VoltPlan Wiring Diagrams

Generate 12V/24V/48V wiring diagrams and size wires, fuses, batteries, solar, and inverters.

使うべきか

品質と安全性

A
説明の品質
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スキーマの完全性
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命名の品質
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ポイズニングのリスク
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権限の一致
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プロトコルへの準拠
100%

ツール定義とプロトコルへの準拠に関する自動分析に基づいています。

コンテキストコスト

~2,551トークン数(ツール定義)
~2.6 KB一般的なレスポンスサイズ
注意への影響は中程度(128k コンテキストの 1.99%)

これは、サーバーのツールがモデルのコンテキストに読み込まれるたびに消費されるおおよそのトークン数です。数が多いほど、ほかのタスクに使える注意が減ります。

インストール

ワンクリックインストール

これを `claude_desktop_config.json` ファイルに追加してください:

{
  "mcpServers": {
    "wiring-diagram-mcp": {
      "command": "npx",
      "args": [
        "wiring-diagram-mcp"
      ]
    }
  }
}

実行可能なパッケージ

npmwiring-diagram-mcp0.2.2stdio

リモートエンドポイント

https://mcp.voltplan.app/mcpstreamable-http

できること

ツール一覧

ツール(9)

🟢 読み取り専用🟡 書き込み🔴 削除⚪ 不明
⚪generate_wiring_diagram(systemName, batteries, loads, chargers, format)

Generate an electrical wiring diagram for campers, boats, or off-grid setups. Returns a complete schematic with batteries, chargers, protection components, and loads. Protection components (shunt, main switch, low-voltage cutoff) are auto-generated when both batteries and loads are provided.

入力スキーマ

{
  "type": "object",
  "properties": {
    "systemName": {
      "type": "string",
      "description": "Name of the electrical system (e.g. \"My Camper Van\")"
    },
    "batteries": {
      "type": "array",
      "items": {
        "type": "object",
        "properties": {
          "name": {
            "type": "string",
            "description": "Battery name (e.g. \"LiFePO4 100Ah\")"
          },
          "voltage": {
            "type": "number",
            "description": "Nominal voltage (e.g. 12)"
          },
          "capacityAh": {
            "type": "number",
            "description": "Capacity in amp-hours"
          },
          "energyWh": {
            "type": "number",
            "description": "Energy in watt-hours"
          }
        },
        "required": [
          "name",
          "voltage",
          "capacityAh",
          "energyWh"
        ],
        "additionalProperties": false
      },
      "description": "Batteries in the system"
    },
    "loads": {
      "type": "array",
      "items": {
        "type": "object",
        "properties": {
          "name": {
            "type": "string",
            "description": "Load name (e.g. \"LED Lights\")"
          },
          "power": {
            "type": "number",
            "description": "Power consumption in watts"
          },
          "voltage": {
            "type": "number",
            "description": "Operating voltage"
          },
          "current": {
            "type": "number",
            "description": "Current draw in amps"
          }
        },
        "required": [
          "name",
          "power",
          "voltage",
          "current"
        ],
        "additionalProperties": false
      },
      "description": "Electrical loads / consumers"
    },
    "chargers": {
      "type": "array",
      "items": {
        "type": "object",
        "properties": {
          "name": {
            "type": "string",
            "description": "Charger name (e.g. \"MPPT Solar Charger\")"
          },
          "inputVoltage": {
            "type": "number",
            "description": "Input voltage. For shore/generator (AC) chargers use the regional mains voltage: 230 V in Europe, UK, Australia, most of Asia and Africa; 120 V in North America and Japan. For solar/wind use the panel or turbine output voltage. For alternator use the vehicle system voltage (typically 14 V)."
          },
          "outputVoltage": {
            "type": "number",
            "description": "Output voltage"
          },
          "power": {
            "type": "number",
            "description": "Power rating in watts"
          },
          "sourceType": {
            "type": "string",
            "enum": [
              "shore",
              "solar",
              "wind",
              "generator",
              "alternator"
            ],
            "description": "Type of power source feeding this charger"
          }
        },
        "required": [
          "name",
          "inputVoltage",
          "outputVoltage",
          "power"
        ],
        "additionalProperties": false
      },
      "description": "Chargers with their power sources"
    },
    "format": {
      "type": "string",
      "enum": [
        "svg",
        "png"
      ],
      "default": "svg",
      "description": "Output format: svg (recommended, renders inline) or png (base64-encoded image, may not display in all clients)"
    }
  },
  "required": [
    "systemName"
  ],
  "additionalProperties": false,
  "$schema": "http://json-schema.org/draft-07/schema#"
}
🟢list_component_types

List all available component types and example configurations for building wiring diagrams. Use this to understand what parameters are needed before calling generate_wiring_diagram.

入力スキーマ

{
  "type": "object",
  "properties": {}
}
🔴calculate_wire_gauge(voltage, current, power, cableLengthM, maxVoltageDropPercent, ...)

