Resposta Rápida de Dimensionamento
Dimensione um disjuntor CC solar na sua posição real no diagrama unifilar. Use a tensão de string corrigida a frio Voc para tensão, módulo Isc multiplicado pela contagem de strings em paralelo e pelo fator exigido pelo projeto para corrente, depois confirme a proteção do cabo, a capacidade de interrupção CC, a fiação dos polos e a desclassificação do invólucro. Escolha um MCB ou MCCB somente depois que essas funções forem conhecidas.
O mesmo arranjo fotovoltaico pode exigir um dispositivo de 20 A em uma string e um dispositivo de 100 A na saída do combinador. Ambos os dispositivos veem aproximadamente a mesma tensão de string, mas não conduzem a mesma corrente nem protegem o mesmo condutor. É por isso que uma solicitação como “disjuntor solar CC de 1000 V” não está pronta para seleção de modelo.
A primeira pergunta não é Qual o tamanho do disjuntor? É Onde está o disjuntor e o que pode alimentar uma falta naquele ponto?
Posicione o Disjuntor no Mapa de Proteção FV

Mapa de proteção CC solar FV mostrando as posições do disjuntor de string, saída do combinador e entrada do inversorUm arranjo solar é uma cadeia de circuitos eletricamente diferentes. Marque o disjuntor proposto antes de abrir um catálogo:
String FV → entrada do combinador de strings → saída CC combinada → entrada CC do inversor
Mover uma posição para a direita altera o caminho da corrente. Módulos em série elevam a tensão. Strings compatíveis em paralelo elevam a corrente. Um disjuntor em uma entrada individual normalmente conduz uma string; um disjuntor na saída comum conduz todas as strings conectadas a essa saída.
| Posição | Corrente através do dispositivo | Função principal a estabelecer | Lista curta usual |
|---|---|---|---|
| String individual | Uma string | Proteção contra corrente reversa e isolamento da string | Fusível gPV ou MCB CC classificado para FV onde o projeto permitir |
| Saída do combinador | Soma das strings em paralelo | Proteção combinada do alimentador e do cabo de saída | MCB CC classificado para FV, MCCB CC ou seccionador com proteção separada |
| Entrada CC do inversor | Corrente atribuída a essa entrada do inversor ou caminho MPPT | Isolamento do equipamento e proteção coordenada | Disjuntor ou seccionador especificado pelo projeto do sistema |
A tabela diz deliberadamente “lista curta”. Um disjuntor não é automaticamente exigido em todas as posições. Uma string pode usar fusíveis gPV; um inversor pode já incluir um isolador CC adequado; uma saída pode precisar de isolamento enquanto a proteção contra sobrecorrente é fornecida em outro lugar. Defina a função ausente antes de escolher o dispositivo.
O artigo sobre dimensionamento de caixa combinadora solar explica como o agrupamento MPPT determina quais strings podem compartilhar uma saída. Conclua essa decisão de arquitetura primeiro. Um disjuntor não pode corrigir strings que nunca deveriam ter sido colocadas em paralelo.
Estabeleça a Janela de Corrente, Não Apenas uma Classificação Mínima de Amperes

Dimensionamento de corrente do disjuntor CC solar de cinco strings em paralelo para um candidato de 100 ampèresO cálculo de corrente tem dois lados. O disjuntor deve conduzir a corrente de projeto nas condições instaladas, mas não deve ser tão grande que o cabo protegido ou o equipamento conectado fique fora dos seus limites.
Para strings FV correspondentes:
Isc,caminho = Np × Isc,módulo
onde:
- Isc,caminho é a base de corrente de curto-circuito para o caminho selecionado em ampères;
- Np é o número de strings conectadas em paralelo nesse caminho;
- Isc,módulo é a corrente de curto-circuito do módulo na sua condição de teste declarada.
O método de instalação do projeto então determina o tratamento da corrente de projeto:
Iprojeto = Isc,caminho × Kprojeto
Kprojeto is not a number to guess. It represents the current factor required by the adopted installation rules and design basis. North American examples commonly show 1.25 or 1.56 depending on equipment rating and the calculation path. IEC-oriented projects must use the applicable installation requirements, module data and manufacturer instructions rather than relabeling one of those figures as a universal “IEC multiplier.”
