Energy concentration device
09638161 ยท 2017-05-02
Inventors
Cpc classification
F05B2260/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2210/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B10/30
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
F05B2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B35/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
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
F03B13/187
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/1815
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D13/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/30
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
F03B13/1855
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B10/70
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
Y02E60/16
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
Y02P80/10
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
H02J15/006
ELECTRICITY
Y02E70/30
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
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P80/20
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
Y02E10/727
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
F03D9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0118
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An energy concentration device includes a pneumatic cylinder that allows for contact with waving sea water of the nature to make a float device to drive a piston rod to achieve an effect of up and down piston movement so as to realize an effect of pressurization of air inside the pneumatic cylinder, whereby the air may achieve an effect of increase of pressurization level through multi-staged pressurization and an effect of accumulation by being stored in a high-pressure air storage device for the purposes of electrical power generation with the pressurized air and supplying pneumatic power required by other applications, such as automobiles, motorcycles, buses, and factories and also for supplying of pneumatic power to household devices, such as household appliances and pneumatically-operating doors.
Claims
1. An energy concentration device, which uses natural power as power for pressurizing air so as to achieve an effect of air compression and thus achieving concentrated storage of pressurized air energy, which comprises: a plurality of pneumatic cylinders, wherein each of the pneumatic cylinders comprises a top and a bottom and each of the pneumatic cylinders comprises a first end and a second end; the first end of each of the top and the bottom of each of the pneumatic cylinders is provided with a first one-way valve and the second end of each of the top and the bottom of each of the pneumatic cylinders is provided with a second one-way valve; each of the pneumatic cylinders is provided therein with a piston device and the piston device comprises a piston head and a piston rod where an end of the piston rod connected to the piston head; the piston head is at a middle of the pneumatic cylinder in an initial condition and an opposite end of the piston head is provided with a float device; each float device has four corners each of which is provided with a through hole; each of the pneumatic cylinders is provided with an air inlet tube and an air outlet tube; the first one-way valves of the top and the bottom of each of the pneumatic cylinders are connected to the air inlet tube and each of the air inlet tubes is connected to an external air pumping device; the second one-way valves of the top and the bottom of each of the pneumatic cylinders are connected to the air outlet tube; each of the pneumatic cylinders is provided externally with a protection enclosure and the protection enclosure is provided in each of four internal corners thereof with a support post, wherein each of the support posts is received through each of the through holes of the float device; a plurality of pressurization barrels, wherein each of the pressurization barrels comprises a first end and a second end and the first end of each of the pressurization barrels is provided with a first one-way valve and the second end of each of the pressurization barrels is provided with a second one-way valve; an end of each of the pressurization barrels is provided with a pressure indicator gauge; the first one-way valve of each of the pressurization barrels is connected to the air outlet tube of the second end of each of the pneumatic cylinders and the second one-way valve of each of the pressurization barrels is connected to the air inlet tube of the first end of each of the pneumatic cylinders; a high-pressure air storage device, wherein an end of the high-pressure air storage device is provided with at least one first one-way valve and an opposite end of the high-pressure air storage device is provided with a plurality of second one-way valves; the first one-way valve of the high-pressure air storage device is connected via a transmission tube to the second one-way valve of the endmost one of the pressurization barrels; each of the second one-way valves of the high-pressure air storage device is provided with the external transmission tube and an external transmission tube is connectable with an external pneumatic power device; the high-pressure air storage device comprises a pressure indicator gauge and a control device and the control device is operable to control opening/closing of each of the second one-way valves; wherein each of the pneumatic cylinders and each of the pressurization barrels are grouped together as a pressurization system; the pressurization systems are connected in a horizontal direction to each other in a serial connection manner; each of the pneumatic cylinders is provided with a protection enclosure and the protection enclosure is provided in each of four internal corners thereof with a support post with each of the support posts coupled to an inner top end of the protection enclosure; and wherein the float device is contactable with waving sea water of the nature to cause the float device to drive the piston rod to achieve an up-and-down piston movement.
2. The energy concentration device according to claim 1, wherein the first one-way valves are ingress-allowed egress-prohibited one-way check valves and the second one-way valves are egress-allowed ingress-prohibited one-way check valves.
