Transformator QDTB®

Kalkulator Efisiensi & CO₂ Trafo

Perkirakan rugi tahunan dan emisi CO₂ trafo dari tingkat efisiensi, faktor beban dan jam — dan bandingkan kelas efisiensi untuk melihat dampak karbon.

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Contoh keluaran
Annual losses & CO₂ emissions
17.90 tCO₂/yr
1000 kVA · S13 — oil-immersed (grade 3) · 50% load · 8760 h · 0.6 tCO₂/MWh
No-load loss
830 W
Load loss
10300 W
Annual losses
29,828 kWh
Efficiency
99.32%
Loss & efficiency calculation
No-load loss830 W × 8760 h = 7,271 kWh/yr
Load loss10300 W × (50%)² × 8760 h = 22,557 kWh/yr
Annual losses= 29,828 kWh/yr
Efficiency4,380,000 ÷ (4,380,000 + 29,828) = 99.32%
CO₂ emissions29,828 kWh × 0.6 tCO₂/MWh ÷ 1000 = 17.90 tCO₂/yr
Efficiency-level comparison (lowest CO₂ first)
Efficiency levelPoPkLoss/yrCO₂/yr
Amorphous alloy — oil-immersed270 W10300 W24,92214.95
S20 — oil-immersed (NX1)450 W9600 W24,96614.98
S13 — oil-immersed (grade 3) ◂ selected830 W10300 W29,82817.90
SCB13 — dry-type1200 W9600 W31,53618.92
S11 — oil-immersed (grade 3)1150 W10300 W32,63119.58
Carbon insight
Upgrading from "S13 — oil-immersed (grade 3)" to the lowest-carbon "Amorphous alloy — oil-immersed" would avoid ≈ 4,906 kWh and ≈ 2.94 tCO₂ per year at this load factor — subject to the actual nameplate losses and the local grid emission factor.
Note
Losses use typical values (GB 20052 / industry references) scaled from 1000 kVA — always verify against the nameplate. Output energy assumes PF = 1 (kVA × PF × load factor × hours). The grid emission factor varies by region (≈0.2–1.0 tCO₂/MWh); adjust it to your local grid for a meaningful result.

Untuk insinyur ESG, audit energi dan pabrik yang mengukur rugi trafo dan jejak karbon, serta membenarkan trafo dengan efisiensi lebih tinggi.

Gunakan kalkulator

Contoh perhitungan

Contoh referensi yang telah dihitung sebelumnya (dapat dirayapi — tidak memerlukan JavaScript). Masukkan parameter Anda sendiri di atas untuk hasil langsung.

Contoh 1 — S13 1000 kVA pada beban 50%

Annual losses & CO₂ emissions
17.90 tCO₂/yr
1000 kVA · S13 — oil-immersed (grade 3) · 50% load · 8760 h · 0.6 tCO₂/MWh
No-load loss
830 W
Load loss
10300 W
Annual losses
29,828 kWh
Efficiency
99.32%
Loss & efficiency calculation
No-load loss830 W × 8760 h = 7,271 kWh/yr
Load loss10300 W × (50%)² × 8760 h = 22,557 kWh/yr
Annual losses= 29,828 kWh/yr
Efficiency4,380,000 ÷ (4,380,000 + 29,828) = 99.32%
CO₂ emissions29,828 kWh × 0.6 tCO₂/MWh ÷ 1000 = 17.90 tCO₂/yr
Efficiency-level comparison (lowest CO₂ first)
Efficiency levelPoPkLoss/yrCO₂/yr
Amorphous alloy — oil-immersed270 W10300 W24,92214.95
S20 — oil-immersed (NX1)450 W9600 W24,96614.98
S13 — oil-immersed (grade 3) ◂ selected830 W10300 W29,82817.90
SCB13 — dry-type1200 W9600 W31,53618.92
S11 — oil-immersed (grade 3)1150 W10300 W32,63119.58
Carbon insight
Upgrading from "S13 — oil-immersed (grade 3)" to the lowest-carbon "Amorphous alloy — oil-immersed" would avoid ≈ 4,906 kWh and ≈ 2.94 tCO₂ per year at this load factor — subject to the actual nameplate losses and the local grid emission factor.
Note
Losses use typical values (GB 20052 / industry references) scaled from 1000 kVA — always verify against the nameplate. Output energy assumes PF = 1 (kVA × PF × load factor × hours). The grid emission factor varies by region (≈0.2–1.0 tCO₂/MWh); adjust it to your local grid for a meaningful result.

