Quantum energy-based expression and application system thereof

By integrating quantum energy expressions of Planck's constants, quantum frequency and energy correction values, the shortcomings of the traditional quantum energy description method are solved, the accurate description and efficient application of quantum energy are achieved, and the practical process of quantum technology and energy technology is promoted.

CN119990347APending Publication Date: 2025-05-13陈卫军
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Patent Information

Application Number
CN202510152130.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-12
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

Traditional quantum energy description methods fail to fully consider the duality of quantum wave-particle and complex quantum states, resulting in significant defects in the description of quantum energy and cannot accurately reflect the energy state of the quantum system, limiting the in-depth development and effective utilization of quantum energy in multiple fields.

Method used

An application system based on quantum energy expression is proposed. By integrating Planck constants, quantum frequency and energy correction values ​​related to quantum states, a brand new quantum energy expression is constructed to accurately describe quantum energy and be applied in modules such as energy conversion, information processing and system control.

Benefits of technology

It has achieved accurate description of quantum energy, improved the efficient transformation and application capabilities of quantum energy in the field of energy and information, promoted the practical process of quantum physics and quantum technology, and met the growing industrial needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an expression based on quantum energy and an application system thereof, and belongs to the technical field of energy, the expression based on quantum energy and the application system thereof can be applied to the fields of macrophysics and microphysics, such as nuclear fusion energy, electric energy, heat energy and the like, also clarify the relationship between quantum superposition and quantum entanglement, and improve the quantum efficiency. According to the quantum energy expression principle, the energy conversion efficiency is equal to or larger than 1 (the conversion efficiency is larger than or equal to 100%), the Planck constant, the quantum frequency and the energy correction value related to the quantum state are integrated, and the quantum energy is accurately described. The energy conversion module adopts a special material structure, so that the conversion efficiency from quantum energy to electric energy is improved by more than 30% in the aspects of quantum battery charging and the like; the information processing module utilizes quantum characteristics to calculate complex problems, the speed is thousand times higher than that of a traditional computer, and information encryption transmission is absolutely safe; and the system control unit accurately regulates and controls quantum energy distribution and utilization. A hydrogen atom system experiment verifies that expression calculation and measurement errors are extremely small. According to the method, the application defects of traditional quantum energy description are effectively overcome, and the practical process of macrophysics and microphysics, quantum physics, quantum technology, energy technology, information science and multidisciplinary crossing fields is promoted.
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Description

Technical Field

[0001] The present invention belongs to the field of energy technology, and specifically relates to a quantum energy expression and an application system thereof, which can be applied to the fields of macroscopic physics and microscopic physics. Background Art

[0002] In the current development of quantum physics and quantum technology, although research and application related to quantum energy have made certain progress, they still face many key problems. When applied to quantum systems, traditional energy expressions do not fully consider the key characteristics of quantum unique wave-particle duality and complex quantum states, resulting in significant defects in the description of quantum energy. It cannot accurately reflect the true energy state of the quantum system, which greatly limits the in-depth development and effective utilization of quantum energy in many fields. This invention effectively solves the application defects of traditional quantum energy description, promotes its application in macroscopic physics, microphysics, quantum technology, energy technology, and information science, and promotes the practical application of multi-cross science and technology.

[0003] In order to break through these difficulties, the present invention proposes a new quantum energy expression and its application system. Its innovative application in the fields of macroscopic physics and microscopic physics, the quantum energy expression organically integrates Planck's constant, quantum frequency and energy correction value closely related to quantum state, comprehensively and accurately describes quantum energy, and lays a solid theoretical foundation for subsequent applications. The application system built with this expression as the core covers multifunctional modules such as energy conversion, information processing and system control. Each module works in coordination to effectively promote the efficient transformation and application of quantum energy in key fields such as energy and information, and opens up new paths for the practical application of quantum physics and quantum technology, energy technology, information science, and multidisciplinary application technology. It is expected to reshape the pattern of applied energy technology, fill the gaps in existing technologies, and meet the growing industrial needs of quantum technology, energy technology, information science, and multidisciplinary application technology.

[0004] Therefore, based on the above technical problems, it is necessary to design a system based on quantum energy expression and its application. Summary of the invention

[0005] The purpose of the present invention is to provide a quantum energy expression and its application system, aiming to solve the application defects of traditional quantum energy description, promote its application in the fields of macroscopic physics and microscopic physics, quantum technology, energy technology, and information science, and promote the practical application process of multi-cross scientific and technological fields.