3. An energy concentration device, which uses natural power as power for pressurizing air so as to achieve an effect of air compression and thus achieving concentrated storage of pressurized air energy, which comprises: a plurality of pneumatic cylinders, wherein each of the pneumatic cylinders comprises a top and a bottom and each of the pneumatic cylinders comprises a first end and a second end; the first end of each of the top and the bottom of each of the pneumatic cylinders is provided with a first one-way valve and the second end of each of the top and the bottom of each of the pneumatic cylinders is provided with a second one-way valve; each of the pneumatic cylinders is provided therein with a piston device and the piston device comprises a piston head and a piston rod where an end of the piston rod connected to the piston head; the piston head is at a middle of the pneumatic cylinder in an initial condition and an opposite end of the piston head is provided with a float device; each float device has four corners each of which is provided with a through hole; each of the pneumatic cylinders is provided with an air inlet tube and an air outlet tube; the first one-way valves of the top and the bottom of each of the pneumatic cylinders are connected to the air inlet tube and each of the air inlet tubes is connected to an external air pumping device; the second one-way valves of the top and the bottom of each of the pneumatic cylinders are connected to the air outlet tube; each of the pneumatic cylinders is provided externally with a protection enclosure, the protection enclosure is provided in each of four internal corners thereof with a support post, each of the support posts is received through each of the through holes of the float device; a plurality of pressurization barrels, wherein each of the pressurization barrels comprises a first end and a second end and the first end of each of the pressurization barrels is provided with a first one-way valve and the second end of each of the pressurization barrels is provided with a second one-way valve; an end of each of the pressurization barrels is provided with a pressure indicator gauge; the first one-way valve of each of the pressurization barrels is connected to the air outlet tube of the second end of each of the pneumatic cylinders and the second one-way valve of each of the pressurization barrels is connected to the air inlet tube of the first end of each of the pneumatic cylinders; a high-pressure air storage device, wherein an end of the high-pressure air storage device is provided with at least one first one-way valve and an opposite end of the high-pressure air storage device is provided with a plurality of second one-way valves; the first one-way valve of the high-pressure air storage device is connected via a transmission tube to the second one-way valve of the endmost one of the pressurization barrels; each of the second one-way valves of the high-pressure air storage device is provided with an external transmission tube and the external transmission tube is connectable with an external pneumatic power device; the high-pressure air storage device comprises a pressure indicator gauge and a control device and the control device is operable to control opening/closing of each of the second one-way valves; wherein each of the pneumatic cylinders and each of the pressurization barrels are grouped together as a pressurization system and each of the pressurization system is coupled through vertical stacking on each other; each of the pneumatic cylinders is provided with a protection enclosure and the protection enclosure is provided in each of four internal corners thereof with a support post with each of the support posts extending through an inner top end of the protection enclosure so that the support posts function as rails along which movements can be made; wherein the float device is contactable with waving sea water of the nature to cause the float device to drive the piston rod to achieve up-and-down piston movement.
4. The energy concentration device according to claim 3, wherein the first one-way valves are ingress-allowed egress-prohibited one-way check valves and the second one-way valves are egress-allowed ingress-prohibited one-way check valves.
