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Azazel: appears as a fallen angel responsible for introducing humanity to forbidden knowledge. This channel is dedicated to sharing actionable intelligence/knowledge regarding COVID19/Coronavirus/Protest/Riots. Azazel & Doomsday are Apolitical Org
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Forwarded from Mythic
What You Need to Know

Generation: Nuclear, hydro, natural gas, solar, wind, etc.
Transmission: High-voltage lines move electricity long distances.
Distribution: Substations and transformers reduce voltage for communities.
Service: Electricity enters your building through the meter and electrical panel.
Loads: Appliances, lighting, pumps, communications, and other equipment consume power.

Common Failure Scenarios

Local: Transformer or power-line failure.
Regional: Severe storms, floods, fires, or widespread equipment damage.
Large-Scale: War, major infrastructure damage, cyberattacks, or prolonged fuel shortages.
Long-Term: Extended grid collapse requiring independent power generation and storage.

Tools & Equipment

Multimeter
Clamp meter
Non-contact voltage tester
Basic electrical hand tools
Electrical diagrams and equipment manuals

Knowledge Required

Learn the basics of:

Voltage
Current
Resistance
Watts and watt-hours
AC vs. DC
Batteries
Generators
Solar, wind, and hydro systems
Circuit protection and grounding
🫑2❀1
Forwarded from Mythic
Pre-Crisis Application

Map your electrical system:

Grid β†’ Meter β†’ Main Panel β†’ Critical Circuits β†’ Electrical Loads

Identify your:

Main shutoff
Critical circuits
Backup power connection
Solar/battery equipment
Water pumps
Refrigeration
Heating
Communications

Post-Crisis Application

Determine whether you have a temporary outage or a long-term infrastructure failure. Never approach damaged or fallen utility lines. If the grid is unavailable long-term, transition toward independent generation, storage, and distribution.
Forwarded from Mythic
Knowledge Required

Understand:

Watts: Power being used.
Watt-hours: Energy consumed over time.
Peak load: Maximum power needed.
Surge load: Temporary startup power required by motors and compressors.

Pre-Crisis Application

Create three energy budgets:

Emergency: Absolute minimum power required.

Operational: Power needed to function normally during a prolonged crisis.

Full Capacity: Everything you would like to operate.

Consider separating critical equipment onto a dedicated emergency/critical-load panel.

Post-Crisis Application

Your priorities may change over time:

First 24 Hours: Water, refrigeration, lighting, communications.

First Week: Add food production, security, and essential tools.

Long-Term: Add workshops, manufacturing, battery repair, and expanded power generation.

Energy Conservation

Reduce demand before increasing generation.

Use:

LED lighting
Efficient appliances
Efficient pumps
Insulation
Load scheduling
Battery storage

End Goal

Know what needs power, how much it needs, how long it must run, and what can be shut down.
Forwarded from Mythic
Building a Home or Facility Backup Power System

Objective

Create a reliable backup power system that automatically or manually supplies essential equipment when the grid fails.

What You Need to Know

A backup system typically consists of:

Power Source β†’ Transfer Equipment β†’ Distribution β†’ Critical Loads

Possible power sources include:

Generator
Battery system
Solar
Wind
Hydro
Hybrid combinations

Tools & Equipment

Generator or battery system
Inverter
Transfer switch or approved interconnection equipment
Electrical panel
Cables and connectors
Battery storage
Monitoring equipment

Knowledge Required

Understand:

Electrical load calculations
Generator sizing
Battery capacity
Inverter capacity
Automatic vs. manual transfer
Electrical safety and grounding

Pre-Crisis Application

Build the system around critical loads, not the entire building. Have a qualified electrician install permanent connections to prevent dangerous backfeeding.

Post-Crisis Application

Prioritize essential loads and operate the system conservatively. Combine backup generation with renewable sources to reduce fuel consumption.

End Goal

Maintain essential electricity for days, weeks, or longer without depending entirely on the utility grid.
Forwarded from Mythic
Solar Power Systems & Photovoltaic Salvage

Objective

Learn how to generate electricity from sunlight and recover usable solar equipment after infrastructure failure.

