{"id":5169,"date":"2026-05-09T10:17:53","date_gmt":"2026-05-09T10:17:53","guid":{"rendered":"https:\/\/www.kmdpower.com\/?p=5169"},"modified":"2026-05-09T10:17:55","modified_gmt":"2026-05-09T10:17:55","slug":"sodium-ion-battery-vs-lto-batteries-at-40c-which-battery-works-best-and-why","status":"publish","type":"post","link":"https:\/\/www.kmdpower.com\/hu\/news\/sodium-ion-battery-vs-lto-batteries-at-40c-which-battery-works-best-and-why\/","title":{"rendered":"Sodium-ion Battery vs LTO Batteries at \u201340\u00b0C: Which Battery Works Best and Why?"},"content":{"rendered":"<p><strong><a href=\"https:\/\/www.kmdpower.com\/hu\/sodium-ion-battery-manufacturers\/\" target=\"_blank\" rel=\"noreferrer noopener\">N\u00e1trium-ion akkumul\u00e1tor<\/a><\/strong> vs LTO Batteries at \u201340\u00b0C: Which Battery Works Best and Why? At \u201340\u00b0C, standard batteries like NCM or LFP effectively turn into bricks, leaving remote industrial assets in the dark. While Lithium Titanate (LTO) remains the &#8220;Polar Vortex&#8221; champion, Sodium-ion Battery is emerging as a cost-effective challenger with some surprising cold-weather stats. From our experience, the right choice isn\u2019t found on a spec sheet\u2014it\u2019s about what actually survives the winter when the sun goes down and the heaters fail.<\/p><figure class=\"wp-block-image size-full\"><img fetchpriority=\"high\" decoding=\"async\" width=\"1000\" height=\"1000\" src=\"https:\/\/www.kmdpower.com\/wp-content\/uploads\/kamada-power-12v-100ah-sodium-ion-battery-main-image-002.jpg\" alt=\"\" class=\"wp-image-1181\"\/><\/figure><p class=\"has-text-align-center\"><strong><a href=\"https:\/\/www.kmdpower.com\/hu\/kamada-poewr-12v-100ah-sodium-ion-battery-product\/\" target=\"_blank\" rel=\"noreferrer noopener\">Kamada Power 12v 100Ah n\u00e1trium-ion akkumul\u00e1tor<\/a><\/strong><\/p><h2 class=\"wp-block-heading\" id=\"-why-do-batteries-fail-at-ultra-low-temperatures-\"><strong>Mi\u00e9rt hib\u00e1sodnak meg az akkumul\u00e1torok ultraalacsony h\u0151m\u00e9rs\u00e9kleten?<\/strong><\/h2><p>Ahhoz, hogy meg\u00e9rts\u00fck, hogy az LTO akkumul\u00e1tor \u00e9s a n\u00e1trium-ion akkumul\u00e1tor mi\u00e9rt szerepel ebben a besz\u00e9lget\u00e9sben, meg kell n\u00e9zn\u00fcnk, hogy a szabv\u00e1nyos akkumul\u00e1torok mi\u00e9rt hib\u00e1sodnak meg.<\/p><h3 class=\"wp-block-heading\" id=\"what-makes-charging-at-40-c-harder-than-discharging-\">Mi\u00e9rt nehezebb a t\u00f6lt\u00e9s -40\u00b0C-on, mint a lemer\u00edt\u00e9s?