Nvidia GeForce RTX 4070 Ti Super — Minería
Nvidia GeForce RTX 4070 Ti Super genera $0.67 al día minando Octopus a 83 Mh/s y consumiendo 220.0 W de la red. Eso es tras descontar la electricidad a $0.1/kWh — rentable a los precios actuales.
Nvidia GeForce RTX 4070 Ti Super mina Octopus con la mayor eficiencia. Esta página incluye la tabla completa de algoritmos, opciones de minería fusionada, pools recomendados y un gráfico de historial de pagos que puedes cambiar haciendo clic en cualquier fila.
Esta GPU tiene ? GB de VRAM — la mayoría de los mercados de IA requieren al menos 12 GB.
Proyección diaria
Ganadores diarios entre todos los streams — promediados del historial registrado del rig a $0.1/kWh
| Período | /Día | /Mes |
|---|---|---|
| Ingresos | $1.20 | $35.90 |
|
Costo
$0.1/kWh
|
$0.53 | $15.90 |
| Ganancia | $0.67 | $20.00 |
Historial de pagos por algoritmo ▶ Octopus
Beneficio neto $/día si minas este algoritmo continuamente a $0.1/kWh. Haz clic en cualquier algoritmo arriba para cambiar.
Proyección diaria
| Período | /Día | /Mes |
|---|---|---|
| Ingresos | $1.20 | $36.00 |
|
Costo
$0.1/kWh
|
$0.53 | $15.90 |
| Ganancia | $0.67 | $20.10 |
| Coin | Algorithm | Ingresos | Costo | Ganancia |
|---|---|---|---|---|
CFX
⚠
Conflux
|
Octopus
83Mh · 220.0W
|
$1.20 | $0.53 | $0.67 |
|
RVN
Ravencoin
|
KAWPOW
42.3Mh · 250.0W
|
$0.26 | $0.60 | $-0.34 |
|
BEAM
⚠
Beam
|
BeamHashIII
57Hh · 200.0W
|
$0.23 | $0.48 | $-0.25 |
|
AE
⚠
Aeternity
|
CuckooCycle
8.3Hh · 160.0W
|
$0.10 | $0.38 | $-0.28 |
ERG
⚠
Ergo
|
Autolykos2
161Mh · 110.0W
|
$0.09 | $0.26 | $-0.17 |
NEXA
⚠
Nexa
|
NexaPoW
150Mh · 260.0W
|
$0.09 | $0.62 | $-0.53 |
|
ETC
Ethereum Classic
|
Etchash
83Mh · 190.0W
|
$0.07 | $0.46 | $-0.39 |
IRON
⚠
Iron Fish
|
IronFish
28Gh · 220.0W
|
$0.01 | $0.53 | $-0.52 |
|
ZEC
Zcash
|
Equihash
103.2Hh · 130.0W
|
$0.01 | $0.31 | $-0.30 |
|
BTC
Bitcoin
|
Sha256
1.7Gh · 180.0W
|
— | $0.43 | — |
|
—
|
EvrProgPow
42.3Mh · 250.0W
|
— | $0.60 | — |
|
—
|
Abelhash
82Mh · 200.0W
|
— | $0.48 | — |
|
—
|
Blake3
3Gh · 230.0W
|
— | $0.55 | — |
|
—
|
XelisHashV2
28Kh · 120.0W
|
— | $0.29 | — |
|
—
|
CryptoNightGPU
7.2Kh · 270.0W
|
— | $0.65 | — |
|
—
|
Ethash
83Mh · 190.0W
|
— | $0.46 | — |
|
—
|
Meraki
83Mh · 190.0W
|
— | $0.46 | — |
|
—
|
MeowPow
42.3Mh · 230.0W
|
— | $0.55 | — |
|
—
|
DynexSolve
8.1Kh · 170.0W
|
— | $0.41 | — |
|
—
|
SHA3x
800Mh · 170.0W
|
— | $0.41 | — |
|
—
|
Qhash
275Mh · 220.0W
|
— | $0.53 | — |
|
—
|
Cuckaroo29
9.6Hh · 170.0W
|
— | $0.41 | — |
|
LTZ
⚠
Litecoinz
|
Zhash
94Hh · 210.0W
|
— | $0.50 | — |
|
GRIN
⚠
Grin
|
Cuckatoo32
1.1Hh · 210.0W
|
— | $0.50 | — |
|
—
|
zkSNARK
790Kh · 190.0W
|
— | $0.46 | — |
|
—
|
Skydoge
1.45Gh · 120.0W
|
— | $0.29 | — |
|
VTC
⚠
Vertcoin
|
Verthash
6.8Gh · 170.0W
|
— | $0.41 | — |
|
—
|
Hoohash
580Mh · 140.0W
|
