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Comparison EcoFlow DELTA 1300 vs EcoFlow DELTA Pro

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EcoFlow DELTA 1300
EcoFlow DELTA Pro
EcoFlow DELTA 1300EcoFlow DELTA Pro
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Charging station. 2 USB A ports, 2 USB A Fast Charge ports, 2 USB-C ports. Car cigarette lighter. NCM is a lithium-ion battery. Jumps up to 3300 watts are allowed. X-Stream port for fast charging (1200W). Includes bag-case. Capacity 1260 Wh
Charging station. 2 USB A ports, 2 USB Fast Charge ports, 2 USB-C ports. Transport wheels. Support Wi-Fi, Bluetooth
In boxcharging stationcharging station
Rated power1800 W3600 W
Peak power3300 W7200 W
Output waveformsinusoid (PSW)sinusoid (PSW)
UPS function
 /30 мс/
 /30 мс/
Outputs
Sockets (230 V)4 pcs4 pcs
USB A
2 pcs
5В/2.4А
12 W
2 pcs
5В/2.4А
12 W
USB A (quick charge)
2
5В/2.4A, 9В/2A, 12В/1.5A
18 W
2
5В/2.4A, 9В/2A, 12В/1.5A
18 W
USB type C
2 pcs
3 A
60 W
2 pcs
5 A
100 W
Car cigarette lighter
 /13.6 В / 8 А / 108.8 Вт/
 /12.6 В / 10 A / 126 Вт/
DC output2 шт DC5521 (12.6 В / 3 A / 38 Вт)
Add. portsUSB B
Inputs (station charging)
From solar panels
 /10 – 65 В / 10 A (max)/
 /11 – 150 В / 15 A (max)/
Input port XT60
Anderson port12.6 / 30 А
Add. portsХ-Stream port (C13/14)Infiniti
Battery and charging time
Connecting an additional battery
 /up to 2 batteries/
Battery type
Li-ion NMC /18650/
LiFePO4
Battery capacity1260 W*h3600 W*h
Charging cycles800
3500 /DOD>80%/
Charging time (socket) 96 min114 min
Charging time (solar panel) 480 min135 min
Charging time (cigarette lighter) 810 min
Charging power (socket)1200 W1800 W
Charging power (solar panel)400 W1600 W
General
Smartphone synchronizationBluetooth and WiFi
PSUbuilt into the bodybuilt into the body
Display
Wheels for transportation
Carrying handle
Operating temperature-20 °C ~ +45 °C-20 °C ~ +45 °C
Dimensions270x210x400 mm416x285x635 mm
Weight14 kg45 kg
Added to E-Catalogseptember 2022september 2022

Rated power

Power that a device can consistently produce for an indefinitely long time without any unpleasant consequences. For normal operation of the charging station, the rated power must be at least 15 - 20% higher than the total power of all devices simultaneously connected to it.

Peak power

Some electrical appliances (in particular, units with electric motors - refrigerators, air conditioners, etc.) consume significantly more energy at startup than after reaching the operating mode. For such a load, the peak power of the charging station must be taken into account - its indicator must be higher than the starting power of the load.

USB type C

USB type C ports are smaller than classic USBs, and they also have a convenient reversible design that allows you to connect the plug in either direction. USB type C was originally designed to be able to implement various advanced features: increased power supply, fast charging technologies, etc.

Since the port is relatively new and quite powerful (there are USB type C with a power of 60 W and even 100 W), the total number of such connectors is often limited to 1 port, less often two).

- The strength of the power. The maximum power output through the USB type C connector to a charging device. Note that different ports of the charging station can output different power (for example, 1.5 A and 2.1 A). In this case, the highest power strength is usually indicated.

— Power. The maximum power in watts (W) that the charging station is capable of delivering to one rechargeable gadget. The high output power of the USB type C port allows you to speed up the charging process. However, the appropriate power must be supported by the device being charged - otherwise the speed of the process will be limited by the characteristics of the gadget.

