オフグリッド太陽光発電システムとモバイル電源システムの世界, the “48100Ahで LiFePO4 battery paired with a 2000W inverter” 最も人気のある構成の 1 つです. 携帯性とのバランスが取れています, 電圧効率, と出力. しかし, 多くのユーザーは、単純に総エネルギーを負荷で割ることにより、実行時間を過大評価することがよくあります。. To calculate the 実際の ランタイム, we must account for efficiency losses, 放電の深さ (国防総省), and inverter overhead.
The Theoretical vs. Practical Calculation
To find the runtime, we first determine the total energy stored in the battery.
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総エネルギー (うーん) =電圧 (V) × 容量 (ああ)
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48V × 100Ah = 4,800 ワット時 (うーん)
の “Real-World” Multipliers
You cannot use 100% of the 4,800Wh. You must apply two critical factors:
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インバータ効率 ($\eta$): インバータはそうではありません 100% 効率的; they lose energy as heat during conversion. A high-quality pure sine wave inverter typically operates at 85%–90% efficiency.
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排出深さ (国防総省): While LiFePO4 batteries can be discharged deeply, consistently drawing them down to 0% reduces their cycle life. For a healthy system, we assume an 80%–90% usable capacity.
Formula for Estimated Runtime:

Runtime Estimation Table (at 2000W Load)
The following table demonstrates how your runtime changes based on real-world factors.
| シナリオ | 使用可能容量 (うーん) | インバータ効率 | Effective Power Available | 推定実行時間 (Hrs) |
| Theoretical (100%) | 4,800 | 100% | 2,000W | 2.40 |
| Conservative (80%) | 3,840 | 85% | 1,700W | 1.63 |
| Optimized (90%) | 4,320 | 90% | 1,800W | 1.94 |
Key Factors Influencing Your Results
1. The Peukert Effect & Voltage Sag
鉛蓄電池とは異なります, LiFePO4 batteries maintain a very stable voltage curve. しかし, at a high draw of 2000W, you are pulling approximately 42 アンプ from a 48V bank. This sustained current will cause a slight voltage drop, which may cause your inverter to reach its “Low Battery” cutoff alarm earlier than expected if the battery cables are undersized.
2. インバータ “Idle Consumption”
Even when the load is not pulling the full 2000W, your inverter consumes power just by being “on.” これはとして知られています “tare loss” または “idle power.” A 2000W inverter can consume 20W to 50W per hour just to stay powered, which effectively lowers your total efficiency over a 24-hour period.
3. Temperature Sensitivity
As discussed in our previous technical deep-dive, LiFePO4 capacity drops in cold weather. If you are operating this 48V system in temperatures near freezing, expect your runtime to drop by an additional 10%–15% due to increased internal resistance.
Engineering Recommendations for Maximum Runtime
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ケーブルのサイジング: At 48V, a 2000W draw requires cables sized at least 4 awg (または 2 AWG for longer runs). Inadequate cabling causes heat and voltage drops, triggering the inverter’s low-voltage protection prematurely.
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Inverter Selection: Always choose a “Low Frequency” pure sine wave inverter for high-load applications. They are heavier and more expensive but offer higher surge capacities and better thermal management compared to “High Frequency” モデル.
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Monitor Your State of Charge (SoC): Use a shunt-based battery monitor (like a Victron SmartShunt). Relying on the battery’s voltage to determine capacity is inaccurate with LiFePO4 because the voltage remains flat for most of the discharge cycle.
結論
While a 48V 100Ah battery stores 4.8kWh, do not expect to run a 2000W appliance for 2.4 時間. In a real-world, healthy setup, you should plan for approximately 1.5 に 1.8 hours of runtime to protect the longevity of your lithium cells and ensure system stability. Always build in a 20% margin to avoid unexpected shutdowns.
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