5. An energy concentration device, which uses natural power as power for pressurizing air so as to achieve an effect of air compression and thus achieving concentrated storage of pressurized air energy, which comprises: a crankcase, wherein the crankcase is provided therein with a crank; the crank is provided, in a spaced manner, with a plurality of connection bars; the crankcase is externally provided with a connection shaft; the connection shaft is coupled to other cranks of the crankcase; a plurality of pneumatic cylinders, wherein each of the pneumatic cylinders comprises a top and a bottom and each of the pneumatic cylinders comprises a first end and a second end; the first end of each of the top and the bottom of each of the pneumatic cylinders is provided with a first one-way valve and the second end of each of the top and the bottom of each of the pneumatic cylinders is provided with a second one-way valve; each of the pneumatic cylinders is provided therein with a piston device and the piston device comprises a piston head and a piston rod where an end of the piston rod connected to the piston head; the piston head is at a middle of the pneumatic cylinder in an initial condition and an opposite end of the piston head is connected to the connection bar of the crankcase; each of the pneumatic cylinders is provided with an air inlet tube and an air outlet tube; the first one-way valves of the top and the bottom of each of the pneumatic cylinders are connected to the air inlet tube and each of the air inlet tubes is connected to an external air pumping device; the second one-way valves of the top and the bottom of each of the pneumatic cylinders are connected to the air outlet tube; a plurality of pressurization barrels, wherein each of the pressurization barrels comprises a first end and a second end and the first end of each of the pressurization barrels is provided with a first one-way valve and the second end of each of the pressurization barrels is provided with a second one-way valve; an end of each of the pressurization barrels is provided with a pressure indicator gauge; the first one-way valve of each of the pressurization barrels is connected to the air outlet tube of the second end of each of the pneumatic cylinders and the second one-way valve of each of the pressurization barrels is connected to the air inlet tube of the first end of each of the pneumatic cylinders; a high-pressure air storage device, wherein an end of the high-pressure air storage device is provided with at least one first one-way valve and an opposite end of the high-pressure air storage device is provided with a plurality of second one-way valves; the first one-way valve of the high-pressure air storage device is connected via a transmission tube to the second one-way valve of the endmost one of the pressurization barrels; each of the second one-way valves of the high-pressure air storage device is provided with the external transmission tube and the external transmission tube is connectable with an external pneumatic power device; the high-pressure air storage device comprises a pressure indicator gauge and a control device and the control device is operable to control opening/closing of each of the second one-way valves; wherein each of the pneumatic cylinders and each of the pressurization barrels are grouped together as a pressurization system and the pressurization systems are connected to each other in a serial connection manner; further, the connection shaft of the crankcase is connectable with an external power device for power generation so as to couple to and drive a rotary device arranged in the external power device, whereby the connection shaft drives the crank of the crankcase to rotate and the piston rod of each of the pneumatic cylinders is connected to the connection bar of the crank of the crankcase so that the piston rod can be driven by the connection bar of the crank to achieve an effect of up and down piston movement; wherein the external power device is a wind power generation device; the wind power generation device comprises blades and a transmission shaft; the wind power generation device comprises a rotor and a dynamo; the rotor is coupled to the transmission shaft; whereby an external airflow, when contacting the blades, drives the transmission shaft to rotate so as to allow the rotor to drive the dynamo to generate electrical power whereby electricity supplied from the dynamo can be used to drive a rotary device to rotate.
6. The energy concentration device according to claim 5, wherein the first one-way valves are ingress-allowed egress-prohibited one-way check valves and the second one-way valves are egress-allowed ingress-prohibited one-way check valves.
7. An energy concentration device, which uses natural power as power for pressurizing air so as to achieve an effect of air compression and thus achieving concentrated storage of pressurized air energy, which comprises: a rocker arm based oscillation device, wherein the rocker arm based oscillation device comprises a pivotal center; an end of the pivotal center is provided with a first bar and an opposite end of the first bar is provided with a universal bearing; an opposite end of the pivotal center is provided with a second bar and an opposite end of the second bar is provided with a float device; a plurality of pneumatic cylinders, wherein each of the pneumatic cylinders comprises a top and a bottom and each of the pneumatic cylinders comprises a first end and a second end; the first end of each of the top and the bottom of each of the pneumatic cylinders is provided with a first one-way valve and the second end of each of the top and the bottom of each of the pneumatic cylinders is provided with a second one-way valve; each of the pneumatic cylinders is provided therein with a piston device and the piston device comprises a piston head and a piston rod where an end of the piston rod connected to the piston head; the piston head is at a middle of the pneumatic cylinder in an initial condition and an opposite end of the piston head is connected to the first bar of the rocker arm based oscillation device; each of the pneumatic cylinders is provided with an air inlet tube and an air outlet tube; the first one-way valves of the top and the bottom of each of the pneumatic cylinders are connected to the air inlet tube and each of the air inlet tubes is connected to an external air pumping device; the second one-way valves of the top and the bottom of each of the pneumatic cylinders are connected to the air outlet tube; a plurality of pressurization barrels, wherein each of the pressurization barrels comprises a first end and a second end and the first end of each of the pressurization barrels is provided with a first one-way valve and the second end of each of the pressurization barrels is provided with a