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Nadpli nnij ge lij 4 takozh nadteku chij ge lij 4 angl superfluid helium 4 fazovij stan geliyu 4 izotopu elementa geliyu v yakomu vin viyavlyaye vlastivosti ridini z nulovoyu v yazkistyu teche bez tertya po bud yakij poverhni protikaye cherez duzhe dribni pori pidkoryayuchis tilki svoyij vlasnij inerciyi Vodnochas v inshih eksperimentah toj zhe gelij viyavlyaye vlastivosti pritamanni zvichajnij ridini z nenulovoyu v yazkistyu Nadplinna povedinka geliyu sposterigayetsya pri oholodzhenni jogo nizhche kritichnoyi temperaturi 2 17 K koli chastina jogo staye nadplinnoyu Pri temperaturi 1 K vin staye nadplinnim majzhe povnistyu 1 Nadplinnij gelij vidomij yak osnovnij ob yekt kvantovoyi gidrodinamiki i doslidzhen makroskopichnih kvantovih yavish en Formuvannya nadplinnosti vvazhayetsya pov yazanim z utvorennyam kondensatu Boze Ejnshtejna Svidchennyam cogo ye toj fakt sho nadplinnist v ridkomu geliyi 4 sposterigayetsya pri nabagato vishih temperaturah nizh yiyi mozhna sposterigati v izotopu geliyu 3 Kozhen atom geliyu 4 ye bozonom oskilki jogo spin dorivnyuye nulyu Gelij 3 prote ye fermionom sho mozhe utvoryuvati bozoni tilki shlyahom sparovuvannya z analogichnim atomom pri nizhchih temperaturah v procesi podibnomu do sparovuvannya elektroniv v yavishi nadprovidnosti Izotop gelij 4 He priblizno v miljon raz poshirenishij nizh gelij 3 He 2 tomu koli jdetsya pro vikoristannya nadplinnogo geliyu zazvichaj mayut na uvazi same He Neveliki domishki He ne zminyuyut povedinki He utvoryuyetsya rozchin yakij zberigaye nadplinni vlastivosti hocha temperatura perehodu desho znizhuyetsya Rozchini z visokoyu koncentraciyeyu He vivcheni nedostatno 3 Na sogodni yedinoyu krim geliyu ridinoyu yakij vlastivij nadplinnij stan ye paravoden u duzhe malih kilkostyah kilka desyatkiv molekul adzhe zazvichaj molekuli orto i paravodnyu dobre peremishani navit za duzhe nizkih temperatur 4 Zmist 1 Istoriya doslidzhen 1 1 U 21 mu stolitti 2 Vlastivosti 2 1 Dvokomponentnist 2 2 Potik plivki 2 3 Riznicya z geliyem 3 2 4 Kvantovi vihori 3 Nadplinna gidrodinamika 3 1 Fontannij tisk 3 2 Perenesennya tepla 4 Teoriya 4 1 Dvoridinnij pidhid Landau 4 2 Model vihrovogo kilcya 4 3 Modeli zhorstkih sfer 4 4 Gausivskij klasternij pidhid 5 Praktichne zastosuvannya 6 Div takozh 7 Dzherela 8 Literatura 9 Posilannya 9 1 Ukrayinomovni 9 2 AnglomovniIstoriya doslidzhen RedaguvatiZridzhenij gelij vpershe otrimav Kamerling Onnes 10 lipnya 1908 roku Dlya cogo treba bulo oholoditi gaz do temperaturi blizko 4 K 1 1910 roku Kamerling Onnes zumiv oholoditi gelij do temperaturi 1 04 K dzherelo Za ci doslidzhennya vin otrimav Nobelivsku premiyu 1913 roku Oholoditi zridzhenij gelij do 1 K mozhna shlyahom viparovuvannya pid znizhenim tiskom iz zastosuvannyam vakuumnogo nasosa 1 Efekt nadplinnosti zridzhenogo geliyu buv viyavlenij Petrom Kapicoyu 5 Dzhonom Alenom en i Donom Mizenerom en 6 1937 roku Vidtodi vin buv opisanij cherez fenomenologichni j mikroskopichni teoriyi U 50 ti roki XX stolittya Goll Hall H E i Vajnen Vinen W F proveli