<?xml version="1.1" encoding="utf-8"?>
<article xsi:noNamespaceSchemaLocation="http://jats.nlm.nih.gov/publishing/1.1/xsd/JATS-journalpublishing1-mathml3.xsd" dtd-version="1.1" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"><front><journal-meta><journal-id journal-id-type="publisher-id">EPTSM</journal-id><journal-title-group><journal-title>Electric Power Technology and Safety Management</journal-title></journal-title-group><issn>2997-3473</issn><eissn>2997-3503</eissn><publisher><publisher-name>Art and Technology</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="doi">10.61369/EPTSM.2025030002</article-id><article-categories><subj-group subj-group-type="heading"><subject>Article</subject></subj-group></article-categories><title>熔盐传储热介质研究进展</title><url>https://artdesignp.com/journal/EPTSM/2/3/10.61369/EPTSM.2025030002</url><author>卢昀坤,张少杰,代海玲,唐彪,雷志文</author><pub-date pub-type="publication-year"><year>2025</year></pub-date><volume>2</volume><issue>3</issue><history><date date-type="pub"><published-time>2025-03-20</published-time></date></history><abstract>熔盐储热技术是解决能源供需时空错配的关键，主要包括显热、潜热和化学储热三种形式。研究表明，硝酸盐（180-600℃）因导热性好、成本低已商业化应用；氯化盐（399-850℃）适合超临界发电但腐蚀性强；氟化盐（＞454℃）高温稳定但成本高；碳酸盐（400-900℃）具有低腐蚀、高储热密度优势。通过复合改性和多元共晶设计可优化性能，但需进一步解决腐蚀、热稳定性和成本问题，以促进其在"双碳"目标下的规模化应用。</abstract><keywords>熔盐介质,潜热储热,显热储热,储能技术</keywords></article-meta></front><body/><back><ref-list><ref id="B1" content-type="article"><label>1</label><element-citation publication-type="journal"><p>[1]PolkowskiW,SobczakN,BruzdaG,etal.Silicon-BoronAlloysasNewUltra-HighTemperaturePhase-ChangeMaterials:Solid/LiquidStateInteractionwiththeh-BNComposite[J].Silicon,2020,12(7):1639-1649.&amp;nbsp;[2]BRADSHAWRW,BROSSEAUD.Low-meltingpointinorganicnitratesaltheattransferfluid:US7588694[P].2009-9-15.&amp;nbsp;[3]GOODSSH,BRADSHAWRW.Corrosionofstainlesssteelsandcarbonsteelbymoltenmixturesofcommercialnitratesalts[J].JournalofMaterialsEngineering&amp;amp;Performance,2004,13(1):78-87.&amp;nbsp;[4] 贺万玉 ,闫全英.熔融盐相变储热材料[J].材料导报,2 015(1):128-130.&amp;nbsp;[5] 吴会军 ,朱冬生,李军.蓄热材料的研究进展[J].材料导报,2005(8):000096-98.&amp;nbsp;[6] 葛志伟 ,叶锋等.中高温储热材料的研究现状与展望[J].储能科学与技术,2012(02):89-102.&amp;nbsp;[7] 贺万玉 ,闫全英.熔融盐相变储热材料[J].材料导报:纳米与新材料专辑,2015(1):128-130.&amp;nbsp;[8] 李春鸿．蓄热材料与化学反应[J]．化学通报，1983(3):31-35．&amp;nbsp;[9] 李云涛 ,晏华,汪宏涛.膨胀石墨基复合相变材料的结构与性能研究[J].材料研究学报,2016(30)：545-552.&amp;nbsp;[10]FanL,KhodadadiJM.Thermalconductivityenhancementofphasechangematerialsforthermalenergystorage:Areview[J].RenewableandSustainableEnergyReviews,2011(15):24-46.&amp;nbsp;[11] 龚欣欣 ,张元芳.储热材料及其应用[J].科技创新与应用,2014(34):76-76.&amp;nbsp;[12] 卢昀坤,唐宪友,尹航,等.光热电站熔盐介质应用现状[J].电力系统装备,2023(1):13-17.&amp;nbsp;[13] 吴玉庭 ,王涛,马重芳.二元混合硝酸盐的配制及性能[J].太阳能学报,2012(1):148-152.&amp;nbsp;[14]BradshawR.W.,SiegelN.P.MoltenNitrateSaltDevelopmentforThermalEnergyStorageinParabolicTroughSolarPowerSystems[J].In:ProceedingsofES2008EnergySustainability2008.Jacksonville,FloridaUSA,2008:55-67.&amp;nbsp;[15]GlatzmaierG.SummaryReportforConcentratingSolarPowerThermalStorageWorkshop:NewConceptsandMaterialsforThermalEnergyStorageandHeatTransferFluids,May20,2011[J].OfficeofScientific&amp;amp;TechnicalInformationTechnicalReports,2011,8:1-15.&amp;nbsp;[16] 吴玉庭 ,朱建坤,张丽娜.高温熔盐的制备及实验研究[J].北京工业大学学报,2007(30):62-66.&amp;nbsp;[17] 孙李平 ,吴玉庭,马重芳.太阳能高温蓄热熔融盐优选的实验研究[J].太阳能学报,2008(29):1092-1095.&amp;nbsp;[18] 李月锋 ,张东.高温相变材料Li2CO3-Na2CO3循环热稳定性分析[J].储能科学与技术,2013(4):369-376.&amp;nbsp;[19] 尹辉斌 ,丁静,杨晓西等.碳酸熔盐传热蓄热材料的制备与热性能[J].工程热物理学报,2016(34):952-956.&amp;nbsp;[20] 程晓敏 ,陶冰梅,朱闯.四元碳酸盐相变储热材料的制备及热物性研究[J].化工新型材料，2014(42):49-51.</p><pub-id pub-id-type="doi"/></element-citation></ref></ref-list></back></article>
