{"id":100163,"date":"2026-02-15T20:21:50","date_gmt":"2026-02-15T20:21:50","guid":{"rendered":"https:\/\/vibromera.eu\/?post_type=calculator&#038;p=100163"},"modified":"2026-07-12T22:06:04","modified_gmt":"2026-07-12T22:06:04","slug":"motor-torque-from-current","status":"publish","type":"calculator","link":"https:\/\/vibromera.eu\/he\/calculators\/motor-torque-from-current\/","title":{"rendered":"Worksheet \u05e9\u05dc \u05de\u05d5\u05de\u05e0\u05d8 \u05e6\u05d9\u05e8 \u05d1\u05e0\u05e7\u05d5\u05d3\u05ea \u05e4\u05e2\u05d9\u05dc\u05d5\u05ea \u05de\u05e0\u05d5\u05e2"},"content":{"rendered":"\n<script type=\"application\/ld+json\">{\"@context\":\"https:\/\/schema.org\",\"@type\":\"WebApplication\",\"name\":\"Motor Operating-Point Shaft-Torque Worksheet\",\"description\":\"Calculate average shaft torque at one documented steady operating point from shaft output power and speed, or estimate it from a complete balanced sinusoidal three-phase electrical operating point.\",\"url\":\"https:\/\/vibromera.eu\/calculators\/motor-torque-from-current\/\",\"applicationCategory\":\"Engineering Reference\",\"operatingSystem\":\"Any\",\"offers\":{\"@type\":\"Offer\",\"price\":\"0\",\"priceCurrency\":\"EUR\"},\"creator\":{\"@type\":\"Organization\",\"name\":\"Vibromera\",\"url\":\"https:\/\/vibromera.eu\/\"},\"dateModified\":\"2026-07-12\",\"inLanguage\":\"en\",\"isAccessibleForFree\":true}<\/script>\n<style>\n.mt-wrap{--ink:#17212b;--muted:#596775;--line:#d8e0e7;--soft:#f4f7f9;--blue:#1769aa;--blue2:#0f4f84;--warn:#fff7e5;max-width:980px;margin:0 auto;padding:20px 16px 46px;color:var(--ink);font:15px\/1.58 system-ui,-apple-system,\"Segoe UI\",sans-serif}.mt-wrap *{box-sizing:border-box}.mt-wrap [hidden]{display:none!important}.mt-hero{padding:38px 30px;border:1px solid var(--line);border-radius:18px;background:linear-gradient(135deg,#eef7ff,#fff 68%);box-shadow:0 10px 30px rgba(20,54,80,.07)}.mt-kicker{color:var(--blue);font-size:12px;font-weight:800;letter-spacing:.1em;text-transform:uppercase}.mt-hero h1{margin:8px 0 10px;font-size:clamp(27px,4vw,42px);line-height:1.12}.mt-lead{max-width:825px;margin:0;color:var(--muted);font-size:17px}.mt-badges{display:flex;flex-wrap:wrap;gap:8px;margin-top:18px}.mt-badge{padding:5px 10px;border:1px solid #b9d4e8;border-radius:999px;background:#fff;color:var(--blue2);font-size:12px;font-weight:700}.mt-main{margin-top:20px}.mt-panel,.mt-section{border:1px solid var(--line);border-radius:14px;background:#fff;box-shadow:0 5px 18px rgba(23,33,43,.05)}.mt-panel{padding:24px}.mt-panel h2,.mt-section h2{margin:0 0 8px;font-size:21px}.mt-note{margin:0 0 18px;color:var(--muted)}.mt-grid{display:grid;grid-template-columns:repeat(2,minmax(0,1fr));gap:16px}.mt-field{display:flex;flex-direction:column;gap:6px}.mt-wide{grid-column:1\/-1}.mt-label{font-weight:750}.mt-help{color:var(--muted);font-size:12px}.mt-input,.mt-select,.mt-textarea{width:100%;border:1.5px solid #bcc9d3;border-radius:8px;background:#fff;color:var(--ink);font:inherit;padding:10px 12px}.mt-textarea{min-height:100px;resize:vertical}.mt-input:focus,.mt-select:focus,.mt-textarea:focus{outline:3px solid rgba(23,105,170,.16);border-color:var(--blue)}.mt-error{min-height:24px;margin:14px 0 