bar to control open and close of the disc, the left discharge pipe elongated to the right discharge pipe both connected to the main pipe being mounted to the upward tank discharge manifold line.
14. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 9, comprising: a plurality of retract clutch system (RCS), each retract clutch system (RCS) configured to engage and to disengage the clutch system with pulling mechanical wire system, comprising: a lower pyramidal long tube; an upper pyramidal long tube both connected to a mechanical cable on both side; a flexible disc; a solid disc; a mechanical cable pipe; a mechanical cable; a right solid support; a right cable pulley system; a left solid support; a left cable pulley system; a retract and extender control; the lower pyramidal long tube mounted horizontally proximate to the center, the upper pyramidal long tube mounted horizontally proximate to the center both pyramidal long tube located between the flexible disc and the solid disc; the left solid support and the right solid support being configured to support and to carry the mechanical cable pipe orientation, a pyramidal long tube retainer installed between the right solid support and the solid disc, on right side, two mechanical cable connected the both end of upper and lower pyramidal long tube traversing the right cable pulley system to the mechanical cable pipe to be connected to the retract clutch take off mechanical control, on left side, two mechanical cable connected the both end of upper and lower pyramidal long tube traversing the left cable pulley system to the mechanical cable pipe being connected to the a mechanical switch installed at the top of the principal capsule brake-pump chamber (BPC) entry.
15. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 9, comprising a brake-pump chamber (BPC) attached at the bottom of the principal vertical rail, comprising: at least one main chamber; one cap mounted at the top; one drop containment tank attached to the bottom; a capsule brake entry configured to the shape of the principal capsule tank (PCT); a principal capsule drop valve housing oriented from top to bottom; a large head flat pump rod extended inside the main chamber; a left absorber head and a right absorber head installed at the bottom of the main chamber; a water control connected to drop containment tank; at least one solid tube actuator installed on left of the cap and oriented vertically from top to the bottom, a mechanical switch installed at the top of the capsule brake entry wherein a long flat tube being install on a solid support forming a reverse Tee; an extension spring to extend and retract the solid tube traversing the solid support to connect with the center of the long flat tube, the opposite end forming a tee and the two control cable being connected.
16. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 15, comprising a Mechanical switch installed at the top of the capsule brake entry comprises: a long flat tube being installed to extended support on large solid support forming a reverse Tee; a mechanical cable connected the long flat tube with one pulley oriented to the tube line to the second principal capsule tank retainer, a second pulley oriented to the tube line to the second retract clutch system (RCS); an extended spring is installed on the solid tube extended in tee between the top two cable line connection and the extended tube connected the long flat tube.
17. A system for producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 9, comprising a plurality of main water pump (MWP) system wherein each of the plurality main water pump (MWP) system comprising: a strong cover with an inclined surface installed at the top of a large water cylinder pump both mounted at the bottom of a drop containment tank with a drain hole; a long piston rod extended in a brake-pump main chamber ended with a large head flat pump rod wherein a plurality of air push hole, a cone-shaped seat and a pulling connection head installed on the top, a left spring absorbers head and a right spring absorbers head mounted on top of the strong cover to receive the bottom of the large head flat pump rod; a plurality of an exhaust air system wherein each is located at the bottom of the strong cover facing the ground and extended with a pipe ending with an exhaust control valve mounted in the brake-pump main chamber; a discharge line with a water pumping control wherein, one-way valve mounted with a control air system; a fill line with a water pulling control wherein one-way valve mounted with a control air system.