The useful selection window is:
Required carrying current ≤ usable breaker rating or setting ≤ permitted protected-circuit limit
The upper boundary may be set by derated cable ampacity, terminal rating, inverter input limit or another protected component. Selecting the next standard breaker above Iprojeto is only valid when the upper boundary still passes.
Series Modules Do Not Multiply Breaker Current
Twenty modules in series do not produce twenty times the module current. They increase string voltage while string current remains based on one module. Five identical strings in parallel produce approximately five times the current. This is why dividing array watts by an assumed DC voltage is a poor substitute for the module datasheet and string schedule.
Use Isc and Imp for Different Checks
Isc is the short-circuit-current starting point used in PV overcurrent design. Imp describes operating current near maximum power and helps verify inverter MPPT loading and normal operation. Keep both values on the worksheet. Do not replace the protection basis with the lower Imp, and do not forget the inverter’s operating-current limit after calculating from Isc.
Keep IEC and North American Examples in Their Own Lanes
Eaton’s North American PV application guide, for example, distinguishes 80%-rated and 100%-rated molded-case breakers. Its worked method uses 1.56 × Isc for an 80%-rated breaker and 1.25 × Isc for a 100%-rated breaker, together with conductor and temperature checks. Those figures are useful inside that NEC/UL and product context. They should not be detached from it and published as a global PV rule.
For an IEC project, begin with the edition adopted by the contract or jurisdiction. The public scope of IEC 60364-7-712 confirms that it addresses PV electrical installations, but a scope page does not establish the complete calculation for a specific project. Record the actual design rule beside Kprojeto; this keeps the arithmetic reviewable and prevents a supplier from silently switching methods.
Set the Voltage Rating from Cold Voc and the Pole Diagram

Cold-weather PV string voltage calculation and DC circuit breaker pole configuration checkString voltage is highest when the modules are open-circuit and cold. A breaker selected from the module’s STC Voc alone can be underrated on a cold morning.
Where the module provides a negative Voc temperature coefficient in percent per degree Celsius, a preliminary calculation is:
Voc,cold,module = Vca,STC × [1 + |βVoc| × (25 − Tmín)]
Voc,cold,string = Ns × Voc,cold,module
where Ns is the number of modules in series and Tmín is the project’s minimum design temperature. Enter −0.27%/°C as 0.0027. If the module manufacturer or adopted design method specifies another temperature calculation, use it consistently across the inverter and every DC component.
The breaker’s declared DC voltage must be at least the approved maximum circuit voltage. It must also achieve that rating in the exact pole arrangement shown by its manufacturer. Some high-voltage DC breakers place several contacts in series to share arc interruption. A four-pole body does not automatically equal a 1000 V or 1500 V breaker.
Before ordering, confirm:
- rated operational DC voltage for the exact model;
- number of poles used in series at that voltage;
- permitted positive and negative conductor path;
- polarity sensitivity and line/load direction;
- declared suitability for isolation where that function is required.
The existing JUTRION cold-string voltage calculator can provide a first-pass Voc,cold,string result. It was created for PV SPD voltage screening, but the cold string voltage is also an input to breaker, isolator, cable and inverter checks.
Use the Fault Path to Decide Whether a Breaker Can Protect the Circuit
A breaker’s rated current and its breaking capacity answer different questions:
- Rated current or trip setting: can the device carry normal current and protect the circuit against applicable overcurrent?
- DC breaking capacity: can it safely interrupt the prospective fault current at the stated DC voltage and wiring condition?
Do not compare a 100 A breaker rating with a 50 A reverse-current contribution and conclude that the device can interrupt the fault. A normal-current label does not prove trip response, conductor protection or DC interruption performance.