eksperimenti sho vstanovili isnuvannya kvantovanih vihrovih linij u nadplinnomu geliyi 7 U 60 ti roki Rejfild Rayfield i Rajf Reif vstanovili isnuvannya kvantovih vihrovih kilec 8 Pakard Packard sposterigav peretin vihrovih linij z vilnoyu poverhneyu ridini 9 Avenel Avenel i Veroku Varoquaux vivchali efekt Dzhozefsona v nadplinnomu geliyi 4 10 2006 roku grupa vchenih z Universitetu shtatu Merilend vizualizuvala kvantovi vihori za dopomogoyu nevelikih markernih chastok tverdogo vodnyu 11 U 21 mu stolitti Redaguvati Na pochatku 2000 h rokiv fiziki stvorili fermionnij kondensat z par ultraholodnih atomiv fermioniv dzherelo Pri pevnih umovah pari fermioniv utvoryuyut dvoatomni molekuli i v yihnij sistemi staye mozhlivoyu kondensaciya Boze Ejnshtejna V inshij krajnosti fermioni zokrema bilshist nadprovidnih elektroniv utvoryuyut kuperivski pari dlya yakih takozh vlastiva nadplinnist Cya robota pro ultraholodni atomichni gazi dozvolila doslidzhuvati oblast mizh cimi dvoma krajnostyami vidomu yak BEC BCS krosover Nadplinni tverdi tila en mozhlivo takozh buli viyavleni v 2004 roci fizikami z universitetu shtatu Pensilvaniya Koli gelij 4 oholoditi do temperaturi nizhche nizh priblizno 200 mK pri visokomu tisku blizko odnovidsotkova chastina tverdogo tila yak vidayetsya staye nadplinnoyu 12 13 Bulo pokazano za dopomogoyu eksperimentu torsionnogo oscilyatora sho pri rizkomu oholodzhenni abo podovzhennya chasu normalizaciyi tim samim zbilshuyuchi abo zmenshuyuchi shilnist defektiv vidpovidno frakciya nadplinnogo tverdogo tila mozhe buti v diapazoni vid 20 do povnistyu vidsutnoyi Ce dozvolilo pripustiti sho nadplinnotverdotilna priroda geliyu 4 ne pritamanna geliyu 4 ale ye vlastivistyu geliyu 4 i nevporyadkovanosti 14 15 Deyaki novi teoriyi postulyuyut sho super tverdij signal sho sposterigayetsya v geliyi 4 buv naspravdi sposterezhennya abo stanu nadsklovidnogo 16 abo vnutrishno nadplinnim kordonom zeren v kristali geliyu 4 17 Vlastivosti Redaguvati nbsp Mal 1 Fazova diagrama He 18 Pokazuye za yakih umov temperaturi T ta tisku r gelij perebuvaye v gazopodibnomu ridkomu j tverdomu stani Vidpovidni dilyanki na fazovij diagrami rozdileni krivoyu plavlennya mizh ridkim i tverdim stanom ta liniyeyu kipinnya mizh ridkim i gazopodibnim stanom Ostannya liniya zakinchuyetsya v kritichnij tochci de riznicya mizh gazom i ridinoyu znikaye nbsp Mal 2 Teployemnist ridini 4He pri tisku nasichenoyi pari yak funkciya temperaturi Pik pri T 2 17 K poznachaye fazovij perehid drugogo rodu nbsp Mal 3 Temperaturna zalezhnist vidnosnih nadplinnoyi j normalnoyi komponent rn r i rs r yak funkcij T Diagrama stanu malyunok 1 pokazuye unikalnu vlastivist 4He yakij mozhe perebuvati v ridkomu stani navit pri absolyutnomu nuli Tverdiye vin lishe pid tiskom ponad 25 bar Na cij diagrami takozh pokazana l liniya yaka rozdilyaye dvi dilyanki ridkogo stanu poznacheni na diagrami yak He I i He II Na dilyanci He I gelij povoditsya yak normalna ridina todi yak dilyanci He II vin nadplinnij Nazva lyambda liniyi pohodit vid svoyeridnogo grafiku zalezhnosti teployemnosti