0;color:#a22727;font-weight:700}.mt-results{margin-top:20px;border:1px solid #b9d4e8;border-radius:12px;background:#f7fbff;padding:20px}.mt-rhead{display:flex;justify-content:space-between;gap:14px;align-items:flex-start}.mt-rtitle{font-size:19px;font-weight:800}.mt-rsub{max-width:600px;text-align:right;color:var(--muted);font-size:12px}.mt-rgrid{display:grid;grid-template-columns:repeat(3,minmax(0,1fr));gap:11px;margin-top:14px}.mt-card{padding:14px;border:1px solid #d7e5f0;border-radius:10px;background:#fff}.mt-card h3{margin:0 0 7px;color:var(--muted);font-size:12px;text-transform:uppercase;letter-spacing:.04em}.mt-val{font-size:20px;font-weight:800;overflow-wrap:anywhere}.mt-unit{margin-top:3px;color:var(--muted);font-size:11px}.mt-alert{margin-top:18px;padding:15px 17px;border:1px solid #e8cf91;border-radius:10px;background:var(--warn);color:#624b13}.mt-section{margin-top:18px;padding:22px 24px}.mt-section p{margin:8px 0;color:var(--muted)}.mt-section ul{margin:10px 0 0;padding-left:22px;color:var(--muted)}.mt-code{font-family:ui-monospace,SFMono-Regular,Consolas,monospace;color:#113d62}.mt-table{width:100%;border-collapse:collapse;margin-top:12px}.mt-table th,.mt-table td{padding:10px;border:1px solid var(--line);text-align:left;vertical-align:top}.mt-table th{background:var(--soft)}.mt-section a{color:var(--blue2)}@media(max-width:680px){.mt-grid,.mt-rgrid{grid-template-columns:1fr}.mt-wide{grid-column:auto}.mt-hero{padding:26px 20px}.mt-panel,.mt-section{padding:19px}.mt-rhead{display:block}.mt-rsub{text-align:left;margin-top:5px}}@media print{.mt-wrap{max-width:none}.mt-hero,.mt-panel,.mt-section{box-shadow:none}}\n<\/style>\n<div class=\"mt-wrap\">\n<header class=\"mt-hero\"><div class=\"mt-kicker\">One steady operating point \u00b7 average shaft quantity \u00b7 documented inputs<\/div><h1>Motor Operating-Point Shaft-Torque Worksheet<\/h1><p class=\"mt-lead\">Calculate average shaft torque from documented shaft output power and speed, or estimate it from a complete balanced sinusoidal three-phase electrical operating point. Current alone does not determine motor torque.<\/p><div class=\"mt-badges\"><span class=\"mt-badge\">T=Pout\/\u03c9<\/span><span class=\"mt-badge\">No default PF or efficiency<\/span><span class=\"mt-badge\">Starts blank<\/span><span class=\"mt-badge\">N\u00b7m and lbf\u00b7ft<\/span><\/div><\/header>\n<main class=\"mt-main\"><section class=\"mt-panel\"><h2>Document the operating point<\/h2><p class=\"mt-note\">Every value must describe the same stable motor,connection,supply,load and speed. Use the direct shaft-power basis when applicable output power is known;the electrical basis adds uncertainty from power factor and efficiency.<\/p><form id=\"mt-form\" novalidate><div class=\"mt-grid\">\n<div class=\"mt-field mt-wide\"><label class=\"mt-label\" for=\"mt-basis\">Calculation basis<\/label><select class=\"mt-select\" id=\"mt-basis\"><option value=\"\">Select\u2026<\/option><option value=\"documented-shaft-output\">Documented shaft output power and speed<\/option><option value=\"balanced-three-phase-electrical\">Balanced sinusoidal three-phase electrical operating point<\/option><\/select><\/div>\n<div class=\"mt-field\"><label class=\"mt-label\" for=\"mt-speed\">Measured shaft speed n (r\/min)<\/label><input class=\"mt-input\" id=\"mt-speed\" inputmode=\"decimal\" autocomplete=\"off\"><span class=\"mt-help\">Positive mechanical shaft speed for this operating point.