— | $0.34 | — |
FIRO
Firo
|
FiroPoW
32.0Mh · 170.0W
|
— | $0.41 | — |
|
—
|
PyrinHash
10Gh · 230.0W
|
— | $0.55 | — |
|
—
|
KarlsenHashV2
2.2Gh · 180.0W
|
— | $0.43 | — |
|
—
|
Ton
7.6Gh · 220.0W
|
— | $0.53 | — |
|
EPIC
⚠
Epic Cash
|
ProgPow
42Mh · 250.0W
|
— | $0.60 | — |
| Pool | Algoritmos soportados | Comisión | |
|---|---|---|---|
|
|
CuckooCycle (AE) · BeamHashIII (BEAM) · Autolykos2 (ERG) | 1.0% | Visit → |
|
★
HeroMiners
|
BeamHashIII (BEAM) · Autolykos2 (ERG) · Etchash (ETC) | 0.9% | Visit → |
K1Pool
|
Sha256 (BTC) · Autolykos2 (ERG) · Etchash (ETC) | 1.0% | Visit → |
Rplant
|
FiroPoW (FIRO) · NexaPoW (NEXA) | 1.0% | Visit → |
Historial de ingresos netos por hashmarket
| Período | /Día | /Mes |
|---|---|---|
| Ingresos | $0.44 | $13.33 |
|
Costo
$0.1/kWh
|
$0.53 | $15.90 |
| Ganancia | $-0.09 | $-2.57 |
| Rigs × Qty | Share | Rev /rig/day | Cost /rig/day | Profit /rig/day | Total profit /day |
|---|---|---|---|---|---|
| — | — | — | — | — | — |
Periodo de recuperación para Nvidia GeForce RTX 4070 Ti Super
Modela la recuperación de la inversión, el coste eléctrico y la rentabilidad del primer año para este equipo.
Hardware recuperado cuando la línea cruza cero. Después, todo ganancia.
| Month | Earned (mo) | Cost burned (mo) | Cumulative earned | Cumulative cost | Net | % ROI |
|---|
Emisiones anuales por fuente
Basado en el consumo eléctrico anual y la intensidad de carbono de redes comunes.
| Fuente de energía | CO₂e / año |
|---|---|
| Wind | 20.91 kg |
| Nuclear | 22.81 kg |
| Hydroelectric | 45.62 kg |
| Geothermal | 72.23 kg |
| Solar | 85.54 kg |
| Biofuels | 437.18 kg |
| Gas | 931.39 kg |
| Coal | 1,558.66 kg |
Solo estimaciones — las emisiones reales varían.
¿Qué significa eso realmente?
At the world-average grid intensity of about 475 g CO₂e/kWh, Nvidia GeForce RTX 4070 Ti Super running 24/7 for a year releases about 903 kg of carbon dioxide equivalent. Here's what that looks like in everyday terms:
Dónde lo enchufas importa
Electricity is not one thing. A kilowatt-hour from a coal plant carries roughly 820 g of CO₂; the same kilowatt-hour from a hydro reservoir carries about 24 g. That's a 34× difference — large enough that Nvidia GeForce RTX 4070 Ti Super's annual footprint swings from roughly 1,559 kg on coal-heavy grids down to about 46 kg on hydro-dominated grids. The single biggest lever a miner has on their carbon footprint is choosing where to plug in.
Regions commonly used for low-carbon crypto mining include Quebec and British Columbia (hydro-dominated, typically <50 g CO₂/kWh), Iceland and Norway (geothermal + hydro, often <30 g), Paraguay (Itaipú hydro), and parts of the US Pacific Northwest. Coal-heavy grids — Kazakhstan, Inner Mongolia, Poland, parts of Australia — sit at the opposite end, often above 700 g CO₂/kWh.