vid temperaturi sho nagaduye formu greckoyi literi l lyambda 19 20 Pik teployemnosti sposterigayetsya pri temperaturi 2 172 K malyunok 2 yaku nazivayut l tochkoyu Dvokomponentnist Redaguvati Nizhche lyambda liniyi povedinka geliyu fenomenologichno mozhe buti opisana tak zvanoyu dvoridinnoyu modellyu en Vin povodit sebe tak nachebto skladayetsya z dvoh komponent normalnoyi sho povoditsya yak zvichajna ridina i nadplinnoyi komponenti z nulovoyu v yazkistyu j nulovoyu entropiyeyu Spivvidnoshennya gustini normalnoyi rn i nadplinnoyi rs komponenti zalezhit vid temperaturi i podano na malyunku 3 21 Pri znizhenni temperaturi chastka gustini nadplinnoyi komponenti rs r zrostaye vid nulya pri Tl do odinici pri nulovij temperaturi za Kelvinom Nizhche 1 K gelij majzhe povnistyu nadplinnij Nizhche temperaturi 0 7 K zalezhnist gustini normalnoyi komponenti vid temperaturi maye viglyad rn T4 3 Nadplinni ridini taki yak gelij 4 nizhche lyambda tochki mayut chimalo nezvichajnih vlastivostej Prikladannya tepla do zoni v nadplinnomu geliyi prizvodit do potoku normalnoyi komponenti yakij zabezpechuye perenesennya tepla z porivnyano visokoyu shvidkistyu do 20 sm s sho prizvodit do duzhe visokoyi efektivnoyi teploprovidnosti Mozhna stvoryuvati hvili gustini normalnoyi komponenti a vidtak i nadplinnoyi komponenti oskilki yak rn rs konstanti yaki nagaduyut zvichajni zvukovi hvili Cej efekt nazivayetsya drugim zvukom Cherez temperaturnu zalezhnist rn malyunok 3 ci hvili u rn ye takozh temperaturnimi hvilyami nbsp Ris 4 Gelij II bude povzti po poverhni j cherez deyakij chas rivni ridini v dvoh kontejnerah zrivnyayutsya Plivka Rollina en takozh ohoplyuye vnutrishnyu chastinu bilshogo kontejnera yakbi vin ne buv bi zapechatanij to gelij II vipovz bi j vitik get nbsp Ris 5 Ridkij gelij vseredini chashki perebuvaye v nadplinnij fazi Doki vin zalishayetsya nadplinnim vin povze vgoru po stinci u viglyadi tonkoyi plivki Cya plivka peretikaye cherez kraj i dali opuskayetsya po zovnishnomu boci stinki utvoryuyuchi pid dnom kraplyu yaka padaye v ridinu nizhche Krapli utvoryuyutsya odna za odnoyu azh doki chashka ne sporozhniye Potik plivki Redaguvati Bagato zvichajnih ridin taki yak spirt abo nafta povztimut vgoru tverdimi stinkami zavdyaki yavishu zmochuvannya zumovlenomu poverhnevim natyagom Ridkij gelij takozh maye cyu vlastivist ale u vipadku He II potik ridini v shari obmezhuyetsya ne jogo v yazkistyu a kritichnoyu shvidkistyu yaka stanovit blizko 20 sm s Ce dosit visoka shvidkist tomu nadplinnij gelij mozhe porivnyano legko tekti vgoru stinkami porozhnogo kontejnera chastkovo zanurenogo v ridinu dotikati azh do verhu j peretikati cherez kraj zapovnyuyuchi kontejner do rivnya ridini zovni Cej sifonnij efekt shematichno pokazano na malyunku 4 Yaksho napovnenij kontejner pidnyati vishe rivnya ridini to potik plivki utvoryuye vidimi krapli na dni kontejnera yak pokazano na malyunku 5 Riznicya z geliyem 3 Redaguvati Hocha fenomenologiyi nadplinnih staniv geliyu 4 i geliyu 3 duzhe shozhi mikroskopichni detali perehodiv znachno vidriznyayutsya Atomi geliyu 