What You Need to Know

A basic solar system includes:

Solar Panels β†’ Charge Controller β†’ Battery β†’ Inverter β†’ Loads

Understand:

Solar panel output
Series and parallel connections
Charge controllers
Battery storage
Inverters
Solar production changes with weather and seasons

Tools & Equipment

Multimeter
Solar panel tester
Wiring tools
Connectors
Charge controller
Inverter
Batteries
Mounting equipment

Knowledge Required

Learn DC electricity, solar ratings, battery charging, voltage compatibility, and safe wiring.

Pre-Crisis Application

Install and maintain a properly designed solar system with battery storage and spare components.

Post-Crisis Application

Recover intact panels, controllers, wiring, and mounting hardware. Test equipment individually before integrating it into a new system.

End Goal

Create a renewable power source that can operate independently of the grid with minimal ongoing fuel requirements.
Forwarded from Mythic
Wind Power & Small-Scale Generation

Objective

Understand how wind turbines generate electricity and how small wind systems can supplement other energy sources.

What You Need to Know

A wind system generally consists of:

Turbine β†’ Controller β†’ Battery β†’ Inverter β†’ Loads

Output depends heavily on:

Wind speed
Turbine size
Location
Tower height
Turbine efficiency

Tools & Equipment

Multimeter
Electrical hand tools
Turbine controller
Batteries
Inverter
Tower and mounting equipment
Replacement wiring and connectors

Knowledge Required

Understand basic electricity, mechanical systems, battery charging, tower safety, and wind-site assessment.

Pre-Crisis Application

Install wind generation where local conditions support it. Use it as a supplement to solar rather than relying on it as your only source.

Post-Crisis Application

Recover turbines, controllers, wiring, and mechanical components. Inspect towers and moving parts carefully before reuse.

End Goal

Use wind as a renewable energy source that can produce power when solar generation is unavailable.
Forwarded from Mythic
Micro-Hydro & Water-Based Power

Objective

Learn how flowing water can provide continuous electricity when suitable water resources are available.

What You Need to Know

A micro-hydro system generally uses:

Water Flow β†’ Turbine β†’ Generator β†’ Controller β†’ Battery/Grid

The most important factors are:

Water flow
Elevation change
Turbine type
Generator capacity

Tools & Equipment

Flow measurement equipment
Multimeter
Turbine
Generator
Controller
Wiring
Batteries or grid connection equipment

Knowledge Required

Understand basic hydraulics, electrical generation, water management, and environmental considerations.

Pre-Crisis Application

Identify suitable water resources and obtain necessary permissions before installing a system.

Post-Crisis Application

Where infrastructure remains functional, water-powered systems may provide consistent electricity. Recover usable turbines, generators, and electrical equipment from damaged facilities where legally and safely possible.

End Goal

Establish a reliable renewable source capable of producing electricity continuously when water conditions permit.
Forwarded from Mythic
Battery Banks, Energy Storage & Powerwalls

Objective

Learn how to store electricity so power generated during one period can be used later.

What You Need to Know

A battery system requires:

Generation β†’ Charging β†’ Battery Storage β†’ Inverter β†’ Loads

Important concepts include:

Battery capacity
Voltage
Depth of discharge
Charge rate
Battery management systems
Battery chemistry
Temperature

Common battery types include:

Lead-acid
Lithium-ion
LiFePOβ‚„

Tools & Equipment

Multimeter
Battery tester
Battery charger
Proper cables and connectors
Battery management equipment
Insulated tools

Knowledge Required

Understand battery safety, charging, capacity calculations, thermal management, and safe storage.

Pre-Crisis Application

Maintain a properly designed battery bank with appropriate protection and monitoring.

Post-Crisis Application

Recover batteries cautiously. Test them individually and separate damaged, swollen, leaking, or otherwise unsafe batteries from usable equipment.

End Goal

Create reliable energy storage that allows renewable systems to provide power even when generation is unavailable.
Forwarded from Mythic
⬆️ ⬆️ ⬆️

These classes have already been discussed, so if you are paying attention, this should already be common knowledge.

