Crystal structure - as a static element
The energy carrier storage generation system addresses inefficiencies in existing systems by combining natural solid and gaseous agents in a crystalline medium under vacuum, achieving efficient energy storage and harvesting through synergistic chemo-physical properties.
Patent Information
- Application Number
- DE102023005188
- Authority / Receiving Office
- DE · DE
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-12-15
- Publication Date
- 2025-07-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing energy storage and generation systems lack efficiency and sustainability in storing and generating energy using natural solid and gaseous agents synergistically, particularly within a crystalline working medium under vacuum conditions.
An energy carrier storage generation system utilizing a crystalline working medium under vacuum combines natural solid and gaseous agents for efficient energy storage and harvesting, leveraging their synergistic chemo-physical properties.
The system achieves high efficiency in energy storage and generation by harnessing the synergistic chemo-physical properties of natural agents within a crystalline medium under vacuum, enhancing energy carrier storage and harvesting capabilities.
Abstract
Description
[0001] An energy carrier storage generation system for resource-efficient civil development of humans supported on our planet, which can be created with the simplest means.
[0002] It consists of natural solid and gaseous working media, which, when synergistically combined, exhibit a high chemo-physical efficiency in the storage and energy generation function through pressure.
[0003] An energy carrier, storage, and generation system that operates within a crystalline working medium to store energy and simultaneously generate energy. The energy carrier, storage, and generation system operates under vacuum.
Claims
[1] Claim 1 a crystal unit of any size has a higher load-bearing capacity than Fe compounds. [2] Claim 2, according to claim 1, the crystal structure has a higher carbon density, which does not have any corrosion properties compared to iron and counteracts vibrations caused by a denser microstructure arrangement of differently arranged shapes / structures. [3] Claim 3, which according to claims 2 and 1, a 3D printing process covers the arrangement of the crystals below the micrometer sector by a lithographic printing process and thus regulates the arrangement of the crystals or the carbon groups in any size. [4] Claim 4, which according to claim 2 and 1, a 3D printing process covers the arrangement of the crystals below the micrometer sector by combining a lithographic printing process and thus regulates the arrangement of the crystals or different materials. [5] Claim 5, which according to claims 3 and 4, simultaneous galvanization takes place in the printing bed during the lithographic printing process. [6] Claim 6, according to claims 1 and 2, the crystal structure serves as a charge carrier for electricity. [7] Claim 7, which according to claims 3 and 4, during the lithographic printing process, a simultaneous microwave flow through the printing bed takes place. [8] Claim 8, which according to claims 3 and 4, during the lithographic printing process, a simultaneous gamma radiation or flooding takes place in the printing bed. [9] Claim 9, which according to claims 1 and 2, due to the Coulomb force, a change or a distribution of the electrical as well as the static voltage within the crystal lattice is possible and thus a charge and weight distribution occurs [10] Claim 10, which according to claims 1, 2 and 9 can be transformed simultaneously into an electrical voltage due to static voltage.
Citation Information
Patent Citations
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Novel material and production thereof for use as a storage medium in a sensitive energy storage system in the low-, medium- or high-temperature range
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