18. A method for internal communication producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) comprising: a method of communication for operating a soyos environment clean engine (SECE); a method of communication for operating a clean energy collector (CEC); the method of communication for operating a soyos environment clean engine (SECE) wherein a starting module sending a communication signal to the first module to lunch a soyos drop piston (SDP1) of a first independent system wherein: a first option response of not being ready sending a message back to restart the starting module, the second option message being ready communicating directly with a second module to transfer a mechanical energy wherein a first message sending to a third module on a rotary table system 1 (RTS1) with clutch communicating with C and the second message communicating to a different two modules at the same time comprising: a first module deactivate clutch system on soyos drop piston (SDP1) receiving a message and communicating directly with the third module rotary table system (RTS1) with clutch, a second module to activate soyos drop piston (SDP2) with Clutch 2 receiving a message and communicating directly with a first module of a second independent system starting a second independent system 2, the module soyos drop piston (SDP2) communicating directly with a module to transfer a mechanical energy of system 2 wherein a first message sending to a module of rotary table system (RTS2) with clutch communicating with D and the second message sent to communicate directly to a different two modules at the same time comprising a module deactivating clutch system on soyos drop piston (SDP2) receiving a message and communicating directly with a module rotary table system (RTS2) with clutch, a module activate soyos drop piston (SDP3) with Clutch 3 receiving a message and communicating directly with a first module soyos drop piston (SDP3) of an independent system 3, starting a third independent system 3, the module soyos drop piston (SDP3) receiving a message and communicating directly with a module transfer a mechanical energy of system 3 wherein a first message sending to a module rotary table system (RTS3) with clutch communicating with E and the second message sent to communicate directly to a different two modules at the same time comprising a module deactivating clutch system on soyos drop piston (SDP3) receiving a message and communicating directly with a module of rotary table system (RTS3) with clutch, a module activate soyos drop piston (SDP4) with Clutch 4 receiving a message and communicating directly with a first module soyos drop piston (SDP4) of an independent system 4, starting a fourth independent system 4, the module soyos drop piston (SDP4) receiving a message and communicating directly with a module to transfer a mechanical energy of system 4 wherein a first message sending to a module of rotary table system (RTS4) with clutch receiving a message and communicating with F and the second message sent to communicate directly to a different two modules at the same time comprising a module deactivating clutch system on soyos drop piston (SDP4) receiving a message and communicating directly with a module of rotary table system (RTS4) with clutch, a module to activate soyos drop piston (SDP5) with Clutch 5 communicating with a first module soyos drop piston (SDP5) of an independent system 5, starting a fifth independent system 5, the module soyos drop piston (SDP5) receiving a message and communicating directly with a module to transfer a mechanical energy of system 5 wherein a first message sending to a module of rotary table system (RTS5) with clutch receiving a message and communicating with G and the second message sent to communicate directly to a different two modules at the same time comprising a module deactivating clutch system on soyos drop piston (SDP5) receiving a message and communicating directly with a module of rotary table system (RTS5) with clutch, a module to activate soyos drop piston (SDP6) with Clutch 6 receiving a message and communicating with a first module soyos drop piston (SDP1) of the first independent system 1, starting a new cycle, a stop module communicating with a module locating a position wherein a first option of message sending back to the stop module to repeat the message, the position located a message sending to an activate stop module receiving a message and responding directly sending a message to a located position module activate soyos drop piston (SDP) with clutch to receiving a message and responding to stop the engine; the method of communication for operating a clean energy collector (CEC) comprises a plurality of input messages to a plurality of a receiving message wherein a continuous receiving module sends a message to a first decision module communicating back with a receiving module fixing the input and restarting automatically, sending a message to a second decision module wherein: the first message sending to an rpm receiving module and a second message sending to a torque receiving module.
19. A method for internal communication producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 18 comprising: a communication for operating a soyos environment clean engine (SECE); a communication for operating a clean energy collector (CEC); a step and communication for activating and deactivating a clutch on a rotary table system (RTS); a communication of one complete cycle timeline for operating a clean stroke maker system (CSM); the step and communication for activating and deactivating a clutch on a rotary table system (RTS) comprises: a first step of communication wherein a module activates soyos drop piston (SDP) with clutch sending a message communicating with a principal module rotary table system (RTS) with clutch receiving a message and responding to a module connecting with the rotary table system (RTS) engaging both modules, the second step of communication retracting a clutch wherein a module deactivate clutch system on soyos drop piston (SDP) receiving a message and communicating with a principal module rotary table system (RTS) with clutch receiving a message and responding to a module disconnecting from rotary table system (RTS).
