{"id":22523,"date":"2024-08-20T10:47:27","date_gmt":"2024-08-20T15:47:27","guid":{"rendered":"https:\/\/dev.arbin.com\/?page_id=22523"},"modified":"2026-09-01T13:40:01","modified_gmt":"2026-09-01T18:40:01","slug":"lbts-cell","status":"publish","type":"page","link":"https:\/\/www.arbin.com\/ko\/battery-testing\/lbts-cell.html","title":{"rendered":"LBTS-Cell"},"content":{"rendered":"\n\n<a href=\"\/\">Home<\/a> > \n<a href=\"\/battery-testing.html\"> Battery Testing<\/a> > \nLBTS-Cell\n\n\t<p>Laboratory Battery Testing System<\/p>\n<h1>\n\t\t\tLBTS-Cell Series\t<\/h1>\n\t<p>High-precision cycling and characterization for coin, cylindrical, pouch, and prismatic cells &#8211; from 10 uA to 500 A &#8211; with <strong>100 ppm measurement precision, true bipolar circuitry, and 24-bit resolution<\/strong>.<\/p>\n\t\t\t<a href=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/arbin-brochure_lbts-cell.pdf\"  target=\"_blank\" rel=\"noopener\"    rel=\"noopener\">\n\t\t\t\t\t\t\tDownload the Brochure\n\t\t\t\t\t<\/a>\n\t\t\t<a href=\"https:\/\/www.arbin.com\/request-a-quote.html\"  target=\"_self\">\n\t\t\t\t\t\t\tGet Quote\n\t\t\t\t\t<\/a>\n<h2>\n\t\t\t4 &#8211; 256\t<\/h2>\n\t<p>Channels per chassis<\/p>\n<h2>\n\t\t\t\u00b10.02% \/ \u00b10.01%\t<\/h2>\n\t<p>FSR accuracy \/ precision<\/p>\n<h2>\n\t\t\t10 \u00b5A &#8211; 500 A\t<\/h2>\n\t<p>Per channel<\/p>\n<h2>\n\t\t\t24-bit\t<\/h2>\n\t<p>1 part in 16,777,216<\/p>\n<h6>\n\t\t\tAccuracy you can audit\t<\/h6>\n\t<p>Accuracy and precision are published as two separate numbers, never blended into one, so you can verify the spec yourself instead of taking a vendor&#8217;s word for it.<\/p>\n<h6>\n\t\t\tIndependently verified\t<\/h6>\n\t<p>Designed and manufactured under an ISO 9001:2015-certified quality system, supported by an ISO\/IEC 17025-accredited testing and calibration laboratory.<\/p>\n<h6>\n\t\t\t35 years of instrumentation\t<\/h6>\n\t<p>Founded 1991. Arbin reinvests 30% of profits into R&amp;D, funding the precision architecture provided with every Arbin test station.<\/p>\n<h6>\n\t\t\tBuilt for any lab\t<\/h6>\n\t<p>Scalable channel density in a compact, air-cooled footprint, with open Python and C# API for the automation you already run.<\/p>\n<h2>\n\t\t\tHighlights of the LBTS-Cell Series\t<\/h2>\n\t<p>Four hardware decisions that separate the LBTS-Cell from a conventional cycler, and what each one changes about the data you create.<\/p>\n<h2>\n\t\t\tMarket Leading Specifications\t<\/h2>\n\t<p>100 ppm precision, 24-bit resolution<\/p>\n<h2>\n\t\t\tSee cell behavior &#8211; not tester uncertainty\t<\/h2>\n\t<p>Voltage and current measurement precision reaches <strong>100 ppm (\u00b10.01% FSR) and 200ppm (\u00b10.02%) accuracy<\/strong>. 24-bit resolution provides fine control and measurement granularity across each current range.<\/p>\n<p>Subtle shifts in resistance, voltage response, and coulombic efficiency remain visible and repeatable-helping you distinguish real cell behavior from measurement noise.<\/p>\n<h2>\n\t\t\t4 Current Ranges\t<\/h2>\n\t<p>auto-selecting, every channel<\/p>\n<h2>\n\t\t\tProvides the widest range of accurate output and measurement\t<\/h2>\n\t<p>Arbin was first to put multiple current ranges on a single test channel. Ranges select automatically, including during constant-voltage control, and the rated specification follows them.<\/p>\nOne channel covers microamps and full-rate cycling.