DC output

The presence of a DC connector (or several such outputs) in the device to power external gadgets with direct current. The standard DC jack is round and has a pin in the center. However, its dimensions may differ in depth and diameter. The voltage output to the DC output may be different. The most popular options are 18 - 20 V for powering laptops, 12 V for various specialized devices and automotive electrical accessories.

Add. ports

Additional output connectors provided in the design of the charging station in addition to those described above.

Anderson port

A large two-pole connector for connecting batteries, chargers and all kinds of equipment where reliable contact is required for the sake of ensuring stable operation of the equipment. Anderson Port is resistant to moisture changes, can be used both for indoor and outdoor mechanisms. Thanks to identical mating parts, a pair is formed by two identical connectors, which are rotated 180 ° relative to each other. Most often, Anderson port is used in mobile homes on wheels.

Add. ports

Additional input connectors provided in the design of the charging station in addition to those described above.

Connecting an additional battery

Ability to connect an external battery to the charging station to increase the overall energy consumption and, as a result, extend the battery life. This connection is fast and convenient. On the other hand, the battery takes up extra space on the outside, making the whole structure more cumbersome.

Battery type

Li-Ion. The key advantage of lithium-ion batteries is their high capacity with small dimensions and weight. Also, Li-Ion batteries are not subject to memory effect and can charge quite quickly. Of course, this option is not without its drawbacks - first of all, it is sensitivity to low or elevated temperatures, and if overloaded, the lithium-ion battery can catch fire or even explode. However, thanks to the use of built-in controllers, the likelihood of such “accidents” is extremely low and, in general, the advantages of this technology significantly outweigh the disadvantages.

Li-Pol. An improved version of lithium-ion technology (see the corresponding paragraph): the liquid electrolyte in Li-Pol batteries is replaced with a solid polymer. At the same high capacity, the batteries have become more compact, there is practically no “memory effect” in them, and the likelihood of fires and explosions in the event of critical violations of operating conditions is minimized. The downside of these improvements was increased cost and increased sensitivity to frost. However, most often these shortcomings are not significant.

LiFePO4. Lithium iron phosphate batteries are a modification of lithium ion batteries (see corresponding paragraph) designed to eliminate some of the shortcomings of the original technology. LiFePO4 batteries are characterized by a...large number of charge/discharge cycles, chemical and thermal stability, low temperature tolerance, short charging time (including high currents) and safety in operation. The likelihood of an “explosion” of a LiFePO4 battery when overloaded is reduced to almost zero, and in general, such batteries cope with high peak loads without problems and maintain the operating voltage almost until discharge.

Li-Ion NMC. A type of lithium rechargeable battery using a complex alloy in the manufacture of the cathode. It contains nickel, manganese and cadmium. This “recipe” allows you to increase the power of a power source based on Li-Ion NMC elements. Batteries of this type have a high specific capacity and a stable discharge voltage, provide a long operating time of the charging station with high performance, are characterized by a complete absence of “memory effect”, maintain functionality over a wide temperature range and are fireproof.

— VRLA. Acid batteries with a regulating safety valve to release excess gas. The abbreviation VRLA stands for Valve Regulated Lead Acid. Batteries of this type have a sealed, non-separable design and come in two types: AGM VRLA (the battery plates are equipped with a layer of fiberglass absorbent) and GEL VRLA (with a gel electrolyte in a jelly-like state). Batteries with a control valve are resistant to deep discharges, do not require topping up with distillate throughout their entire service life, and do not emit hydrogen or oxygen.

- Semi-solid State. An advanced type of lithium-ion battery (see above), which combines some of the characteristics of liquid and solid batteries. It uses an electrolyte that is in a semi-soft or gel-like state, making the batteries more resistant to leakage than traditional wet batteries. Semi-solid state technology allows for a significant increase in the energy density of cells. As a result, it is possible to make compact batteries with high energy intensity.
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