4 ye bozonami i yihnya nadplinnist mozhe buti poyasnena z poglyadu statistiki Boze Ejnshtejna yakij voni pidporyadkovuyutsya Zokrema nadplinnist geliyu 4 mozhna rozglyadati yak naslidok kondensaciyi Boze Ejnshtejna v sistemi zi vzayemodiyeyu Z inshogo boku atomi geliyu 3 ye fermionami i nadplinnij perehid u cij sistemi opisuyetsya uzagalnennyam teoriyi nadprovidnosti BKSh U cij teoriyi vidbuvayetsya kuperivske paruvannya mizh atomami a ne elektronami yak u BKSh i vzayemodiya prityaguvannya mizh nimi peredayetsya cherez spinovi a ne fononni fluktuaciyi Div fermionnij kondensat Ob yednanij opis nadprovidnosti j nadplinnosti mozhlivij z poglyadu spontannogo porushennya kalibruvalnoyi simetriyi Kvantovi vihori Redaguvati Insha fundamentalna vlastivist viyavlyayetsya yaksho nadplinnu ridinu vmistiti v centrifugu kontejner sho obertayetsya Zamist togo shob obertatisya razom iz kontejnerom u geliyi vinikayut kvantovi vihori Tobto koli kontejner obertayetsya zi shvidkistyu nizhchoyu pershoyi kritichnoyi kutovoyi shvidkosti ridina zalishayetsya absolyutno neruhomoyu Pislya togo yak bude dosyagnuta persha kritichna kutova shvidkist nadplinna ridina utvoryuye vihor Sila vihoru kvantovana tobto nadplinna ridina mozhe obertatisya tilki pri pevnih pripustimih znachennyah kutovoyi shvidkosti Obertannya normalnoyi ridini takoyi yak voda ne kvantuyetsya Yaksho shvidkist obertannya zbilshuyetsya dali budut formuvatisya novi kvantovi vihori utvoryuyuchi cikavi uzori analogichni gratci Abrikosova v nadprovidniku Nadplinna gidrodinamika RedaguvatiRivnyannya ruhu dlya nadplinnoyi komponenti v desho sproshenomu viglyadi 22 zadayetsya zakonom Nyutona F M 4 d v s d t displaystyle vec F M 4 frac mathrm d vec v s mathrm d t nbsp M4 molyarna masa 4He i v s displaystyle vec v s nbsp shvidkist nadplinnoyi komponenti Pohidna za chasom tak zvana gidrodinamichna pohidna tobto zapisana dlya elementa ridini sho sam ruhayetsya U vipadku nadplinnogo 4He v gravitacijnomu poli sila zadayetsya yak 23 24 F m M 4 g z displaystyle vec F vec nabla mu M 4 gz nbsp U comu virazi m molnij himichnij potencial g gravitacijne priskorennya i z vertikalna koordinata Takim chinom M 4 d v s d t m M 4 g z displaystyle M 4 frac mathrm d vec v s mathrm d t vec nabla mu M 4 gz nbsp 1 Rivnyannya 1 vikonuyetsya todi i tilki todi koli vs ne perevishuye deyake kritichne znachennya yake yak pravilo viznachayetsya diametrom kanalu potoku 25 26 U klasichnij mehanici sila chasto ye gradiyentom potencialnoyi energiyi Rivnyannya 1 pokazuye sho u vipadku nadplinnoyi komponenti sila mistit chlen proporcijnij gradiyentu himichnogo potencialu Zavdyaki comu He II demonstruye taki nadzvichajni vlastivosti yak fontannij efekt nbsp Ris 6 Shlyah integruvannya dlya obchislennya m pri dovilnih p i T nbsp Ris 7 Demonstraciya fontannogo tisku Dvi posudini z yednani supertecheyu cherez yaku protikaye lishe nadplinna komponenta nbsp Ris 8 Demonstraciya fontannogo efektu Kapilyarna trubka zakrita v odnomu kinci supertecheyu i vmishena u vannu z nadplinnim geliyem a potim nagrita Gelij teche vgoru cherez