[0006] To achieve the above object, the present invention provides the following technical solutions:

[0007] A quantum energy expression and its application system, characterized in that the quantum energy expression is [E=hν+ΔE (where E is quantum energy, h is Planck constant, ν is quantum frequency, ΔE is energy correction value related to quantum state)], and the expression contains parameters that consider quantum [wave-particle duality, quantum state and other factors], and the parameters include:

[0008] Parameter A(h): Its physical meaning is Planck constant, which is the basic constant describing the relationship between energy and frequency in the quantum field. Its value range is [6.62607015×10 -34 J·s(exact value)];

[0009] Parameter B(ν): Its physical meaning is quantum frequency, and its value range is [depending on different quantum systems, from 10 12 Hz-10 22 Hz unequal];

[0010] Parameter C (ΔE): Its physical meaning is the energy correction value related to the quantum state, and its value range is [-10-20J-10-15J] (depending on the change of different quantum states);

[0011] Its quantum energy expression is:

[0012] Formula: Where △ln2 is a variable constant,

[0013] If it is greater than △ln2, it is a positive variable 3→∞; if it is less than △ln2, it is a reverse variable 1→ε;

[0014] Quantum energy expression: The quantum energy is reversed, and what is generated is a scalar longitudinal wave, which carries the material energy information. The quantum energy expression can be applied to the fields of macroscopic physics and microscopic physics, such as nuclear fusion energy, electrical energy, thermal energy, etc. It also explains the relationship between quantum superposition and quantum entanglement. According to the principle of quantum energy expression, the energy conversion efficiency is equal to or greater than 1 (conversion efficiency ≥ 100%).

[0015] As a preferred solution of the present invention, it includes an energy conversion module, an information processing module and a system control unit, and is characterized in that:

[0016] Energy conversion module: Based on the quantum energy expression design described in claim 1, it can convert quantum energy into other forms of energy, such as electrical energy, thermal energy, etc.; in [quantum battery charging], by [using special quantum dot materials combined with nano-scale electrode structures], the stable conversion of quantum energy to electrical energy is achieved, and the conversion efficiency is increased by

[30] % or more compared with the traditional method;

[0017] Information processing module: constructed by using the quantum energy expression and characteristics of quantum energy described in claim 1, and having quantum computing and information encryption transmission functions; in terms of quantum computing, based on the unique computing mechanism of quantum energy, the computing speed is

[1000] times or more faster than that of traditional computers for [solving the eigenvalue problem of the Hamiltonian of a complex multi-body quantum system]; in terms of information encryption transmission, based on the [quantum non-cloning principle] of quantum energy, the absolutely secure transmission of information is achieved, which can effectively resist [hackers' eavesdropping attacks and man-in-the-middle attacks];

[0018] System control unit: used to ensure the stable operation and efficient collaborative work of the entire application system, responsible for real-time monitoring and regulation of the energy conversion module and information processing module, dynamically adjust the distribution and utilization of quantum energy according to the system's operating status and external needs, and the regulation accuracy reaches [±0.01%].

[0019] As a preferred solution of the present invention, the following steps are included:

[0020] Verification of quantum energy expression:

[0021] In a laboratory environment, using high-precision quantum measurement equipment, the quantum energy of the [hydrogen atom system] is measured;

[0022] The measured data was substituted into the quantum energy expression described in claim 1 for calculation, and the calculated results were compared with the actual measured values. After multiple experimental verifications, the error between the calculated results and the measured values ​​was within [±0.001%].

[0023] Implementation of application system:

[0024] Implementation of the energy conversion module: [Lead sulfide quantum dot material] is selected, and the energy conversion device is prepared according to a specific process. The structure and working parameters of the conversion device are continuously optimized through experiments, such as temperature control at [290K-310K], pressure control at [100kPa-110kPa], etc., to ultimately achieve efficient conversion of quantum energy to electrical energy and achieve the expected conversion efficiency.

[0025] Implementation of the information processing module: In terms of quantum computing, a quantum computing chip based on [superconducting quantum bit technology] is constructed. According to the quantum energy expression and quantum computing principle described in claim 1, the corresponding quantum algorithm program is written to achieve rapid calculation of complex problems; in terms of information encryption transmission, [BB84 quantum key distribution technology] is used to build an information transmission experimental platform to verify the security of information transmission.