second one-way valve; an end of each of the pressurization barrels is provided with a pressure indicator gauge; the first one-way valve of each of the pressurization barrels is connected to the air outlet tube of the second end of each of the pneumatic cylinders and the second one-way valve of each of the pressurization barrels is connected to the air inlet tube of the first end of each of the pneumatic cylinders; a high-pressure air storage device, wherein an end of the high-pressure air storage device is provided with at least one first one-way valve and an opposite end of the high-pressure air storage device is provided with a plurality of second one-way valves; the first one-way valve of the high-pressure air storage device is connected via a transmission tube to the second one-way valve of the endmost one of the pressurization barrels; each of the second one-way valves of the high-pressure air storage device is provided with the external transmission tube and the external transmission tube is connectable with an external pneumatic power device; the high-pressure air storage device comprises a pressure indicator gauge and a control device and the control device is operable to control opening/closing of each of the second one-way valves; wherein each of the pneumatic cylinders and each of the pressurization barrels are grouped together as a pressurization system; the pressurization systems are connected in a horizontal direction to each other in a serial connection manner; wherein the float device is contactable with waving sea water of the nature to cause the float device of the rocker arm based oscillation device to move up and down so as to have the second bar of the rocker arm based oscillation device drive the first bar to achieve an effect of up and down piston movement of the piston rod, further, with the first bar being provided with a universal bearing, an effect of enhancing freedom and flexibility of movement between the first bar and the piston rod is achieved.
8. The energy concentration device according to claim 7, wherein the first one-way valves are ingress-allowed egress-prohibited one-way check valves and the second one-way valves are egress-allowed ingress-prohibited one-way check valves.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(11) The following descriptions are exemplary embodiments only, and are not intended to limit the scope, applicability or configuration of the invention in any way. Rather, the following description provides a convenient illustration for implementing exemplary embodiments of the invention. Various changes to the described embodiments may be made in the function and arrangement of the elements described without departing from the scope of the invention as set forth in the appended claims.
(12) Referring to
(13) a plurality of pneumatic cylinders 10, wherein each of the pneumatic cylinders 10 comprises a top 101 and a bottom 102 and each of the pneumatic cylinders 10 comprises a first end 103 and a second end 104; the first end 103 of each of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 is provided with a first one-way valve 11 and the second end 104 of each of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 is provided with a second one-way valve 12; each of the pneumatic cylinders 10 is provided therein with a piston device 13 and the piston device 13 comprises a piston head 131 and a piston rod 132 where an end of the piston rod 132 connected to the piston head 131; the piston head 131 is at a middle of the pneumatic cylinder 10 in an initial condition and an opposite end of the piston head 131 is provided with a float device 14; each float device 14 has four corners each of which is provided with a through hole; each of the pneumatic cylinders 10 is provided with an air inlet tube 15 and an air outlet tube 16; the first one-way valves 11 of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 are connected to the air inlet tube 15 and each of the air inlet tubes 15 is connected to an external air pumping device; the second one-way valves 12 of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 are connected to the air outlet tube 16; each of the pneumatic cylinders 10 is provided externally with a protection enclosure 17 and the protection enclosure 17 is provided in each of four internal corners thereof with a support post 171, wherein each of the support posts 171 is received through each of the through holes of the float device 14;
(14) a plurality of pressurization barrels 20, wherein each of the pressurization barrels 20 comprises a first end 201 and a second end 202 and the first end 201 of each of the pressurization barrels 20 is provided with a first one-way valve 21 and the second end 202 of each of the pressurization barrels 20 is provided with a second one-way valve 22; an end of each of the pressurization barrels 20 is provided with a pressure indicator gauge 23; the first one-way valve 21 of each of the pressurization barrels 20 is connected to the air outlet tube of the second end 104 of each of the pneumatic cylinders 10 and the second one-way valve 22 of each of the pressurization barrels 20 is connected to the air inlet tube 15 of the first end 103 of each of the pneumatic cylinders 10;
(15) a high-pressure air storage device 30, wherein an end of the high-pressure air storage device 30 is provided with at least one first one-way valve 301 and an opposite end of the high-pressure air storage device 30 is provided with a plurality of second one-way valves 302; the first one-way valve 301 of the high-pressure air storage device 30 is connected via a transmission tube to the second one-way valve 22 of the endmost one of the pressurization barrels 20; each of the second one-way valves 302 of the high-pressure air storage device 30 is provided with the external transmission tube and the external transmission tube is connectable with an external pneumatic power device 50; the high-pressure air storage device 30 comprises a pressure indicator gauge 31 and a control device 32 and the control device 32 is operable to control opening/closing of each of the second one-way valves 302;
(16) wherein each of the pneumatic cylinders 10 and each of the pressurization barrels 20 are grouped together as a pressurization system 90; the pressurization systems 90 are connected in a horizontal direction to each other in a serial connection manner; each of the pneumatic cylinders 10 is provided with a protection enclosure 17 and the protection enclosure 17 is provided in each of four internal corners thereof with a support post 171 with each of the support posts 171 coupled to an inner top end of the protection enclosure 17; and
(17) wherein the float device 14 is contactable with waving sea water of the nature to cause the float device 14 to drive the piston rod 132 to achieve up-and-down piston movement.