trubku i rozbrizkuyetsya yak fontan Fontannij tisk Redaguvati Dlya togo shob perepisati rivnyannya 1 v bilsh zvichnij formi mi vikoristovuyemo zagalnu formulu d m V m d p S m d T displaystyle mathrm d mu V m mathrm d p S m mathrm d T nbsp 2 Tut Sm molyarna entropiya i Vm molyarnij ob yem Za dopomogoyu rivnyannya 2 m p T mozhna viznachiti za dopomogoyu konturnogo integruvannya u r T ploshini Spochatku mi integruyemo vid pochatku koordinat 0 0 do p 0 tobto pri T 0 Dali mi integruyemo z r 0 do p T tobto z postijnim tiskom divis risunok 6 U pershomu integrali dT 0 a v drugomu dp 0 Za dopomogoyu rivnyannya 2 otrimuyemo m p T m 0 0 0 p V m p 0 d p 0 T S m p T d T displaystyle mu p T mu 0 0 int 0 p V m p prime 0 mathrm d p prime int 0 T S m p T prime mathrm d T prime nbsp 3 Mi zacikavleni tilki v tih vipadkah koli r male tak sho Vm praktichno nezminnij Otzhe 0 p V m p 0 d p V m 0 p displaystyle int 0 p V m p prime 0 mathrm d p prime V m0 p nbsp 4 de Vm0 molyarnij ob yem ridini pri T 0 i p 0 Inshij chlen u rivnyanni 3 takozh zapisuyetsya u viglyadi dobutku Vm0 i velichini pf yaka maye rozmirnist tisku 0 T S m p T d T V m 0 p f displaystyle int 0 T S m p T prime mathrm d T prime V m0 p f nbsp 5 Tisk pf nazivayetsya fontannim tiskom Jogo mozhna obchisliti z entropiyi 4He yaku v svoyu chergu mozhna obchisliti z teployemnosti Dlya T Tl fontannij tisk dorivnyuye 0 692 bar Pri gustini ridkogo geliyu 125 kg m3 i g 9 8 m s2 cej tisk vidpovidaye stovpchiku ridkogo geliyu 56 metrovoyi visoti Otzhe u bagatoh eksperimentah fontannij tisk silnishe vplivaye na ruh nadplinnogo geliyu nizh sili tyazhinnya Za dopomogoyu rivnyan 4 i 5 rivnyannya 3 nabuvaye formi m p T m 0 V m 0 p p f displaystyle mu p T mu 0 V m0 p p f nbsp 6 Pidstanovka rivnyannya 6 v 1 daye r 0 d v s d t p r 0 g z p f displaystyle rho 0 frac mathrm d vec v s mathrm d t vec nabla p rho 0 gz p f nbsp 7 z gustinoyu ridkogo 4He pri nulovomu tisku i temperaturi r M4 Vm0 Rivnyannya 7 pokazuye sho nadplinna komponenta priskoryuyetsya yak zazvichaj gravitacijno zumovlenim gradiyentom tisku odnak takozh gradiyentom fontannogo tisku Poki sho rivnyannya 5 maye lishe matematichnij sens odnak u specialnih eksperimentalnih ustanovkah pf mozhe vidobrazhatisya yak realnij tisk Na malyunku 7 pokazani dvi posudini obidvi z He II Liva posudina maye perebuvati pri nulovij temperaturi za Kelvinom Tl 0 i nulovomu tisku pl 0 Posudini z yednani tak zvanoyu supertecheyu Ce trubka zapovnena duzhe dribnim poroshkom cherez sho potik normalnoyi komponenti praktichno zablokovanij Prote nadplinna komponenta mozhe protikati cherez cyu supertechu bez bud yakih problem nizhche kritichnoyi shvidkosti blizko 20 sm s U stacionarnomu stani vs 0 otozh z rivnyannya 7 viplivaye p l r 0 g z l p f l p r r 0 g z r p f r displaystyle p l rho 0 gz l p fl p r rho 0 gz r p fr nbsp 8 de indeks l r stosuyetsya livoyi pravoyi storoni supertechi V danomu konkretnomu vipadku pl 0 zl zr i pfl 0 oskilki Tl 0 Otzhe 0 p r p f r displaystyle 0 p r p fr nbsp Ce oznachaye sho tisk u pravij posudini dorivnyuye fontannomu tisku pri Tr