<\/h3><p>Gondoljon az akkumul\u00e1tor elektrolitj\u00e1ra \u00fagy, mint a motorolajra. Szobah\u0151m\u00e9rs\u00e9kleten szabadon folyik. -40\u00b0C-on viszk\u00f3zuss\u00e1 v\u00e1lik, mint a hideg m\u00e9z. Ez magas&nbsp;<strong>hat\u00e1rfel\u00fcleti ellen\u00e1ll\u00e1s<\/strong>. M\u00edg egy akkumul\u00e1tor m\u00e9g k\u00e9pes lehet \"kipr\u00e9selni\" n\u00e9mi energi\u00e1t (kis\u00fct\u00e9s),&nbsp;<em>a<\/em>&nbsp;az energia visszat\u00f6lt\u00e9se (t\u00f6lt\u00e9s) m\u00e1r m\u00e1s t\u00e9szta.<\/p><p>Ha egy hagyom\u00e1nyos grafit-an\u00f3dos akkumul\u00e1tort extr\u00e9m hidegben pr\u00f3b\u00e1lsz felt\u00f6lteni, az ionok t\u00fal lassan mozognak ahhoz, hogy interkal\u00e1l\u00f3djanak. Ehelyett felhalmoz\u00f3dnak a felsz\u00ednen, \u00e9s \u00edgy k\u00e9peznek&nbsp;<strong>l\u00edtiumoz\u00e1s<\/strong>. Ez nem csak egy teljes\u00edtm\u00e9nycs\u00f6kken\u00e9s; ez a sejt maradand\u00f3 s\u00e9r\u00fcl\u00e9se, amely bels\u0151 r\u00f6vidz\u00e1rlatokhoz vezethet.<\/p><h3 class=\"wp-block-heading\" id=\"how-does-temperature-affect-battery-safety-and-cycle-life-\">Hogyan befoly\u00e1solja a h\u0151m\u00e9rs\u00e9klet az akkumul\u00e1tor biztons\u00e1g\u00e1t \u00e9s \u00e9lettartam\u00e1t?<\/h3><p>A galvaniz\u00e1l\u00e1s a k\u00f6vetkez\u0151h\u00f6z vezet&nbsp;<strong>dendritek<\/strong>-apr\u00f3bb, t\u0171szer\u0171 strukt\u00far\u00e1k, amelyek k\u00e9pesek \u00e1tsz\u00farni a szepar\u00e1tort. M\u00e9g ha az akkumul\u00e1tor nem is gyullad ki, a&nbsp;<strong>Szil\u00e1rd elektrolit interf\u00e1zis (SEI) r\u00e9teg<\/strong>&nbsp;instabill\u00e1 v\u00e1lik. R\u00f6viden: ha egy szabv\u00e1nyos akkumul\u00e1tort -40\u00b0C-on er\u0151ltetett t\u00f6lt\u00e9ssel t\u00f6lt, akkor val\u00f3sz\u00edn\u0171leg egyetlen szezon alatt meg\u00f6li a ciklus \u00e9lettartam\u00e1t.<\/p><h2 class=\"wp-block-heading\" id=\"-how-do-lto-batteries-perform-at-40-c-\"><strong>Hogyan teljes\u00edtenek az LTO-akkumul\u00e1torok -40\u00b0C-on?<\/strong><\/h2><p>Az LTO-t nem v\u00e9letlen\u00fcl nevezik gyakran \"meg\u00f6lhetetlen\" akkumul\u00e1tornak, \u00e9s a fagypont alatti m\u00e9rn\u00f6ki vil\u00e1gban tov\u00e1bbra is a rendk\u00edv\u00fcli megb\u00edzhat\u00f3s\u00e1g aranyszab\u00e1lya.<\/p><h3 class=\"wp-block-heading\" id=\"-the-1-55v-advantage-why-lto-doesn-t-plate-\"><strong>Az 1,55V el\u0151nye: Mi\u00e9rt nem \"lemezes\" az LTO?<\/strong><\/h3><p>Az LTO a k\u00f6vetkez\u0151ket haszn\u00e1lja&nbsp;<strong>L\u00edtium-titan\u00e1t (Li\u2084Ti\u2085O\u2081\u2082)<\/strong>&nbsp;mint an\u00f3d. \"Z\u00e9r\u00f3-stressz\" spinellszerkezet\u0171, ami azt jelenti, hogy a r\u00e1cs nem t\u00e1gul vagy h\u00faz\u00f3dik \u00f6ssze a haszn\u00e1lat sor\u00e1n. Ami m\u00e9g fontosabb, hogy a&nbsp;<strong>az LTO m\u0171k\u00f6d\u00e9si potenci\u00e1lja k\u00f6r\u00fclbel\u00fcl 1,55V<\/strong>-ami l\u00e9nyegesen magasabb, mint az a potenci\u00e1l, amelyn\u00e9l a f\u00e9mes l\u00edtium elkezd lemezesedni.