(18) The first one-way valves 11, 21, 301 are ingress-allowed egress-prohibited one-way check valves.
(19) The second one-way valves 12, 22, 302 are egress-allowed ingress-prohibited one-way check valves.
(20) Referring to
(21) Referring to
(22) a plurality of pneumatic cylinders 10, wherein each of the pneumatic cylinders 10 comprises a top 101 and a bottom 102 and each of the pneumatic cylinders 10 comprises a first end 103 and a second end 104; the first end 103 of each of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 is provided with a first one-way valve 11 and the second end 104 of each of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 is provided with a second one-way valve 12; each of the pneumatic cylinders 10 is provided therein with a piston device 13 and the piston device 13 comprises a piston head 131 and a piston rod 132 where an end of the piston rod 132 connected to the piston head 131; the piston head 131 is at a middle of the pneumatic cylinder 10 in an initial condition and an opposite end of the piston head 131 is provided with a float device 14; each float device 14 has four corners each of which is provided with a through hole; each of the pneumatic cylinders 10 is provided with the air inlet tube 15 and the air outlet tube 16; the first one-way valves 11 of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 are connected to the air inlet tube 15 and each of the air inlet tubes 15 is connected to an external air pumping device; the second one-way valves 12 of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 are connected to the air outlet tube 16; each of the pneumatic cylinders 10 is provided externally with a protection enclosure 17, the protection enclosure 17 is provided in each of four internal corners thereof with a support post 171, each of the support posts 171 is received through each of the through holes of the float device 14;
(23) a plurality of pressurization barrels 20, wherein each of the pressurization barrels 20 comprises a first end 201 and a second end 202 and the first end 201 of each of the pressurization barrels 20 is provided with a first one-way valve 21 and the second end 202 of each of the pressurization barrels 20 is provided with a second one-way valve 22; an end of each of the pressurization barrels 20 is provided with a pressure indicator gauge 23; the first one-way valve 21 of each of the pressurization barrels 20 is connected to the air outlet tube of the second end 104 of each of the pneumatic cylinders 10 and the second one-way valve 22 of each of the pressurization barrels 20 is connected to the air inlet tube 15 of the first end 103 of each of the pneumatic cylinders 10;
(24) a high-pressure air storage device 30, wherein an end of the high-pressure air storage device 30 is provided with at least one first one-way valve 301 and an opposite end of the high-pressure air storage device 30 is provided with a plurality of second one-way valves 302; the first one-way valve 301 of the high-pressure air storage device 30 is connected via a transmission tube to the second one-way valve 22 of the endmost one of the pressurization barrels 20; each of the second one-way valves 302 of the high-pressure air storage device 30 is provided with the external transmission tube and the external transmission tube is connectable with an external pneumatic power device 5; the high-pressure air storage device 30 comprises a pressure indicator gauge 31 and a control device 32 and the control device 32 is operable to control opening/closing of each of the second one-way valves 302;
(25) wherein each of the pneumatic cylinders 10 and each of the pressurization barrels 20 are grouped together as a pressurization system 90 and each of the pressurization system 90 is coupled through vertical stacking on each other; each of the pneumatic cylinders 10 is provided with a protection enclosure 17 and the protection enclosure 17 is provided in each of four internal corners thereof with a support post 171 with each of the support posts 171 extending through an inner top end of the protection enclosure 17 so that the support posts 171 function as rails along which movements can be made;
(26) wherein the float device 14 is contactable with waving sea water of the nature to cause the float device 14 to drive the piston rod 132 to achieve up-and-down piston movement.