Fontan mozhna stvoriti v eksperimenti postavlenomu yak na malyunku 8 Fontannij efekt vikoristovuyetsya dlya stvorennya cirkulyaciyi 3He v refrizheratorah rozchinennya 27 28 nbsp Ris 9 Transportuvannya tepla za dopomogoyu protitechiyi normalnoyi i nadplinnoyi komponent He IIPerenesennya tepla Redaguvati Na malyunku 9 pokazano eksperiment z teploobminu mizh dvoma posudinami z temperaturami TH i TL z yednanimi trubkoyu zapovnenoyu He II Koli teplo podayetsya do garyachogo kincya tisk stvoryuyetsya na garyachomu kinci vidpovidno do rivnyannya 7 Cej tisk zmushuye ruhatisya normalnu komponentu vid garyachogo kincya do holodnogo kincya vidpovidno do rivnyannya D p h n Z V n displaystyle Delta p eta n Z dot V n nbsp 9 Tut hn v yazkist normalnoyi komponenti 29 Z pevnij geometrichnij mnozhnik a V n displaystyle dot V n nbsp ob yemnij potik Normalnij potik vrivnovazhuyetsya potokom nadplinnoyi komponenti vid holodnogo do garyachogo kincya Na kincevih dilyankah vidbuvayetsya peretvorennya normalnoyi komponenti v nadplinnu i navpaki Otzhe teplo perenositsya ne zavdyaki teploprovidnosti a cherez konvekciyu Cej vid perenesu tepla ye duzhe efektivnim tak sho teploprovidnist He II nabagato bilsha nizh teploprovidnist najkrashih materialiv Situaciya porivnyanna z teploprovodami de teplo transportuyetsya zavdyaki gazoridinnij konversiyi Visoka teploprovidnist He II zastosovuyetsya dlya stabilizaciyi nadprovidnih magnitiv napriklad u Velikomu adronnomu kolajderi v CERNi Teoriya RedaguvatiDvoridinnij pidhid Landau Redaguvati Fenomenologichna i napivmikroskopichna teoriya nadplinnosti geliyu 4 Leva Landau prinesla jomu Nobelivsku premiyu z fiziki 1962 roku Pripustivshi sho zvukovi hvili ye najbilsh vazhlivimi zbudzhennyami v geliyi 4 pri nizkih temperaturah vin pokazav sho gelij 4 protikayuchi povz stini ne bude spontanno stvoryuvati zbudzhennya yaksho shvidkist potoku mensha za shvidkist zvuku U cij modeli shvidkist zvuku ye kritichnoyu shvidkistyu vishe yakoyi nadplinnist rujnuyetsya Gelij 4 naspravdi maye nizhchu shvidkist potoku nizh shvidkist zvuku ale cya model korisna dlya ilyustraciyi koncepciyi Landau takozh pokazav sho zvukovi hvili ta inshi zburennya mozhut vrivnovazhuvati odne odnogo i ruhatisya nezalezhno vid inshoyi chastini geliyu 4 yaka vidoma yak kondensat Vihodyachi z impulsu i shvidkosti potoku zbudzhen Landau potim viznachiv gustinu normalnoyi ridini yaka dorivnyuye nulyu pri nulovij temperaturi i zbilshuyetsya z rostom temperaturi Pri tak zvanij temperaturi lyambda de gustina normalnoyi skladovoyi dorivnyuye sumarnij gustini gelij 4 vtrachaye nadplinnist Shob poyasniti ranni dani shodo pitomoyi teployemnosti nadplinnogo geliyu 4 Landau postulyuvav isnuvannya osoblivogo tipu zbudzhennya yake vin nazvav rotonom ale pislya otrimannya tochnishih danih vin virishiv sho roton ne vidriznyayetsya vid visokoimpulsnoyi versiyi zvuku Teoriya Landau ne rozroblyala detalno mikroskopichnoyi strukturi nadplinnoyi komponenti ridkogo geliyu Pershu sprobu stvoriti mikroskopichnu teoriyu samoyi nadplinnoyi komponenti zdijsniv Fric London 