{"id":2635,"date":"2026-08-30T16:00:00","date_gmt":"2026-08-30T08:00:00","guid":{"rendered":"https:\/\/cnbygele.com\/?p=2635"},"modified":"2026-08-29T10:22:18","modified_gmt":"2026-08-29T02:22:18","slug":"detuned-reactor-calculation","status":"publish","type":"post","link":"https:\/\/cnbygele.com\/de\/blog\/detuned-reactor-calculation\/","title":{"rendered":"Berechnung verdrosselter Drosseln f\u00fcr Kondensatorb\u00e4nke"},"content":{"rendered":"<p>A detuned reactor calculation starts with the required fundamental-frequency kvar, system voltage and frequency, capacitor connection, selected detuning factor, and measured harmonic environment. The detuning factor is the ratio of reactor reactance to capacitor reactance at the fundamental frequency. From it, the ideal series-resonance frequency is approximately the system frequency divided by the square root of that ratio. This calculation is only the first design screen. The capacitor voltage rises when a reactor is added, component tolerances move the actual tuning point, and the network can contain parallel resonances. Verify the result with manufacturer data, a harmonic study, thermal and fault-duty checks, and the applicable project standards before ordering equipment.<\/p>\n<div class=\"cnbyg-toc\"><strong>Contents<\/strong><\/p>\n<ol>\n<li><a href=\"#1-detuned-reactor-calculation\">What detuning is intended to do<\/a><\/li>\n<li><a href=\"#2-detuned-reactor-calculation\">Define the detuning factor<\/a><\/li>\n<li><a href=\"#3-detuned-reactor-calculation\">Calculate branch current and reactor reactance<\/a><\/li>\n<li><a href=\"#4-detuned-reactor-calculation\">Account for capacitor voltage rise<\/a><\/li>\n<li><a href=\"#5-detuned-reactor-calculation\">Use measured harmonics and network impedance<\/a><\/li>\n<li><a href=\"#6-detuned-reactor-calculation\">Check tolerances and aging<\/a><\/li>\n<li><a href=\"#7-detuned-reactor-calculation\">Coordinate switching and protection<\/a><\/li>\n<li><a href=\"#8-detuned-reactor-calculation\">Calculation workflow and deliverables<\/a><\/li>\n<li><a href=\"#9-detuned-reactor-calculation\">Worked screening example and limits<\/a><\/li>\n<li><a href=\"#10-detuned-reactor-calculation\">Verify the installed branch after energization<\/a><\/li>\n<li><a href=\"#selection-table\">Decision table<\/a><\/li>\n<li><a href=\"#commissioning-sources\">Sources and further learning<\/a><\/li>\n<li><a href=\"#faq\">Frequently asked questions<\/a><\/li>\n<\/ol>\n<\/div>\n<h2 id=\"1-detuned-reactor-calculation\">What detuning is intended to do<\/h2>\n<p>A series reactor changes the impedance of a capacitor branch so its series-resonance frequency lies below a troublesome harmonic order. Above that frequency, the branch behaves inductively rather than as an attractive low-impedance path for higher-order harmonic current. Detuning is primarily a protection and resonance-control strategy for power factor correction banks; it is not automatically a tuned harmonic filter with a guaranteed current-absorption target. The design objective, harmonic spectrum, bus impedance, and acceptance criteria must be stated before selecting a percentage.<\/p>\n<h2 id=\"2-detuned-reactor-calculation\">Define the detuning factor<\/h2>\n<figure class=\"wp-block-image size-large\"><img decoding=\"async\" src=\"https:\/\/cnbygele.com\/wp-content\/uploads\/2026\/04\/2.CKSG_.webp\" alt=\"Three-phase series reactor for a detuned capacitor bank\" loading=\"lazy\"\/><figcaption>Series reactor used with power-factor-correction capacitors<\/figcaption><\/figure>\n<p>Let p equal XL divided by XC at the fundamental frequency, expressed as a decimal. XL is the reactor reactance and XC is the magnitude of capacitor reactance in the series branch. The ideal resonance frequency is fr = f1 \/ sqrt(p), where f1 is the system frequency. For example, p = 0.07 on a 50 Hz system gives an ideal value near 189 Hz. That arithmetic does not authorize a 7 percent reactor for every plant. It only shows the nominal relationship. Actual reactors and capacitors have tolerance, temperature dependence, and manufacturing limits, while the network has its own frequency-dependent impedance.