If not, review and research.
The links are posted just underneath the title.
❀2
Forwarded from Mythic
Generators & Fuel-Based Backup Systems

Objective

Understand how generators produce electricity, how to maintain them, and how to troubleshoot common failures.

How It Works

A generator combines:

Fuel β†’ Engine β†’ Mechanical Rotation β†’ Alternator β†’ Electrical Output

The engine burns fuel and turns a shaft. The alternator converts that mechanical energy into electricity.

The electricity can then be sent to:

Appliances
A building’s electrical system
Battery chargers
Inverters
Critical-load circuits

Main Components

Engine
Fuel system
Alternator
Voltage regulator
Control panel
Cooling system
Exhaust system

Common Problems & Basic Fixes

Generator won’t start

Check fuel.
Check oil level.
Check battery, if electric-start.
Inspect fuel system.
Check spark plug on gasoline models.

Generator starts but shuts down

Low oil.
Overheating.
Fuel starvation.
Overload.
Sensor fault.

No electrical output

Breaker may be tripped.
Generator may have an electrical fault.
Voltage regulation system may have failed.

Poor performance

Dirty air filter.
Old or contaminated fuel.
Fuel-system blockage.
Engine maintenance required.
Forwarded from Mythic
Maintenance

Regularly check:

Oil
Filters
Fuel system
Battery
Cooling system
Belts
Electrical connections

Operate generators outdoors and away from buildings to prevent carbon-monoxide poisoning. Never backfeed a building through a regular outlet.

Pre-Crisis Application

Maintain:

Generator
Fuel supply
Spare filters
Spark plugs
Oil
Basic maintenance tools

Have a professionally installed transfer switch or other approved connection method for connecting a generator to a building.

Post-Crisis Application

Use generators strategically.

The ideal long-term strategy is:

Generator β†’ Charge Batteries β†’ Shut Generator Off β†’ Run Critical Loads From Batteries

This reduces fuel consumption and generator operating hours.

End Goal

Use generators as a reliable emergency power source while transitioning toward renewable energy and battery storage for long-term sustainability.
Forwarded from Mythic
Inverters, Transformers & Power Conversion

Objective

Understand how electrical equipment changes electricity from one form or voltage to another so different power sources and devices can work together.

How It Works

Inverter: Converts DC β†’ AC.

Example:

Battery (DC) β†’ Inverter β†’ Household AC Power

Transformer: Changes AC voltage β†’ Higher or Lower AC Voltage.

DC-DC Converter: Changes one DC voltage to another.

These systems allow you to connect:

Solar panels
Batteries
Generators
Vehicles
Household appliances
Electronics

Common Problems & Basic Fixes

Inverter won’t turn on

Check battery voltage.
Check cables and connections.
Check fuses or breakers.
Check for an overload.

Inverter shuts down

Battery voltage too low.
Excessive load.
Overheating.
Internal fault.

Transformer overheating

Excessive load.
Poor ventilation.
Damaged transformer.
Incorrect voltage application.

Converter output incorrect

Wrong input voltage.
Incorrect settings.
Failed components.

Tools & Equipment

Multimeter
Clamp meter
Insulated tools
Replacement fuses
Proper cables and connectors
Manufacturer documentation

Salvage & Reuse

Potential salvage:

Inverters
Transformers
DC-DC converters
Chargers
Power supplies

Test equipment before connecting it to expensive or critical systems.

Pre-Crisis Application

Keep compatible spare conversion equipment and document the voltage requirements of your systems.

Post-Crisis Application

Recover conversion equipment from vehicles, renewable systems, industrial machinery, and abandoned facilities where safe and legally permitted.

End Goal

Connect different energy sources and electrical loads into a functional power system.
❀2
Forwarded from Mythic
Electrical Panels, Breakers & Distribution Systems

Objective

Understand how electricity is safely divided and distributed to individual circuits.

How It Works

Power Source β†’ Main Disconnect β†’ Electrical Panel β†’ Breakers β†’ Branch Circuits β†’ Loads

Circuit breakers protect wiring by disconnecting power when excessive current flows.