\n<h2>\n\t\t\tFlexible Channel Paralleling\t<\/h2>\n\t<p>any number of channels<\/p>\n<h2>\n\t\t\tGroup channels for more current\t<\/h2>\n\t<p>Any combination of sequential channels can be connected in parallel to raise the current ceiling for a single test article, rather than choosing from a fixed set of pre-wired banks. Paralleled operation reaches up to 1,200 A combined.<\/p>\nTest a higher-current cell with the channels you already have, without a second system.\n<h2>\n\t\t\tBuilt-In Safety Features\t<\/h2>\n\t<p>safety monitoring for every channel<\/p>\n<h2>\n\t\t\tOnboard computation and independent safety\t<\/h2>\n\t<p>Each channel computes capacity, energy, internal resistance, and efficiency in real time. Voltage, current, and temperature are all checked against safety limits independently of the test control loop.<\/p>\nMetrics arrive already calculated, and a channel can be stopped on safety regardless of what the test controller is doing.\n<h1>\n\t\t\tApplications and Test Methods\t<\/h1>\n\t<p>Each channel operates as an independent potentiostat and galvanostat, so one chassis covers electrochemical characterization and long-run cycling at the same time.<\/p>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/01-cell-rd-characterization.jpg\" alt=\"01 cell rd characterization\" height=\"1200\" width=\"1600\" title=\"01 cell rd characterization\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h5>\n\t\t\tCell R&#038;D and characterization\t<\/h5>\n\t<p>Resolve the small signals that separate one formulation from the next. Four current ranges per channel cover milliamp characterization and full-rate cycling without moving the cell.<\/p>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/02-incoming-qc-cell-grading.jpg\" alt=\"02 incoming qc cell grading\" height=\"1200\" width=\"1600\" title=\"02 incoming qc cell grading\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h5>\n\t\t\tIncoming QC and cell grading\t<\/h5>\n\t<p>Grade and sort incoming cells against your own pass criteria. Up to 256 channels per chassis with per-channel independence, so one failed cell never stalls a batch.<\/p>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/03-impedance-electrochemical.jpg\" alt=\"03 impedance electrochemical\" height=\"1200\" width=\"1600\" title=\"03 impedance electrochemical\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h5>\n\t\t\tImpedance and electrochemical analysis\t<\/h5>\n\t<p>Every channel acts as an independent potentiostat\/galvanostat. Native DCIM plus integrated Gamry EIS to 100 kHz put cycling and impedance in one time-aligned dataset.<\/p>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/04-automated-adaptive-testing.jpg\" alt=\"04 automated adaptive testing\" height=\"1200\" width=\"1600\" title=\"04 automated adaptive testing\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h5>\n\t\t\tAutomated and adaptive testing\t<\/h5>\n\t<p>Drive the tester from your own software. ArbinCTI over TCP\/IP plus Lua scripting support BMS emulation, digital twins, and adaptive fast-charge strategies.<\/p>\n<p>&nbsp;<\/p>\n<h3>\n\t\t\tSupported Test Methods\t<\/h3>\n<h5>\n\t\t\tElectrochemical\t<\/h5>\n\t<ul>\n<li>GITT &#8211; galvanostatic intermittent titration<\/li>\n<li>PITT &#8211; potentiostatic intermittent titration<\/li>\n<li>Cyclic and linear sweep voltammetry<\/li>\n<li>Chrono-amperometry and potentiometry<\/li>\n<li>EIS to 100 kHz<\/li>\n<li>Symmetric-cell testing<\/li>\n<li>Multi-electrode and reference-electrode work<\/li>\n<\/ul>\n<h5>\n\t\t\tCycling and lifetime\t<\/h5>\n\t<ul>\n<li>Battery life cycle testing<\/li>\n<li>dQ\/dV analysis<\/li>\n<li>High-precision coulombic efficiency<\/li>\n<li>Self-discharge current