RU2009145609A - METHOD FOR PRODUCING O2 BY SPACE, UNDERWATER VEHICLES FROM TOE BY ORIENTATION OF ELECTRETO SPIN DENSITY IN SOLAR ENERGY INSTALLATION - Google Patents

METHOD FOR PRODUCING O2 BY SPACE, UNDERWATER VEHICLES FROM TOE BY ORIENTATION OF ELECTRETO SPIN DENSITY IN SOLAR ENERGY INSTALLATION Download PDF

Info

Publication number
RU2009145609A
RU2009145609A RU2009145609/06A RU2009145609A RU2009145609A RU 2009145609 A RU2009145609 A RU 2009145609A RU 2009145609/06 A RU2009145609/06 A RU 2009145609/06A RU 2009145609 A RU2009145609 A RU 2009145609A RU 2009145609 A RU2009145609 A RU 2009145609A
Authority
RU
Russia
Prior art keywords
solar
toe
magnetic energy
magnetic
spin
Prior art date
Application number
RU2009145609/06A
Other languages
Russian (ru)
Inventor
Александр Михайлович Силантьев (RU)
Александр Михайлович Силантьев
Галина Борисовна Яковенко (RU)
Галина Борисовна Яковенко
Олег Вячеславович Неганов (RU)
Олег Вячеславович Неганов
Original Assignee
Александр Михайлович Силантьев (RU)
Александр Михайлович Силантьев
Галина Борисовна Яковенко (RU)
Галина Борисовна Яковенко
Олег Вячеславович Неганов (RU)
Олег Вячеславович Неганов
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Александр Михайлович Силантьев (RU), Александр Михайлович Силантьев, Галина Борисовна Яковенко (RU), Галина Борисовна Яковенко, Олег Вячеславович Неганов (RU), Олег Вячеславович Неганов filed Critical Александр Михайлович Силантьев (RU)
Priority to RU2009145609/06A priority Critical patent/RU2009145609A/en
Publication of RU2009145609A publication Critical patent/RU2009145609A/en

Links

Classifications

    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/40Solar thermal energy, e.g. solar towers

Abstract

1. Способ работы магнитной Солнечной энергетической установки путем слежения за Солнцем с помощью целостата и передачи солнечного излучения приемнику, отличается тем, что, с целью увеличения глубины эффективности процесса, путем увеличения количества магнитной энергии, вырабатываемой спиновыми стеклами-приемником целостата размещают на стационарной орбите искусственного спутника Земли, или космических летательных, автономных атомных подводных аппаратов. ! 2. Способ работы энергетической установки для получения кислорода, отличается тем, что ПК позволяет проводить поляризацию Солнечной магнитной энергии 10 кЭ и более спиновыми стеклами целостатов, ! 3. Способ получения кислорода по п.2, отличается тем, что в кассетах с магнитными полюсами N S с таблетированными ТОЭ К2О4 или Bi2O3, подведенной Солнечной магнитной энергии от спиновых стекол, в результате физико-химических процессов разложения ТОЭ выделяется кислород. 1. The method of operation of a magnetic solar power plant by tracking the sun using integrity and transmitting solar radiation to a receiver is characterized in that, in order to increase the depth of the process’s efficiency, by increasing the amount of magnetic energy generated by the spin glass-receiver, the integrate is placed in a stationary orbit of artificial Earth satellite, or space flying, autonomous atomic underwater vehicles. ! 2. The way the power plant operates to produce oxygen, characterized in that the PC allows the polarization of the solar magnetic energy of 10 kOe and more integer spin glasses,! 3. The method for producing oxygen according to claim 2, characterized in that in cassettes with magnetic poles N S with pelletized TO2 K2O4 or Bi2O3, supplied solar magnetic energy from spin glasses, oxygen is released as a result of physical and chemical processes of decomposition of TOE.

Claims (3)