<\/p><p>Mivel az LTO j\u00f3val e 0V-os k\u00fcsz\u00f6b\u00e9rt\u00e9k felett marad (ahol a grafit m\u0171k\u00f6dik), ez\u00e9rt&nbsp;<strong>termodinamikailag ellen\u00e1ll a l\u00edtiumoz\u00e1snak<\/strong>. Ez lehet\u0151v\u00e9 teszi az LTO sz\u00e1m\u00e1ra, hogy -40\u00b0C-on is biztons\u00e1gosan fogadjon t\u00f6lt\u00e9st, m\u00edg m\u00e1s k\u00e9miai anyagok bels\u0151 dendritek miatt t\u00f6nkremenn\u00e9nek.<\/p><h3 class=\"wp-block-heading\" id=\"can-lto-batteries-charge-reliably-below-30-c-\">Megb\u00edzhat\u00f3an t\u00f6lthet\u0151k az LTO-akkumul\u00e1torok -30\u00b0C alatt?<\/h3><p>A val\u00f3s helysz\u00edni tesztek sor\u00e1n az LTO-cell\u00e1kat -40\u00b0C-on is fel lehet t\u00f6lteni, felt\u00e9ve, hogy a C-ar\u00e1nyt kezelik. Mik\u00f6zben a bels\u0151 ellen\u00e1ll\u00e1s emelkedik, nem \u00e1ll fenn a \"hirtelen hal\u00e1l\" vesz\u00e9lye. A h\u00f3viharban regenerat\u00edv f\u00e9kez\u00e9st alkalmaz\u00f3 t\u00e1voli b\u00e1nyatelepeken gyakran az LTO az egyetlen k\u00e9miai anyag, amely k\u00e9pes kezelni a nagy \u00e1ram\u00fa \"energiazab\u00e1l\u00e1st\".<\/p><h2 class=\"wp-block-heading\" id=\"-how-do-sodium-ion-batteries-handle-40-c-\"><strong>Hogyan kezelik a n\u00e1trium-ion akkumul\u00e1torok a -40\u00b0C-ot?<\/strong><\/h2><p>A n\u00e1trium-ion az \"\u00faj gyerek\", \u00e9s a hype-ot komoly hideg id\u0151j\u00e1r\u00e1si fizika t\u00e1masztja al\u00e1.<\/p><h3 class=\"wp-block-heading\" id=\"-why-sodium-ion-is-a-game-changer-the-catl-benchmark-\"><strong>Mi\u00e9rt a n\u00e1trium-ion egy j\u00e1t\u00e9kv\u00e1lt\u00f3: A CATL benchmark<\/strong><\/h3><p>A n\u00e1trium-ion akkumul\u00e1tor nagyobb, mint a l\u00edtium akkumul\u00e1tor, ami h\u00e1tr\u00e1nyosnak t\u0171nik. Azonban a&nbsp;<strong>kem\u00e9ny sz\u00e9n an\u00f3dok<\/strong>&nbsp;a Na-ion cell\u00e1kban haszn\u00e1lt f\u00e9mek nem szenvednek ugyanolyan lemezesed\u00e9si hajlamt\u00f3l, mint a grafit.<\/p><p>A leg\u00fajabb kereskedelmi adatok - k\u00fcl\u00f6n\u00f6sen a&nbsp;<strong>A CATL els\u0151 gener\u00e1ci\u00f3s n\u00e1trium-ion cell\u00e1i<\/strong>-mutat egy hihetetlen&nbsp;<strong>90% kapacit\u00e1s megtart\u00e1sa -20\u00b0C-on \u00e9s magas kis\u00fct\u00e9si hat\u00e9konys\u00e1g fenntart\u00e1sa m\u00e9g -40\u00b0C-on is<\/strong>. Ez azt jelenti, hogy a kis\u00fcl\u00e9ssel j\u00e1r\u00f3 alkalmaz\u00e1sokban a n\u00e1trium-ion akkumul\u00e1tor majdnem ugyanolyan \"\u00fczemid\u0151t\" biztos\u00edt a m\u00e9lyh\u0171t\u0151ben, mint ny\u00e1ron.