<\/span><\/div>\n<div class=\"mt-field\" id=\"mt-output-field\" hidden><label class=\"mt-label\" for=\"mt-output\">Documented shaft output power P<sub>out<\/sub> (kW)<\/label><input class=\"mt-input\" id=\"mt-output\" inputmode=\"decimal\" autocomplete=\"off\"><span class=\"mt-help\">Mechanical output at the shaft,not electrical input or nameplate capacity.<\/span><\/div>\n<div class=\"mt-field\" id=\"mt-voltage-field\" hidden><label class=\"mt-label\" for=\"mt-voltage\">Line-to-line RMS voltage U<sub>LL<\/sub> (V)<\/label><input class=\"mt-input\" id=\"mt-voltage\" inputmode=\"decimal\" autocomplete=\"off\"><\/div>\n<div class=\"mt-field\" id=\"mt-current-field\" hidden><label class=\"mt-label\" for=\"mt-current\">Line RMS current I<sub>L<\/sub> (A)<\/label><input class=\"mt-input\" id=\"mt-current\" inputmode=\"decimal\" autocomplete=\"off\"><\/div>\n<div class=\"mt-field\" id=\"mt-pf-field\" hidden><label class=\"mt-label\" for=\"mt-pf\">True power factor \u03bb<\/label><input class=\"mt-input\" id=\"mt-pf\" inputmode=\"decimal\" autocomplete=\"off\"><span class=\"mt-help\">Applicable total active-power\/apparent-power ratio;greater than 0 and no greater than 1.<\/span><\/div>\n<div class=\"mt-field\" id=\"mt-eff-field\" hidden><label class=\"mt-label\" for=\"mt-eff\">Operating-point efficiency \u03b7<\/label><input class=\"mt-input\" id=\"mt-eff\" inputmode=\"decimal\" autocomplete=\"off\"><span class=\"mt-help\">Pout\/Pin for this same state;greater than 0 and no greater than 1.<\/span><\/div>\n<div class=\"mt-field mt-wide\"><label class=\"mt-label\" for=\"mt-state\">Operating-state identifier<\/label><input class=\"mt-input\" id=\"mt-state\" maxlength=\"320\" autocomplete=\"off\" placeholder=\"Motor ID,connection,supply frequency\/load and measurement state\"><\/div>\n<div class=\"mt-field mt-wide\"><label class=\"mt-label\" for=\"mt-source\">Source and measurement record<\/label><textarea class=\"mt-textarea\" id=\"mt-source\" maxlength=\"2400\" placeholder=\"Manufacturer\/test report\/instrument record and edition;measurement locations and time;uncertainty;waveform\/balance evidence;how shaft power or efficiency was established\"><\/textarea><\/div>\n<\/div><p class=\"mt-error\" id=\"mt-error\" role=\"alert\"><\/p><\/form>\n<section class=\"mt-results\" id=\"mt-results\" hidden data-json=\"\"><div class=\"mt-rhead\"><div class=\"mt-rtitle\">Operating-point shaft arithmetic<\/div><div class=\"mt-rsub\" id=\"mt-summary\">\u2014<\/div><\/div><div class=\"mt-rgrid\">\n<article class=\"mt-card\"><h3>Average shaft torque<\/h3><div class=\"mt-val\" id=\"mt-r-torque\">\u2014<\/div><div class=\"mt-unit\">mechanical output torque at this speed<\/div><\/article>\n<article class=\"mt-card\"><h3>Torque in lbf\u00b7ft<\/h3><div class=\"mt-val\" id=\"mt-r-lbft\">\u2014<\/div><div class=\"mt-unit\">1 N\u00b7m=0.7375621492772656 lbf\u00b7ft<\/div><\/article>\n<article class=\"mt-card\"><h3>Shaft output power<\/h3><div class=\"mt-val\" id=\"mt-r-output\">\u2014<\/div><div class=\"mt-unit\">documented or inferred