Contoh 2 — S20 630 kVA pada beban 60%

Annual losses & CO₂ emissions
12.02 tCO₂/yr
630 kVA · S20 — oil-immersed (NX1) · 60% load · 8760 h · 0.55 tCO₂/MWh
No-load loss
318 W
Load loss
6048 W
Annual losses
21,861 kWh
Efficiency
99.34%
Loss & efficiency calculation
No-load loss318 W × 8760 h = 2,788 kWh/yr
Load loss6048 W × (60%)² × 8760 h = 19,073 kWh/yr
Annual losses= 21,861 kWh/yr
Efficiency3,311,280 ÷ (3,311,280 + 21,861) = 99.34%
CO₂ emissions21,861 kWh × 0.55 tCO₂/MWh ÷ 1000 = 12.02 tCO₂/yr
Efficiency-level comparison (lowest CO₂ first)
Efficiency levelPoPkLoss/yrCO₂/yr
S20 — oil-immersed (NX1) ◂ selected318 W6048 W21,86112.02
Amorphous alloy — oil-immersed191 W6489 W22,13612.17
S13 — oil-immersed (grade 3)587 W6736 W26,38314.51
SCB13 — dry-type849 W6048 W26,50614.58
S11 — oil-immersed (grade 3)813 W6489 W27,58715.17
Carbon insight
"S20 — oil-immersed (NX1)" is the lowest-carbon option in this comparison.
Note
Losses use typical values (GB 20052 / industry references) scaled from 1000 kVA — always verify against the nameplate. Output energy assumes PF = 1 (kVA × PF × load factor × hours). The grid emission factor varies by region (≈0.2–1.0 tCO₂/MWh); adjust it to your local grid for a meaningful result.

Cara perhitungannya

  • · Energi rugi tanpa beban = Po × jam; energi rugi beban = Pk × LF² × jam.
  • · Rugi tahunan = Po × jam + Pk × LF² × jam.
  • · Efisiensi = keluaran ÷ (keluaran + rugi), keluaran = kVA × LF × jam.
  • · Emisi CO₂ = rugi tahunan × faktor emisi jaringan.
  • · Rugi diskalakan dari referensi 1000 kVA dengan Po ∝ S^0.75, Pk ∝ S.

Standar yang dirujuk

StandardScope
IEC 60076Trafo daya
GB 20052Nilai minimum yang diizinkan untuk efisiensi energi dan kelas efisiensi energi trafo daya
IEC 60364-8-1Instalasi listrik tegangan rendah — efisiensi energi
ISO 14064-1Gas rumah kaca — kuantifikasi dan pelaporan emisi

Pertanyaan yang sering diajukan

How do I calculate transformer CO2 emissions?

CO2 = annual losses (kWh) x grid emission factor. No-Load Loss runs 24/7: a 1000 kVA unit with 1.2 kW no-load loss consumes 10,512 kWh/yr just sitting energised. At a 0.5 kg/kWh grid factor that is ~5.3 t CO2/yr. The calculator sums no-load and load losses and converts to carbon.

What efficiency level should a transformer meet?

Distribution transformers are 98-99.5% efficient at full load. GB 20052 and IEC 60076-20 set minimum efficiency/loss grades; choosing a higher grade (S13/S20, SCB13/SCB14) cuts no-load loss 20-40%. The calculator compares efficiency levels and their loss and CO2 impact.

How much energy does a transformer waste in a year?

A 1000 kVA Transformer at 50% load with 1.2 kW no-load and 8 kW full-load loss wastes about 1.2x8760 + 8x0.25x8760 = 28,032 kWh/yr. A lower-loss S13 model can cut that 15-25%. The calculator quantifies annual losses and their cost.

What is a good load factor for transformer efficiency?

Peak efficiency occurs where load loss equals no-load loss, often 40-60% loading for distribution transformers. Operating far below this wastes no-load loss; far above raises Copper Loss. The calculator shows the efficiency curve and the optimal loading point.

How do I compare two transformers on lifetime carbon?

Compare annual losses x lifetime x grid factor, plus embodied carbon from materials (copper, steel, oil). The loss-driven operational carbon usually dominates over 20-30 years. The calculator computes operational CO2 per model so you can rank S11 vs S13 vs amorphous.

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