A distribution system allows one power source to supply multiple circuits while protecting each circuit individually.

Main Components

Main breaker
Circuit breakers
Fuses
Busbars
Disconnects
Grounding system
Branch circuits

Common Problems & Basic Fixes

Breaker keeps tripping

Circuit overloaded.
Short circuit.
Faulty appliance.
Wiring problem.

Breaker won’t reset

Fault may still exist.
Breaker may be damaged.
Circuit may have a short.

Panel overheating

Loose connection.
Overloaded equipment.
Damaged component.

No power to circuit

Tripped breaker.
Failed breaker.
Wiring problem.

Repeated breaker trips should be investigated rather than repeatedly resetting the breaker.

Tools & Equipment

Multimeter
Clamp meter
Electrical diagrams
Circuit labels
Insulated tools

Pre-Crisis Application

Label every circuit and identify which circuits are critical.

A dedicated critical-load panel can allow backup power to operate only essential equipment.

Post-Crisis Application

Inspect panels for water, fire, impact, or corrosion damage. Replace damaged components rather than attempting unsafe repairs.

End Goal

Safely distribute electricity from your available energy sources to the equipment that requires power.

πŸŽ₯ YouTube Learning

How Electrical Panels and Circuit Breakers Work⁠
Forwarded from Mythic
Wiring, Cables, Connectors & Electrical Components

Objective

Learn how electricity physically travels between power sources, storage systems, distribution equipment, and loads.

How It Works

Electrical wiring provides a conductive path for current.

Different systems require different:

Wire sizes
Insulation types
Voltage ratings
Connector types
Current capacities

Using wire that is too small can cause overheating and potentially fire.

Common Components

Copper wire
Aluminum conductors
Cable assemblies
Terminals
Connectors
Fuses
Switches
Relays
Busbars

Common Problems & Basic Fixes

Broken wire

Replace or properly repair using an appropriate connector.

Corroded connection

Disconnect power.
Clean or replace the affected connection.

Loose terminal

Tighten to the manufacturer’s specified torque.

Overheated wire

Disconnect power.
Investigate overload, undersized wiring, or poor connections.

Damaged insulation

Replace the damaged section or cable where appropriate.

Tools & Equipment

Wire strippers
Cable cutters
Crimping tools
Multimeter
Heat-shrink tubing
Connectors
Electrical labels

Salvage & Reuse

Potentially recover:

Copper cable
Connectors
Switches
Relays
Fuses
Terminals
Busbars

Inspect for corrosion, heat damage, and insulation deterioration.

Pre-Crisis Application

Maintain a supply of commonly used wire, connectors, fuses, and terminals.

Post-Crisis Application

Salvage usable wiring from abandoned equipment and structures. Sort and label it by size, type, and condition.

End Goal

Build a reusable inventory of electrical materials that allows systems to be repaired without relying entirely on new supplies.

πŸŽ₯ YouTube Learning

Electrical Wiring Basics for Beginners⁠
Forwarded from Mythic
Creating a Hybrid Renewable Energy System

Objective

Combine multiple energy sources so that one system can compensate when another is unavailable.

How It Works

A hybrid system might combine:

Solar + Wind + Hydro + Batteries + Generator

For example:

Solar produces power during daylight.
Wind produces power during windy conditions.
Hydro produces continuous power where available.
Batteries store excess energy.
Generator provides emergency backup.

A controller or energy-management system determines how power is distributed.

Common Problems & Basic Fixes

System isn’t charging batteries

Check each energy source individually.
Check controllers.
Inspect wiring.

One energy source isn’t contributing

Solar: Check panels and shading.
Wind: Check turbine and controller.
Hydro: Check water flow and turbine.

Battery drains too quickly

Excessive loads.
Insufficient generation.
Battery degradation.

System instability

Incompatible components.
Incorrect configuration.
Faulty inverter or controller.

Tools & Equipment

Multimeter
Clamp meter
Energy monitor
Charge controllers
Inverter
Batteries
Monitoring software

Pre-Crisis Application

Design the system so each energy source can operate independently where practical.