<\/p>\n<h2 id=\"3-detuned-reactor-calculation\">Calculate branch current and reactor reactance<\/h2>\n<p>For a balanced three-phase branch, begin from the capacitor bank&#x27;s required kvar at the bus and identify whether the quoted rating refers to the capacitor alone or the complete reactor-capacitor assembly. The fundamental branch impedance is the net capacitive reactance after subtracting reactor reactance. If the assembly kvar and line voltage are known, calculate line current using I = Q \/ (sqrt(3) \u00d7 VLL) for a balanced three-phase load. Derive the net per-phase impedance using the actual delta or wye connection, then separate XL and XC using the selected p. Because rating conventions differ, reconcile the hand calculation with the supplier&#x27;s complete assembly tables.<\/p>\n<h2 id=\"4-detuned-reactor-calculation\">Account for capacitor voltage rise<\/h2>\n<p>The reactor causes the capacitor terminal voltage to exceed the bus contribution under fundamental-frequency operation. A simplified ideal relationship indicates that capacitor voltage increases as the detuning factor grows. The capacitor must therefore be selected for the actual continuous voltage and current stress, including system voltage tolerance, harmonic current, temperature, and manufacturing tolerance. Do not pair a reactor with a capacitor based only on nominal bus voltage and kvar. Request the approved reactor-capacitor combination and its declared assembly output.<\/p>\n<h2 id=\"selection-table\">Decision table<\/h2>\n<div class=\"wp-block-table\" style=\"overflow-x:auto\">\n<table>\n<thead>\n<tr>\n<th>Input or result<\/th>\n<th>Symbol or example<\/th>\n<th>Why it matters<\/th>\n<th>Verification<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td>System frequency<\/td>\n<td>f1<\/td>\n<td>Sets harmonic frequencies and resonance calculation<\/td>\n<td>Nameplate and measured frequency<\/td>\n<\/tr>\n<tr>\n<td>Detuning factor<\/td>\n<td>p = XL\/XC<\/td>\n<td>Defines nominal reactor-to-capacitor reactance ratio<\/td>\n<td>Project study and approved assembly<\/td>\n<\/tr>\n<tr>\n<td>Ideal series resonance<\/td>\n<td>fr = f1\/\u221ap<\/td>\n<td>First screen for location below a harmonic order<\/td>\n<td>Recalculate with tolerances<\/td>\n<\/tr>\n<tr>\n<td>Assembly reactive power<\/td>\n<td>Q<\/td>\n<td>Determines branch current and compensation delivered<\/td>\n<td>Clarify capacitor-only vs assembly rating<\/td>\n<\/tr>\n<tr>\n<td>Three-phase line current<\/td>\n<td>I = Q\/(\u221a3 \u00d7 VLL)<\/td>\n<td>Supports conductor and switch review for balanced operation<\/td>\n<td>Compare with approved manufacturer data<\/td>\n<\/tr>\n<tr>\n<td>Harmonic spectrum and network impedance<\/td>\n<td>Measured\/modelled data<\/td>\n<td>Reveals branch stress and parallel resonance risk<\/td>\n<td>Power-quality study at representative loads<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<\/div>\n<h2 id=\"5-detuned-reactor-calculation\">Use measured harmonics and network impedance<\/h2>\n<figure class=\"wp-block-image size-large\"><img decoding=\"async\" src=\"https:\/\/cnbygele.com\/wp-content\/uploads\/2026\/04\/6.BSMJ_.webp\" alt=\"Low-voltage power capacitor paired with a series reactor\" loading=\"lazy\"\/><figcaption>Power capacitor that must be matched to reactor voltage and current stress<\/figcaption><\/figure>\n<p>A percentage selected from habit may move resonance into an unfavorable region. Collect voltage and current harmonic spectra under representative operating states, transformer and generator impedances, cable data where material, existing bank details, drive and converter information, and utility background distortion. Model both the series branch and possible parallel resonance with the network. IEEE 519 defines harmonic evaluation at the point of common coupling, but equipment design also needs local branch currents and voltages. A compliance limit at the PCC is not a component-sizing rule.