1. Способ работы магнитной Солнечной энергетической установки путем слежения за Солнцем с помощью целостата и передачи солнечного излучения приемнику, отличается тем, что, с целью увеличения глубины эффективности процесса, путем увеличения количества магнитной энергии, вырабатываемой спиновыми стеклами-приемником целостата размещают на стационарной орбите искусственного спутника Земли, или космических летательных, автономных атомных подводных аппаратов.1. The method of operation of a magnetic solar power plant by tracking the sun using integrity and transmitting solar radiation to a receiver is characterized in that, in order to increase the depth of the process’s efficiency, by increasing the amount of magnetic energy generated by the spin glass-receiver, the integrate is placed in a stationary orbit of artificial Earth satellite, or space flying, autonomous atomic underwater vehicles. 2. Способ работы энергетической установки для получения кислорода, отличается тем, что ПК позволяет проводить поляризацию Солнечной магнитной энергии 10 кЭ и более спиновыми стеклами целостатов,2. The way the power plant operates to produce oxygen, characterized in that the PC allows the polarization of the solar magnetic energy of 10 kOe and more spin glass integers, 3. Способ получения кислорода по п.2, отличается тем, что в кассетах с магнитными полюсами N S с таблетированными ТОЭ К2О4 или Bi2O3, подведенной Солнечной магнитной энергии от спиновых стекол, в результате физико-химических процессов разложения ТОЭ выделяется кислород. 3. The method for producing oxygen according to claim 2, characterized in that in cassettes with magnetic poles NS with pelletized TOE K2O 4 or Bi2O 3 supplied by solar magnetic energy from spin glasses, oxygen is released as a result of physical and chemical processes of decomposition of TOE.
RU2009145609/06A 2009-12-08 2009-12-08 METHOD FOR PRODUCING O2 BY SPACE, UNDERWATER VEHICLES FROM TOE BY ORIENTATION OF ELECTRETO SPIN DENSITY IN SOLAR ENERGY INSTALLATION RU2009145609A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
RU2009145609/06A RU2009145609A (en) 2009-12-08 2009-12-08 METHOD FOR PRODUCING O2 BY SPACE, UNDERWATER VEHICLES FROM TOE BY ORIENTATION OF ELECTRETO SPIN DENSITY IN SOLAR ENERGY INSTALLATION

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
RU2009145609/06A RU2009145609A (en) 2009-12-08 2009-12-08 METHOD FOR PRODUCING O2 BY SPACE, UNDERWATER VEHICLES FROM TOE BY ORIENTATION OF ELECTRETO SPIN DENSITY IN SOLAR ENERGY INSTALLATION

Publications (1)

Publication Number Publication Date
RU2009145609A true RU2009145609A (en) 2011-06-20

Family

ID=44737435

Family Applications (1)

Application Number Title Priority Date Filing Date
RU2009145609/06A RU2009145609A (en) 2009-12-08 2009-12-08 METHOD FOR PRODUCING O2 BY SPACE, UNDERWATER VEHICLES FROM TOE BY ORIENTATION OF ELECTRETO SPIN DENSITY IN SOLAR ENERGY INSTALLATION

Country Status (1)

Country Link
RU (1) RU2009145609A (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2600183C2 (en) * 2011-07-28 2016-10-20 Университа Дельи Студи Ди Кальяри Method of producing materials applicable for life-support manned space flights to mars, using local resources

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2600183C2 (en) * 2011-07-28 2016-10-20 Университа Дельи Студи Ди Кальяри Method of producing materials applicable for life-support manned space flights to mars, using local resources

Similar Documents

Publication Publication Date Title
ES2165824A1 (en) Autonomous self-propelled desalination plant assisted by renewable energy
Wei et al. Physical-biogeochemical interactions and potential effects on phytoplankton and Ulva prolifera in the coastal waters off Qingdao (Yellow Sea, China)
Wang et al. Decentralized co‐generation of fresh water and electricity at point of consumption
CN104046651A (en) Method for raising hydrogen production efficiency of microalgae
RU2009145609A (en) METHOD FOR PRODUCING O2 BY SPACE, UNDERWATER VEHICLES FROM TOE BY ORIENTATION OF ELECTRETO SPIN DENSITY IN SOLAR ENERGY INSTALLATION
CA2676737A1 (en) Many new evolutions of fusion energy and related items to make it and other by products and/or processes
Gurram et al. A novel electricity generation with green technology by Plant-e from living plants and bacteria: A natural solar power from living power plant
Wang et al. From CO2 to Electricity: Photosynthesis‐Based Functionally Cooperating Mini‐Generator
US20240001295A1 (en) Marine based buoyant carbon sequestration structure
Liu et al. Warm climate in the “Boring Billion” era
CN104608888A (en) Environmentally-friendly water borne multifunctional floating island base
Zhang et al. The influence of macronitrogen (NO 3− and NH 4+) addition with Ulva pertusa on dissolved inorganic carbon system
CN103449698A (en) Method for high-efficiency treatment of municipal sludge through earthworms
Daneshmand et al. Investigation and design seawater desalination with solar energy
Aljaradin et al. Water quality, availability and potential of geothermal energy utilization, Afra Water, Jordan
Kabeel Performance of solar still with a wick concave evaporation surface
Shekarbaghani Determine the best location for Ocean Thermal Energy Conversion (OTEC) in Iranian Seas
Krasteva Renewable energy technologies
US7854090B2 (en) Method of hormesis for seaweed through irradiation
Thakur et al. Augmenting the clean water generation rate of solar desalination unit through novel absorber under Indian climatic conditions: Thermal performance, energy and carbon credit analysis
Yang et al. Research Status of Brackish Water Desalination Technology
Jamdagni et al. New hope for clean energy through exploring space
Videira Novel applications of luminescence for solar energy
Shekarbaghani Ecological and environmental effects of wave energy developing (South coast of Caspian Sea, Iran)
Broda Solar Power the photochemical alternative