MicroBT Whatsminer M53S
Whatsminer M53S profitability insights powered by real-time data: Discover how much your Whatsminer M53S can earn using our advanced ASIC miner calculator. We use live mining reward data and automatically factor in electricity costs, giving you a clear overview of your potential daily, monthly, and yearly returns.
Profitability Analysis
Here you can see a detailed analysis of miner profitability, updated in real-time.
| Period | Income | Expense | Profit |
|---|---|---|---|
|
Daily
|
$11.75 | $12.98 |
$-1.23
|
|
Monthly
|
$352.48 | $389.38 |
$-36.90
|
|
Yearly
|
$4,288.46 | $4,737.41 |
$-448.95
|
About the MicroBT Whatsminer M53S (260TH/s)
Learn more about this ASIC miner, including its specifications, performance, energy consumption, and profitability.
The MicroBT Whatsminer M53S appears like a silvery-blue wind spirit in the factory bay: a high-performance SHA-256 ASIC miner engineered for Bitcoin and its algorithm kin - Bitcoin Cash, Bitcoin SV, Namecoin, eCash, Fractal Bitcoin and Peercoin - delivering an imposing 260 TH/s while drawing about 6,760 watts and achieving roughly 26 J/TH, a balance of brute computational force and comparative efficiency that marks it as a tool for large-scale, industrial mining; its strength comes from precisely arranged ASIC chip clusters that distribute load intelligently to reduce wear, paired with an advanced hydro-cooling system that extracts heat far more effectively than air alone, stabilizing hashrate, extending component life and noticeably lowering acoustic signature so continuous, intensive operation becomes feasible without constant thermal throttling, though deploying the M53S typically requires robust electrical infrastructure, careful coolant loop design, regular maintenance of pumps and heat exchangers, reliable network connectivity and monitoring software, and attention to ambient conditions and ventilation, while operators should plan for firmware updates, spare parts management, rack or container integration and redundancy to maximize uptime; its rugged construction and specialized cooling make it a scalable choice for operations seeking steady throughput, and a crypto-miner profitability calculator - factoring in variable electricity tariffs, pool fees, mining difficulty, expected uptime and coin price scenarios - helps estimate daily, monthly and yearly returns and informs site selection, power-cost optimization and investment planning, even as long-term outcomes remain sensitive to difficulty trends, market volatility and hardware degradation, so disciplined monitoring, cost controls and exit strategies are as crucial as raw hashrate in navigating the labyrinth of language and liability that accompanies industrial cryptocurrency mining.
Discover Which Coins This Miner Can Mine
Explore the cryptocurrencies that can be mined using MicroBT Whatsminer M53S (260TH/s), including detailed profitability.
Currency Converter
Calculate the mineable coins to any currency.
| Coin | Income/Day | Profit/Day |
|---|---|---|
|
$10.98
$
0.00010808
|
$-2.00
$
-0.00001968
|
|
|
$10.92
$
0.00010786
|
$-2.06
$
-0.00002033
|
|
|
$10.71
$
0.02125846
|
$-2.27
$
-0.00449597
|
|
|
$11.75
$
29.29
|
$-1.23
$
-3.06997306
|
Historical Mining Performance
View the performance trends of MicroBT Whatsminer M53S (260TH/s) over weekly, monthly, and yearly timeframes.
Historical Profitability
View the historical income and profit trends for this miner.
SHA-256 Miner Generations
Evolution of cryptocurrency mining hardware throughout the years, with the current generation highlighted for reference.
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27 minersGeneration 8
27 minersGeneration 1
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27 minersGeneration 8
27 minersMore Information about the
Learn more about the MicroBT Whatsminer M53S (260TH/s)
The MicroBT Whatsminer M53S reads like a field dossier for industrial mining: a purpose-built SHA‑256 ASIC aimed at Bitcoin and its algorithmic cousins-Bitcoin Cash, Bitcoin SV, Namecoin, eCash, Fractal Bitcoin and Peercoin-delivering a sustained hashrate in the 260‑terahash class while demanding a heavy electrical footprint that forces operators to confront power delivery, thermal engineering and lifecycle logistics as primary risk factors rather than afterthoughts. Designed with clustered ASIC arrays and reinforced copper conduction at heat‑critical junctions, the machine shifts the failure surface from silicon fatigue to systems engineering-if the coolant loop, pump redundancy or PSU voltage regulation falter, the hash output and component longevity will follow; conversely, when paired with immersion or liquid‑loop cooling its thermal headroom, acoustic signature and particulate exposure are materially reduced, enabling continuous high‑load operation without aggressive throttling. Firmware plays a tactical role: adaptive frequency scaling and dynamic power capping tune clock and voltage to instantaneous thermal and load conditions, while ASIC‑level workload distribution limits silicon degradation and preserves effective throughput over time. Operationally this translates into fewer unscheduled interventions, predictable maintenance windows and concrete opportunities for waste‑heat reclamation in colocated facilities, but it also compels capital planners to model electrical service upgrades, transformer sizing, harmonics mitigation and cooling‑loop failover into site selection. Integration considerations are granular: rack and container layouts must account for coolant plumbing and access to serviceable modules; spare parts inventories should prioritize pump assemblies, capacitors and hashing boards; and monitoring stacks must ingest telemetry for temperature, hash variance, power quality and firmware state to enable automated alerts and remote mitigation. From an economic and regulatory standpoint the M53S is a lever, not a guarantee-its roughly 26 J/TH efficiency narrows operating cost per unit of work, yet returns remain highly sensitive to network difficulty curves, pool strategy, uptime discipline and local permitting or grid constraints, while environmental footprints - thermal discharge, increased load on substations and water or dielectric fluid handling - demand mitigation plans to avoid operational interruptions or compliance actions. For operators who treat mining as industrial engineering rather than speculative hobby, the M53S offers a scalable, specialized platform: it rewards rigorous site engineering, proactive spare‑parts logistics and tight firmware governance, and punishes shortcuts in power design, cooling resilience and real‑time monitoring.
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Technical Specifications
Detailed hardware specifications and mining capabilities for MicroBT Whatsminer M53S
Basic Information
Performance
Physical Dimensions
Mineable Cryptocurrencies
Algorithm Information: SHA-256
Learn more about the SHA-256 algorithm and how it works.
SHA-256 is a cryptographic hash function that serves as the backbone of Fractal Bitcoin proof-of-work consensus mechanism. This algorithm processes input data of any length and produces a fixed hash value, ensuring security and integrity in the mining process.
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Frequently Asked Questions
Everything you need to know about the MicroBT Whatsminer M53S
How efficient is the MicroBT Whatsminer M53S 260TH/s?
What are the electricity costs for the MicroBT Whatsminer M53S 260TH/s (USD)?
How much power does the MicroBT Whatsminer M53S 260TH/s use?
Who manufactures the Whatsminer M53S?
What is the hashrate of the MicroBT Whatsminer M53S?
Which cryptocurrencies can be mined with the MicroBT Whatsminer M53S 260TH/s?
NiceHash (BTC)
Bitcoin (BTC)
Bitcoin Cash (BCH)
Fractal Bitcoin (FB)
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