
PORTABLE POWER SOLUTIONS
Reliable & Secure
Energy Solutions
We are committed to delivering reliable and secure energy solutions that keep
your devices powered safely, ensuring uninterrupted performance
wherever you are.
OUR MISSION
Power With Safety
Safety is a fundamental aspect of Omnicharge’s product design. We continuously refine our technology,
engineering, and manufacturing processes to ensure our power solutions meet the highest standards
for reliability and security. By integrating advanced power management, battery protection,
rigorous testing, and quality control, we create products that perform
safely in a variety of environments.
OUR PATH
Why Choose Us?
SECURE ENERGY SOLUTIONS
Power Safety
Design & Engineering
At Omnicharge, power safety is a core part of our design process.
Our engineering team focuses on ensuring that every power bank is built for both performance and safety,
incorporating reliable power management, thermal control, and protective circuitry.
Safe Power
Control Systems
Precise Voltage Regulation
Ensures that every device connected to the power bank receives a constant and regulated voltage, preventing surges that could damage the device.
Smart Power Allocation
Our systems monitor real-time charging and adjust the power output to match the needs of each connected device, minimizing the risk of overloading or underpowering.
Power Loss Optimization
Reduces energy wastage through intelligent power management, ensuring that every watt is utilized efficiently, extending battery
longevity and reducing heat buildup.


Advanced Heat
Dissipation & Thermal
Control
Thermal Pads and Heat Sinks
These advanced materials and designs help distribute and dissipate heat generated during charging or discharging processes, minimizing thermal build-up.
Thermal Detection Sensors
We incorporate thermal sensors that continuously monitor the power bank’s temperature and activate dynamic powering systems or cut off power in the event of excessive heat buildup.
Short Circuit Prevention
& Fault Detection
Advanced Circuit Protection ICs (Integrated Circuits)
These components are designed to immediately detect any irregularities in power flow, such as short circuits, and will cut off power to prevent further damage.
ELECTRICAL SAFETY DESIGN
6 Layers of Device Protection
Provides a multi-tiered approach to electrical safety, ensuring redundancy and fail-safe mechanisms in case of power fluctuations or sudden surges.
3 Layers of Output Protection
Ensures that connected devices are safeguarded from excess voltage, current overload, and unintended power spikes, preserving their lifespan and functionality.
2 Layers of Input Protection
Shields internal circuits and components from unstable voltage sources, reducing the risk of internal damage and operational failures.