<\/p><h3 class=\"wp-block-heading\" id=\"can-sodium-ion-batteries-charge-safely-at-40-c-\">Biztons\u00e1gosan t\u00f6lthet\u0151k a n\u00e1trium-ion akkumul\u00e1torok -40\u00b0C-on?<\/h3><p>While Na-ion&nbsp;<em>kibocs\u00e1t\u00e1sok<\/em>&nbsp;gy\u00f6ny\u00f6r\u0171en,&nbsp;<em>t\u00f6lt\u00e9s<\/em>&nbsp;-30\u00b0C alatt m\u00e9g mindig a hat\u00e1rfel\u00fcleti ellen\u00e1ll\u00e1s er\u0151teljes n\u00f6veked\u00e9s\u00e9t okozza. A cs\u00facskateg\u00f3ri\u00e1s kereskedelmi cell\u00e1k ma m\u00e1r lehet\u0151v\u00e9 teszik a t\u00f6lt\u00e9st -30\u00b0C-ig, de -40\u00b0C-on m\u00e9g mindig nagyon lass\u00fa \"csepegtet\u00e9s\", vagy egy&nbsp;<strong>H\u0151kezel\u0151 rendszer (TMS)<\/strong>&nbsp;a hossz\u00fa t\u00e1v\u00fa eg\u00e9szs\u00e9g biztos\u00edt\u00e1sa \u00e9rdek\u00e9ben.<\/p><h2 class=\"wp-block-heading\" id=\"-which-battery-performs-better-at-40-c-lto-or-sodium-ion-battery-\"><strong>Melyik akkumul\u00e1tor teljes\u00edt jobban -40\u00b0C-on: LTO vagy n\u00e1trium-ion akkumul\u00e1tor?<\/strong><\/h2><h3 class=\"wp-block-heading\" id=\"comparison-table-engineering-reality-at-40-c\">\u00d6sszehasonl\u00edt\u00f3 t\u00e1bl\u00e1zat: C-on -40\u00b0C-on<\/h3><figure class=\"wp-block-table\"><table class=\"has-fixed-layout\"><thead><tr><th>Param\u00e9ter<\/th><th>LTO (l\u00edtium-titan\u00e1t)<\/th><th>N\u00e1trium-ion (kereskedelmi oszt\u00e1ly)<\/th><\/tr><\/thead><tbody><tr><td><strong>Kis\u00fct\u00e9s -40\u00b0C-on<\/strong><\/td><td>Kiv\u00e1l\u00f3; nagy teljes\u00edtm\u00e9ny \u00e1ll rendelkez\u00e9sre<\/td><td><strong>Kiv\u00e1l\u00f3; ~90% kapacit\u00e1s megtart\u00e1sa<\/strong><\/td><\/tr><tr><td><strong>T\u00f6lt\u00e9s -40\u00b0C-on<\/strong><\/td><td><strong>Megval\u00f3s\u00edthat\u00f3 (1,55V No-plating logika)<\/strong><\/td><td>Neh\u00e9z (f\u0171t\u00e9st\/cs\u00f6p\u00f6gtet\u00e9st ig\u00e9nyel)<\/td><\/tr><tr><td><strong>Ciklus \u00e9letciklus<\/strong><\/td><td>20,000+ ciklus<\/td><td>3,000 - 6,000 ciklus<\/td><\/tr><tr><td><strong>Energias\u0171r\u0171s\u00e9g<\/strong><\/td><td>Alacsony (~80 Wh\/kg)<\/td><td>M\u00e9rs\u00e9kelt (~140-160 Wh\/kg)<\/td><\/tr><tr><td><strong>Mez\u0151 \u00e9retts\u00e9ge<\/strong><\/td><td>Bizony\u00edtott (10+ \u00e9v)<\/td><td>Felt\u00f6rekv\u0151 (CATL \u00e9s Tier 1 termel\u00e9s)<\/td><\/tr><\/tbody><\/table><\/figure><h2 class=\"wp-block-heading\" id=\"-which-battery-is-better-for-your-specific-application-\"><strong>Melyik akkumul\u00e1tor a jobb az \u00d6n speci\u00e1lis alkalmaz\u00e1s\u00e1hoz?<\/strong><\/h2><p><strong>A 90% fagypont alatti ipari alkalmaz\u00e1sok eset\u00e9ben a n\u00e1triumion-akkumul\u00e1tor jelenti az \"\u00e9des pontot\" - k\u00f6zel k\u00e9tszeres energias\u0171r\u0171s\u00e9get k\u00edn\u00e1l az LTO-hoz k\u00e9pest, az \u00e1r t\u00f6red\u00e9k\u00e9\u00e9rt.