<\/p>\n<h2 id=\"6-detuned-reactor-calculation\">Check tolerances and aging<\/h2>\n<p>Capacitance can change with tolerance, temperature, service aging, and failed internal elements. Reactor inductance also has tolerance and may change with current if its magnetic design approaches saturation. These shifts change the resonance frequency and current distribution. Evaluate the worst credible combination, not only nominal values. Acceptance testing can include inductance, capacitance, resistance, insulation, phase balance, and current measurements as appropriate to the equipment and procedures. Maintain baseline values so later inspection can identify drift.<\/p>\n<h2 id=\"7-detuned-reactor-calculation\">Coordinate switching and protection<\/h2>\n<p>A detuned branch has switching transients, discharge requirements, inrush behavior, and fault energy that affect the contactor or switch, fuses, breakers, conductors, and controller timing. Confirm capacitor-duty switching, reactor thermal protection where provided, overcurrent coordination, enclosure ventilation, and safe discharge before reconnection. A reactor does not replace short-circuit protection or a switching-device duty review. If stages have unequal ratings, document each reactor-capacitor pair and prevent field substitution with an unmatched component.<\/p>\n<h2 id=\"8-detuned-reactor-calculation\">Calculation workflow and deliverables<\/h2>\n<p>The design file should state system voltage and frequency, required assembly kvar, connection, selected p and rationale, ideal fr, capacitor and reactor ratings, calculated fundamental current, voltage rise basis, harmonic study cases, component tolerances, thermal limits, protection, switching duty, and acceptance measurements. Add the supplier&#x27;s approved combination data and drawing references. Recalculate after changes to transformer size, generator operation, large nonlinear loads, existing capacitors, or stage ratings. The deliverable is a verified branch design, not merely a percentage and a frequency.<\/p>\n<h2 id=\"9-detuned-reactor-calculation\">Worked screening example and limits<\/h2>\n<p>For a 50 Hz system with p = 0.07, the ideal screening calculation gives fr = 50 \/ \u221a0.07, or approximately 189 Hz. For a balanced 100 kvar assembly at 400 V, the ideal line-current screen is 100,000 \/ (\u221a3 \u00d7 400), or approximately 144 A. These two values are not a purchase specification. The declared assembly kvar may differ from the capacitor nameplate rating, capacitor voltage rises across the series combination, harmonic current increases RMS stress, and tolerances shift resonance. Use the example only to check units and order of magnitude, then substitute the project study and approved manufacturer combination.<\/p>\n<h2 id=\"10-detuned-reactor-calculation\">Verify the installed branch after energization<\/h2>\n<p>Measure line voltage, phase currents, current balance, active and reactive power, and capacitor terminal voltage where the approved procedure permits. Compare the measured reactive-power change with the declared assembly output at actual voltage. Review harmonic current in the reactor-capacitor branch and bus voltage distortion during representative load states, not only immediately after energization. Use thermal imaging or temperature sensors after sufficient loading time and compare phases. Listen for abnormal reactor noise while recognizing that sound alone is not a diagnostic measurement. Confirm the controller&#x27;s minimum off-time and stage sequence, then preserve the initial capacitance, inductance, resistance, current, temperature, and harmonic records. A later increase in current or temperature can then be evaluated against a documented baseline instead of an assumed normal condition.