measurement<\/li>\n<li>DCIR and pulse characterization<\/li>\n<li>Real-world drive-cycle simulation<\/li>\n<li>High-speed pulse testing<\/li>\n<\/ul>\n<h5>\n\t\t\tProduction and QC\t<\/h5>\n\t<ul>\n<li>Incoming quality control<\/li>\n<li>Cell-level grading and sorting<\/li>\n<li>Formation and cell finishing<\/li>\n<li>End-of-line testing<\/li>\n<li>Fast-charge optimization<\/li>\n<\/ul>\n<h2>\n\t\t\tVoltage, Current, and Channel Ranges\t<\/h2>\n\t<p>One measurement specification, one software platform, across the full current span Arbin builds for cell testing &#8211; from 100 \u03bcA characterization work up to 500 A+ high-current cycling.<\/p>\n<table>\n  <thead>\n    <tr>\n      <th>Voltage Range<\/th>\n      <th>Current Ranges per Channel<\/th>\n      <th>Channels per Chassis<\/th>\n    <\/tr>\n  <\/thead>\n  <tbody>\n    <tr>\n      <td>&minus;5 to 5 V<br \/><small>0 to 5 V above 1 A<\/small><\/td>\n      <td>100 &micro;A &ndash; 10 A<\/td>\n      <td>From 8 up to 256<\/td>\n    <\/tr>\n    <tr>\n      <td>&minus;5 to 5 V<br \/><small>0 to 10 V above 5 A<\/small><\/td>\n      <td>1 mA &ndash; 30 A<\/td>\n      <td>From 8 up to 128<\/td>\n    <\/tr>\n    <tr>\n      <td>0 to 5 V<br \/><small>0 to 10 V optional<\/small><\/td>\n      <td>10 mA &ndash; 60 A<\/td>\n      <td>Up to 48<\/td>\n    <\/tr>\n    <tr>\n      <td>0 to 5 V<br \/><small>0 to 10 V optional<\/small><\/td>\n      <td>10 mA &ndash; 100 A<\/td>\n      <td>Up to 24<\/td>\n    <\/tr>\n    <tr>\n      <td>0 to 5 V<br \/><small>0 to 10 V optional<\/small><\/td>\n      <td>500 mA &ndash; 250 A<\/td>\n      <td>Up to 16<\/td>\n    <\/tr>\n    <tr>\n      <td>0 to 5 V<\/td>\n      <td>500 mA &ndash; 500 A<\/td>\n      <td>Up to 8<\/td>\n  <\/tr><\/tbody>\n<\/table>\n<p>Contact Arbin to configure an exact channel-per-chassis count for your current range testing requirement. All configurations: 4-wire Kelvin measurement, 24-bit resolution, \u00b10.02% FSR accuracy, \u00b10.01% FSR precision, up to 100 G\u03a9 input impedance, 5 ms minimum step time. Parallel channel operation supports up to 1,200 A. <\/p>\n<h2>\n\t\t\tComparing systems?\t<\/h2>\n\t<p>Four hardware parameters decide whether test data is suitable to draw a conclusion from. Here is where the LBTS-Cell lands on each, and the question worth putting to every vendor on your shortlist.<\/p>\n\t<style>\n.lbts-ev-wrap{\n  overflow-x:auto;\n  -webkit-overflow-scrolling:touch;\n  border:1px solid #E3E6ED;\n  border-radius:4px;\n  background:#fff;\n}\n.lbts-ev{\n  width:100%;\n  min-width:840px;\n  border-collapse:collapse;\n  margin:0;\n  font-family:inherit;\n}\n.lbts-ev th{\n  background:#18214D;\n  color:#fff;\n  text-align:left;\n  padding:15px 20px;\n  font-weight:600;\n  font-size:14px;\n  letter-spacing:.02em;\n  line-height:1.4;\n}\n.lbts-ev th.lbts-ev-us{ background:#0052A0; }\n.lbts-ev td{\n  padding:20px;\n  border-bottom:1px solid #E3E6ED;\n  vertical-align:top;\n  font-size:15px;\n  line-height:1.55;\n  color:#4B4F58;\n}\n.lbts-ev tbody tr:last-child td{ border-bottom:none; }\n.lbts-ev .lbts-ev-param{\n  font-weight:600;\n  color:#18214D;\n  font-size:16.5px;\n  width:16%;\n}\n.lbts-ev .lbts-ev-why{ width:29%; }\n.lbts-ev .lbts-ev-ours{\n  width:27%;\n  background:#F4F8FC;\n}\n.lbts-ev .lbts-ev-ours strong{\n  display:block;\n  color:#18214D;\n  font-size:18px;\n  font-weight:600;\n  margin-bottom:5px;\n  font-variant-numeric:tabular-nums;\n}\n.lbts-ev .lbts-ev-ask{\n  width:28%;\n  color:#5C6577;\n  font-style:italic;\n}\n@media(max-width:700px){\n  .lbts-ev td{ padding:16px; font-size:14.5px; }\n  .lbts-ev th{ padding:13px 16px; }\n}\n<\/style>\n  <table>\n    <thead>\n      <tr>\n        <th scope=\"col\">Parameter<\/th>\n        <th scope=\"col\">Why it decides your data<\/th>\n        <th scope=\"col\">LBTS-Cell<\/th>\n        <th scope=\"col\">Ask any vendor<\/th>\n      <\/tr>\n    <\/thead>\n    <tbody>\n      <tr>\n        <td>Resolution<\/td>\n        <td>The smallest change the circuitry can detect. Too coarse and a resistance spike near end of life, or a dip in coulombic efficiency, simply is not in your data.<\/td>\n        <td><strong>24-bit<\/strong>1 part in 16,777,216. Voltage and current alike.<\/td>\n        <td>How many bits? 16-bit is the common industry standard, and it is 256 times coarser.<\/td>\n      <\/tr>\n      <tr>\n        <td>Precision<\/td>\n        <td>The noise floor. Noise obscures exactly the features dQ\/dV and high-precision coulombic efficiency exist to reveal.<\/td>\n        <td><strong>&plusmn;0.01% FSR<\/strong>100 ppm, specified separately for voltage, current, and time.<\/td>\n        <td>Is precision a hardware specification, or derived from averaged calculations and slow logging that hide the noise?<\/td>\n      <\/tr>\n      <tr>\n        <td>Accuracy<\/td>\n        <td>Whether the number is right, not merely repeatable. A tester can be precisely wrong all day.<\/td>\n        <td><strong>&plusmn;0.02% FSR<\/strong>Published as its own figure, never merged with precision.<\/td>\n        <td>Can you give accuracy and precision as two separate numbers?<\/td>\n      <\/tr>\n      <!-- ============================================================\n           TEMPERATURE STABILITY ROW - NEEDS ENGINEERING SIGN-OFF.\n           The ~0.000185% \/ degC figure is from the \"How to Evaluate\n           Battery Test Equipment\" white paper, not the LBTS21\n           datasheet. Confirm it applies to LBTS, or delete this\n           entire <tr> block.\n      ============================================================ -->\n      <\/tr><tr>\n        <td>Temperature stability<\/td>\n        <td>Ambient drift skews a test that runs for months. Gradual change tilts the data; sudden change steps it.<\/td>\n        <td><strong>~0.000185% \/ &deg;C<\/strong>Patented shunt design, developed with Sandia&#8217;s metrology group.<\/td>\n        <td>What is the temperature coefficient of your accuracy specification?<\/td>\n      <\/tr>\n      <!-- ===================== end sign-off row ===================== -->\n    <\/tbody>\n  <\/table>\n<h2>\n\t\t\tSoftware and Safety\t<\/h2>\n\t<p>The two questions a lab asks after the specifications check out: can my team actually drive it, and what happens when a cell misbehaves.<\/p>\n<h2>\n\t\t\tMITS Software\t<\/h2>\n<p>MITS scales from basic charge-discharge cycling to complex protocols with nested conditions. Most tests can be built through the menu-driven interface, while Lua scripting and ArbinCTI are available for advanced automation and external control<\/p>\n<ul>\n<li>\u2713 30+ programmable control types, 90+ meta variables, and up to 9 nested loops<\/li>\n<li>\u2713Up to 127 reusable sub-schedules, so a validated procedure gets called rather than rebuilt<\/li>\n<li>\u2713Adaptive logging raises acquisition rate during transients and state transitions<\/li>\n<li>\u2713DataWatcher queries the SQL database directly &#8211; filter by channel, barcode, or cycle count, overlay up to 9 plots<\/li>\n<li>\u2713PostgreSQL, Microsoft SQL Server, and Apache Kafka streaming<\/li>\n<li>\u2713ArbinCTI TCP\/IP API plus Lua scripting for BMS