SECURE ENERGY SOLUTIONS
Battery Safety
Design & Engineering
Omnicharge prioritizes battery safety to ensure reliable and long-lasting
performance. Our design incorporates high-quality battery cells, advanced
protection systems, and real-time monitoring to guard against potential
risks such as overheating, overcharging, and capacity
degradation, while maintaining efficiency and durability.
Battery Chemistry and
Cell Selection Engineering
Cell Selection: Our engineers carefully select the highest quality battery cells to meet stringent safety and performance standards. By choosing Li-ion cells from reputable suppliers, we mitigate the risk of poor cell performance, which can lead to overheating, thermal runaway, or capacity degradation.
Thermal Stability: We prioritize cells with high thermal stability, ensuring that they can withstand high
temperatures without the risk of cell rupture
or combustion.
Balanced Cell Arrays: For power banks with multiple cells, we implement sophisticated cell balancing circuits that ensure all cells charge and discharge evenly, reducing the chance of individual cell failure.
Battery Health
Monitoring System
Dynamic Charging Algorithm: Adjusts power input based on real-time battery levels, optimizing charge cycles to extend battery life, improve efficiency, and prevent overcharging.
Dynamic Power Control System: Monitors real-time battery temperature and voltage conditions, intelligently adjusting output to mitigate overheating risks and prolong battery health.
Integrated Battery
Management Systems (BMS)
Overcharge and Overdischarge Protection: The BMS monitors the voltage of each cell in real time,
preventing overcharging or discharging that could lead to reduced lifespan or failure.
Current Monitoring: Our BMS continuously tracks the current flow to detect irregularities and stop the charging process if unsafe conditions are detected.
Dynamic Thermal Regulation: The BMS uses the temperature data to dynamically regulate charging and
discharging rates. If a temperature sensor detects excessive heat buildup, the BMS automatically adjusts the power flow or even temporarily suspends operation to prevent overheating and potential damage.
Charging Thermal Management: Uses precision
temperature sensors to regulate heat dissipation,
preventing overheating during prolonged charging and discharging cycles.
Proprietary Battery Balancing Management:
Prevents uneven charge distribution by ensuring that each cell maintains consistent energy levels, which helps avoid overheating and improves battery efficiency.
Battery Overcharging/Discharging Protection:
Implements intelligent cutoffs to prevent extreme voltage fluctuations, ensuring that the battery remains within optimal charge parameters for extended
durability.
Under-Voltage Protection: Ensures that the power system operates within safe voltage thresholds,
preventing shutdowns, voltage instability, and component degradation.
Mechanical Safety
Design
V0 Grade Flame Retardant Materials (UL94-V0 standard): Utilizes fire-resistant casing and components, ensuring enhanced safety in case of electrical faults or exposure to high temperatures.
Durable and Resilient: Engineered for reliability in demanding environments, the unit is built to maintain optimal performance even after prolonged exposure to challenging conditions, such as rough handling, fluctuating temperatures and regular movement.
Drop Test Standard: Rigorously tested with industry drop standards to simulate real-world impacts, ensuring that the internal components remain secure and functional even after accidental drops.
Advanced Battery Enclosure: Features a reinforced outer casing that protects internal battery cells from physical damage, reducing the risk of leaks, malfunctions, and hazardous failures.
RELIABLE SOLUTIONS
Product Safety
Testing & Certification
Ensuring the safety and reliability of our products is a rigorous and multi-step process that
involves extensive testing and certifications. At Omnicharge, we go beyond compliance
with regulatory standards to ensure our products perform safely under a wide range of
real-world conditions.
In-House Safety
Testing
Thermal Testing
Our power banks are subjected to high-temper ture tests to simulate extreme environmental conditions. This helps us verify that our products can safely operate in hot climates or during prolonged charging cycles.
Impact and Drop Testing
Each unit is dropped from varying heights onto different surfaces to simulate real-world accidents. This testing ensures that our
enclosures are robust enough to protect the internal components.
Electrical Safety Testing
Our power banks undergo short-circuit, overcurrent, and overvoltage testing to ensure they can withstand electrical anomalies without compromising user safety.


International
Certifications
IEC 62133 Compliance
All our power banks comply with the IEC 62133 standard, which governs the safe use of batteries in portable devices, ensuring they are safe for international markets.
IEC 62368 Compliance
Our power banks also comply with the IEC 62368-1 standard, which applies to audio/video, information, and communication technology equipment. This certification ensures that our products meet modern safety requirements, focusing on the prevention of electric shock, fire, and other hazards. By adhering to the IEC 62368-1 standard, we ensure that our power banks are safe for consumer and industrial use, addressing both electrical and thermal risks effectively.
RoHS and CE Marking
Our products meet the European Union’s RoHS standards for restricting hazardous substances and CE marking for compliance with EU safety and environmental regulations.



UN38.3 Certification and Battery Testing
All lithium-based battery chemistries must pass environmental, electrical, and mechanical safety tests.
The UN38.3 certification includes:
_T1: Altitude Simulation - Tests battery functionality in low-pressure
environments, ensuring safe air transport and high-altitude operation.
_T2: Thermal Test – Evaluates battery resilience when subjected to
rapid temperature shifts, preventing material expansion or
contraction failures.
_T3: Vibration Test – Simulates constant movement and shaking
during transport to ensure internal components remain securely in
place.
_T4: Shock Test – Determines impact resistance, testing the ability to withstand sudden drops or collisions.
_T5: External Short Circuit Test – Analyzes the system’s response to
unintended short circuits, verifying protection mechanisms.
_T6: Impact Test – Tests the structural integrity of battery cells to
prevent punctures, leaks, or ruptures under force.
_T7: Overcharge Test – Assesses the battery’s ability to prevent
overvoltage issues by integrating automatic power cutoffs when
limits are exceeded.
_T8: Forced Discharge Test – Simulates accidental full discharge
scenarios to ensure batteries do not become unstable or dangerous
when fully drained.
POWER SAFETY
Manufacturing
Quality Design & Control
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