Modular Chip Board System With Rotatable Antennas
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Solution Overview
Problem
Existing technologies lack a comprehensive chip board system that integrates multiple chips with readers for communication, navigation, and educational purposes, particularly in three-dimensional configurations, modular scalability, and use with autonomous vehicles or vessels, while also failing to incorporate rotatable antennas and energy transfer mechanisms.
Innovation Solution
A chip board system featuring multiple chips and readers with rotatable antennas, capable of near-field and far-field communication, integrated with a processor and memory, designed for modular scalability and use in three-dimensional environments, including autonomous navigation and educational applications.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Adaptability or versatility
If multiple chips and readers are integrated in a chip board system, then communication and navigation capabilities are improved, but device complexity increases
Solution Approach 1:
The system is divided into independent functional modules: chips embedded in the board, readers with antennas, processors, and memory units. Each module performs a specific function and can be independently configured, allowing the system to achieve high adaptability while managing complexity through modular design.
Solution Approach 2:
The chip board system is designed to perform multiple functions including communication, navigation, data storage, and processing. The readers can operate in both near-field and far-field modes, and the system supports various board configurations (two-dimensional and three-dimensional), making it a universal platform for diverse applications.
2Reliability
If rotatable antennas are implemented in readers, then communication reliability in different orientations is improved, but device complexity increases
Solution Approach 1:
The readers are equipped with rotatable antennas that can dynamically adjust their orientation to maintain optimal communication alignment with chips on the board. This dynamic adjustment capability ensures reliable communication regardless of the board's orientation or position, while the rotation mechanism is designed to be integrated and compact.
3Adaptability or versatility
If three-dimensional board configurations are used, then navigation capabilities are improved, but manufacturing complexity increases
Solution Approach 1:
The system transitions from traditional two-dimensional board layouts to three-dimensional configurations, enabling enhanced navigation capabilities by utilizing vertical space and multiple layers. Chips and readers can be positioned at different heights and depths, creating a volumetric navigation environment that provides more accurate spatial information while maintaining manufacturability through standardized embedding techniques.
4Adaptability or versatility
If near-field and far-field communication modes are integrated, then communication versatility is improved, but energy consumption increases
Solution Approach 1:
The readers dynamically switch between near-field and far-field communication modes based on the distance to the chips and the specific application requirements. The system automatically selects the most energy-efficient mode for each communication scenario, using near-field for short-range high-power transfers and far-field for long-range low-power communications, thereby achieving versatility without excessive energy consumption.
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
Enables efficient communication and navigation in complex environments, supports modular and scalable designs, and integrates educational elements, enhancing the functionality of chip board systems for various applications including autonomous vehicles and vessels.
Implementation Method 1
A reader can be configured to communicate with at least one said board chip, wherein the reader comprises an antenna which can generate an electromagnetic field or a radio frequency field using a current
Implementation Method 2
A suitable chip capacitor may be provided to a desired resonance frequency
Data Source
AI summary
The invention relates to a chip board system comprising a board with one or more chips and one or more chips readers. The chip can be a memory chip and can be coupled with an interface. The board can be provided with a layer and can be a board game and/or an educational and/or instructional aid. The chip and the reader can be able to emit and/or receive electrical, magnetic or electromagnetic fields. The chip and the reader can use radio frequency identification. The readers can be coupled with an interface and a (thematical) holder. The system can comprise an electronic device with a processor and a memory. The chips can be disposed in a pattern. The reader can be coupled with a vehicle (an aircraft), a water vessel or a product. The system can be modular. Chip board communication and navigation methods are proposed.