emulation and adaptive control<\/li>\n<\/ul>\n<p><a href=\"https:\/\/www.arbin.com\/mits-10-software.html\">Explore MITS Software \u2192<\/a><\/p>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2025\/01\/Arbin-MITS10-Manage-Test-1-1024x519.png\" alt=\"Arbin-MITS10-Manage-Test-1\" height=\"519\" width=\"1024\" title=\"Arbin-MITS10-Manage-Test-1\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h2>\n\t\t\tSafety Architecture\t<\/h2>\n<p>Protection is distributed across channel hardware, an independent controller, and step-level software limits. Critical safeguards remain active independently of the test sequence.<\/p>\n<ul>\n<li>\u2713Independent safety monitoring checks voltage, current, and temperature limits without relying on the test control loop<\/li>\n<li>\u2713Hardware E-Stop with all-pole disconnection, plus a dry-contact circuit for facility-wide remote trip<\/li>\n<li>\u2713Hardware voltage clamps on high-current modules; protective fuses in every I\/V channel board<\/li>\n<li>\u2713Test Object profiles auto-set thresholds from the cell spec and block a test on reverse polarity<\/li>\n<li>\u2713Behavioral checks flag abnormal rates, voltage excursions, and capacity anomalies<\/li>\n<li>\u2713Tri-color light tower, audible alarms, thermoswitches, variable-speed ventilation<\/li>\n\n<\/ul>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/mits10_safetywindow-1024x650.png\" alt=\"mits10 safetywindow\" height=\"650\" width=\"1024\" title=\"mits10 safetywindow\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/plugins\/bb-plugin\/img\/pixel.png\" alt=\"\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h2>\n\t\t\tAuxiliaries and Optional Accessories Available to Enhance Testing\t<\/h2>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/auxcard-productpage-thermalmztc-1.png\" alt=\"auxcard productpage thermalmztc 1\" height=\"760\" width=\"1200\" title=\"auxcard productpage thermalmztc 1\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h2>\n\t\t\tThermal and Environmental\t<\/h2>\n\t<ul>\n<li>MZTC &#8211; 8 independently controlled mini-chambers, 10\u00b0C to 60\u00b0C at 20\u00b0C ambient<\/li>\n<li>Holders for coin, cylindrical, pouch, and custom cell formats; up to 8 cells per chamber<\/li>\n<li>Seamlessly communicate and control third-party temperature chambers in real-time<\/li>\n<li>Synchronized multi-channel test logic; temperature-driven step control and automated standby modes<\/li>\n<li>Chamber temperature and humidity logged alongside electrical measurements for complete test traceability<\/li>\n<\/ul>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/auxcard-productpage-eis-1.png\" alt=\"auxcard productpage eis 1\" height=\"760\" width=\"1200\" title=\"auxcard productpage eis 1\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h2>\n\t\t\tElectrochemical Impedance Spectroscopy\t<\/h2>\n\t<ul>\n<li>Integrated Gamry EIS multiplexed across Arbin test channels; eliminates dedicated instruments<\/li>\n<li>DCIM &#8211; Fast DC impedance measurement in under 1 second; enhances standard cycling workflows<\/li>\n<li>Up to 4 independent Gamry systems enable parallel EIS across many channels simultaneously<\/li>\n<li>Frequency range: 10 \u00b5Hz to 100 kHz; full impedance characterization to 10 kHz<\/li>\n<li>EIS data time-aligned with voltage, current, and temperature for seamless test integration<\/li>\n<\/ul>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/auxcard-productpage-aux-2.png\" alt=\"auxcard productpage aux 2\" height=\"760\" width=\"1200\" title=\"auxcard productpage