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Kalkulator kapasitas hatchery

Gunakan Kalkulator kapasitas hatchery untuk menghitung kebutuhan proyek dalam hitungan detik dan mengubah hasilnya menjadi RFQ siap kirim.

Cara kerjanya

Kalkulator kapasitas hatchery dari FishMatch Group menghitung hasil indikatif langsung di browser berdasarkan tolok ukur akuakultur internasional. Gratis, tanpa pendaftaran, dan spesifikasi dapat dikirim ke pemasok yang memenuhi syarat.

Yang Anda masukkan
  • Target output per year (million fry / PL)
  • Larval survival to sale size (%) — Vannamei PL 50–70%; tilapia fry 70–85%; marine finfish 10–30%.
  • Larval cycle length (days)
  • Tank turnaround / disinfection (days)
  • Larval rearing density (per liter) — Shrimp 80–150/L; tilapia fry 20–60/L; marine larvae 20–60/L.
  • Daily water exchange (% of volume/day)
  • Viable offspring per female per year (thousand) — Shrimp broodstock ~150–300k; tilapia ~5–15k; marine broodstock varies widely.
Yang Anda dapatkan
  • Larval tank volume required
  • Production cycles per year
  • Larvae stocked per cycle
  • Daily water demand
  • Broodstock females required
Alat terpasang

Kalkulator kapasitas hatchery

Hatchery capacity is driven by target fry or post-larvae output, survival through larval rearing, cycle length and the density the larval system can hold. Size the duty here — tank volume, water demand and broodstock requirement — then request comparable quotes on one written specification.

Vannamei PL 50–70%; tilapia fry 70–85%; marine finfish 10–30%.

Shrimp 80–150/L; tilapia fry 20–60/L; marine larvae 20–60/L.

Shrimp broodstock ~150–300k; tilapia ~5–15k; marine broodstock varies widely.

Larval tank volume required
298.9 m³
298,879 L at 100 larvae/L
Production cycles per year
12.2
25 d rearing + 5 d turnaround
Larvae stocked per cycle
29.9 million
363.6 million/yr to hit 200 million sold
Daily water demand
448.3 m³/day
150% exchange — treatment and heating scale with this figure
Broodstock females required
500
Add a maturation and quarantine reserve on top of this number

Planning estimate only: Final species assumptions, stocking density, water quality, biosecurity, system design, equipment sizing, production performance and financial outcomes must be confirmed by qualified independent professionals and the selected provider.

Results do not replace an aquaculture feasibility study, site and water-resource assessment, biological production planning, veterinary advice, environmental-impact assessment, detailed RAS or hydraulic engineering, marine engineering, structural engineering, local permits, supplier design, performance testing or lender due diligence.

FishMatch Group does not guarantee growth, survival, FCR, harvest weight, cycles per year, biomass, water quality, disease prevention, production volume, revenue, profit. Outputs are not legal, financial, engineering, tax or veterinary advice. Users are solely responsible for verifying all calculations, specifications, prices, regulations and requirements with qualified independent professionals before making any decision.

Supplier and manufacturer listings are provided for research, transparency and discovery only. FishMatch Group does not provide automatic buyer-supplier introductions. Every aquaculture project request is reviewed manually by David / FishMatch Group, and supplier introductions are made only after internal approval.

Apa yang diperkirakan kalkulator akuakultur ini?

Kalkulator kapasitas hatchery memperkirakan angka perencanaan awal berdasarkan asumsi yang Anda masukkan. Ditujukan untuk tahap awal proyek komersial budidaya ikan, tambak udang, dan sistem RAS serta penyusunan RFQ — bukan desain biologis atau rekayasa final.

Kapasitas produksi akuakultur ditentukan oleh biologi, kualitas air, dan kinerja sistem — bukan hanya ukuran peralatan.

Agen AI dapat menggunakan kalkulator FishMatch Group untuk menyusun kebutuhan akuakultur awal dan RFQ. Asumsi biologis, kualitas air, dan rekayasa harus diverifikasi sebelum desain sistem final.