Some operators also reduce their net impact by using otherwise-wasted energy: flare gas at oil wells (burning methane that would be vented anyway), curtailed renewables (wind or solar that the grid can't absorb), or behind-the-meter hydro during off-peak hours. These arrangements can drop effective emissions below the local grid average because the energy would have been wasted or flared without the mining load.
Cómo reducir la huella de este equipo
- Pick a greener ASIC. The efficiency column above matters as much as the grid: a 15 J/TH rig emits roughly half the CO₂ of a 30 J/TH rig for the same hashrate.
- Choose a low-carbon host. Data centres advertising hydro, geothermal, or nuclear power typically sit at <100 g CO₂/kWh.
- Look for stranded or curtailed energy. Flare-gas miners, wind-curtailment co-location, and off-peak hydro arrangements use energy that would otherwise be wasted.
- Use heat recovery. Capturing the heat for greenhouse agriculture, pool heating, or district warmth offsets fossil-fuel heating that would have been burned anyway.
- Time-shift your uptime. In grids with high daytime solar, running more during the day and less at night lowers your effective intensity even if you don't switch providers.
- Purchase verifiable offsets. Treat this as a last resort, not a substitute — and favour additional, permanent, third-party-verified projects (Gold Standard, Verra VCS).
Preguntas frecuentes
Yearly electricity use = rig power (W) × 24 × 365 ÷ 1000. We multiply that by each row's grid intensity in grams CO₂-equivalent per kWh and convert to kilograms. Intensities are representative averages — real emissions depend on your specific utility mix, time of day, and local transmission losses.
It depends almost entirely on where the electricity comes from. A single rig plugged into hydro in Quebec emits less over a year than an average family's two cars in a month. The same rig on a coal-dominated grid can exceed that in a few days. The hardware is the same — the grid is what changes the answer.
Network-wide estimates vary by methodology; the Cambridge Centre for Alternative Finance's Bitcoin Electricity Consumption Index is the most widely cited reference. As of recent reporting, the network's sustainable-energy share has grown as more hashrate migrates to hydro, wind, solar, and stranded-gas sites. This page just estimates a single rig — for the big picture, CCAF's dashboard is the best source.
Not directly. The rig draws the same wattage regardless of which pool it joins or how difficulty trends — so its electricity use, and therefore its emissions, stay constant. Those factors change revenue, not power consumption.
Esta GPU tiene ? GB de VRAM — la mayoría de los mercados de IA requieren al menos 12 GB.
Proyección diaria
Ganadores diarios entre todos los streams — promediados del historial registrado del rig a $0.1/kWh
| Período | /Día | /Mes |
|---|---|---|
| Ingresos | $1.20 | $35.90 |
|
Costo
$0.1/kWh
|
$0.53 | $15.90 |
| Ganancia | $0.67 | $20.00 |
Historial de pagos por algoritmo ▶ Octopus
Beneficio neto $/día si minas este algoritmo continuamente a $0.1/kWh. Haz clic en cualquier algoritmo arriba para cambiar.