aux 2\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h2>\n\t\t\tAuxiliaries\t<\/h2>\n\t<ul>\n<li>Temperature sensing &#8211; real-time thermal monitoring for chambers and cell surfaces<\/li>\n<li>Auxiliary voltage inputs &#8211; monitor individual cell voltages or reference electrodes within packs<\/li>\n<li>Analog &amp; Digital I\/O &#8211; control external devices like pumps, fans, valves, and safety interlocks<\/li>\n<li>CAN Bus interface &#8211; direct communication with Battery Management Systems<\/li>\n<li>SMBus interface &#8211; read and write smart battery registers during testing<\/li>\n<li>Uninterruptible Power Supply (UPS) &#8211; detect power loss and safely pause or resume tests<\/li>\n<\/ul>\n<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/auxcard-productpage-holders-2.png\" alt=\"auxcard productpage holders 2\" height=\"760\" width=\"1200\" title=\"auxcard productpage holders 2\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t<\/figure>\n<h2>\n\t\t\tHolders &#038; Fixtures\t<\/h2>\n\t<ul>\n<li>Custom-engineered holders for coin, cylindrical, pouch, and application-specific cell formats<\/li>\n<li>Support high-current test configurations; flexible contact design accommodates diverse cell geometries<\/li>\n<li>Modular rack systems enable scalable test density and simplified reconfiguration across channels<\/li>\n<\/ul>\n\t<style>\n  .lbts-proof-quotes{display:grid;grid-template-columns:repeat(3,1fr);gap:22px;margin:0 0 24px;}\n  @media(max-width:800px){.lbts-proof-quotes{grid-template-columns:1fr;}}\n<\/style>\n<h2>Evaluated Side by Side Against Other Testers<\/h2>\n    <blockquote>&ldquo;We did side-by-side comparisons of Arbin and other tester technology. Armed with this data, we moved forward with confidence using Arbin for what is critical to our electrification future [EV].&rdquo;<\/blockquote>\n    &#8211; T. MillerFord Motor Company\n    <blockquote>&ldquo;With Arbin, you can see minute changes in the battery and this gives researchers better predictability of when the end of life will occur in a reduced amount of time.&rdquo;<\/blockquote>\n    &#8211; J. NovakSandia National Laboratories\n    <blockquote>&ldquo;High precision measurements are not the only answer to understanding battery life, but it is a key component. Sandia National Lab brings their expertise in metrology and precision measurements and has helped Arbin as they&rsquo;ve designed the new series of testers.&rdquo;<\/blockquote>\n    &#8211; S. FerreiraSandia National Laboratories\n  <img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2026\/08\/rd-100-award-seal-pic-copy.jpg\" alt=\"R&#038;D 100 Award badge\"\/>\n    <h4>R&amp;D 100 Award &mdash; high-precision tester development<\/h4>\n    <p>Through a three-year ARPA-E project funded by the U.S. Department of Energy, Arbin worked with Ford Motor Company, Sandia National Laboratories to develop high-precision battery testing at currents up to 200 A. The resulting architecture was subsequently extended across lower-current applications and now underpins the LBTS-Cell platform.<\/p>\n<h2>\n\t\t\tTell us what you&#8217;re testing\t<\/h2>\n\t<p>Share your cell format, voltage and current requirements, channel count, and test objectives. An Arbin sales engineer will recommend the appropriate system configuration and supporting options.