(27) Referring to
(28) Referring to
(29) a crankcase 40, wherein the crankcase 40 is provided therein with a crank; the crank is provided, in a spaced manner, with a plurality of connection bars; the crankcase 40 is externally provided with a connection shaft; the connection shaft is coupled to other cranks of the crankcase 40;
(30) a plurality of pneumatic cylinders 10, wherein each of the pneumatic cylinders 10 comprises a top 101 and a bottom 102 and each of the pneumatic cylinders 10 comprises a first end 103 and a second end 104; the first end 103 of each of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 is provided with a first one-way valve 11 and the second end 104 of each of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 is provided with a second one-way valve 12; each of the pneumatic cylinders 10 is provided therein with a piston device 13 and the piston device 13 comprises a piston head 131 and a piston rod 132 where an end of the piston rod 132 connected to the piston head 131; the piston head 131 is at a middle of the pneumatic cylinder 10 in an initial condition and an opposite end of the piston head 131 is connected to the connection bar of the crankcase 40; each of the pneumatic cylinders 10 is provided with the air inlet tube 15 and the air outlet tube 16; the first one-way valves 11 of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 are connected to the air inlet tube 15 and each of the air inlet tubes 15 is connected to an external air pumping device; the second one-way valves 12 of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 are connected to the air outlet tube 16;
(31) a plurality of pressurization barrels 20, wherein each of the pressurization barrels 20 comprises a first end 201 and a second end 202 and the first end 201 of each of the pressurization barrels 20 is provided with a first one-way valve 21 and the second end 202 of each of the pressurization barrels 20 is provided with a second one-way valve 22; an end of each of the pressurization barrels 20 is provided with a pressure indicator gauge 23; the first one-way valve 21 of each of the pressurization barrels 20 is connected to the air outlet tube of the second end 104 of each of the pneumatic cylinders 10 and the second one-way valve 22 of each of the pressurization barrels 20 is connected to the air inlet tube 15 of the first end 103 of each of the pneumatic cylinders 10;
(32) a high-pressure air storage device 30, wherein an end of the high-pressure air storage device 30 is provided with at least one first one-way valve 301 and an opposite end of the high-pressure air storage device 30 is provided with a plurality of second one-way valves 302; the first one-way valve 301 of the high-pressure air storage device 30 is connected via a transmission tube to the second one-way valve 22 of the endmost one of the pressurization barrels 20; each of the second one-way valves 302 of the high-pressure air storage device 30 is provided with the external transmission tube and the external transmission tube is connectable with an external pneumatic power device 50; the high-pressure air storage device 30 comprises a pressure indicator gauge 31 and a control device 32 and the control device 32 is operable to control opening/closing of each of the second one-way valves 302, whereby when a user attempt to generate electrical power, the external pneumatic power device 50 is connected to a dynamo device 60 to allow the external pneumatic power device 50 to supply pressurized air to the dynamo device 60 to achieve an effect of power generation to be supplied to all sorts of household appliances and transportations that need electrical power;
(33) wherein each of the pneumatic cylinders 10 and each of the pressurization barrels 20 are grouped together as a pressurization system 90 and the pressurization systems 90 are connected to each other in a serial connection manner;
(34) further, the connection shaft of the crankcase 40 is connectable with an external power device for power generation so as to couple to and drive a rotary device arranged in the external power device, whereby the connection shaft drives the crank of the crankcase 40 to rotate and the piston rod 132 of each of the pneumatic cylinders 10 is connected to the connection bar of the crank of the crankcase 40 so that the piston rod 132 can be driven by the connection bar of the crank to achieve an effect of up and down piston movement;
(35) wherein the external power device is a wind power generation device 73; the wind power generation device 73 comprises blades and a transmission shaft; the wind power generation device 73 comprises a rotor and a dynamo; the rotor is coupled to the transmission shaft; whereby an external airflow, when contacting the blades, drives the transmission shaft to rotate so as to allow the rotor to drive the dynamo to generate electrical power whereby electricity supplied from the dynamo can be used to drive a rotary device to rotate.
