leistungsbilanz-ts/tests/cable-sizing-calculation.test.ts
Grovy311 8562d6eb83 cable-sizing: size for the protective device, not just the load; manual entry; icon position
- calculateCableSizing now selects cross-section against
  designCurrentA = max(operatingCurrentA, existingProtectionRatedCurrentA)
  instead of the load current alone. A breaker only trips at its own rated
  current (In), so a cable sized for the actual load could overheat under
  sustained current below that threshold - the standard In <= Iz rule.
  Voltage-drop calculation still uses the real operating current, only the
  capacity check changed. Alerts and the ok-summary now name the breaker as
  the limiting factor when it is one.
- Added a manual cable type/cross-section entry in the modal itself:
  running a calculation pre-fills these fields as a suggestion, but they
  are the single field that actually gets applied, and stay editable -
  this restores the direct manual-entry capability the modal replaced when
  it took over the cableSummary/cableCrossSection cell click.
- Fixed calculator icon position from a trailing ::after (inconsistent
  position depending on cell text length, easy to miss on empty cells) to
  a fixed-position ::before, so it is always in the same place regardless
  of whether cable data is already filled in.
- No new display for the existing protection device - it already has its
  own Schutz column in this app.
2026-08-07 18:02:28 +02:00

150 lines
5.6 KiB
TypeScript

import assert from "node:assert/strict";
import { describe, it } from "node:test";
import {
buildCableSizingAlerts,
calculateCableSizing,
isCableSizingDataVerified,
type CableSizingInput,
} from "../src/cable-sizing/domain/cable-sizing-calculation.js";
const BASE_INPUT: CableSizingInput = {
phase: 1,
mode: "power",
powerKw: 5,
cosPhi: 1,
voltage: 230,
lengthM: 30,
layingMethod: "C",
conductorMaterial: "copper",
insulation: "pvc",
ambientTemperatureC: 30,
groupingCircuits: 1,
maxVoltageDropPercent: 3,
harmonicNeutralLoad: "none",
};
describe("calculateCableSizing", () => {
it("matches the verified reference case (1~, 5 kW, 230 V, 30 m, method C, copper)", () => {
const result = calculateCableSizing(BASE_INPUT);
assert.equal(result.dataVerified, true);
assert.ok(Math.abs(result.operatingCurrentA - 21.739) < 0.01);
assert.equal(result.crossSectionByCapacityMm2, 2.5);
assert.equal(result.crossSectionByVoltageDropMm2, 4);
assert.equal(result.recommendedCrossSectionMm2, 4);
});
it("returns dataVerified: false and no numeric result for an unverified laying method", () => {
const result = calculateCableSizing({ ...BASE_INPUT, layingMethod: "A2" });
assert.equal(result.dataVerified, false);
assert.equal(result.recommendedCrossSectionMm2, null);
assert.equal(result.rows.length, 0);
// The operating current itself does not depend on the capacity table
// and is still reported so the UI can show at least that much.
assert.ok(Math.abs(result.operatingCurrentA - 21.739) < 0.01);
});
it("returns dataVerified: false for xlpe regardless of method", () => {
const result = calculateCableSizing({ ...BASE_INPUT, insulation: "xlpe" });
assert.equal(result.dataVerified, false);
});
it("isCableSizingDataVerified matches the six ported, verified methods only", () => {
for (const method of ["A1", "B2", "C", "E", "D1", "D2"] as const) {
assert.equal(isCableSizingDataVerified(method, "pvc"), true, method);
}
for (const method of ["A2", "B1", "F", "G"] as const) {
assert.equal(isCableSizingDataVerified(method, "pvc"), false, method);
}
});
it("applies the 0.86 harmonic reduction factor only for three-phase + 15to33Percent", () => {
const threePhase: CableSizingInput = {
...BASE_INPUT,
phase: 3,
mode: "current",
currentA: 10,
powerKw: undefined,
voltage: 400,
};
const base = calculateCableSizing({ ...threePhase, harmonicNeutralLoad: "none" });
const derated = calculateCableSizing({
...threePhase,
harmonicNeutralLoad: "15to33Percent",
});
assert.equal(base.harmonicReductionApplied, false);
assert.equal(derated.harmonicReductionApplied, true);
assert.ok(
Math.abs(derated.combinedDerationFactor - base.combinedDerationFactor * 0.86) < 1e-9
);
const singlePhaseWithHarmonics = calculateCableSizing({
...BASE_INPUT,
harmonicNeutralLoad: "15to33Percent",
});
assert.equal(singlePhaseWithHarmonics.harmonicReductionApplied, false);
});
it("uses max(operatingCurrentA, existingProtectionRatedCurrentA) as the design current for cross-section selection", () => {
// Load alone (21.7 A) would recommend 4 mm² (see the reference case
// above); a 32 A breaker on the same circuit must still be covered by
// the cable (In <= Iz), so the recommendation should grow accordingly.
const withoutBreaker = calculateCableSizing(BASE_INPUT);
const withBreaker = calculateCableSizing({
...BASE_INPUT,
existingProtectionRatedCurrentA: 32,
});
assert.equal(withoutBreaker.designCurrentA, withoutBreaker.operatingCurrentA);
assert.equal(withBreaker.designCurrentA, 32);
assert.ok(
(withBreaker.recommendedCrossSectionMm2 ?? 0) >=
(withoutBreaker.recommendedCrossSectionMm2 ?? 0)
);
assert.ok(withBreaker.protectionCoordination?.coordinated);
});
it("reports an oversized breaker as the limiting factor when no cross-section can cover it", () => {
const result = calculateCableSizing({
...BASE_INPUT,
existingProtectionRatedCurrentA: 1000,
});
assert.equal(result.designCurrentA, 1000);
assert.equal(result.recommendedCrossSectionMm2, null);
// No cross-section satisfies the design current at all, so there is no
// "recommended but under-protected" case to flag - protectionCoordination
// is only meaningful once a recommendation exists.
assert.equal(result.protectionCoordination, null);
const alerts = buildCableSizingAlerts(
{ ...BASE_INPUT, existingProtectionRatedCurrentA: 1000 },
result
);
assert.equal(alerts.length, 1);
assert.equal(alerts[0].kind, "critical");
assert.ok(alerts[0].text.includes("Vorhandene Sicherung"));
});
});
describe("buildCableSizingAlerts", () => {
it("returns a single critical alert for an unverified combination, no numeric claims", () => {
const input: CableSizingInput = { ...BASE_INPUT, layingMethod: "G" };
const result = calculateCableSizing(input);
const alerts = buildCableSizingAlerts(input, result);
assert.equal(alerts.length, 1);
assert.equal(alerts[0].kind, "critical");
assert.ok(alerts[0].text.includes("keine geprüften"));
});
it("returns a single ok alert for a clean, unremarkable case", () => {
const input: CableSizingInput = {
...BASE_INPUT,
mode: "current",
currentA: 15,
powerKw: undefined,
lengthM: 3,
};
const result = calculateCableSizing(input);
const alerts = buildCableSizingAlerts(input, result);
assert.equal(alerts.length, 1);
assert.equal(alerts[0].kind, "ok");
});
});