20. A method for internal communication producing clean, sustainable, and accessible energy with air, sand, and water (ASW) as power sources, a soyos environment clean engine (SECE) as claimed in claim 19 comprising: a communication of one complete cycle timeline for operating a clean stroke maker (CSM) system; the cycle timeline shows the entire one cycle operating a clean stroke maker system (CSM) wherein a central timing module C receives a plurality of operation message from the duration of a plurality input module T wherein receiving a plurality timing message from a plurality activity module soyos drop piston (SDP).
Description
BRIEF DESCRIPTION OF DRAWINGS
[0010] The accompanying drawings, incorporated in and constitute a part of this disclosure, illustrate various embodiments of the present invention. The drawings contain representations of various trademarks and copyrights represented owned by the applicants. All rights to various trademarks and copyrights represented herein are vested in the applicants' property. The Applicants retain and reserve all rights in their trademarks and copyrights included herein and grant permission to reproduce the material only in connection with reproduction of the granted patent and for no other purpose.
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DETAILED DESCRIPTION OF THE INVENTION
[0052] The following is an alternate, exemplary description of the present invention. It is intended to further demonstrate the spirit of the present invention and various details that may be implemented in different embodiments and are not intended to limit the scope of the present invention.
[0053] The present invention is to be described in detail and is provided to establish a thorough understanding of the present invention. There may be aspects of the present invention that may be practiced or utilized without implementing some features as they are described. It should be understood that some details have not been described in detail to not unnecessarily obscure the focus of the invention. References to “the preferred embodiment,” “one embodiment,” and “some embodiments” should be considered to be illustrating aspects of the present invention that may potentially vary in some instances and should not be considered to be limiting to the scope of the present invention as a whole.
[0054] In the universe, there are many types of energy. According to the first law of thermodynamics, known as the law of conservation of energy, energy can neither be created nor destroyed, but energy changes from one form to another form of energy. The energy from burning fossil fuels like coal, petroleum, and natural gas, has been the most used during the last centuries and causing more pollution to atmospheres. We will not use energy from any burning natural resource in this present invention. We will create compressed air, hydro, and mechanical power for internal work exchange and transformation with a challenging and essential choice of carbon emission-free with the best natural resources as fuel.
[0055] In this present invention, we also take advantage of the natural physical properties of air, sand, and water (ASW) as a power source to generate clean power, a soyos environment clean engine (SECE). These natural resources are available, safe, reliable, cheap, efficient, and sustainable with atmospheric pressure and gravity for any operation in this present invention and in any place around the world. The present invention on climate change considered a top decision on choosing chemical and physical properties of these natural resources not hurting the environment: “Air-Sand-Water” (ASW).
[0056] Water is a Newtonian and essentially incompressible fluid that can build hydropower under gravitation and can be pumped with a piston. Freshwater melts at 0 deg. Celsius and the seawater with a salinity freeze around −1.8 deg. Celsius. With a boiling point of 100 degrees Celsius, the earth possesses approximately 97 percent water, making it surrounds our planet earth's best selection of soyos environment clean engine (SECE).
[0057] Sand is solid with the ability to be poured like a liquid and take the entire shape of the capsule. Sand in a small tank produces more weight than water in the same tank. 1 m3 of water weight 1,000 kg, and 1 m3 of sand weight 1,620 kg allowing less material with less weight to build the secondary capsule tank (SCT). The best solution option used to power under gravity is the opposite empty principal capsule tank (PCT) to travel back to the top initial position and minimize the loss of energy during the transfer of mechanical energy best option of soyos environment clean engine (SECE).
[0058] Air is the composition of atmospheric pressure and can be found everywhere on earth for functioning the present invention. Air has mass, can be expanded by occupying any open space exerting pressure, and can be compressed. Air is an invisible mixture of gases more compressible than water, a Newtonian fluid with more advantages that surrounds the earth with easy access and better choice of soyos environment clean engine (SECE).