<\/p>\n<h2>How this topic connects to CNBYG equipment<\/h2>\n<p>This guide supports specification and commissioning discussions for the <a href=\"https:\/\/cnbygele.com\/product\/cksg-series-low-voltage-series-reactors\/\">Series reactor<\/a> product line. Product data must be checked against the actual system voltage, load profile, harmonic measurements, protection design, environmental conditions, and applicable project requirements. Share a single-line diagram and representative measurements before requesting a model recommendation.<\/p>\n<h2>Related CNBYG engineering guides<\/h2>\n<ul>\n<li><a href=\"https:\/\/cnbygele.com\/blog\/why-use-reactor-in-capacitor-bank\/\">why series reactors are used in capacitor banks<\/a><\/li>\n<li><a href=\"https:\/\/cnbygele.com\/blog\/capacitor-bank-detuning-reactor-selection\/\">select detuning reactors from harmonic network evidence<\/a><\/li>\n<li><a href=\"https:\/\/cnbygele.com\/blog\/harmonic-resonance-troubleshooting-capacitor-switching\/\">troubleshoot harmonic resonance after switching<\/a><\/li>\n<\/ul>\n<h2 id=\"commissioning-sources\">Sources and further learning<\/h2>\n<p>The <a href=\"https:\/\/www.energy.gov\/sites\/default\/files\/2014\/04\/f15\/amo_motors_guidebook_web.pdf\" rel=\"noopener nofollow\" target=\"_blank\">U.S. Department of Energy motor-driven systems guide<\/a> explains where fixed and automatically switched power-factor correction can fit industrial load patterns. <a href=\"https:\/\/www.osha.gov\/laws-regs\/regulations\/standardnumber\/1910\/1910.333\" rel=\"noopener nofollow\" target=\"_blank\">OSHA 1910.333<\/a> provides the U.S. baseline for de-energizing and electrical work practices. <a href=\"https:\/\/standards.ieee.org\/ieee\/519\/10677\/\" rel=\"noopener nofollow\" target=\"_blank\">IEEE 519<\/a> is the standards-body reference for harmonic control at the point of common coupling. Apply the current editions and local requirements for the project.<\/p>\n<div class=\"cnbyg-video\" style=\"position:relative;padding-bottom:56.25%;height:0;overflow:hidden\"><iframe src=\"https:\/\/www.youtube-nocookie.com\/embed\/-r0hWGcNLSI\" title=\"MIT OpenCourseWare Lecture 4: Power Factor\" loading=\"lazy\" allow=\"accelerometer; clipboard-write; encrypted-media; gyroscope; picture-in-picture; web-share\" allowfullscreen style=\"position:absolute;top:0;left:0;width:100%;height:100%;border:0\"><\/iframe><\/div>\n<p><small>Further learning: <a href=\"https:\/\/www.youtube.com\/watch?v=-r0hWGcNLSI\" rel=\"noopener nofollow\" target=\"_blank\">MIT OpenCourseWare Lecture 4: Power Factor<\/a>. The MIT lecture explains power factor and distortion; it does not replace project-specific equipment instructions.<\/small><\/p>\n<h2 id=\"faq\">Frequently asked questions<\/h2>\n<h3>What does a 7 percent detuned reactor mean?<\/h3>\n<p>Nominally, reactor reactance is 7 percent of capacitor reactance at the fundamental frequency. It does not by itself define a safe application.<\/p>\n<h3>How is detuned resonance frequency calculated?<\/h3>\n<p>For an ideal series branch, use fr = f1 divided by the square root of p, with p entered as a decimal.<\/p>\n<h3>Does a detuned reactor remove all harmonics?<\/h3>\n<p>No. It changes branch impedance and helps avoid resonance. Harmonic filtering performance requires a defined study and design objective.<\/p>\n<h3>Why must capacitor voltage rating be reviewed?<\/h3>\n<p>The series reactor increases capacitor terminal voltage and harmonic current can add stress, so bus voltage alone is insufficient.<\/p>\n<p><strong>Final engineering note:<\/strong> Treat formulas and checklists as screening tools. Installation, protection, commissioning, and energized testing must be performed by qualified personnel using approved drawings, product manuals, studies, and site safety procedures.<\/p>\n<p><script type=\"application\/ld+json\">{\"@context\":\"https:\/\/schema.org\",\"@type\":\"FAQPage\",\"mainEntity\":[{\"@type\":\"Question\",\"name\":\"What does a 7 percent detuned reactor mean?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Nominally, reactor reactance is 7 percent of capacitor reactance at the fundamental frequency. 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