[{"data":1,"prerenderedAt":85},["ShallowReactive",2],{"example-voc-temperature-en":3,"faq-voc-temperature-en":47,"sources-voc-temperature-en":81},{"input":4,"output":12},{"location":5,"vocStcV":6,"betaVocPercentPerC":7,"designMinTempC":8,"seriesCount":9,"voltageLimitV":10,"tempFromDataset":11},"52.52,13.405",41.5,-0.27,-15,13,600,true,{"vocCorrectedV":13,"stringVocV":14,"maxSeriesCount":9,"marginPercent":15,"limitReachedAtTempC":16,"uncorrectedMaxSeriesCount":17,"designMinTempC":8,"voltageLimitV":10,"seriesCount":9,"vocStcV":6,"moduleVocV":6,"betaVocPercentPerC":7,"siteTmyMinC":18,"siteP1DailyMinC":19,"steps":20,"warnings":33},45.982000000000006,597.7660000000001,0.37233333333332064,-16.533655991487322,14,-7.9,-5,[21,26,29],{"label":22,"expression":23,"value":13,"unit":24,"provenance":25},"vocCorrected","V_oc,STC * (1 + beta\u002F100 * (T_min - 25))","V","exact",{"label":27,"expression":28,"value":14,"unit":24,"provenance":25},"stringVoc","n_series * V_oc,corr",{"label":30,"expression":31,"value":9,"unit":32,"provenance":25},"maxSeries","floor(V_limit \u002F V_oc,corr)","",[34,41],{"level":35,"code":36,"params":37,"anchors":39},"warning","VOC_MARGIN_THIN",{"margin":38},0.4,[40],"seriesCount",{"level":42,"code":43,"params":44,"anchors":45},"info","DESIGN_TEMP_TMY_TYPICAL",{"siteMin":18},[46],"designMinTempC",[48,51,54,57,60,63,66,69,72,75,78],{"q":49,"a":50},"Why does module voltage rise in the cold?","Because the temperature coefficient of open-circuit voltage is negative for crystalline silicon (typically −0.25 to −0.30 %\u002F°C): the colder the cell, the higher the voltage. At −15 °C instead of 25 °C the open-circuit voltage is a good 10% higher — 41.5 V becomes 46 V per module. The coldest clear winter morning is therefore the design case: the sun rises, the modules are ice-cold, and the string delivers its highest voltage of the year straight into the controller input.",{"q":52,"a":53},"How many modules may be wired in series?","floor(controller limit \u002F corrected Voc). The calculator’s demonstration case: 41.5 V module, β = −0.27 %\u002F°C, −15 °C, 600 V limit — corrected 45.98 V per module, so at most 13 in series. Without temperature correction the answer would be 14: exactly one module too many, a code violation that surfaces at inspection and can destroy the controller in the extreme. The calculator shows this difference as its own figure.",{"q":55,"a":56},"Where does the design minimum temperature come from?","That is the calculator’s safety-critical assumption — answered honestly: for the USA, NEC 690.7 explicitly cites the ASHRAE extreme values; for IEC\u002FVDE regions no equally binding rule is verified (annex B1 of the specification, open standards question). The value therefore remains user input — but since the site coupling the calculator checks it visibly: it compares against your site’s TMY annual minimum (1,155 grid points) and warns critically if you design warmer.",{"q":58,"a":59},"Is the TMY minimum sufficient as the design value?","No — it is the lower bound of the check, not the design: a TMY describes a typical meteorological year; extreme years lie below it, sometimes by several degrees. The safe order: set at least as cold as the TMY minimum, better the extreme-value statistics of the nearest weather station or the regionally customary value (−20 to −25 °C in DACH lowlands, colder in valleys and at altitude). The calculator deliberately keeps the value as an assumption with a visible range.",{"q":61,"a":62},"What happens if the string exceeds the controller limit?","The open-circuit voltage sits at the controller input before anything regulates — at first light on a cold morning. If it exceeds the MPPT controller’s or inverter’s maximum voltage, the input stage risks permanent damage and the warranty lapses; many devices log overvoltage events. The calculator additionally outputs the temperature at which your configuration breaks the limit — if that lies above the site minimum, the system is misdesigned.",{"q":64,"a":65},"Does the calculation apply to thin-film and bifacial modules?","With the datasheet value yes, with caveats: the linear correction holds for crystalline silicon; thin-film technologies have different (often smaller) coefficients and partly non-linear behaviour — use the manufacturer’s value there, and in doubt their string-sizing table. Bifacial modules mainly raise current, hardly open-circuit voltage. The NEC table alternative 690.7(A) is deliberately not implemented — computing with the real β is more accurate.",{"q":67,"a":68},"Does the calculator take values from the other Voc calculators?","Yes — the chaining to the charge controller and string calculators hands over module voltage, temperature coefficient, design temperature and series count in both directions. That the module voltage is called “moduleVocV” there and “vocStcV” here is reconciled internally since 5 August 2026. If you checked a configuration in the string calculator, one click recalculates it here against a different standard limit.",{"q":70,"a":71},"What exactly does the site check verify — and what not?","It compares your design temperature with the typical-year minimum at your location (Berlin: −7.9 °C) and warns if you design warmer. But it replaces no standard value: a TMY year is a typical year, extreme years lie below it, and the NEC requires the ASHRAE Extreme Annual Mean Minimum. The check catches gross errors — responsibility for the design value stays with the planner.",{"q":73,"a":74},"Why does the calculator also output the uncorrected module count?","As a comparison that quantifies the error: without temperature correction, 41.5 V and a 600 V limit yield 14 modules in series; corrected to −15 °C it is 13. Exactly that one extra module is the classic planning error that surfaces at inspection — or costs the electronics on the first cold, sunny winter morning.",{"q":76,"a":77},"At what temperature does my configuration breach the limit?","The calculator solves the voltage equation backwards and names the temperature at which your string exceeds the limit. If it lies above the site minimum, the configuration is not permissible at the site; if it lies well below, you have reserve. This single number makes the abstract voltage risk concretely checkable.",{"q":79,"a":80},"Can I adjust the voltage margin warning threshold?","Yes, since 5 August 2026 in the advanced assumptions — previously it was fixed at 5 %. If your manufacturer requires tolerance margins on V_oc (some datasheets demand +3 %), set the threshold higher accordingly and get the warning earlier.",[82],{"name":83,"url":-1,"retrievedAt":84,"version":-1},"Official publications of the standards bodies and state authorities (NFPA, IEC, DKE\u002FVDE, CEN)","2026-07-15",1786101726274]