EMP Pulse Blaster: Difference between revisions
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== Equations == | == Equations == | ||
* ''Energy Density | * ''Energy Density'': The energy density of the electromagnetic field. | ||
** <math>E = \frac{{B^2}}{{2 \mu_0}}</math> | ** <math>E = \frac{{B^2}}{{2 \mu_0}}</math> | ||
*** Where: | *** Where: | ||
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**** <math>\mu_0</math> is the permeability of free space (<math>4\pi \times 10^{-7}</math> H/m) | **** <math>\mu_0</math> is the permeability of free space (<math>4\pi \times 10^{-7}</math> H/m) | ||
* ''Volume of a Sphere | * ''Volume of a Sphere'': Used to calculate the volume of the area affected by the EMP. | ||
** <math>V = \frac{4}{3} \pi r^3</math> | ** <math>V = \frac{4}{3} \pi r^3</math> | ||
*** Where: | *** Where: | ||
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**** <math>r</math> is the radius of the sphere in meters (m) | **** <math>r</math> is the radius of the sphere in meters (m) | ||
* ''Power Output (General) | * ''Power Output (General)'': The power output during the EMP pulse. | ||
** <math>\text{Power Output} = \frac{\text{Total Energy Output}}{\text{Pulse Duration}}</math> | ** <math>\text{Power Output} = \frac{\text{Total Energy Output}}{\text{Pulse Duration}}</math> | ||
*** Where: | *** Where: | ||
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**** Pulse Duration is in seconds (s) | **** Pulse Duration is in seconds (s) | ||
* ''Capacitor Energy Storage | * ''Capacitor Energy Storage'': The energy stored in a capacitor. | ||
** <math>E = \frac{1}{2} CV^2</math> | ** <math>E = \frac{1}{2} CV^2</math> | ||
*** Where: | *** Where: | ||
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**** <math>V</math> is the voltage in volts (V) | **** <math>V</math> is the voltage in volts (V) | ||
* ''Inductance of a Coil | * ''Inductance of a Coil'': The inductance of a coil used in the EMP generator. | ||
** <math>L = \frac{N^2 \mu_0 \mu_r A}{l}</math> | ** <math>L = \frac{N^2 \mu_0 \mu_r A}{l}</math> | ||
*** Where: | *** Where: | ||
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**** <math>l</math> is the length of the coil in meters (m) | **** <math>l</math> is the length of the coil in meters (m) | ||
* ''Magnetic Flux | * ''Magnetic Flux'': The magnetic flux through a coil. | ||
** <math>\Phi = B A \cos(\theta)</math> | ** <math>\Phi = B A \cos(\theta)</math> | ||
*** Where: | *** Where: | ||
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**** <math>\theta</math> is the angle between the magnetic field and the normal to the surface | **** <math>\theta</math> is the angle between the magnetic field and the normal to the surface | ||
* ''Faraday’s Law of Induction | * ''Faraday’s Law of Induction'': The induced voltage in a coil. | ||
** <math>V = -N \frac{d\Phi}{dt}</math> | ** <math>V = -N \frac{d\Phi}{dt}</math> | ||
*** Where: | *** Where: | ||
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**** <math>\frac{d\Phi}{dt}</math> is the rate of change of magnetic flux in webers per second (Wb/s) | **** <math>\frac{d\Phi}{dt}</math> is the rate of change of magnetic flux in webers per second (Wb/s) | ||
* ''Resonant Frequency of LC Circuit | * ''Resonant Frequency of LC Circuit'': The frequency at which the LC circuit resonates. | ||
** <math>f_0 = \frac{1}{2\pi\sqrt{LC}}</math> | ** <math>f_0 = \frac{1}{2\pi\sqrt{LC}}</math> | ||
*** Where: | *** Where: | ||
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**** <math>C</math> is the capacitance in farads (F) | **** <math>C</math> is the capacitance in farads (F) | ||