At a string fault, healthy parallel strings may feed reverse current into the damaged string. An initial screen is:
Ireverso,triagem = (Np − 1) × Isc,string
This shows why reverse-current exposure grows as more strings are paralleled. It does not by itself select a breaker or fuse. The final design must consider the module’s maximum series-fuse rating, conductor capacity, protective-device characteristic and the requirements of the adopted installation rules.
At a combined output, identify every source that can feed the fault. PV modules are current-limited compared with a utility or battery, but parallel sub-arrays, connected power-conversion equipment and any storage interface can change the available current. If batteries are connected at DC level, stop treating the circuit as a PV-only example; battery fault-current assessment deserves its own design.
Do Not Assume a Large Breaking Number Solves a Poor Trip Decision
A breaker may have ample ultimate interruption capacity and still fail to protect the intended conductor because its trip threshold or time-current response is unsuitable. Conversely, a low-current breaker can have a normal rating close to the load yet lack the required DC breaking capacity at the actual voltage. Verify both the interruption rating and the protective characteristic.
PV faults can also occur near the lower end of a breaker’s operating range. Selectivity between string devices and an output breaker is not guaranteed simply because the output device has the larger ampere label. Use manufacturer coordination data where selective operation matters, and treat the claimed trip curve as model-specific evidence rather than a generic “C-curve for solar” rule.
IEC 60947-2:2024 applies to circuit breakers for instructed or skilled persons with rated voltages up to 1000 V AC or 1500 V DC. That product-standard scope supports the key procurement rule: obtain verified DC ratings for the exact breaker, not an AC breaking figure or a family-level marketing label.
Choose DC MCB or DC MCCB After the Duty Is Visible

DC MCB versus DC MCCB comparison for solar string and combiner output protection“Use an MCB below 63 A and an MCCB above 63 A” is convenient, but it is not a universal engineering boundary. Product ranges overlap. Some DC MCB families extend above 63 A; some projects choose an MCCB at a lower current because they need a different breaking capacity, adjustable protection, larger terminals or accessories.
| Project need | DC MCB is the stronger shortlist when… | DC MCCB is the stronger shortlist when… |
|---|---|---|
| Installation format | A compact DIN-rail device fits the string or small feeder | A molded-case panel device, larger conductors or busbars are involved |
| Protection adjustment | The declared fixed characteristic suits the circuit | An available adjustable trip unit helps coordinate the feeder |
| Breaking duty | The model’s verified DC breaking capacity exceeds the fault level | The circuit requires a higher verified DC interruption duty |
| Control and indication | Basic handle position or modular auxiliary options are sufficient | Shunt trip, auxiliary contacts or remote operation are required and supported |
| Typical PV position | Individual string or lower-current branch | Combiner output or higher-current array feeder |
The decision is not about which family is “better.” It is about which verified product satisfies the location’s current window, voltage/pole arrangement, interruption duty, cable interface and control requirements. After those values are known, compare the available JUTRION DC MCB configurations e JUTRION DC MCCB configurations.
Decide Whether the Location Needs a Fuse, Breaker or Isolator
Three devices often appear in the same combiner box, but their jobs are not interchangeable.
- gPV fuse and holder: provides PV string or array overcurrent protection within its verified duty. It does not provide maintenance isolation unless the complete fuse-switch arrangement is designed for that function.
- disjuntor CC: provides automatic overcurrent operation plus switching within its declared ratings. It does not automatically satisfy a required isolating function unless it is declared suitable for isolation.
- DC switch-disconnector: provides manual load switching and isolation within its utilization rating. It does not provide automatic overload or short-circuit protection.
At string level, gPV fuses are common because parallel strings can feed reverse current into a faulted string and the module provides a maximum series-fuse rating. A resettable breaker may be useful where its PV duty and characteristic are verified, but “resettable” is not evidence that it coordinates better.
At a combiner output, a breaker may protect the combined cable and provide switching. Another design may use a switch-disconnector because overcurrent protection is located elsewhere. State which function the device performs; otherwise two suppliers can quote different architectures under the same “DC breaker” request.
Coordinate the Breaker with the Complete DC Path
A correct breaker can still be wrong in an incorrectly coordinated system. Complete five checks before freezing the model.
