Asic Miner Profitability
Our mining profitability calculator helps users quickly pinpoint the most lucrative mining options by delivering real-time data in multiple fiat and cryptocurrency currencies, including USD, EUR, GBP, AED, CAD, AUD, THB, ETH, and BTC. It allows precise electricity cost inputs up to three decimal places for highly accurate profit estimations. Users can access a clear overview of top-performing miners, algorithm-specific performance tables, and visually organized listings of mineable coins with recognizable cryptocurrency icons, simplifying decisions for maximum returns.
| Model | Hashrate |
Profitability
Profit
|
|---|---|---|
|
Goldshell LB Lite
1.62TH/s
|
1.62 TH/s |
$2.74/day
|
|
Goldshell LB-BOX
175GH/s
|
175 GH/s |
$0.29/day
|
|
Goldshell LB1 Lbry Miner
87GH/s
|
87 GH/s |
$0.14/day
|
Our cutting-edge mining calculator offers comprehensive insights across all major cryptocurrency algorithms, helping users easily identify the most profitable options for their specific hardware. The algorithm data is continuously refreshed to keep pace with the dynamic crypto mining industry, providing accurate evaluations based on real-time profitability statistics and overall market activity. This empowers users to make well-informed choices that reflect the latest mining conditions and algorithm performance.
Bitcoin Mining Difficulty
Monitor the latest Bitcoin network difficulty metrics in real time, including block times & estimated time until the next difficulty adjustment.
Progress
Current progress:
61.51 %
Remaining Block
Blocks Left:
776
Remaining Time
Time Left:
~ 5 days 1 hours
Next Change
Upcoming change:
6.9 %
Block Time
Current Block Time:
9.4 minutes
What is Lbry algorithm?
Why Should You Rely on Our Profit Calculator for Accurate Mining Insights?
LBRY secures its ledger with a proof‑of‑work recipe that chains SHA‑512, SHA‑256, and RIPEMD, which hardens collision resistance and speeds verification while anchoring both payments and content pointers on the same chain; miners validate transactions, write blocks, and help index content metadata so titles and claims stay discoverable without a separate catalog. Rewards roll out over roughly two decades, starting small, rising in a straight glide to a peak, then easing down on a logarithmic curve to balance miner incentives with steady coin issuance and to temper inflation, and the difficulty retargeting aims to keep a regular block cadence as hashrate moves around. The hash mix parallelizes well, so early on GPUs did fine, yet today network difficulty favors purpose‑built machines, with ASIC and FPGA hardware setting the pace; examples include the Goldshell LB1 at 87 GH/s with about 80 W draw and the Goldshell LB Lite at 1.62 TH/s with about 1450 W, which shows how efficiency scales when silicon is tuned for this algorithm. Tuning still matters whatever you run, since the function responds to higher memory clocks, moderate core clocks, and careful undervolting that trims heat and noise without starving the pipeline, and you can push stability by setting intensity to reduce stale shares and by keeping fans, filters, and thermal pads in good shape. Profit depends on timing as much as gear, so watch network hashrate and difficulty for soft patches that improve share of block rewards, pick a pool with low latency and transparent fees, use a stratum endpoint close to you, and track stale rate and uptime because a few percentage points lost there can erase gains from faster clocks. A mining profitability calculator helps you sanity‑check expectations if you plug in hashrate, device power draw, local electricity costs, pool fees, and expected uptime, and it is wise to add a bit for cooling overhead since warm seasons hit margins hardest. The multi‑hash design raises the cost of certain attacks and spreads risk across families of cryptographic primitives, and the metadata step stays lightweight enough that throughput remains practical while content stays searchable on‑chain. GPUs can still join in on smaller pools or during difficulty dips, but ASICs lead by a wide margin now, so plan your setup with power capacity, breaker limits, and airflow in mind, and revisit settings as firmware updates and driver revisions can shift the sweet spot for efficiency on this particular PoW.
Latest ASIC Miners
Check out the latest ASIC miners added to our site. These are the newest listings, featuring the most recent models.
V3
Nerdminer
AE3
IceRiver
Antminer L11 Hyd 2U
Bitmain
Why ASIC Mining?
The Advantages of ASIC Mining Compared to Other Mining Types
ASIC (Application-Specific Integrated Circuit) mining involves specialized hardware designed exclusively for mining cryptocurrencies like Bitcoin, offering unmatched efficiency and performance. Unlike general-purpose GPUs, ASICs are optimized for specific algorithms, delivering significantly higher hashrates while consuming less power per hash. This makes them far superior for mining tasks, as they maximize profitability by reducing electricity costs and increasing mining output. ASIC miners are purpose-built, providing stability and reliability in high-demand mining environments, unlike GPUs which are prone to overheating and wear during prolonged use. Their compact design also allows for easier scalability in large mining operations. By focusing solely on mining, ASICs eliminate the overhead of multi-purpose computing, resulting in faster block-solving times. This efficiency translates to higher rewards, making ASICs the preferred choice for serious miners aiming to stay competitive in the cryptocurrency market. In contrast, GPU mining, while versatile, cannot match the raw power and cost-effectiveness of ASICs for dedicated mining tasks.
Optimized for Mining
Energy Efficient
Reliable & Stable
Scalable
More about the Lbry algorithm
See how our profit calculator delivers accurate, real-time mining insights, helping miners make informed decisions.
LBRY rests on a decentralized, peer-to-peer architecture that welds content distribution to a proof-of-work blockchain, so that discovery, delivery, and settlement become facets of one system rather than separate domains; its PoW algorithm intertwines SHA-512, SHA-256, and RIPEMD in a hybrid hashing pipeline that hardens security against collision and preimage attacks while keeping transaction throughput responsive, turning cryptographic rigor into a clear grammar of trust. Mining LBRY Credits does more than confirm transactions: it validates content claims and aligns the storage and sharing of data with block production, shifting incentives so participants are rewarded both for stabilizing the network and for advancing a vibrant marketplace of creative work. This incentive design is paced by a 20-year emission schedule in which block rewards begin modestly, rise linearly to encourage early distribution and infrastructure build-out, then taper logarithmically to sustain security without diluting long-term value; together with adaptive difficulty, this curbs hash-rate whiplash and supports durable participation. The network’s data is distributed across many nodes, mitigating capture by any single entity and improving resilience against outages and censorship, while the content marketplace enables creators to publish, price, and monetize autonomously, using cryptographic claims and straightforward payments to replace traditional intermediaries with verifiable ownership and direct audience relationships. Mining is optimized for ASIC and FPGA hardware as difficulty has outpaced CPUs and most GPUs; notable devices include the Goldshell LB1 at about 87 GH/s and 80 W and the Goldshell LB Lite around 1.62 TH/s at 1450 W, yielding energy efficiencies close to 0.92 W/GH and 0.90 W/GH respectively, figures that help miners balance hashrate, power draw, and thermal constraints for sustained uptime. Profitability can be estimated with standard calculators using hashrate, device efficiency, network difficulty, pool fees, and operating conditions, but the broader calculus is ecological: nodes that seed data enhance availability, creators attract flow, and the ledger weaves these contributions into accountable state transitions. In this way LBRY composes a subtle synthesis-content as signal, work as validation-enhancing transparency and security while cultivating a censorship-resistant commons where miners and creators are not merely users of a system but co-authors of its ongoing order.
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