* ''Magnetic Field of a Solenoid | * ''Magnetic Field of a Solenoid'': The magnetic field inside a solenoid. | ||
** <math>B = \mu_0 \frac{N}{l} I</math> | ** <math>B = \mu_0 \frac{N}{l} I</math> | ||
*** Where: | *** Where: | ||
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**** <math>I</math> is the current in amperes (A) | **** <math>I</math> is the current in amperes (A) | ||
* ''Heat Dissipation in Resistors | * ''Heat Dissipation in Resistors'': The power dissipated as heat in a resistor. | ||
** <math>P = I^2 R</math> | ** <math>P = I^2 R</math> | ||
*** Where: | *** Where: | ||
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**** <math>R</math> is the resistance in ohms (Ω) | **** <math>R</math> is the resistance in ohms (Ω) | ||
* ''Ohm’s Law | * ''Ohm’s Law'': The relationship between voltage, current, and resistance. | ||
** <math>V = IR</math> | ** <math>V = IR</math> | ||
*** Where: | *** Where: | ||
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**** <math>R</math> is the resistance in ohms (Ω) | **** <math>R</math> is the resistance in ohms (Ω) | ||
* ''Electromagnetic Wave Equation | * ''Electromagnetic Wave Equation'': Describes the propagation of electromagnetic waves. | ||
** <math>\nabla^2 \mathbf{E} - \mu_0 \epsilon_0 \frac{\partial^2 \mathbf{E}}{\partial t^2} = 0</math> | ** <math>\nabla^2 \mathbf{E} - \mu_0 \epsilon_0 \frac{\partial^2 \mathbf{E}}{\partial t^2} = 0</math> | ||
*** Where: | *** Where: |
Revision as of 15:22, 15 May 2024
Electro Magnetic Pulse - Pulse Blaster
Parameters
Parameter | Value/Equation |
---|---|
Range (r) | 13 meters |
Energy Density | to joules/m |
Total Energy Output | joules |
Voltage Output (High-Voltage Generator Modules) | 3000V, 4000V, 400kV, 1MV |
Equations
- Energy Density: The energy density of the electromagnetic field.
-
- Where:
- is the energy density in joules per cubic meter (J/m)
- is the magnetic flux density in teslas (T)
- is the permeability of free space ( H/m)
- Where:
-
- Volume of a Sphere: Used to calculate the volume of the area affected by the EMP.
-
- Where:
- is the volume in cubic meters (m)
- is the radius of the sphere in meters (m)
- Where:
-
- Power Output (General): The power output during the EMP pulse.
-
- Where:
- Power Output is in watts (W)
- Total Energy Output is in joules (J)
- Pulse Duration is in seconds (s)
- Where:
-
- Capacitor Energy Storage: The energy stored in a capacitor.
-
- Where:
- is the energy stored in joules (J)
- is the capacitance in farads (F)
- is the voltage in volts (V)
- Where:
-
- Inductance of a Coil: The inductance of a coil used in the EMP generator.
-
- Where:
- is the inductance in henries (H)
- is the number of turns
- is the permeability of free space ( H/m)
- is the relative permeability of the core material
- is the cross-sectional area of the coil in square meters (m)
- is the length of the coil in meters (m)
- Where:
-
- Magnetic Flux: The magnetic flux through a coil.
-
- Where:
- is the magnetic flux in webers (Wb)
- is the magnetic flux density in teslas (T)
- is the area in square meters (m)
- is the angle between the magnetic field and the normal to the surface
- Where:
-
- Faraday’s Law of Induction: The induced voltage in a coil.
-
- Where:
- is the induced voltage in volts (V)
- is the number of turns
- is the rate of change of magnetic flux in webers per second (Wb/s)
- Where:
-
- Resonant Frequency of LC Circuit: The frequency at which the LC circuit resonates.
-
- Where:
- is the resonant frequency in hertz (Hz)
- is the inductance in henries (H)
- is the capacitance in farads (F)
- Where:
-
- Magnetic Field of a Solenoid: The magnetic field inside a solenoid.