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[0061] A plurality of a principal capsule catcher system (CCS) 260 attached to the top of solid upraise structure (SUS) 100 for retaining in standby, a principal capsule tank (PCT) 280 and releasing with a motion of the previous soyos drop piston (SDP) 202 for a continuing cycle. A plurality of automatic internal command system (ICS) 236 as showing in
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[0065] The operations method of communication: method 900, method 940, method 960, and method 980 presented below are intended to be illustrative. Some embodiments may be accomplished with one or more additional operations not described; they may be implemented in processing using a mechanical, digital, analog signal, switches devices, and/or without one or more of the operations discussed. One or more processing devices may include one or more devices executing some or all the operations of the method 900, 940, 960, and 980 may include one or more devices. Configurated through hardware, firmware, and/or software to be specifically designed to execute one or more of the operations of these methods of communication. The order in which the operations of these methods are illustrated in
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[0067] At the neutral position, all principal capsule tanks (PCT) are attached and filled with water at the top in an initial position. All secondary capsule tanks (SCT) are located and filled with sand at the recommended weight at the bottom in the initial position and all main water pump (MWP) system primed with water.
[0068] When the user pushes a start engine: a message sends to an operation 901 for step 1. The message is not accurate at operation 901. A communication is sent back to the start point. The message receiving and accurate at operation 901, one principal capsule tank (PCT) on soyos drop piston is released to be the first capsule to drop starting the first cycle.
[0069] The user can stop the engine by pushing the stop button and sending a decision message at operation 935, locating the bottom position of the secondary capsule. The message is not accurate. Not finding the position of the secondary capsule tank (SCT) at operation 935, communicating back to the stop sensor from repeating the task. The message receiving is accurate at operation 935; a communication sent to activate a stop for a located position at operation 936 to stop the engine can be performed for any secondary capsule tank (SCT) located at the bottom during any decision time to stop the engine.
[0070] At operation 902, mechanical energy is transferred and transformed into rotational energy in operation 903, sending energy to be collected at C. The second message at operation 902 is sent to perform two operations simultaneously: first releasing a principal capsule tank (PCT) 2 and engaging a clutch 2 at operation 904. The second task at operation 905 sends a message disengaging clutch 1 at operation 903. To stop the engine at this step, the signal sending from operation 936 stops operation 904. At operation 906, principal capsule tank (PCT) 2 is released with clutch 2 as part of a soyos drop piston 2. At operation 907, mechanical energy is transferred and transformed into rotational energy at operation 908, sending energy to be collected at D. The second message at operation 907 is sent to perform two operations at the same time: the first task at operation 909 is releasing a principal capsule tank (PCT) 3 and engaging clutch 3 going to A for continuous operation, the second task at operation 910 sending a message disengaging the clutch 2 at operation 908. To stop the engine at this step, the signal sending from operation 936 continues to B, stopping operation 909. The flow chart in
[0071] At operation 912, mechanical energy is transferred and transformed into rotational energy at operation 913, sending energy to be collected at E. The second message at operation 912 is sent to perform two operations at the same time: the first task at operation 914 is releasing a principal capsule tank (PCT) 4 and engaging clutch 4 going to A for continuous operation, and the second task at operation 915 sending a message disengaging the clutch 3 at operation 913. To stop the engine at this step, the signal sending from operation 936 continues to B, stopping operation 914. The flow chart in
[0072] At operation 917, mechanical energy is transferred and transformed to rotational energy at operation 918, sending energy to be collected at F. The second message at operation 917 is sent to perform two operations at the same time: the first task at operation 919 is releasing a principal capsule tank (PCT) 5 and engaging clutch 5 going to A for continuous operation, and the second task at operation 920 sending a message disengaging the clutch 4 at operation 918. To stop the engine at this step, the signal sending from operation 936 continues to B, stopping operation 919. At operation 921, releasing a principal capsule tank (PCT) 5 with a clutch 5 as part of a soyos drop piston 5.