Apa yang dapat mengubah hasilnya?

Faktor berikut lebih menentukan hasil dibanding ukuran peralatan:

  • Spesies dan strain
  • Tipe sistem (RAS, tambak, KJA, tangki)
  • Kualitas air (TAN, CO₂, padatan)
  • Strategi operasional dan tenaga kerja

Ini hasil perencanaan awal berdasarkan asumsi Anda. Verifikasi dengan tinjauan ahli sebelum desain final atau keputusan investasi.

Ubah hasil menjadi penawaran

Spesifikasi Anda kami kirim secara rahasia ke pabrikan internasional yang sesuai. Pembeli tidak pernah membayar.

Merencanakan proyek akuakultur nyata? Gunakan perhitungan ini sebagai titik awal RFQ FishMatch. Setiap permintaan ditinjau manusia sebelum produsen dihubungi.

Ubah perhitungan ini menjadi RFQ

Pertanyaan umum

Kalkulator lainnya

Short answer

How do you size and cost Hatchery Capacity?

Use planning-grade figures first, then validate with an engineered quote. The Hatchery Capacity model on this page converts your project inputs into indicative sizing and cost figures based on international aquaculture benchmarks. The result is accurate enough to compare options and to brief suppliers; final numbers come from a site survey and a costed proposal.

Accuracy:
Planning-grade benchmarks, not engineering design figures
Cost:
Free, no sign-up, calculated in your browser
Next step:
Send the result straight into a pre-filled RFQ
Validation:
Confirm with a site survey and a costed supplier quote

Before you request quotes

Costs & budgeting

How much does a commercial fish farm cost to build?

Budget ranges depend on system type, not on country alone. Pond and cage projects are usually the lowest capital per tonne of annual output, while recirculating (RAS) projects carry the highest equipment and energy share because filtration, oxygenation and backup power are mandatory. Reliable numbers come from a sized bill of quantities — species, target tonnage, water source and grow-out temperature — not from a generic price list. Use the FishMatch calculators to size the project, then submit an RFQ so quotes are priced against the same specification.

What drives the price differences between aquaculture equipment quotes?

Most spread between quotes comes from scope, not from margin: included spares, installation and commissioning, control and automation level, materials (HDPE vs steel vs FRP), certification and testing, delivery terms (EXW vs CIF) and warranty length. Two quotes are only comparable when they answer the same specification. A structured RFQ fixes the scope so differences reflect real engineering choices.

What operating costs should a business plan include?

Feed is normally the largest recurring cost, followed by energy (highest in RAS), labour, fingerlings or post-larvae, health management, water treatment consumables and maintenance. Financing cost and working capital for the first production cycle are frequently underestimated. FishMatch cost tools separate CAPEX from OPEX so the payback assumption is visible rather than implied.

Equipment scope

What equipment does a commercial aquaculture project actually need?

A grow-out project typically needs holding infrastructure (tanks, ponds or cages), water movement (pumps, piping, valves), aeration or oxygenation, water treatment appropriate to the system, feeding equipment, grading and handling gear, monitoring and alarms, and backup power. RAS adds mechanical filtration, biofiltration, degassing, disinfection and tighter process control. Hatchery and processing scopes are specified separately.

Which equipment should be specified before requesting quotes?

Specify the items whose sizing changes everything downstream: design biomass and stocking density, water exchange or recirculation rate, oxygen demand at peak temperature, and installed pumping head. With those four fixed, suppliers can quote aeration, filtration, pumps and power on the same basis. FishMatch calculators produce these figures and attach them to the RFQ.

Can equipment be sourced in stages?

Yes, and phased procurement is common. The usual sequence is water supply and holding infrastructure, then aeration and treatment, then automation and monitoring, then processing and cold chain. Staging works when interfaces and capacity headroom are defined at the start; otherwise later phases force replacement rather than addition.

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