<\/p>\n\t\t\t<a href=\"https:\/\/www.arbin.com\/request-a-quote.html\"  target=\"_self\">\n\t\t\t\t\t\t\tGet Quote for LBTS-Cell\n\t\t\t\t\t<\/a>\n\t\t\t<a href=\"https:\/\/www.arbin.com\/contact-us.html\"  target=\"_self\">\n\t\t\t\t\t\t\tContact Us To Learn More\n\t\t\t\t\t<\/a>\n<h2>\n\t\t<a href=\"\/battery-testing\/\" title=\"Related Battery Testing Solutions\"  target=\"_self\">\n\t\t\tRelated Battery Testing Solutions\t\t<\/a>\n\t<\/h2>\n\t\t<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<a href=\"\/battery-testing\/lbts-mztc.html\"  target=\"_self\" itemprop=\"url\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/www.arbin.com\/wp-content\/uploads\/2024\/12\/LBTS21324-TC-Right-1920.png\" alt=\"LBTS21324-TC-Right-1920\" height=\"3300\" width=\"1920\" title=\"LBTS21324-TC-Right-1920\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t\t\t\t<\/a>\n\t<\/figure>\n<h3><a href=\"\/battery-testing\/lbts-mztc.html\" target=\"_self\">LBTS-MZTC<\/a><\/h3><p>Turn-key high-precision cell testing solution integrated with Arbin&#8217;s patented Cell-Isolating Thermal Chamber<\/p>\n\t\t<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<a href=\"\/battery-testing\/lbts-cell-high-volume.html\"  target=\"_self\" itemprop=\"url\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/dev.arbin.com\/wp-content\/uploads\/2024\/09\/ARBIN-LBTS-Cell-High-Volume.png\" alt=\"\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t\t\t\t<\/a>\n\t<\/figure>\n<h3><a href=\"\/battery-testing\/lbts-cell-high-volume.html\" target=\"_self\">LBTS-Cell High Volume<\/a><\/h3><p>The perfect solution for high-volume testing.\u00a0Ideal for incoming quality control and large-scale testing.<\/p>\n\t\t<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<a href=\"\/battery-testing\/rbt-cell.html\"  target=\"_self\" itemprop=\"url\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/dev.arbin.com\/wp-content\/uploads\/2024\/09\/ARBIN-RBT4-Cell.png\" alt=\"\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t\t\t\t<\/a>\n\t<\/figure>\n<h3><a href=\"\/battery-testing\/rbt-cell.html\" target=\"_self\">RBT-Cell<\/a><\/h3><p>Efficient regenerative battery cell testers<strong> from 100 A to 1,600 A, with 100ppm precision<\/strong>, built-in safety, and flexible channel paralleling.<\/p>\n\t\t<figure itemscope itemtype=\"https:\/\/schema.org\/ImageObject\">\n\t\t\t\t<a href=\"\/battery-testing\/rbt-module.html\"  target=\"_self\" itemprop=\"url\">\n\t\t\t\t<img decoding=\"async\" src=\"https:\/\/dev.arbin.com\/wp-content\/uploads\/2024\/09\/ARBIN-RBT4-ModulePack-Series.png\" alt=\"\" onerror=\"this.style.display='none'\" loading=\"lazy\" \/>\n\t\t\t\t<\/a>\n\t<\/figure>\n<h3><a href=\"\/battery-testing\/rbt-module.html\" target=\"_self\">RBT-Module Series<\/a><\/h3><p>Efficient regenerative battery module testers, <strong>10 A to 600 A up to 200 V, with 0.02% accuracy<\/strong>, built-in safety, and flexible paralleling.<\/p>\n\n","protected":false},"excerpt":{"rendered":"<p>Home > Battery Testing > LBTS-Cell Laboratory Battery Testing System LBTS-Cell Series High-precision cycling and characterization for coin, cylindrical, pouch, and prismatic cells &#8211; from 10 uA to 500 A &#8211; with 100 ppm measurement precision, true bipolar circuitry, and 24-bit resolution. Download the Brochure Get Quote 4 &#8211; 256 Channels per chassis \u00b10.02% \/ [&hellip;]<\/p>\n","protected":false},"author":27,"featured_media":0,"parent":22207,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_acf_changed":false,"_seopress_titles_title":"LBTS-Cell | High-Precision Battery Cell Cycler | Arbin","_seopress_titles_desc":"High-precision cycling and characterization for coin, cylindrical, and pouch cells, 100 \u00b5A to 500A. 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