Post-Crisis Application

Start with whatever functioning equipment is available and gradually add additional generation sources.

For example:

Solar β†’ Battery β†’ Add Wind β†’ Add Generator β†’ Add Hydro

End Goal

Create an energy system that remains functional even when one generation source fails.

πŸŽ₯ YouTube Learning

Hybrid Solar Wind Battery System Explained⁠
Forwarded from Mythic
Designing Redundant Power Systems

Objective

Ensure that the failure of one component does not cause the entire energy system to fail.

How It Works

Instead of relying on:

One Generator

You might have:

Solar + Batteries + Generator

Instead of one large battery bank, you might have multiple independent battery systems.

The basic principle is:

No single failure should eliminate all available power.

Examples of Redundancy

Generation

Solar
Wind
Hydro
Generator

Storage

Main battery bank
Secondary battery bank
Portable power stations

Distribution

Main electrical panel
Critical-load panel
Independent emergency circuits

Equipment

Multiple inverters
Spare controllers
Replacement fuses
Spare wiring

Common Problems & Basic Fixes

Primary system fails

Switch to secondary power source.

Battery bank fails

Isolate it and use backup storage.

Inverter fails

Switch to another inverter or compatible backup system.

Generator unavailable

Reduce loads and rely on renewable generation and batteries.

Tools & Equipment

Backup power sources
Spare components
Transfer equipment
Battery storage
Monitoring equipment
Electrical documentation

Pre-Crisis Application

Design your system around multiple independent layers:

Primary β†’ Secondary β†’ Emergency

Example:

Solar + Battery β†’ Generator β†’ Portable Battery

Post-Crisis Application

As equipment is salvaged, avoid putting everything into one giant system. Maintain multiple independent power sources so a single failure doesn’t cause total power loss.

End Goal

Build an energy network that can degrade gracefully rather than suddenly going completely dark.

πŸŽ₯ YouTube Learning

Redundant Power Systems and Backup Power Explained⁠
Forwarded from Mythic
Energy Monitoring & Load Management

Objective

Learn how to measure electricity use and control which equipment receives power when energy is limited.

How It Works

An energy-monitoring system tracks:

Generation β†’ Storage β†’ Consumption

You can monitor:

Voltage
Current
Watts
Battery charge
Energy consumed
Solar production

Load management means controlling when and how equipment operates.

For example:

High Priority: Water pump
Medium Priority: Refrigerator
Low Priority: Workshop equipment

If energy becomes limited, low-priority loads are shut down first.

Common Problems & Basic Fixes

Unexpected high power consumption

Identify which device is using excess energy.
Check for malfunctioning equipment.
Measure individual circuits.

Battery draining too quickly

Check total load.
Look for equipment running unnecessarily.
Check battery condition.

Monitor shows incorrect readings

Check sensors and connections.
Verify configuration.
Compare readings with a separate meter.

Tools & Equipment

Energy monitor
Multimeter
Clamp meter
Smart plugs/meters
Battery monitor
Spreadsheet or logging system

Pre-Crisis Application

Monitor your normal energy usage before an emergency. Identify your highest-energy equipment and determine what can be shut down.

Post-Crisis Application

Track available generation and consumption. Establish strict energy priorities when generation is limited.

End Goal

Know exactly where your energy is going and prevent valuable electricity from being wasted.

πŸŽ₯ YouTube Learning

Energy Monitoring and Load Management Basics⁠
Forwarded from Mythic
Preparing for Grid Failure, War & Infrastructure Damage

Objective

Prepare your energy systems for major disruptions to electrical infrastructure.

How It Works

The strategy is based on three stages:

Prepare β†’ Isolate β†’ Operate Independently

Prepare your backup systems before an emergency.

When a grid failure occurs, isolate your critical electrical system from the utility grid using appropriate equipment.

Then operate using:

Solar + Batteries + Generator + Other Available Sources

Common Problems & Basic Fixes

Backup system doesn’t activate

Check batteries.
Check generator fuel.
Check transfer equipment.
Check system errors.

Backup power runs out quickly

Reduce non-essential loads.
Prioritize critical equipment.
Increase renewable generation.