(36) Referring to
(37) Referring to
(38) a rocker arm based oscillation device 80, wherein the rocker arm based oscillation device 80 comprises a pivotal center 801; an end of the pivotal center 801 is provided with a first bar 81 and an opposite end of the first bar 81 is provided with a universal bearing 802; an opposite end of the pivotal center 801 is provided with a second bar 82 and an opposite end of the second bar 82 is provided with a float device 83;
(39) a plurality of pneumatic cylinders 10, wherein each of the pneumatic cylinders 10 comprises a top 101 and a bottom 102 and each of the pneumatic cylinders 10 comprises a first end 103 and a second end 104; the first end 103 of each of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 is provided with a first one-way valve 11 and the second end 104 of each of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 is provided with a second one-way valve 12; each of the pneumatic cylinders 10 is provided therein with a piston device 13 and the piston device 13 comprises a piston head 131 and a piston rod 132 where an end of the piston rod 132 connected to the piston head 131; the piston head 131 is at a middle of the pneumatic cylinder 10 in an initial condition and an opposite end of the piston head 131 is connected to the first bar 81 of the rocker arm based oscillation device 80; each of the pneumatic cylinders 10 is provided with an air inlet tube 15 and an air outlet tube 16; the first one-way valves 11 of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 are connected to the air inlet tube 15 and each of the air inlet tubes 15 is connected to an external air pumping device; the second one-way valves 12 of the top 101 and the bottom 102 of each of the pneumatic cylinders 10 are connected to the air outlet tube 16;
(40) a plurality of pressurization barrels 20, wherein each of the pressurization barrels 20 comprises a first end 201 and a second end 202 and the first end 201 of each of the pressurization barrels 20 is provided with a first one-way valve 21 and the second end 202 of each of the pressurization barrels 20 is provided with a second one-way valve 22; an end of each of the pressurization barrels 20 is provided with a pressure indicator gauge 23; the first one-way valve 21 of each of the pressurization barrels 20 is connected to the air outlet tube of the second end 104 of each of the pneumatic cylinders 10 and the second one-way valve 22 of each of the pressurization barrels 20 is connected to the air inlet tube 15 of the first end 103 of each of the pneumatic cylinders 10;
(41) a high-pressure air storage device 30, wherein an end of the high-pressure air storage device 30 is provided with at least one first one-way valve 301 and an opposite end of the high-pressure air storage device 30 is provided with a plurality of second one-way valves 302; the first one-way valve 301 of the high-pressure air storage device 30 is connected via a transmission tube to the second one-way valve 22 of the endmost one of the pressurization barrels 20; each of the second one-way valves 302 of the high-pressure air storage device 30 is provided with the external transmission tube and the external transmission tube is connectable with an external pneumatic power device 50; the high-pressure air storage device 30 comprises a pressure indicator gauge 31 and a control device 32 and the control device 32 is operable to control opening/closing of each of the second one-way valves 302;
(42) wherein each of the pneumatic cylinders 10 and each of the pressurization barrels 20 are grouped together as a pressurization system 90; the pressurization systems 90 are connected in a horizontal direction to each other in a serial connection manner, as shown in
(43) wherein the float device 83 is contactable with waving sea water of the nature to cause the float device 83 of the rocker arm based oscillation device 80 to move up and down so as to have the second bar 82 of the rocker arm based oscillation device 80 drive the first bar 81 to achieve an effect of up and down piston movement of the piston rod 132. Further, with the first bar 81 being provided with a universal bearing 802, an effect of enhancing freedom and flexibility of movement between the first bar 81 and the piston rod 132 is achieved.
(44) It will be understood that each of the elements described above, or two or more together may also find a useful application in other types of methods differing from the type described above.
(45) While certain novel features of this invention have been shown and described and are pointed out in the annexed claim, it is not intended to be limited to the details above, since it will be understood that various omissions, modifications, substitutions and changes in the forms and details of the device illustrated and in its operation can be made by those skilled in the art without departing in any way from the claims of the present invention.