<\/strong><\/p><h3 class=\"wp-block-heading\" id=\"when-should-you-choose-sodium-ion-battery-\">Mikor \u00e9rdemes n\u00e1trium-ion akkumul\u00e1tort v\u00e1lasztani?<\/h3><ul class=\"wp-block-list\"><li><strong>A gyakorlati f\u0151\u00e1ramlat:<\/strong>\u00a0Ha az \u00d6n projektje nagy kapacit\u00e1st \u00e9s k\u00f6lts\u00e9ghat\u00e9konys\u00e1got ig\u00e9nyel. \u00c1thidalja a hiba\u00e9rz\u00e9keny LFP \u00e9s a rendk\u00edv\u00fcl dr\u00e1ga LTO k\u00f6z\u00f6tti szakad\u00e9kot.<\/li>\n\n<li><strong>Kibocs\u00e1t\u00e1s-domin\u00e1ns felhaszn\u00e1l\u00e1s:<\/strong>\u00a0Ha az els\u0151dleges szempont az, hogy a hidegben is rendelkez\u00e9sre \u00e1lljon a kis\u00fct\u00e9shez sz\u00fcks\u00e9ges \u00e1ram (pl. v\u00e9szhelyzeti tartal\u00e9k).<\/li>\n\n<li><strong>K\u00f6lts\u00e9g\u00e9rz\u00e9keny sk\u00e1la:<\/strong>\u00a0Nagym\u00e9ret\u0171 h\u00e1l\u00f3zati t\u00e1rol\u00e1s, ahol az akt\u00edv h\u0151kezel\u00e9sre (f\u0171t\u0151berendez\u00e9sekre) sz\u00e1nt k\u00f6lts\u00e9gvet\u00e9s m\u00e1r a rendszerbe van be\u00e9p\u00edtve.<\/li><\/ul><h3 class=\"wp-block-heading\" id=\"when-should-you-choose-lto-battery-\">Mikor \u00e9rdemes LTO akkumul\u00e1tort v\u00e1lasztani?<\/h3><ul class=\"wp-block-list\"><li><strong>Az \"Arctic Standard\":<\/strong>\u00a0T\u00e1v\u00e9rz\u00e9kel\u0151k olyan helyeken, mint p\u00e9ld\u00e1ul a sarkvid\u00e9k, ahol a technikusok h\u00f3napokig nem tudnak eljutni a helysz\u00ednre.<\/li>\n\n<li><strong>Kritikus fontoss\u00e1g\u00fa \u00fczemid\u0151:<\/strong>\u00a0Ha az akkumul\u00e1tor\u00a0<em>kell<\/em>\u00a0-40\u00b0C-on t\u00f6lt\u00e9s, meghib\u00e1sod\u00e1sra hajlamos f\u0171t\u0151rendszer n\u00e9lk\u00fcl.<\/li>\n\n<li><strong>Hossz\u00fa t\u00e1v\u00fa TCO:<\/strong>\u00a0Ha azt szeretn\u00e9, hogy az akkumul\u00e1tor t\u00f6bb mint 20 \u00e9vig b\u00edrja, \u00e9s t\u00fal\u00e9lje a vele t\u00e1pl\u00e1lt berendez\u00e9seket.<\/li><\/ul><h2 class=\"wp-block-heading\" id=\"-how-does-cost-affect-the-choice-\"><strong>Hogyan befoly\u00e1solja a k\u00f6lts\u00e9g a v\u00e1laszt\u00e1st?<\/strong><\/h2><p>A n\u00e1trium-ion akkumul\u00e1tor cellaszinten l\u00e9nyegesen olcs\u00f3bb. M\u00e9g ha a v\u00e1kuumszigetel\u00e9s \u00e9s az akt\u00edv f\u0171t\u0151elemek k\u00f6lts\u00e9geit is figyelembe vessz\u00fck, a&nbsp;<strong>A n\u00e1triumionos megold\u00e1s teljes rendszerk\u00f6lts\u00e9ge gyakran m\u00e9g mindig 30-50%-tel alacsonyabb, mint az LTO-egyen\u00e9rt\u00e9k\u0171 megold\u00e1s\u00e9.<\/strong>. A legt\u00f6bb \u00fcgyf\u00e9l sz\u00e1m\u00e1ra ez teszi a n\u00e1trium-ion akkumul\u00e1tort a logikus v\u00e1laszt\u00e1ss\u00e1 a t\u00f6meges telep\u00edt\u00e9shez.