from the electrical basis<\/div><\/article>\n<article class=\"mt-card\"><h3>Angular speed<\/h3><div class=\"mt-val\" id=\"mt-r-omega\">\u2014<\/div><div class=\"mt-unit\">\u03c9=2\u03c0n\/60<\/div><\/article>\n<article class=\"mt-card\"><h3>Electrical active input<\/h3><div class=\"mt-val\" id=\"mt-r-input\">\u2014<\/div><div class=\"mt-unit\">reported only for the electrical basis<\/div><\/article>\n<article class=\"mt-card\"><h3>Electrical apparent power<\/h3><div class=\"mt-val\" id=\"mt-r-apparent\">\u2014<\/div><div class=\"mt-unit\">reported only for the electrical basis<\/div><\/article>\n<article class=\"mt-card\"><h3>Inferred losses<\/h3><div class=\"mt-val\" id=\"mt-r-loss\">\u2014<\/div><div class=\"mt-unit\">Pin\u2212Pout;not a loss-component separation<\/div><\/article>\n<article class=\"mt-card\"><h3>Calculation basis<\/h3><div class=\"mt-val\" id=\"mt-r-basis\">\u2014<\/div><div class=\"mt-unit\">direct power or electrical estimate<\/div><\/article>\n<article class=\"mt-card\"><h3>Operating-state record<\/h3><div class=\"mt-val\" id=\"mt-r-state\">\u2014<\/div><div class=\"mt-unit\">verbatim evidence;not automatically interpreted<\/div><\/article>\n<\/div><\/section>\n<div class=\"mt-alert\"><strong>Decision boundary:<\/strong> this worksheet does not determine torque from current alone and does not evaluate starting\/locked-rotor,transient,pulsating,air-gap or electromagnetic torque. It is not valid for unbalanced,distorted or converter-PWM quantities without an applicable measurement and loss method,and it does not size a motor,drive,shaft,coupling or protection system.<\/div><\/section><\/main>\n<section class=\"mt-section\"><h2>Equations,units and scope<\/h2><table class=\"mt-table\"><thead><tr><th>Basis<\/th><th>Equations<\/th><th>Required evidence<\/th><\/tr><\/thead><tbody><tr><td>Documented shaft output<\/td><td><span class=\"mt-code\">\u03c9=2\u03c0n\/60<\/span><br><span class=\"mt-code\">T=Pout\u00b71000\/\u03c9<\/span><\/td><td>Pout in kW and n in r\/min at the same steady operating point.<\/td><\/tr><tr><td>Balanced sinusoidal three-phase electrical state<\/td><td><span class=\"mt-code\">S=\u221a3 ULL IL\/1000<\/span><br><span class=\"mt-code\">Pin=\u03bbS<\/span><br><span class=\"mt-code\">Pout=\u03b7Pin<\/span><br><span class=\"mt-code\">T=Pout\u00b71000\/\u03c9<\/span><\/td><td>Line-to-line RMS voltage,line RMS current,true power factor,efficiency and shaft speed for the same state.<\/td><\/tr><\/tbody><\/table><p><span class=\"mt-code\">T<\/span> is in N\u00b7m,<span class=\"mt-code\">\u03c9<\/span> in rad\/s,and powers are in kW. The mechanical relation is general engineering arithmetic,not an \u201cISO torque-from-current formula.\u201d For the electrical route,current is only one of five required measured or documented operating quantities.<\/p><\/section>\n<section class=\"mt-section\"><h2>Standards and source boundary<\/h2><p><a href=\"https:\/\/www.electropedia.org\/iev\/iev.nsf\/display?ievref=141-03-11&amp;openform=\" target=\"_blank\" rel=\"noopener\">IEC Electropedia IEV 141-03-11<\/a> gives active power for a symmetric sinusoidal three-phase system. <a href=\"https:\/\/www.electropedia.org\/iev\/iev.nsf\/display?ievref=131-11-46&amp;openform=\" target=\"_blank\" rel=\"noopener\">IEV 131-11-46<\/a> defines power factor as active power divided by apparent power. <a href=\"https:\/\/www.electropedia.org\/iev\/iev.nsf\/display?ievref=411-53-08&amp;openform=\" target=\"_blank\" rel=\"noopener\">IEV 411-53-08<\/a> defines machine efficiency as output active power divided by input active power.