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Battery Pack Information Lookup

Get Data of Your Gobel Power Battery
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GP-SR1-PC200 Premium Example: GPEV280H240520R1006
GP-SR1-PC200 Standard Example: GPHC280H240401R1003
GP-LA12-280AH Standard Example: GDHC280H240312R1401
More Examples
SN Capacity (Ah) Max Charge Voltage (V) Min Discharge Voltage (V) BMS
GPHC280H240817R1202 295.00 56.48 42.24 GP-PC200 BMS
GPEV280H240620R1024 304.00 57.13 40.73 GP-PC200 BMS
GPHC280H240515R1206 293.00 56.84 41.85 GP-PC200 BMS
GPHC280H240611R2901 296.00 57.71 42.81 GP-PC200 BMS
GPHC280H240710R2904 295.00 57.77 42.77 GP-PC200 BMS
GPHC280H240506R2902 294.00 57.26 40.68 GP-PC200 BMS
GPEV280H230625R1039 304.00 56.81 42.79 GP-PC200 BMS
GPEV280H240105R1026 303.00 58.00 42.56 GP-PC200 BMS
GPHC280H240506R1007 295.00 57.15 41.27 GP-PC200 BMS
GPEV280H230625R1020 306.00 57.02 40.99 GP-PC200 BMS
GPHC280H240705R1301 295.00 57.18 40.85 GP-PC200 BMS
GPRP280L240304R3202 284.00 57.50 41.70 GP-PC200 BMS
GPHC280H240607R1003 292.00 56.70 41.98 GP-PC200 BMS
GPRP280L231012R1007 292.00 57.60 40.12 GP-PC200 BMS
GPHC280H240705R1403 294.00 56.91 41.29 GP-PC200 BMS
GPHC280H240506R1001 292.00 56.21 42.12 GP-PC200 BMS
GPEV280H240105R1019 301.00 58.00 42.51 GP-PC200 BMS
GPEV280H240620R1037 305.00 57.60 40.98 GP-PC200 BMS
GPEV280H240905R1017 306.00 57.98 42.06 GP-RN200 BMS
GPEV280H240505R1012 301.00 57.99 42.44 GP-PC200 BMS
Specification of The Battery

Pack SN:GPHC280H240822R1002
Pack Type: 51.2V LiFePO4 Battery
Pack Grade: Standard
BMS Type: JK200
Balancer Type: 4A Bluetooth Active Balancer
Heater: Without Heater
Cell Type: Hithium 280
Cell Grade: HSEV
Cells Connection: 16S1P
Pack Test Result

Full Capacity: 295.00 Ah (15.10 kWh)
Max Charge Voltage: 56.27 V
Min Discharge Voltage: 42.38 V
Charge Test Steps
  • Charging at a constant current of 100A, with a maximum charging voltage of 55.5V.
  • Charging at a constant voltage of 55.5V, with a cutoff current of 40A.
  • Charging at a constant current of 40A, with a maximum charging voltage of 58V.
  • Document the maximum charging voltage when the voltage of a single cell reaches 3.65V.
  • * Tested without deliberated active balance procedure.
Discharge Test Steps
  • Discharging at a constant current of 100A.
  • Document the minimum discharging voltage when the voltage of a single cell reaches 2.5V.
  • * Please be aware that the charge/discharge curve and capacity of batteries can vary with changing temperatures throughout the seasons. In winter, tested capacity will be relatively lower.
Charge/Discharge Curve
(Based on GPHC280H240822R1002 Test Data)