Proyección diaria
| Período | /Día | /Mes |
|---|---|---|
| Ingresos | $1.20 | $36.00 |
|
Costo
$0.1/kWh
|
$0.53 | $15.90 |
| Ganancia | $0.67 | $20.10 |
| Coin | Algorithm | Ingresos | Costo | Ganancia |
|---|---|---|---|---|
CFX
⚠
Conflux
|
Octopus
83Mh · 220.0W
|
$1.20 | $0.53 | $0.67 |
|
RVN
Ravencoin
|
KAWPOW
42.3Mh · 250.0W
|
$0.26 | $0.60 | $-0.34 |
|
BEAM
⚠
Beam
|
BeamHashIII
57Hh · 200.0W
|
$0.23 | $0.48 | $-0.25 |
|
AE
⚠
Aeternity
|
CuckooCycle
8.3Hh · 160.0W
|
$0.10 | $0.38 | $-0.28 |
ERG
⚠
Ergo
|
Autolykos2
161Mh · 110.0W
|
$0.09 | $0.26 | $-0.17 |
NEXA
⚠
Nexa
|
NexaPoW
150Mh · 260.0W
|
$0.09 | $0.62 | $-0.53 |
|
ETC
Ethereum Classic
|
Etchash
83Mh · 190.0W
|
$0.07 | $0.46 | $-0.39 |
IRON
⚠
Iron Fish
|
IronFish
28Gh · 220.0W
|
$0.01 | $0.53 | $-0.52 |
|
ZEC
Zcash
|
Equihash
103.2Hh · 130.0W
|
$0.01 | $0.31 | $-0.30 |
|
BTC
Bitcoin
|
Sha256
1.7Gh · 180.0W
|
— | $0.43 | — |
|
—
|
EvrProgPow
42.3Mh · 250.0W
|
— | $0.60 | — |
|
—
|
Abelhash
82Mh · 200.0W
|
— | $0.48 | — |
|
—
|
Blake3
3Gh · 230.0W
|
— | $0.55 | — |
|
—
|
XelisHashV2
28Kh · 120.0W
|
— | $0.29 | — |
|
—
|
CryptoNightGPU
7.2Kh · 270.0W
|
— | $0.65 | — |
|
—
|
Ethash
83Mh · 190.0W
|
— | $0.46 | — |
|
—
|
Meraki
83Mh · 190.0W
|
— | $0.46 | — |
|
—
|
MeowPow
42.3Mh · 230.0W
|
— | $0.55 | — |
|
—
|
DynexSolve
8.1Kh · 170.0W
|
— | $0.41 | — |
|
—
|
SHA3x
800Mh · 170.0W
|
— | $0.41 | — |
|
—
|
Qhash
275Mh · 220.0W
|
— | $0.53 | — |
|
—
|
Cuckaroo29
9.6Hh · 170.0W
|
— | $0.41 | — |
|
LTZ
⚠
Litecoinz
|
Zhash
94Hh · 210.0W
|
— | $0.50 | — |
|
GRIN
⚠
Grin
|
Cuckatoo32
1.1Hh · 210.0W
|
— | $0.50 | — |
|
—
|
zkSNARK
790Kh · 190.0W
|
— | $0.46 | — |
|
—
|
Skydoge
1.45Gh · 120.0W
|
— | $0.29 | — |
|
VTC
⚠
Vertcoin
|
Verthash
6.8Gh · 170.0W
|
— | $0.41 | — |
|
—
|
Hoohash
580Mh · 140.0W
|
— | $0.34 | — |
FIRO
Firo
|
FiroPoW
32.0Mh · 170.0W
|
— | $0.41 | — |
|
—
|
PyrinHash
10Gh · 230.0W
|
— | $0.55 | — |
|
—
|
KarlsenHashV2
2.2Gh · 180.0W
|
— | $0.43 | — |
|
—
|
Ton
7.6Gh · 220.0W
|
— | $0.53 | — |
|
EPIC
⚠
Epic Cash
|
ProgPow
42Mh · 250.0W
|
— | $0.60 | — |
| Pool | Algoritmos soportados | Comisión | |
|---|---|---|---|
|
|
CuckooCycle (AE) · BeamHashIII (BEAM) · Autolykos2 (ERG) | 1.0% | Visit → |
|
★
HeroMiners
|
BeamHashIII (BEAM) · Autolykos2 (ERG) · Etchash (ETC) | 0.9% | Visit → |
K1Pool
|
Sha256 (BTC) · Autolykos2 (ERG) · Etchash (ETC) | 1.0% | Visit → |
Rplant
|
FiroPoW (FIRO) · NexaPoW (NEXA) | 1.0% | Visit → |
Historial de ingresos netos por hashmarket
| Período | /Día | /Mes |
|---|---|---|
| Ingresos | $0.44 | $13.33 |
|
Costo
$0.1/kWh
|
$0.53 | $15.90 |
| Ganancia | $-0.09 | $-2.57 |
| Rigs × Qty | Share | Rev /rig/day | Cost /rig/day | Profit /rig/day | Total profit /day |
|---|---|---|---|---|---|
| — | — | — | — | — | — |
Periodo de recuperación para Nvidia GeForce RTX 4070 Ti Super
Modela la recuperación de la inversión, el coste eléctrico y la rentabilidad del primer año para este equipo.