Cable
Verify conductor ampacity after ambient-temperature, grouping, installation and termination corrections. The breaker rating or setting must remain within the permitted protection relationship. Do not increase the breaker solely to stop nuisance trips without reviewing the enclosure temperature and cable.
Inverter
Compare cold string voltage with maximum DC input voltage. Compare the parallel-string operating current with the MPPT/input-current limit, and total Isc with the inverter’s permitted short-circuit current. The breaker does not authorize an array that exceeds the inverter data.
String fuses
Confirm whether each string needs reverse-current protection and whether the selected fuse/link remains below the module maximum series-fuse rating while carrying the required current under enclosure conditions. The common output breaker and string fuses normally protect different conductors.
SPD CC Fotovoltaico
An SPD limits transient overvoltage; it is not the normal overcurrent device. Follow the SPD manufacturer’s backup-protection instructions and check its short-circuit behavior. The guide to selecting a DC SPD for solar PV covers UCPV, Type 2/Type 1+2 and protection-level decisions.
Enclosure and assembly
Outdoor combiner boxes can run substantially hotter than the surrounding air. Use the breaker’s actual temperature/altitude data, terminal limits and mounting instructions. Closely spaced protective devices, solar heating, cable losses and restricted airflow all affect usable current. Review the complete PV combiner-box assembly, not only the breaker nameplate.
If a catalogue curve shows that the breaker carries less current at the expected internal temperature, apply that curve before choosing the frame. If no applicable curve or assembly data is available, increasing the breaker rating by an improvised percentage is not a defensible thermal design. The larger breaker may also require a larger conductor, terminal or enclosure and may no longer protect the original cable.
IEC 62548-1:2023 covers PV array design requirements including DC wiring, electrical protection devices, switching and earthing provisions. IEC 60364-7-712:2025 applies to electrical installations of PV systems. These installation contexts are distinct from the circuit-breaker product standard.
One Array, Three Different Breaker Decisions

Solar DC breaker sizing example comparing string, combiner output and inverter input decisionsIllustrative design: each string has 20 identical modules. Module data states Vca,STC = 41.8 V, Isc = 14.2 A and βVoc = −0.27%/°C. The minimum design temperature is −20°C. Five compatible strings feed one inverter input through a combiner. For this example only, the project’s preliminary current method uses 1.25 × Isc.
First, establish the common voltage duty
Cold module Voc = 41.8 × [1 + 0.0027 × (25 − (−20))] = 46.88 V
Cold string Voc = 20 × 46.88 = 937.6 V
The strings are in parallel at the combiner, so their voltages do not add. The string device and the output device both require a verified voltage/pole arrangement above the approved maximum circuit voltage. A 1000 V DC class is the initial shortlist, subject to the project’s additional voltage treatment and the exact breaker diagram.
Position 1: one string
Preliminary string design current = 14.2 × 1.25 = 17.75 A
A 20 A PV-rated protective device is the first current candidate. Before choosing a DC MCB, compare this result with the module maximum series-fuse rating, conductor ampacity, required reverse-current protection and the exact trip characteristic. A gPV fuse may remain the better string-protection choice.
With five strings in parallel, the four healthy strings produce an initial reverse-current screen of:
(5 − 1) × 14.2 = 56.8 A
That figure explains why string protection deserves attention. It does not mean a 56.8 A string breaker should be fitted.
Position 2: combiner output
Total Isc = 5 × 14.2 = 71.0 A
Preliminary output design current = 71.0 × 1.25 = 88.75 A
A 100 A-class DC breaker is a current shortlist for the combined output. The handoff from MCB to MCCB now depends on the available product range, verified DC breaking capacity, required settings, terminal size and enclosure temperature—not on a universal 63 A rule.