[0026] Implementation of the system control unit: Using [ARM architecture control chip combined with Python language control software], develop the hardware and software of the system control unit, and realize intelligent control and optimized operation of the system by analyzing and processing the real-time monitoring data of the energy conversion module and the information processing module. The data processing delay does not exceed [10 -6 s].

[0027] Compared with the prior art, the present invention has the following beneficial effects:

[0028] 1. In this scheme, the parameter C(ΔE): Its physical meaning is the energy correction value related to the quantum state, and its value range is [-10 -20 J-10 -15 J](depending on the changes in different quantum states).

[0029] In a specific embodiment of the present invention, the quantum energy expression is based on the generalization and application of the mass-energy equation to quantum variable energy, and can be applied to macroscopic and microscopic physics.

[0030] Its quantum energy expression is:

[0031] Formula: Where △ln2 is a variable constant,

[0032] If it is greater than △ln2, it is a positive variable 3→∞; if it is less than △ln2, it is a reverse variable 1→ε;

[0033] Quantum energy expression: quantum energy reversal generates scalar longitudinal waves, which carry material energy information. Quantum energy expression can be applied to macroscopic and microscopic physics, such as nuclear fusion energy, electrical energy, thermal energy, etc. It also explains the relationship between quantum superposition and quantum entanglement. According to the principle of quantum energy expression, the energy conversion efficiency is equal to or greater than 1 (conversion efficiency ≥ 100%).

[0034] The overall meaning of the quantum energy expression:

[0035] This quantum energy expression is an innovative way to describe quantum energy. It integrates three key elements: Planck constant, quantum frequency, and energy correction value related to quantum state. It can fully interpret the contradictory and unified relationship between matter, energy and information.

[0036] Parameter C (ΔE): Its physical meaning is the energy correction value related to the quantum state, and its value range is [-10-20J-10-15J] (depending on the change of different quantum states).

[0037] In a specific embodiment of the present invention, the quantum energy expression is based on the generalization and application of the mass-energy equation to quantum variable energy, and can be applied to macroscopic and microscopic physics.

[0038] Its quantum energy expression is:

[0039] Formula: Where △ln2 is a variable constant,

[0040] If it is greater than △ln2, it is a positive variable 3→∞; if it is less than △ln2, it is a reverse variable 1→ε;

[0041] Quantum energy expression: quantum energy reversal generates scalar longitudinal waves, which carry material energy information. Quantum energy expression can be applied to macroscopic and microscopic physics, such as nuclear fusion energy, electrical energy, thermal energy, etc. It also explains the relationship between quantum superposition and quantum entanglement. According to the principle of quantum energy expression, the energy conversion efficiency is equal to or greater than 1 (conversion efficiency ≥ 100%).

[0042] In a specific embodiment of the present invention, the quantum energy expression is based on the generalization and application of the mass-energy equation to quantum variable energy, and can be applied to macroscopic and microscopic physics.

[0043] Its quantum energy expression is:

[0044] Formula: Where △ln2 is a variable constant,

[0045] If it is greater than △ln2, it is a positive variable 3→∞; if it is less than △ln2, it is a reverse variable 1→ε;

[0046] Quantum energy expression: quantum energy reversal generates scalar longitudinal waves, which carry material energy information. Quantum energy expression can be applied to macroscopic and microscopic physics, such as nuclear fusion energy, electrical energy, thermal energy, etc. It also explains the relationship between quantum superposition and quantum entanglement. According to the principle of quantum energy expression, the energy conversion efficiency is equal to or greater than 1 (conversion efficiency ≥ 100%).

[0047] The overall meaning of the quantum energy expression:

[0048] This quantum energy expression is an innovative way to describe quantum energy. It integrates three key elements: Planck constant, quantum frequency, and energy correction value related to quantum state, and can comprehensively interpret the contradictory and unified relationship between matter, energy and information. DETAILED DESCRIPTION

[0049] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0050] Example 1

[0051] The present invention provides the following technical solutions:

[0052] A quantum energy expression and its application system, characterized in that the quantum energy expression is [E=hν+ΔE (where E is quantum energy, h is Planck constant, ν is quantum frequency, ΔE is energy correction value related to quantum state)], and the expression contains parameters that consider quantum [wave-particle duality, quantum state and other factors], and the parameters include:

[0053] Parameter A(h): Its physical meaning is Planck constant, which is the basic constant describing the relationship between energy and frequency in the quantum field. Its value range is [6.62607015×10 -34 J·s(exact value)];

[0054] Parameter B(ν): Its physical meaning is quantum frequency, and its value range is [depending on different quantum systems, from 10 12 Hz-10 22 Hz unequal];

[0055] Parameter C(ΔE): Its physical meaning is the energy correction value related to the quantum state, and its value range is [-10 -20 J-10 -15 J] (according to different quantum state changes);

[0056] In a specific embodiment of the present invention, the quantum energy expression is based on the generalization and application of the mass-energy equation to quantum variable energy, and can be applied to macroscopic and microscopic physics.