[0073] At operation 922, mechanical energy is transferred and transformed to rotational energy in operation 923, sending energy to be collected at G. The second message at operation 922 is sent to perform two operations at the same time: the first task at operation 924 is releasing a principal capsule tank (PCT) 6 and engaging clutch 6 going to A for continuous operation, the second task at operation 925 sending a message disengaging the clutch 5 at operation 923. To stop the engine at this step, the signal sending from operation 936 continues to B, stopping operation 924. The flow chart in
[0074] At operation 926, a last principal capsule tank (PCT) 6 with a clutch 6 as part of a soyos drop piston 6 releasing to complete the first cycle. At operation 927, mechanical energy is transferred and transformed into rotational energy at operation 928, sending power to be collected at H. The second message at operation 927 is sent to perform two functions at the same time: the first task at operation 929 is releasing a principal capsule tank (PCT) 1 and engaging clutch 1 going to A to start a second cycle for continuous operation, the second task at operation 930 sending a message disengaging a clutch 6 at operation 928.
[0075] According to the present invention, communications operations may be performed by a module using a programmed switch with different signal sensors controlled to start/end sequences, and the one cycle timing depend on the Height of the upward structure and the Weight of the capsule to perform internal work and energy produced. To stop the engine at this step, the signal from operation 936 continues to B, stopping operation 929 and ending the first cycle of the clean stroke maker. The flow chart in
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[0079] At step 1, operation 930 performed a task communicating with timing 701, delivering mechanical energy for internal work exchange and interest to a user. At the end of step 1, the next step is automatically starting.
[0080] In step 2, operation 932 performed a task communicating with timing 702, delivering mechanical energy for internal work exchange and interest to a user. At the end of step 2, the next step is automatically starting.
[0081] At step 3, operation 934 performed a task communicating with timing 703, delivering mechanical energy for internal work exchange and interest to a user. At the end of step 3, the next step is automatically starting.
[0082] At step 4, operation 936 performed a task communicating with timing 704, delivering mechanical energy for internal work exchange and interest to a user. At the end of step 4, the next step is automatically starting.
[0083] At step 5, operation 938 performed a task communicating with timing 705, delivering mechanical energy for internal work exchange and interest to a user. At the end of step 5, the next step is automatically starting.
[0084] At step 6, operation 940 performed a task communicating with timing 706, delivering mechanical energy for internal work exchange and interest to a user. At the end of step 6, the next step is automatically starting.
[0085] In step 7, the total timing communicated for one cycle at operation 700 is summed up of timing 701, plus timing 702, plus timing 703, plus timing 704, plus timing 705, and timing 706.
[0086] According to this present invention, some embodiment can complete a cycle with a method using: two, three, four, five, six, seven, eight, nine, ten, twelve soyos drop piston (SDP) or with a method of a plurality of soyos drop piston (SDP) to make one complete clean stroke cycle the example illustrated in this present invention utilize a method of six soyos drop piston (SDP) to complete one cycle.
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[0104] The present invention is the production of clean energy. The present invention is the production of sustainable energy. The present invention produces accessible energy increasing electricity availability with less cost. The present invention is an innovative and complex choice combining natural resources available with no pollution. It is the best fit for our environment with zero carbon emission and without compromising the ability of future generations as a power source. The present invention is a method for internal communication producing clean, sustainable, and accessible energy, a soyos environment clean engine (SECE). For the present disclosure, a system and method for producing clean, sustainable, accessible energy with “Air-Sand-Water” (ASW) as a power source to create compressed air energy, hydro energy, mechanical energy for internal work exchange, and clean power delivery. A soyos environment clean engine (SECE) aims to improve energy production technology, using water weight in a specific configurated upward structure with the advantage of gravity to create mechanical energy. This energy produced is converted to rotary energy for the interest to be transformed to clean energy and create compressed air energy at the end of the translation movement of the capsule with the advantage of atmospheric pressure. Creating compressed force in the configurated chamber with the spring absorption stops the principal capsule. It pumps the amount of water displaced in the principal capsule back to the upward tank. The chamber is filled with air (atmospheric pressure) before the capsule enters. More pressure is built with the presence of the capsule velocity at the entry as pressure is inversely proportional to the speed. More force opposing the movement of the capsule is created to stop the principal capsule. The pressure built in the chamber is oriented to the air exhaust configured to allow the pump piston rod and a plurality of air push holes in the section to be pushed down. Creating a force to pump the water into the water pump system (WPS) to the upward tank to compensate for the amount displaced to do the work and exhaust additional extra air force. The second force for pushing the water pump piston to its final position is the weight of the principal capsule tank (PCT) entering the chamber, which moves the remind position of the rod to its final position. The two systems of spring absorption install for the final stop of the principal capsule tank (PCT) and on top of the secondary capsule tank (SCT), allowing a complete stop. The hydro energy is created in the upward tank discharge to quickly fill the principal capsule tank (PCT). The second hydro energy is created at the discharge of the downward tank. At the sucking lines of each water pump system (WPS), pull the pump rod to the top with the movement of the principal capsule tank (PCT), traveling back to its initial position for the next cycle. Engaging the top actuator during the secondary capsule tank (SCT) pull back.