Cells Information

Cell Id QR Capacity (Ah) OCV1 (mV) RI1 (mΩ) Self Discharge Thick (mm) Test Date
1 47 0IJCBA0B161111DBX0001095 296.57 3,284.2 0.1767 0.0184 71.55 2023-12-02
2 91 0IJCBA0B161111DBX0001112 296.61 3,284.3 0.1750 0.0206 71.54 2023-12-02
3 106 0IJCBA0B161111DBX0001102 296.81 3,284.3 0.1749 0.0210 71.52 2023-12-02
4 143 0IJCBA0B161111DBW0023913 296.81 3,283.7 0.1763 0.0201 71.56 2023-11-30
5 152 0IJCBA0B161111DBW0023930 296.56 3,283.9 0.1750 0.0202 71.56 2023-11-30
6 162 0IJCBA0B161111DBW0024430 296.49 3,284.8 0.1822 0.0207 71.62 2023-12-01
7 171 0IJCBA0B161111DBW0023467 296.79 3,284.2 0.1731 0.0192 71.59 2023-11-30
8 176 0IJCBA0B161111DBW0024426 296.98 3,284.7 0.1813 0.0209 71.64 2023-12-01
9 187 0IJCBA0B161111DBW0025443 296.58 3,283.6 0.1756 0.0210 71.51 2023-12-01
10 190 0IJCBA0B161111DBW0023232 296.95 3,284.3 0.1739 0.0215 71.55 2023-11-30
11 202 0IJCBA0B161111DBW0024428 296.82 3,284.4 0.1798 0.0203 71.55 2023-12-01
12 204 0IJCBA0B161111DBW0025459 296.62 3,283.4 0.1737 0.0212 71.51 2023-12-01
13 222 0IJCBA0B161111DBW0023483 296.72 3,284.5 0.1753 0.0213 71.54 2023-11-30
14 272 0IJCBA0B161111DBW0024755 296.96 3,283.5 0.1756 0.0182 71.56 2023-12-01
15 284 0IJCBA0B161111DBW0024427 296.70 3,284.3 0.1781 0.0205 71.54 2023-12-01
16 312 0IJCBA0B161111DBW0024763 296.56 3,283.5 0.1768 0.0182 71.53 2023-12-01
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Why Cells Consistency is Important?

Cell consistency in a LiFePO4 (Lithium Iron Phosphate) battery, or indeed any type of battery, refers to the uniformity of the performance and characteristics of the individual cells within the battery.

When a battery is made up of multiple cells, it's important that each cell has the same capacity, internal resistance, self-discharge rate, and other performance characteristics. This is because the overall performance of the battery is only as good as its weakest cell. If one cell has a lower capacity or higher internal resistance, it can reduce the performance of the entire battery, and can even lead to premature failure of the battery.

In a series configuration, the same current flows through all cells. If one cell has a lower capacity, it will discharge faster than the others. Once this cell is fully discharged, the overall battery voltage will drop significantly, even though the other cells still have charge left. This can lead to underutilization of the overall battery capacity.

In a parallel configuration, all cells share the same voltage. If one cell has a higher self-discharge rate, it will drain the other cells to balance its voltage, leading to a faster overall discharge rate.

Moreover, inconsistencies between cells can lead to issues with balancing. Balancing is the process of ensuring all cells in a battery are at the same state of charge. This is typically done by either transferring charge from higher charged cells to lower charged ones (active balancing), or by dissipating excess charge in the higher charged cells (passive balancing). If the cells are inconsistent, it can make balancing more difficult and less effective.

Therefore, cell consistency is crucial for maximizing the performance, longevity, and safety of a battery. This is why Gobel Power puts a lot of effort into cell selection and sorting, to ensure that only cells with similar characteristics are used together in a battery.

Static parameters such as capacities, internal resistances, and voltage levels, though informative, may not provide a comprehensive picture of cell consistency in a LiFePO4 (Lithium Iron Phosphate) battery. A more practical and straightforward method to assess cell consistency involves monitoring the maximum charge voltage when a single cell reaches 3.65V. This is based on the understanding that if the cells exhibit good consistency, the voltage variation across them will be minimal, resulting in a higher overall maximum charge voltage. Therefore, observing the maximum charge voltage when one cell attains 3.65V can serve as a reliable indicator of the battery's cell consistency.

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