<\/p><p><a href=\"https:\/\/webstore.iec.ch\/en\/publication\/89961\" target=\"_blank\" rel=\"noopener\">IEC 60034-1:2026,Edition 15<\/a> is the current rotating-machine rating\/performance standard. <a href=\"https:\/\/webstore.iec.ch\/en\/publication\/67756\" target=\"_blank\" rel=\"noopener\">IEC 60034-2-1:2024,Edition 3<\/a> covers standard methods for determining losses and efficiency from tests for most mains-fed machines. <a href=\"https:\/\/webstore.iec.ch\/en\/publication\/67758\" target=\"_blank\" rel=\"noopener\">IEC 60034-2-3:2024,Edition 2<\/a> provides specific test methods for converter-fed AC motors. Exact clauses,test corrections and applicability are <span class=\"mt-code\">NEEDS_LICENSED_SOURCE<\/span> unless the licensed documents and the test setup are available.<\/p><p><a href=\"https:\/\/webstore.iec.ch\/en\/publication\/62105\" target=\"_blank\" rel=\"noopener\">IEC 61800-2:2021,Edition 3<\/a> treats an adjustable-speed AC power drive as a complete system;generic constant-torque or field-weakening claims were therefore not used to infer torque. The SI unit relations follow the <a href=\"https:\/\/www.bipm.org\/en\/publications\/si-brochure\" target=\"_blank\" rel=\"noopener\">BIPM SI Brochure,9th edition<\/a>.<\/p><\/section>\n<section class=\"mt-section\"><h2>Interpretation safeguards<\/h2><ul><li>A current reading includes components that do not uniquely specify converted mechanical power. Voltage,true power factor,efficiency and speed must all apply to the same state for the electrical estimate.<\/li><li>Nameplate efficiency or power factor at rated conditions may not represent a part-load,overload,temperature,frequency or converter-fed operating point.<\/li><li>The direct basis is preferred when shaft output power has been established by an applicable torque\/power test. Nameplate rated kW is a capacity\/rating,not proof of actual output at an arbitrary current.<\/li><li>Average shaft torque excludes torque ripple,torsional oscillation,acceleration torque and instantaneous electromagnetic torque.<\/li><li>Measurement uncertainty can dominate the displayed numerical precision. Preserve the source readings and uncertainty;do not treat extra digits as extra accuracy.<\/li><\/ul><\/section>\n<section class=\"mt-section\"><h2>What was corrected<\/h2><p>The former page was titled \u201ctorque from current,\u201dpreloaded voltage,current,speed,power factor and efficiency,and supplied four unverified motor presets. It accepted power factor or efficiency above one in JavaScript,used a rounded 9549 factor,and presented generic starting-torque and VFD behavior as universal guidance.<\/p><p>The replacement starts blank,requires a source and state record,strictly accepts decimal point or decimal comma,and rejects nonfinite,nonpositive or out-of-range dimensionless values. It separates direct mechanical power from the conditional electrical estimate,uses <span class=\"mt-code\">P\/\u03c9<\/span> without a rounded constant,and gives no starting,drive-control,air-gap or protection result.