Calculate the recommended wire gauge / cable cross-section for a DC circuit. Considers both ampacity (current carrying capacity) and voltage drop to recommend the optimal cable size. Also returns total resistance, power loss, and a fuse recommendation. Supports copper conductors from 0.75 mm² (18 AWG) to 240 mm² (300 MCM).

入力スキーマ

{
  "type": "object",
  "properties": {
    "voltage": {
      "type": "number",
      "description": "System voltage in volts (e.g. 12, 24, 48)"
    },
    "current": {
      "type": "number",
      "description": "Load current in amps. Provide either current or power."
    },
    "power": {
      "type": "number",
      "description": "Load power in watts. Will be converted to current using the voltage. Provide either current or power."
    },
    "cableLengthM": {
      "type": "number",
      "description": "One-way cable length in meters"
    },
    "maxVoltageDropPercent": {
      "type": "number",
      "default": 3,
      "description": "Maximum acceptable voltage drop in percent (default: 3%)"
    },
    "temperatureCelsius": {
      "type": "number",
      "default": 20,
      "description": "Ambient temperature in °C (default: 20°C). Affects copper resistance."
    },
    "isRoundTrip": {
      "type": "boolean",
      "default": true,
      "description": "Account for both positive and negative conductor (default: true). Set to false for chassis-ground returns."
    }
  },
  "required": [
    "voltage",
    "cableLengthM"
  ],
  "additionalProperties": false,
  "$schema": "http://json-schema.org/draft-07/schema#"
}
🟢calculate_power_budget(systemVoltage, loads)

Calculate total daily energy consumption from a list of electrical loads. Each load specifies its power draw, how many hours per day it runs, and quantity. Returns total daily energy (Wh and Ah), peak power draw, and average power. This is typically the first step in sizing a battery bank and solar system.

入力スキーマ

{
  "type": "object",
  "properties": {
    "systemVoltage": {
      "type": "number",
      "description": "System voltage in volts (e.g. 12, 24, 48)"
    },
    "loads": {
      "type": "array",
      "items": {
        "type": "object",
        "properties": {
          "name": {
            "type": "string",
            "description": "Name of the load (e.g. \"LED Lights\")"
          },
          "powerWatts": {
            "type": "number",
            "description": "Power consumption of a single unit in watts"
          },
          "hoursPerDay": {
            "type": "number",
            "description": "Average hours of use per day"
          },
          "quantity": {
            "type": "number",
            "default": 1,
            "description": "Number of identical units (default: 1)"
          }
        },
        "required": [
          "name",
          "powerWatts",
          "hoursPerDay"
        ],
        "additionalProperties": false
      },
      "description": "List of electrical loads to include in the budget"
    }
  },
  "required": [
    "systemVoltage",
    "loads"
  ],
  "additionalProperties": false,
  "$schema": "http://json-schema.org/draft-07/schema#"
}
🟢calculate_battery_bank(dailyConsumptionWh, daysOfAutonomy, depthOfDischargePercent, systemVoltage, singleBatteryAh, ...)

Calculate the recommended battery bank size based on daily energy consumption. Accounts for days of autonomy (how many days without charging) and depth of discharge. Returns required capacity, number of batteries, and wiring configuration.

入力スキーマ

{
  "type": "object",
  "properties": {
    "dailyConsumptionWh": {
      "type": "number",
      "description": "Daily energy consumption in watt-hours (from calculate_power_budget)"
    },
    "daysOfAutonomy": {
      "type": "number",
      "default": 2,
      "description": "Days the system should run without any charging (default: 2)"
    },
    "depthOfDischargePercent": {
      "type": "number",
      "default": 80,
      "description": "Usable percentage of battery capacity. LiFePO4: 80-90%, AGM: 50%, Gel: 50% (default: 80)"
    },
    "systemVoltage": {
      "type": "number",
      "description": "Target system voltage in volts (e.g. 12, 24, 48)"
    },
    "singleBatteryAh": {
      "type": "number",
      "description": "Capacity of a single battery in amp-hours (e.g. 100, 200)"
    },
    "singleBatteryVoltage": {
      "type": "number",
      "description": "Voltage of a single battery (e.g. 12.8 for LiFePO4, 12 for lead-acid)"
    }
  },
  "required": [
    "dailyConsumptionWh",
    "systemVoltage",
    "singleBatteryAh",
    "singleBatteryVoltage"
  ],
  "additionalProperties": false,
  "$schema": "http://json-schema.org/draft-07/schema#"
}
🟢calculate_solar_size(dailyConsumptionWh, peakSunHours, systemEfficiency)

Calculate the required solar panel wattage to cover daily energy consumption. Accounts for peak sun hours at the location and system efficiency losses (MPPT conversion, wiring, temperature derating). Returns required wattage and common panel configurations.