<\/p><h2 class=\"wp-block-heading\" id=\"-conclusion-\"><strong>K\u00f6vetkeztet\u00e9s<\/strong><\/h2><p>Ultimately, selecting between LTO and<strong><a href=\"https:\/\/www.kmdpower.com\/hu\/sodium-ion-battery-manufacturers\/\" target=\"_blank\" rel=\"noreferrer noopener\"> N\u00e1trium-ion akkumul\u00e1tor<\/a><\/strong> for \u201340\u00b0C deployments is a strategic decision that balances rigorous risk management with budget optimization. Sodium-ion Battery has emerged as the &#8220;Value King,&#8221; offering the energy density and 90% capacity retention essential for large-scale, cost-sensitive projects. Conversely, LTO remains the definitive &#8220;Insurance Policy&#8221; for mission-critical assets where 1.55V non-plating safety and absolute reliability are non-negotiable in the face of extreme polar conditions. Not sure which chemistry fits your thermal management strategy?\u00a0<strong><a href=\"https:\/\/www.kmdpower.com\/hu\/contact-us\/\" target=\"_blank\" rel=\"noreferrer noopener\">Kapcsolatfelv\u00e9tel<\/a>\u00a0<\/strong>a  oldalon. <strong><a href=\"https:\/\/www.kmdpower.com\/hu\/custom-sodium-ion-battery-manufacturers\/\" target=\"_blank\" rel=\"noreferrer noopener\">testreszabott n\u00e1trium-ion akkumul\u00e1tor<\/a><\/strong> megold\u00e1sok.<\/p><h2 class=\"wp-block-heading\" id=\"-faq-\"><strong>GYIK<\/strong><\/h2><h3 class=\"wp-block-heading\" id=\"-can-i-charge-my-sodium-ion-battery-at-40-c-if-the-solar-panel-is-producing-power-\"><strong>Felt\u00f6lthetem a n\u00e1trium-ion akkumul\u00e1toromat -40\u00b0C-on, ha a napelem energi\u00e1t termel?<\/strong><\/h3><p>Nem k\u00f6zvetlen\u00fcl. A legt\u00f6bb kereskedelmi forgalomban kaphat\u00f3 Na-ion BMS egys\u00e9g -20\u00b0C alatt blokkolja a t\u00f6lt\u00e9st a cella v\u00e9delme \u00e9rdek\u00e9ben. A napenergi\u00e1t azonban el\u0151bb egy be\u00e9p\u00edtett f\u0171t\u0151berendez\u00e9s m\u0171k\u00f6dtet\u00e9s\u00e9re haszn\u00e1lhatja, amit a n\u00e1triumionos rendszerek nagyon hat\u00e9konyan kezelnek.<\/p><h3 class=\"wp-block-heading\" id=\"-does-lto-really-last-20-years-in-cold-climates-\"><strong>T\u00e9nyleg 20 \u00e9vig tart az LTO a hideg \u00e9ghajlaton?<\/strong><\/h3><p>Igen. Mivel az LTO szinte semmilyen t\u00e9rfogatv\u00e1ltoz\u00e1st nem tapasztal (\"nulla terhel\u00e9s\") \u00e9s a&nbsp;<strong>1,55V potenci\u00e1l megakad\u00e1lyozza a galvaniz\u00e1l\u00e1st<\/strong>, hihetetlen\u00fcl stabil. Sok t\u00e1voli telephelyen az elektronika j\u00f3val el\u0151bb meghib\u00e1sodik, mint az LTO-cell\u00e1k.