Fuel supply becomes unavailable

Reduce generator usage.
Shift to renewable sources.
Use batteries for short-term storage.

Tools & Equipment

Backup generator
Solar system
Batteries
Transfer equipment
Fuel storage
Spare electrical components
Emergency lighting
Communication equipment

Pre-Crisis Application

Create an Energy Continuity Plan.

Document:

Critical loads
Backup power sources
Fuel requirements
Battery capacity
System shutoffs
Maintenance schedules
Spare parts

Keep multiple independent ways to generate electricity.

Post-Crisis Application

If the grid is unavailable for an extended period:

Reduce energy consumption.
Protect battery reserves.
Use renewable generation whenever possible.
Run generators strategically.
Begin repairing or expanding independent power systems.

End Goal

Transition from grid-dependent power to a resilient energy system capable of operating independently for extended periods.

πŸŽ₯ YouTube Learning

How to Prepare for a Long-Term Power Outage⁠
Forwarded from Mythic
The First 24–72 Hours After a Grid Down

Objective

Establish immediate control of your energy resources after a major power failure.

How It Works

The first priority is assessment, not immediately consuming all available energy.

Follow the sequence:

Assess β†’ Isolate β†’ Prioritize β†’ Conserve β†’ Generate

First 24 Hours

Determine:

Is the outage local or widespread?
Is your backup system operational?
Are there electrical hazards?
What equipment must remain powered?

Immediately prioritize:

Water
Medical equipment
Refrigeration
Communications
Essential lighting

24–72 Hours

Begin managing your energy reserves.

Reduce unnecessary loads.
Monitor battery levels.
Operate generators strategically.
Charge batteries when renewable generation is available.
Establish a daily energy budget.

Common Problems & Basic Fixes

Battery draining too fast

Reduce loads.
Turn off unnecessary equipment.

Generator using excessive fuel

Reduce operating hours.
Use it to charge batteries rather than running every appliance continuously.

Solar system not producing

Check weather and shading.
Inspect connections.
Check controller and inverter status.

Tools & Equipment

Multimeter
Energy monitor
Flashlights
Battery chargers
Backup batteries
Generator
Solar system

Pre-Crisis Application

Practice your emergency power transition before you need it.

Post-Crisis Application

Treat the first three days as an energy conservation period. Avoid assuming the grid will return quickly.

End Goal

Maintain essential power while determining whether the outage is temporary or the beginning of a prolonged infrastructure failure.

πŸŽ₯ YouTube Learning

What to Do During a Long-Term Power Outage⁠
Forwarded from Mythic
Assessing Damaged Electrical Infrastructure

Objective

Learn how to determine whether electrical equipment is intact, repairable, salvageable, or unsafe.

How It Works

Every piece of equipment should be classified:

🟒 Operational β€” Safe and functioning.

🟑 Repairable β€” Damaged but potentially restorable.

🟠 Salvageable β€” Useful components can be recovered.

πŸ”΄ Unsafe β€” Do not use; isolate and dispose of appropriately.

What to Inspect

Look for:

Fire damage
Flooding
Corrosion
Broken insulation
Melted wiring
Physical impact
Burn marks
Water contamination

Common Problems & Basic Fixes

Corroded connections

Replace or properly clean where appropriate.

Damaged wiring

Replace affected wiring.

Burned components

Replace rather than attempting to reuse severely damaged parts.

Water-damaged equipment

Disconnect power.
Do not immediately energize.
Have qualified personnel assess whether equipment can be safely restored.

Tools & Equipment

Flashlight
Multimeter
Clamp meter
Insulated tools
Camera
Labels
Inspection checklist

Pre-Crisis Application

Create an inventory of your existing electrical equipment and document its condition.

Post-Crisis Application

Conduct a systematic assessment before attempting repairs.

Do not energize unknown or damaged electrical systems simply to see if they work.

End Goal

Develop the ability to quickly distinguish between usable, repairable, salvageable, and hazardous equipment.

πŸŽ₯ YouTube Learning

How to Inspect Damaged Electrical Equipmentβ