入力スキーマ

{
  "type": "object",
  "properties": {
    "dailyConsumptionWh": {
      "type": "number",
      "description": "Daily energy consumption in watt-hours (from calculate_power_budget)"
    },
    "peakSunHours": {
      "type": "number",
      "description": "Average daily peak sun hours for the location. Examples: Northern Europe winter 1-2h, summer 4-6h. Southern US 5-6h. Equatorial regions 5-7h."
    },
    "systemEfficiency": {
      "type": "number",
      "default": 0.85,
      "description": "Overall system efficiency factor (default: 0.85). Accounts for MPPT losses, wiring losses, temperature derating, and panel soiling."
    }
  },
  "required": [
    "dailyConsumptionWh",
    "peakSunHours"
  ],
  "additionalProperties": false,
  "$schema": "http://json-schema.org/draft-07/schema#"
}
🟢calculate_charging_time(batteryCapacityAh, batteryVoltage, currentStateOfChargePercent, targetStateOfChargePercent, chargePowerWatts, ...)

Estimate how long it takes to charge a battery bank from a given state of charge to a target level. Accounts for the bulk charging phase (constant current, up to ~80% SoC) and the slower absorption phase (tapering current, 80-100% SoC). Works for any charging source: solar, shore power, alternator.

入力スキーマ

{
  "type": "object",
  "properties": {
    "batteryCapacityAh": {
      "type": "number",
      "description": "Total battery bank capacity in amp-hours"
    },
    "batteryVoltage": {
      "type": "number",
      "description": "Battery bank voltage (e.g. 12, 24, 48)"
    },
    "currentStateOfChargePercent": {
      "type": "number",
      "description": "Current state of charge in percent (e.g. 20 for 20%)"
    },
    "targetStateOfChargePercent": {
      "type": "number",
      "default": 100,
      "description": "Target state of charge in percent (default: 100)"
    },
    "chargePowerWatts": {
      "type": "number",
      "description": "Charger output power in watts"
    },
    "chargeCurrentAmps": {
      "type": "number",
      "description": "Maximum charge current in amps (if limited by the charger or battery BMS). If omitted, calculated from power and voltage."
    }
  },
  "required": [
    "batteryCapacityAh",
    "batteryVoltage",
    "currentStateOfChargePercent",
    "chargePowerWatts"
  ],
  "additionalProperties": false,
  "$schema": "http://json-schema.org/draft-07/schema#"
}
🟢calculate_inverter_size(systemVoltage, loads)

Calculate the recommended inverter size for running AC loads from a DC battery system. Accounts for continuous power, startup surge power (motors typically surge 2-3x), and includes a 25% headroom for the continuous rating. Returns the recommended inverter wattage and the DC current draw at system voltage.

入力スキーマ

{
  "type": "object",
  "properties": {
    "systemVoltage": {
      "type": "number",
      "description": "DC system voltage (e.g. 12, 24, 48)"
    },
    "loads": {
      "type": "array",
      "items": {
        "type": "object",
        "properties": {
          "name": {
            "type": "string",
            "description": "Name of the AC load (e.g. \"Microwave\", \"Coffee Machine\")"
          },
          "continuousWatts": {
            "type": "number",
            "description": "Continuous power draw in watts"
          },
          "surgeWatts": {
            "type": "number",
            "description": "Startup surge power in watts (for motors, compressors). If omitted, assumed equal to continuous watts."
          },
          "quantity": {
            "type": "number",
            "default": 1,
            "description": "Number of identical units (default: 1)"
          }
        },
        "required": [
          "name",
          "continuousWatts"
        ],
        "additionalProperties": false
      },
      "description": "List of AC loads that will run through the inverter"
    }
  },
  "required": [
    "systemVoltage",
    "loads"
  ],
  "additionalProperties": false,
  "$schema": "http://json-schema.org/draft-07/schema#"
}
🟢calculate_battery_config(targetVoltage, targetCapacityAh, singleBatteryVoltage, singleBatteryAh)

Determine how to arrange batteries in series and/or parallel to achieve a target voltage and capacity. Returns the number of batteries needed, the wiring configuration (e.g. 2S3P), and step-by-step wiring instructions.

入力スキーマ

{
  "type": "object",
  "properties": {
    "targetVoltage": {
      "type": "number",
      "description": "Desired system voltage (e.g. 12, 24, 48)"
    },
    "targetCapacityAh": {
      "type": "number",
      "description": "Desired total capacity in amp-hours"
    },
    "singleBatteryVoltage": {
      "type": "number",
      "description": "Nominal voltage of one battery (e.g. 12.8 for LiFePO4, 12 for lead-acid, 3.2 for LiFePO4 cells)"
    },
    "singleBatteryAh": {
      "type": "number",
      "description": "Capacity of one battery in amp-hours"
    }
  },
  "required": [
    "targetVoltage",
    "targetCapacityAh",
    "singleBatteryVoltage",
    "singleBatteryAh"
  ],
  "additionalProperties": false,
  "$schema": "http://json-schema.org/draft-07/schema#"
}

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