Position 3: inverter input
The current arithmetic may be identical to the combiner output because it is the same feeder. The decision is not automatically identical. Confirm whether the inverter already provides a DC switch, whether an external breaker is required, the maximum input current and Isc, the permitted switching arrangement and the location needed for safe maintenance.
| Posição | Calculated current starting point | Initial device direction | Decision that remains |
|---|---|---|---|
| Uma string | 17.75 A | 20 A PV protective device candidate | gPV fuse or DC MCB; module/cable coordination |
| Saída do combinador | 88.75 A | 100 A-class DC breaker candidate | MCB/MCCB, DC breaking capacity, settings and temperature |
| Inverter input | Same feeder current | Breaker or switch-disconnector as required | Inverter limits and whether protection already exists |
The calculation has produced three different functional decisions from one array. That is more useful than quoting one breaker size for “a 100 kW solar system.”
Read the Breaker Datasheet as a Connected Rating Set
Do not approve the device by circling one number. Read these ratings together:
- Ue: rated operational voltage for the stated DC pole arrangement;
- In or frame/setting: current rating and available adjustment under reference conditions;
- DC breaking capacity: declared interruption performance at the relevant DC voltage;
- trip characteristic: how and when the device operates, not simply a B/C/D letter borrowed from another family;
- isolation declaration: whether it can serve the required isolating function;
- pole and polarity diagram: the only valid connection for the declared high-voltage rating;
- temperature and altitude data: the basis for usable current in the real enclosure;
- terminals: conductor range, material, preparation and tightening torque;
- accessories: auxiliary contacts, shunt trip or remote operation where the system needs them.
A label such as “4P, 1000 V DC, 100 A” does not disclose the complete connected rating set. Ask for the exact technical sheet and wiring diagram for the ordered model.
Three Datasheet Warning Signs
- One breaking-capacity number with no DC voltage: interruption performance must refer to a stated voltage and test arrangement.
- A 1000 V claim with no pole diagram: the buyer cannot confirm how the arc chambers share voltage or where the conductors connect.
- One current rating with no reference temperature: the rooftop enclosure duty remains unknown.
These omissions do not automatically prove that a product is unsuitable, but they prevent an engineering selection. Resolve them before the device is installed in a live PV string.
Perguntas Frequentes
Qual tamanho de disjuntor DC eu preciso para painéis solares?
Use module Isc and the number of parallel strings on the protected path, then apply the current method required by the project. Select the next suitable rating only if it also protects the derated cable and stays within inverter and terminal limits. Check cold Voc, DC breaking capacity and pole wiring separately.
Posso usar um disjuntor CA no lado CC solar?
Somente quando o fabricante declara explicitamente o dispositivo exato, a tensão CC, a capacidade de interrupção e a disposição dos polos para essa aplicação em CC. Uma classificação CA isolada é insuficiente porque um arco CC sustentado é mais difícil de interromper.
Uma string fotovoltaica deve usar um fusível ou um disjuntor?
Os fusíveis gPV são comuns para proteção contra corrente reversa em strings individuais. Um disjuntor CC com classificação fotovoltaica pode ser selecionado quando sua característica, tensão, capacidade de interrupção e coordenação com cabos/módulos forem adequadas. A resposta depende do projeto de proteção, não de uma preferência por dispositivos rearmáveis.
Quando devo escolher um MCCB CC em vez de um MCB CC?
MCB CC?
Escolha conforme a aplicação. Um MCCB torna-se o candidato mais forte quando a saída exige uma estrutura maior, maior capacidade de interrupção verificada, proteção ajustável, terminais maiores ou acessórios de controle. Não confie em um limite universal de 63 A.
Do I need a 2-pole or 4-pole breaker for a 1000 V PV string?
The breaker manufacturer decides this through the model’s verified DC pole diagram. Some products require multiple poles in series to reach 1000 V; others use a different construction. Follow the exact diagram and polarity markings rather than choosing by pole count alone.
Complete the Selection at Each Position
For an individual string, resolve reverse-current protection and the module’s series-protection limit. At the combiner output, resolve combined current, cable protection and DC breaking duty. At the inverter input, resolve the equipment limits and the required isolation point.
Only then choose the product family. A compact MCB CC may fit the string or smaller feeder; a MCCB CC may better fit the combined output. The final model is the one whose current, voltage, interruption, poles and installed-condition ratings all refer to the same circuit—not five individually impressive numbers collected from different conditions.