30 i Tishoyu 31 32 Zgodom rizni avtori zaproponuvali inshi mikroskopichni modeli Yihnya golovna meta polyagaye v tomu shob vivesti formu mizhchastinkovoyi vzayemodiyi mizh atomami geliyu v nadplinnomu stani z pershih principiv kvantovoyi mehaniki Na sogodnishnij den zaproponovano kilka modelej takogo rodu modeli z vihrovimi kilcyami modeli tverdih sfer gausivski klasterni teoriyi tosho Model vihrovogo kilcya Redaguvati Landau vvazhav sho zavihrenist z yavlyayetsya u nadplinnomu geliyi 4 u viglyadi vihrovih listiv ale bulo dovedeno sho taki listi nestijki Lars Onsager a potim nezalezhno vid nogo Richard Fejnman pokazali sho zavihrenist z yavlyayetsya u viglyadi kvantovanih vihrovih linij Voni takozh rozrobili ideyu kvantovovihrovih kilec V 1940 h rokah Ariye Bajl 33 a takozh Fejman u 1955 34 rozrobili mikroskopichni teoriyi dlya rotonu yakij nezabarom sposterigavsya eksperimentah z nepruzhnogo rozsiyannya nejtroniv Palevskogo Piznishe Fejnman viznav sho jogo model daye lishe yakisne uzgodzhennya z eksperimentom 35 36 Modeli zhorstkih sfer Redaguvati Modeli zhorstkih sfer vikoristovuyut sproshenu formu mizhchastinkovogo potencialu vzayemodiyi mizh atomami geliyu 4 v nadplinnih fazah A same potencial peredbachayetsya tipu tverdih sfer 37 38 39 U cih modelyah yakisno vidtvoryuyetsya vidomij rotonnij spektr zbudzhen Landau Gausivskij klasternij pidhid Redaguvati Cej dvomasshtabnij pidhid opisuye nadplinnu komponentu ridkogo geliyu 4 Vin skladayetsya z dvoh vkladenih modelej pov yazanih mizh soboyu za dopomogoyu parametrichnogo prostoru Korotkohvilova chastina opisuye vnutrishnyu strukturu pakunku plinu vikoristovuyuchi neperturbativnij pidhid zasnovanij na logarifmichnomu en rivnyanni Shredingera i ps t D ps ps ln ps 2 0 displaystyle i frac partial psi partial t Delta psi psi ln psi 2 0 nbsp dlya kompleksnoznachnoyi funkciyi ps ps x t displaystyle psi psi mathrm mathbf x t nbsp tut D displaystyle Delta nbsp laplasian shodo vektora x displaystyle mathrm mathbf x nbsp vona proponuye gausivskopodibnu povedinku gustini j mizhchastinkovogo potencialu vnutrishnoyi vzayemodiyi elementa Dovgohvilova chastina ce kvantova teoriya bagatoh til takih elementiv yaka zajmayetsya yihnoyu dinamikoyu i vzayemodiyeyu Pidhid zabezpechuye yedinij opis fononnih maksonnih i rotonnih zbudzhen i maye znachne uzgodzhennya z eksperimentom vikoristovuyuchi lishe odin vazhlivij parametr mozhna z visokoyu tochnistyu vidtvoriti rotonnij spektr Landau shvidkist zvuku i strukturnij faktor en nadplinnogo geliyu 4 40 Cya model vikoristovuye zagalnu teoriyu kvantovih ridin Boze z logarifmichnimi nelinijnostyami 41 sho bazuyutsya na vvedenni vnesku disipativnogo tipu en v energiyu pov yazanu z kvantovoyu funkciyeyu entropiyi Everetta Girshmana en 42 43 Praktichne zastosuvannya RedaguvatiTehnologiya nadplinnogo geliyu vikoristovuyetsya dlya rozshirennya temperaturnogo diapazonu kriokuleriv en do nizhchih temperatur Dosi mezha stanovit 1 19 K ale potencijno mozhlivo dosyagti 0 7 K 44 Neshodavno koli nadplinnij gelij 4 bulo uspishno zastosovano v himichnih