OVERVIEW
[0105] A plurality of a principal capsule tank (PCT) of the present invention filled with water each to provide more weight and hold at an initial position on top with the capsule catcher system (CCS). A plurality of a secondary capsules tank (SCT) aligned at an initial position at the bottom filled up with sand adjusted to be superior to the total empty weight of the principal capsule tank (PCT). When the user pushes the start button first principal capsule tank (PCT) is released from the principal capsule catcher system (CCS), traveling from top to the bottom. This travel produces mechanical energy transmitted to the rotary table to be converted to rotary energy. The total friction of the system plus the total weight of the secondary capsule tank (SCT) are always less than the full principal capsule tank (PCT) filled with water. The principal capsule tank (PCT) enters a Brake-Pump Chamber (BPC) at the end of this first piston. The internal command mechanical switch at the entry of the chamber is a double activator communicating simultaneously with the second soyos drop piston (SDP) to release his principal capsule catcher system (CCS) to drop the second principal capsule tank (PCT). The second is to connect a second clutch to a second rotary table coupled to a clean energy collector (CEC). On the opposite side, at the same time, the secondary capsule tank (SCT) engages the push connection on top to disconnect the clutch to free the first soyos drop piston (SDP). A rearrangement comprises: emptying the principal capsule tank (PCT) and traveling back to the principal capsule tank (PCT) to be filled, ready to repeat the same stroke cycle. This cycle is repeated one soyos drop piston (SDP) after another from first to last and the last to first for continuous cycle operation. The first capsule enters the Brake-Pump chamber at a large speed. The entry creates a strong force in the chamber that is inversely proportional to the capsule's speed configured to provide the opposite force to stop the principal capsule tank (PCT). At the same time, the principal capsule drop valve is pushed with a long bare oriented in the chamber for opening a dropped valve to empty the principal capsule tank (PCT). The water is dropped and orientated to the fill line of the downward tank. The principal capsule tank (PCT) will completely stop with the spring absorber seat on the bottom of the chamber and the spring absorber seat on top of the secondary capsule tank (SCT). The water is a drop, oriented to the downward tank to be pulled into the water pump system (WPS) to pump back to the upward tank. The weight of the secondary capsule tank (SCT) is superior to the empty principal capsule tank (PCT). It is configurated to allow the principal capsule tank (PCT) to drop the water completely within the distance of the chamber. The system balance and the principal capsule tank (PCT) will travel back to the top initial position and push the mechanical control to pull back the large flat head of the pump piston to suck the water from the downward tank for the next cycle of pumping. This first initial position is named the “pullback system.”
[0106] A system and method for producing clean, sustainable, and accessible energy with air, water, and sand as a power source to create compressed air energy, hydro energy, mechanical energy for internal work exchange, and clean power delivery. A soyos environment clean engine (SECE) combines a method using water, air, and sand in an enclosed space configured as a clean power source. A way of mounting water in an enclosed space to generate mechanical energy. A way of mounting sand in the tank to customize timing and create mechanical energy is needed to travel back the principal capsule tank in initial positions and pull water into the pump chamber. Opening a tank to the atmospheric air to allow the capsule in motion to break and pump water back to the top tank. Multiple units of the present invention can be installed and attached to the solid upward structure for easy maintenance access and changing different sizes.
[0107] Even though numerous characteristics and advantages of the present invention have been outlined in the preceding description, together with details of the structure and function, the disclosure is illustrative only. Change may be made in detail, especially in the matter of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the term in which the appended claims are expressed.