<\/p><h3 class=\"wp-block-heading\" id=\"-what-if-my-application-only-needs-to-discharge-at-40-c-\"><strong>Mi van akkor, ha az alkalmaz\u00e1somnak csak&nbsp;<em>mentes\u00edt\u00e9s<\/em>&nbsp;-40\u00b0C-on?<\/strong><\/h3><p>A n\u00e1trium-ion itt vitathatatlanul a gy\u0151ztes. A CATL adatai szerint 90% kapacit\u00e1s\u00e1t megtartja, \u00e9s sokkal nagyobb energias\u0171r\u0171s\u00e9get biztos\u00edt, mint az LTO, j\u00f3val alacsonyabb \u00e1r mellett.<\/p><h3 class=\"wp-block-heading\" id=\"-is-sodium-ion-battery-safer-than-lto-\"><strong>Biztons\u00e1gosabb a n\u00e1trium-ion akkumul\u00e1tor, mint az LTO?<\/strong><\/h3><p>Mindkett\u0151 l\u00e9nyegesen biztons\u00e1gosabb, mint a hagyom\u00e1nyos NCM\/LFP. M\u00edg az LTO rendelkezik a leghosszabb tapasztalattal, a n\u00e1trium-ion kiv\u00e1l\u00f3 biztons\u00e1gi eredm\u00e9nyeket mutatott a termikus elszabadul\u00e1s \u00e9s a sz\u00f6gbehatol\u00e1s tesztjeiben.<\/p>","protected":false},"excerpt":{"rendered":"<p>Sodium-ion Battery vs LTO Batteries at \u201340\u00b0C: Which Battery Works Best and Why? At \u201340\u00b0C, standard batteries like NCM or LFP effectively turn into bricks, leaving remote industrial assets in the dark. While Lithium Titanate (LTO) remains the &#8220;Polar Vortex&#8221; champion, Sodium-ion Battery is emerging as a cost-effective challenger with some surprising cold-weather stats. From&#8230;<\/p>","protected":false},"author":1,"featured_media":1181,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"rank_math_lock_modified_date":false,"_kad_post_transparent":"","_kad_post_title":"","_kad_post_layout":"","_kad_post_sidebar_id":"","_kad_post_content_style":"","_kad_post_vertical_padding":"","_kad_post_feature":"","_kad_post_feature_position":"","_kad_post_header":false,"_kad_post_footer":false,"footnotes":""},"categories":[19,26],"tags":[],"class_list":["post-5169","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-news_catalog","category-product-news"],"_links":{"self":[{"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/posts\/5169","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/comments?post=5169"}],"version-history":[{"count":1,"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/posts\/5169\/revisions"}],"predecessor-version":[{"id":5170,"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/posts\/5169\/revisions\/5170"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/media\/1181"}],"wp:attachment":[{"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/media?parent=5169"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/categories?post=5169"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.kmdpower.com\/hu\/wp-json\/wp\/v2\/tags?post=5169"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}