<\/p><\/section>\n<\/div>\n<script>(function(){'use strict';function $(id){return document.getElementById(id)}function num(s){s=String(s).trim();if(!s||s.includes('.')&&s.includes(',')||!\/^[+-]?(?:\\d+(?:[.,]\\d*)?|[.,]\\d+)(?:[eE][+-]?\\d+)?$\/.test(s))return NaN;var n=Number(s.replace(',','.'));return Number.isFinite(n)&&Math.abs(n)<=1e100?n:NaN}function fmt(n){if(n===0)return'0';var a=Math.abs(n);return a>=1e12||a<1e-8?n.toExponential(9):Number(n.toPrecision(12)).toLocaleString('en-US',{maximumFractionDigits:20})}function clear(){['mt-r-torque','mt-r-lbft','mt-r-output','mt-r-omega','mt-r-input','mt-r-apparent','mt-r-loss','mt-r-basis','mt-r-state','mt-summary'].forEach(function(id){$(id).textContent='\u2014'});$('mt-results').hidden=true;$('mt-results').dataset.json=''}function fail(m){clear();$('mt-error').textContent=m}function sync(){var direct=$('mt-basis').value==='documented-shaft-output',elec=$('mt-basis').value==='balanced-three-phase-electrical';$('mt-output-field').hidden=!direct;['mt-voltage-field','mt-current-field','mt-pf-field','mt-eff-field'].forEach(function(id){$(id).hidden=!elec});if(!direct)$('mt-output').value='';if(!elec)['mt-voltage','mt-current','mt-pf','mt-eff'].forEach(function(id){$(id).value=''})}function calc(){sync();var basis=$('mt-basis').value,speedR=$('mt-speed').value,outputR=$('mt-output').value,voltageR=$('mt-voltage').value,currentR=$('mt-current').value,pfR=$('mt-pf').value,effR=$('mt-eff').value,state=$('mt-state').value.trim(),source=$('mt-source').value.trim(),started=basis||speedR.trim()||outputR.trim()||voltageR.trim()||currentR.trim()||pfR.trim()||effR.trim()||state||source;if(!started){$('mt-error').textContent='';clear();return}if(!['documented-shaft-output','balanced-three-phase-electrical'].includes(basis)||!state||!source){fail('Select the calculation basis and record the exact operating state and source.');return}var speed=num(speedR),output=null,voltage=null,current=null,pf=null,eff=null;if(basis==='documented-shaft-output')output=num(outputR);else{voltage=num(voltageR);current=num(currentR);pf=num(pfR);eff=num(effR)}var vals=basis==='documented-shaft-output'?[speed,output]:[speed,voltage,current,pf,eff];if(!vals.every(Number.isFinite)){fail('Enter finite complete numbers;decimal point or decimal comma is accepted.');return}if(!vals.every(function(v){return v>0})||basis==='balanced-three-phase-electrical'&&(pf>1||eff>1)){fail('Speed,power,voltage and current must be positive;power factor and efficiency must be greater than 0 and no greater than 1.');return}var omega=2*Math.PI*speed\/60,apparent=null,input=null,loss=null;if(basis==='balanced-three-phase-electrical'){apparent=Math.sqrt(3)*voltage*current\/1000;input=pf*apparent;output=eff*input;loss=input-output}var torque=output*1000\/omega,lbft=torque*0.7375621492772656;if(![omega,output,torque,lbft].every(Number.isFinite)||[apparent,input,loss].some(function(v){return v!