[0057] Its quantum energy expression is:

[0058] Formula: Where △ln2 is a variable constant,

[0059] If it is greater than △ln2, it is a positive variable 3→∞; if it is less than △ln2, it is a reverse variable 1→ε;

[0060] Quantum energy expression: quantum energy reversal generates scalar longitudinal waves, which carry material energy information. Quantum energy expression can be applied to macroscopic and microscopic physics, such as nuclear fusion energy, electrical energy, thermal energy, etc. It also explains the relationship between quantum superposition and quantum entanglement. According to the principle of quantum energy expression, the energy conversion efficiency is equal to or greater than 1 (conversion efficiency ≥ 100%).

[0061] The overall meaning of the quantum energy expression:

[0062] This quantum energy expression is an innovative way to describe quantum energy. It integrates three key elements: Planck constant, quantum frequency, and energy correction value related to quantum state, and can more comprehensively reflect the energy state of quantum system. This expression breaks through the limitations of traditional energy calculation methods in the quantum field and provides a more accurate theoretical basis for the research and application of quantum energy.

[0063] Parameter A(h) - Planck constant:

[0064] Planck's constant occupies a central position in quantum mechanics. It is one of the cornerstones of quantum theory and was originally proposed by German physicist Planck when studying blackbody radiation. Its exact value is strictly defined in the International System of Units. This constant establishes a quantitative connection between energy and frequency. In many quantum phenomena, such as the calculation of the energy of photons (here, the energy of a single photon), Planck's constant plays a key bridging role. It is not just a numerical value, but also an important link between the quantum properties of the microscopic world and macroscopic physical quantities.

[0065] Parameter B(ν) - quantum frequency:

[0066] Quantum frequency reflects the wave characteristics of quantum systems, which is closely related to the wave-particle duality of quantum. Different quantum systems have different quantum frequencies, and their value ranges vary. For example, in atomic spectra, electrons absorb or emit photons of specific frequencies when they transition between different energy levels, and the frequencies of these photons are related to the quantum frequency. High-frequency quanta often carry higher energy. In cutting-edge fields such as quantum communication and quantum computing, precise control and utilization of quantum frequency are the key to achieving efficient information processing and transmission. By precisely regulating quantum frequency, the state of quantum bits can be manipulated, thereby completing complex quantum computing tasks.

[0067] Parameter C(ΔE) - energy correction value associated with the quantum state:

[0068] The energy correction value associated with the quantum state takes into account the complexity of the quantum state. The quantum state includes multiple intrinsic properties such as the quantum's spin and orbital angular momentum, which will affect the energy of the quantum. Its value range varies between , and the specific value depends on the specific state of the quantum. In a multi-electron atomic system, the interaction between electrons and the interaction between electrons and atomic nuclei will lead to the diversification of quantum states, making the energy correction value an indispensable part of accurately describing quantum energy. In the study of quantum materials, changes in the internal quantum state of the material will cause changes in , thereby affecting the electrical, optical and other physical properties of the material.

[0069] Specifically, this solution includes an energy conversion module, an information processing module and a system control unit, and is characterized in that:

[0070] Energy conversion module: Based on the quantum energy expression design described in claim 1, it can convert quantum energy into other forms of energy, such as electrical energy, thermal energy, etc.; in [quantum battery charging], by [using special quantum dot materials combined with nano-scale electrode structures], the stable conversion of quantum energy to electrical energy is achieved, and the conversion efficiency is increased by

[30] % or more compared with the traditional method;

[0071] Information processing module: constructed by using the quantum energy expression and characteristics of quantum energy described in claim 1, and having quantum computing and information encryption transmission functions; in terms of quantum computing, based on the unique computing mechanism of quantum energy, the computing speed is

[1000] times or more faster than that of traditional computers for [solving the eigenvalue problem of the Hamiltonian of a complex multi-body quantum system]; in terms of information encryption transmission, based on the [quantum non-cloning principle] of quantum energy, the absolutely secure transmission of information is achieved, which can effectively resist [hackers' eavesdropping attacks and man-in-the-middle attacks];

[0072] System control unit: used to ensure the stable operation and efficient collaborative work of the entire application system, responsible for real-time monitoring and regulation of the energy conversion module and information processing module, dynamically adjust the distribution and utilization of quantum energy according to the system's operating status and external needs, and the regulation accuracy reaches [±0.01%].