Hardware recuperado cuando la línea cruza cero. Después, todo ganancia.
| Month | Earned (mo) | Cost burned (mo) | Cumulative earned | Cumulative cost | Net | % ROI |
|---|
Emisiones anuales por fuente
Basado en el consumo eléctrico anual y la intensidad de carbono de redes comunes.
| Fuente de energía | CO₂e / año |
|---|---|
| Wind | 20.91 kg |
| Nuclear | 22.81 kg |
| Hydroelectric | 45.62 kg |
| Geothermal | 72.23 kg |
| Solar | 85.54 kg |
| Biofuels | 437.18 kg |
| Gas | 931.39 kg |
| Coal | 1,558.66 kg |
Solo estimaciones — las emisiones reales varían.
¿Qué significa eso realmente?
At the world-average grid intensity of about 475 g CO₂e/kWh, Nvidia GeForce RTX 4070 Ti Super running 24/7 for a year releases about 903 kg of carbon dioxide equivalent. Here's what that looks like in everyday terms:
Dónde lo enchufas importa
Electricity is not one thing. A kilowatt-hour from a coal plant carries roughly 820 g of CO₂; the same kilowatt-hour from a hydro reservoir carries about 24 g. That's a 34× difference — large enough that Nvidia GeForce RTX 4070 Ti Super's annual footprint swings from roughly 1,559 kg on coal-heavy grids down to about 46 kg on hydro-dominated grids. The single biggest lever a miner has on their carbon footprint is choosing where to plug in.
Regions commonly used for low-carbon crypto mining include Quebec and British Columbia (hydro-dominated, typically <50 g CO₂/kWh), Iceland and Norway (geothermal + hydro, often <30 g), Paraguay (Itaipú hydro), and parts of the US Pacific Northwest. Coal-heavy grids — Kazakhstan, Inner Mongolia, Poland, parts of Australia — sit at the opposite end, often above 700 g CO₂/kWh.
Some operators also reduce their net impact by using otherwise-wasted energy: flare gas at oil wells (burning methane that would be vented anyway), curtailed renewables (wind or solar that the grid can't absorb), or behind-the-meter hydro during off-peak hours. These arrangements can drop effective emissions below the local grid average because the energy would have been wasted or flared without the mining load.
Cómo reducir la huella de este equipo
- Pick a greener ASIC. The efficiency column above matters as much as the grid: a 15 J/TH rig emits roughly half the CO₂ of a 30 J/TH rig for the same hashrate.
- Choose a low-carbon host. Data centres advertising hydro, geothermal, or nuclear power typically sit at <100 g CO₂/kWh.
- Look for stranded or curtailed energy. Flare-gas miners, wind-curtailment co-location, and off-peak hydro arrangements use energy that would otherwise be wasted.
- Use heat recovery. Capturing the heat for greenhouse agriculture, pool heating, or district warmth offsets fossil-fuel heating that would have been burned anyway.
- Time-shift your uptime. In grids with high daytime solar, running more during the day and less at night lowers your effective intensity even if you don't switch providers.
- Purchase verifiable offsets. Treat this as a last resort, not a substitute — and favour additional, permanent, third-party-verified projects (Gold Standard, Verra VCS).
Preguntas frecuentes
Yearly electricity use = rig power (W) × 24 × 365 ÷ 1000. We multiply that by each row's grid intensity in grams CO₂-equivalent per kWh and convert to kilograms. Intensities are representative averages — real emissions depend on your specific utility mix, time of day, and local transmission losses.
It depends almost entirely on where the electricity comes from. A single rig plugged into hydro in Quebec emits less over a year than an average family's two cars in a month. The same rig on a coal-dominated grid can exceed that in a few days. The hardware is the same — the grid is what changes the answer.
Network-wide estimates vary by methodology; the Cambridge Centre for Alternative Finance's Bitcoin Electricity Consumption Index is the most widely cited reference. As of recent reporting, the network's sustainable-energy share has grown as more hashrate migrates to hydro, wind, solar, and stranded-gas sites. This page just estimates a single rig — for the big picture, CCAF's dashboard is the best source.
Not directly. The rig draws the same wattage regardless of which pool it joins or how difficulty trends — so its electricity use, and therefore its emissions, stay constant. Those factors change revenue, not power consumption.