==null&&!Number.isFinite(v)})){fail('The result exceeds the supported numerical range.');return}$('mt-error').textContent='';$('mt-r-torque').textContent=fmt(torque)+' N\u00b7m';$('mt-r-lbft').textContent=fmt(lbft)+' lbf\u00b7ft';$('mt-r-output').textContent=fmt(output)+' kW';$('mt-r-omega').textContent=fmt(omega)+' rad\/s';$('mt-r-input').textContent=input===null?'Not evaluated':fmt(input)+' kW';$('mt-r-apparent').textContent=apparent===null?'Not evaluated':fmt(apparent)+' kVA';$('mt-r-loss').textContent=loss===null?'Not evaluated':fmt(loss)+' kW';$('mt-r-basis').textContent=basis==='documented-shaft-output'?'Documented shaft output':'Balanced three-phase electrical estimate';$('mt-r-state').textContent=state;$('mt-summary').textContent=basis==='documented-shaft-output'?'Direct average shaft-torque arithmetic at one documented operating point.':'Conditional estimate using complete same-state electrical quantities;not torque from current alone.';$('mt-results').dataset.json=JSON.stringify({calculation_basis:basis,operating_state_record:state,shaft_speed_rpm:speed,documented_shaft_output_power_kw:basis==='documented-shaft-output'?output:null,line_to_line_rms_voltage_v:voltage,line_rms_current_a:current,true_power_factor:pf,operating_point_efficiency:eff,calculated_apparent_power_kva:apparent,calculated_active_input_power_kw:input,calculated_shaft_output_power_kw:output,calculated_losses_kw:loss,calculated_angular_speed_rad_s:omega,calculated_average_shaft_torque_nm:torque,calculated_average_shaft_torque_lbft:lbft,starting_torque_nm:null,air_gap_torque_nm:null,instantaneous_torque_nm:null});$('mt-results').hidden=false}$('mt-form').addEventListener('input',calc);$('mt-form').addEventListener('change',calc);sync();clear()})();<\/script>\n","protected":false},"excerpt":{"rendered":"<p>\u05de\u05d7\u05e9\u05d1\u05d5\u05df \u05de\u05d5\u05de\u05e0\u05d8 \u05de\u05e0\u05d5\u05e2 \u05de\u05e7\u05d5\u05d5\u05df \u05d1\u05d7\u05d9\u05e0\u05dd. \u05d4\u05de\u05e8\u05ea \u05d6\u05e8\u05dd \u05dc\u05d4\u05e1\u05e4\u05e7 \u05dc\u05de\u05d5\u05de\u05e0\u05d8: T = P \u00d7 9549 \/ n. \u05d7\u05d9\u05e9\u05d5\u05d1 \u05e9\u05e8\u05e9\u05e8\u05ea: I \u2192 P \u2192 T \u05e2\u05d1\u05d5\u05e8 \u05de\u05e0\u05d5\u05e2\u05d9\u05dd \u05ea\u05dc\u05ea \u05e4\u05d0\u05d6\u05d9\u05d9\u05dd.<\/p>","protected":false},"featured_media":0,"template":"","meta":{"ai_generated_summary":"","footnotes":""},"categories":[],"tags":[],"class_list":["post-100163","calculator","type-calculator","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/vibromera.eu\/he\/wp-json\/wp\/v2\/calculator\/100163","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/vibromera.eu\/he\/wp-json\/wp\/v2\/calculator"}],"about":[{"href":"https:\/\/vibromera.eu\/he\/wp-json\/wp\/v2\/types\/calculator"}],"version-history":[{"count":3,"href":"https:\/\/vibromera.eu\/he\/wp-json\/wp\/v2\/calculator\/100163\/revisions"}],"predecessor-version":[{"id":102499,"href":"https:\/\/vibromera.eu\/he\/wp-json\/wp\/v2\/calculator\/100163\/revisions\/102499"}],"wp:attachment":[{"href":"https:\/\/vibromera.eu\/he\/wp-json\/wp\/v2\/media?parent=100163"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/vibromera.eu\/he\/wp-json\/wp\/v2\/categories?post=100163"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/vibromera.eu\/he\/wp-json\/wp\/v2\/tags?post=100163"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}