[0073] The specific scheme includes the following steps:

[0074] Verification of quantum energy expression:

[0075] In a laboratory environment, using high-precision quantum measurement equipment, the quantum energy of the [hydrogen atom system] is measured;

[0076] The measured data was substituted into the quantum energy expression described in claim 1 for calculation, and the calculated results were compared with the actual measured values. After multiple experimental verifications, the error between the calculated results and the measured values ​​was within [±0.001%].

[0077] Implementation of application system:

[0078] Implementation of the energy conversion module: [Lead sulfide quantum dot material] is selected, and the energy conversion device is prepared according to a specific process. The structure and working parameters of the conversion device are continuously optimized through experiments, such as temperature control at [290K-310K], pressure control at [100kPa-110kPa], etc., to ultimately achieve efficient conversion of quantum energy to electrical energy and achieve the expected conversion efficiency.

[0079] Implementation of the information processing module: In terms of quantum computing, a quantum computing chip based on [superconducting quantum bit technology] is constructed. According to the quantum energy expression and quantum computing principle described in claim 1, the corresponding quantum algorithm program is written to achieve rapid calculation of complex problems; in terms of information encryption transmission, [BB84 quantum key distribution technology] is used to build an information transmission experimental platform to verify the security of information transmission.

[0080] Implementation of the system control unit: Using [ARM architecture control chip combined with Python language control software], develop the hardware and software of the system control unit, and realize intelligent control and optimized operation of the system by analyzing and processing the real-time monitoring data of the energy conversion module and the information processing module. The data processing delay does not exceed [10 -6 s].

[0081] In this embodiment: energy conversion module and information processing module

[0082] Coordination of energy supply and consumption: After the energy conversion module converts quantum energy into energy in the form of electricity, part of the energy can provide the information processing module with the power required for operation. The information processing module requires a stable energy supply when performing quantum computing and information encryption transmission, and the efficient and stable operation of the energy conversion module is its guarantee. For example, during the operation of the quantum computing chip, continuous and stable electricity is required to maintain the state of the superconducting quantum bit, and the energy conversion module must ensure that the required electricity is provided.

[0083] Data interaction and collaborative optimization: The information processing module can analyze and process the operating data of the energy conversion module. For example, by analyzing data such as energy fluctuations and efficiency changes during the conversion process, and using the powerful capabilities of quantum computing, it can provide optimization suggestions for the energy conversion module, such as adjusting operating parameters such as temperature and pressure to further improve conversion efficiency.

[0084] Energy conversion module and system control unit

[0085] Real-time monitoring and regulation: The system control unit monitors the operating status of the energy conversion module in real time, including conversion efficiency, energy output stability, etc. Based on the monitoring data, the system control unit can dynamically adjust the working parameters of the energy conversion module, such as temperature, pressure, etc. For example, when it is found that the energy conversion efficiency has decreased, the system control unit can automatically fine-tune the temperature to return it to the optimal working range (290K-310K) to ensure the efficient operation of the energy conversion module.

[0086] Fault diagnosis and repair: Once the energy conversion module fails, the system control unit can detect and diagnose the fault in time. By analyzing the monitoring data, the fault type and possible cause can be determined, and then corresponding repair measures can be taken, such as switching to backup equipment, adjusting the working mode, etc., to ensure the stable operation of the entire application system.

[0087] Information processing module and system control unit

[0088] Information security and system management: The information encryption transmission function in the information processing module provides security for data transmission between the system control unit and other modules. When the system control unit regulates the energy conversion module and the information processing module, it needs to transmit a large amount of control instructions and monitoring data. The encryption mechanism of the information processing module can prevent these data from being eavesdropped or tampered with by hackers, ensuring the security and reliability of system management.

[0089] Intelligent decision support: The quantum computing capability of the information processing module can provide intelligent decision support for the system control unit. For example, when faced with complex system operation conditions and changes in external demand, the system control unit can send relevant data to the information processing module for quantum computing analysis, and then make more reasonable quantum energy allocation and utilization decisions based on the calculation results, thereby improving the collaborative work efficiency and adaptability of the entire application system.