-
- Where:
- is the magnetic field in teslas (T)
- is the permeability of free space ( H/m)
- is the number of turns
- is the length of the solenoid in meters (m)
- is the current in amperes (A)
- Where:
-
- Heat Dissipation in Resistors: The power dissipated as heat in a resistor.
-
- Where:
- is the power in watts (W)
- is the current in amperes (A)
- is the resistance in ohms (Ω)
- Where:
-
- Ohm’s Law: The relationship between voltage, current, and resistance.
-
- Where:
- is the voltage in volts (V)
- is the current in amperes (A)
- is the resistance in ohms (Ω)
- Where:
-
- Electromagnetic Wave Equation: Describes the propagation of electromagnetic waves.
-
- Where:
- is the electric field in volts per meter (V/m)
- is the permeability of free space ( H/m)
- is the permittivity of free space ( F/m)
- is the time in seconds (s)
- Where:
-
Components
- Energy Storage and Management
- Super Capacitors
- Capacitor Cells
- Connecting Wires
- SubModules
- Capacitor Bank
- Multiple super capacitors connected in series or parallel
- Charging Circuit
- Ensures capacitors are charged safely and efficiently
- Discharge Mechanism
- Rapid release of stored energy
- Capacitor Bank
- Super Capacitors
- High-Voltage Generation
- High-Voltage Generators
- Transformer
- Rectifier Circuit
- Switching Mechanism
- SubModules
- Control Unit
- Microcontroller or PLC for managing switching
- Voltage Multiplier
- Series of capacitors and diodes to increase voltage
- SubComponents
- Inductor Coils
- Diodes
- Switching Transistors
- Control Unit
- High-Voltage Generators
- Electromagnetic Field Creation
- Coils
- Wire
- Core Material
- SubModules
- Primary Coil
- Secondary Coil
- SubComponents
- Insulation Material
- Mounting Brackets
- Magnet Arrays
- Magnets
- Magnet Holders
- SubModules
- Focusing Array
- Blocking Array
- SubComponents
- Shielding Material
- Coils
- Pulse Control and Modulation
- Pulse Control Circuitry
- Timing Circuit
- Modulation Unit
- SubModules
- Oscillator
- Amplifier
- SubComponents
- Capacitors
- Resistors
- Pulse Control Circuitry
- Power Supply
- Batteries
- Battery Cells
- Battery Management System (BMS)
- SubModules
- Charging Circuit
- Protection Circuit
- SubComponents
- Thermal Sensors
- Fuses
- Batteries
- Safety and Regulatory Compliance
- Safety Features
- Overcurrent Protection
- Voltage Regulation
- SubModules
- Circuit Breakers
- Surge Protectors
- SubComponents
- Insulation Materials
- Safety Relays
- Safety Features
- Wire Gauge and Thermal Management
- Wire
- Heat Sinks
- SubModules
- Cooling Fans
- Thermal Paste
- SubComponents
- Temperature Sensors
- Thermal Cutoffs
- Integration and Compatibility
- Connectors
- Mounting Hardware
- SubModules
- Interface Boards
- Compatibility Testing Units
- SubComponents
- Screws and Fasteners
- Alignment Tools
Safety and Regulatory
- Safety Features
- Overcurrent Protection
- Voltage Regulation
- Insulation Monitoring
Additional Considerations
- Wire Gauge: Determine based on current and temperature rise.
- Amps and Volts: Dependent on design and requirements.
- Efficiency and Losses: Consider efficiency of components and system.
- Integration and Compatibility: Ensure compatibility and effective integration of components.
- Environmental Factors: Consider atmospheric conditions and electromagnetic interference.
Assembly and Testing
- Assemble Super Capacitor Bank and High-Voltage Generators
- Integrate Coils and Magnet Arrays with High-Voltage Output
- Install Pulse Control Circuitry and Battery System
- Implement Safety Features and Thermal Management
- Perform Integration Testing to Ensure Compatibility and Performance
- Conduct Safety Testing to Ensure Compliance with Regulatory Standards