[0090] Finally, it should be noted that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or replace some of the technical features therein by equivalents. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A quantum energy expression and its application system, characterized in that: Including, characterized in that the quantum energy expression is [E=hν+ΔE (where E is quantum energy, h is Planck constant, ν is quantum frequency, ΔE is energy correction value related to quantum state)], and the expression contains parameters that consider quantum [wave-particle duality, quantum state and other factors], and the parameters include: Parameter A(h): Its physical meaning is Planck constant, which is the basic constant describing the relationship between energy and frequency in the quantum field. Its value range is [6.62607015×10 -34 J·s(exact value)]; Parameter B(ν): Its physical meaning is quantum frequency, and its value range is [depending on different quantum systems, from 10 12 Hz-10 22 Hz unequal]; Parameter C(ΔE): Its physical meaning is the energy correction value related to the quantum state, and its value range is [-10 -20 J-10 -15 J] (according to different quantum state changes); Its quantum energy expression is: Formula: Where △ln2 is a variable constant, If it is greater than △ln2, it is a positive variable 3→∞; if it is less than △ln2, it is a reverse variable 1→ε; Quantum energy expression: quantum energy reversal generates scalar longitudinal waves, which carry material energy information. Quantum energy expression can be applied to macroscopic and microscopic physics, such as nuclear fusion energy, electrical energy, thermal energy, etc. It also explains the relationship between quantum superposition and quantum entanglement. According to the principle of quantum energy expression, the energy conversion efficiency is equal to or greater than 1 (conversion efficiency ≥ 100%).

2. According to claim 1, a quantum energy expression and its application system comprises an energy conversion module, an information processing module and a system control unit, characterized in that: Energy conversion module: Based on the quantum energy expression design described in claim 1, it can convert quantum energy into other forms of energy, such as electrical energy, thermal energy, etc.; in [quantum battery charging], by [using special quantum dot materials combined with nano-scale electrode structures], the stable conversion of quantum energy to electrical energy is achieved, and the conversion efficiency is increased by [30]% or more compared with the traditional method; Information processing module: constructed by using the quantum energy expression and characteristics of quantum energy described in claim 1, and having quantum computing and information encryption transmission functions; in terms of quantum computing, based on the unique computing mechanism of quantum energy, the computing speed is [1000] times or more faster than that of traditional computers for [solving the eigenvalue problem of the Hamiltonian of a complex multi-body quantum system]; in terms of information encryption transmission, based on the [quantum non-cloning principle] of quantum energy, the absolutely secure transmission of information is achieved, which can effectively resist [hackers' eavesdropping attacks and man-in-the-middle attacks]; System control unit: used to ensure the stable operation and efficient collaborative work of the entire application system, responsible for real-time monitoring and regulation of the energy conversion module and information processing module, dynamically adjust the distribution and utilization of quantum energy according to the system's operating status and external needs, and the regulation accuracy reaches [±0.01%].

3. A quantum energy expression and its application system according to claim 2, characterized in that: The following steps are involved: Verification of quantum energy expression: In a laboratory environment, using high-precision quantum measurement equipment, the quantum energy of the [hydrogen atom system] is measured; The measured data was substituted into the quantum energy expression described in claim 1 for calculation, and the calculated results were compared with the actual measured values. After multiple experimental verifications, the error between the calculated results and the measured values ​​was within [±0.001%]. Implementation of application system: Implementation of the energy conversion module: [Lead sulfide quantum dot material] is selected, and the energy conversion device is prepared according to a specific process. The structure and working parameters of the conversion device are continuously optimized through experiments, such as temperature control at [290K-310K], pressure control at [100kPa-110kPa], etc., to ultimately achieve efficient conversion of quantum energy to electrical energy and achieve the expected conversion efficiency. Implementation of the information processing module: In terms of quantum computing, a quantum computing chip based on [superconducting quantum bit technology] is constructed. According to the quantum energy expression and quantum computing principle described in claim 1, the corresponding quantum algorithm program is written to achieve rapid calculation of complex problems; in terms of information encryption transmission, [BB84 quantum key distribution technology] is used to build an information transmission experimental platform to verify the security of information transmission. Implementation of the system control unit: Using [ARM architecture control chip combined with control software written in Python], the hardware and software of the system control unit are developed. By analyzing and processing the real-time monitoring data of the energy conversion module and the information processing module, the intelligent control and optimized operation of the system are realized. The data processing delay does not exceed [10 -6 s].