spektroskopichnih metodah yak kvantovij rozchinnik en Krapelna spektroskopiya v nadplinnomu geliyi yavlyaye velikij interes dlya vivchennya molekul gazu oskilki nadplinne seredovishe dozvolyaye molekuli solvatovanij u nomu mati efektivnu svobodu obertannya zavdyaki chomu molekula mozhe povoditisya podibno do togo yak ce bulo b u gazovij fazi Krapelki nadplinnogo geliyu mayut harakternu temperaturu blizko 0 4 K sho oholodzhuye solvatovanu molekulu chi molekuli majzhe do yiyi rovibronnogo stanu en odnochasnoyi vzayemodiyi mizh obertalnimi kolivalnimi j elektronnimi stupenyami svobodi v molekuli dzherelo Rozchinennya geliyu 3 v nadplinnomu geliyi 4 prizvodit do oholodzhennya sumishi sho dozvolyaye dosyagti she nizhchih temperatur Cej proces zastosovuyetsya v refrizheratori rozchinennya Koli koncentraciya geliyu 3 v rozchini dosyagaye rivnya nasichenosti blizko 7 zalezhit vid temperaturi a temperatura zmenshuyetsya do 870 miliKelviniv mK rozchin spontanno rozdilyayetsya na dvi fazi nadplinnij rozchin geliyu 3 v geliyi 4 mistit blizko 6 6 geliyu 3 ta rozchin geliyu 4 v geliyi 3 majzhe povnistyu skladayetsya z geliyu 3 Fazu bagatu geliyem 3 mozhna vidokremiti viparuvati gelij 3 za temperatur 500 700 mK parcialnij tisk jogo pari znachno bilshij nizh geliyu 4 oholoditi j znovu podati do jogo kameri rozchinennya Takim chinom temperatura v kameri rozchinennya znovu zmenshitsya 45 Teoretichno cej proces mozhna prodovzhuvati neskinchenno otrimuyuchi vse nizhchu j nizhchu temperaturu Utim rozmir aparata zrostaye oberneno proporcijno T4 j za temperatur nizhche 0 2 mK vin staye nadto velikim ta dorogim Oholodzhennya nadplinnim geliyem znajshlo svoye zastosuvannya v kosmichnih aparatah zokrema dlya oholodzhennya nadchutlivih giroskopiv yaki dozvolyayut vimiryuvati deyaki teoretichno peredbacheni gravitacijni efekti U kosmichnomu aparati Gravity Probe B en svincevi ta niobiyevi giroskopi buli zanureni v termos iz geliyem za temperaturi nizhche 2 K sho dozvolilo yim zberigati nadprovidnij stan 46 Takozh nadplinnij gelij zastosovuyut dlya oholodzhennya bolometriv yaki vimiryuyut infrachervone ta mikrohvilove viprominyuvannya Na astronomichnomu suputniku IRAS zapushenomu v sichni 1983 roku dlya sposterezhen v infrachervonomu diapazoni dlya oholodzhennya detektoriv do temperaturi 1 6 K 271 55 C bulo vikoristano 73 kilogrami 720 litriv nadplinnogo geliyu 47 Analogichna sistema oholodzhennya bula zastosovana na suputniku COBE yakij vivchav reliktove 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enciklopediya TechTrend Plinnist ridini Nadtekuchist geliyu moyaosvita com uaAnglomovni Redaguvati Nadplinna gustina u neperervnih i diskretnih prostorah Uniknennya nepravilnih uyavlen Nadplinnij Ridkij Gelij II demonstraciyi lyambda tochki perehodu paradoks v yazkosti dvoridinna model fontannij efekt povzucha plivka drugij zvuk Video z divnoyu povedinkoyu nadplinnogo geliyu Nadplinni fazi geliyu Superfluid Helium Droplets An Ultracold Nanolaboratory http web mit edu newsoffice 2005 matter html Indijska stattya pro nadplinni stani nbsp Cya stattya nalezhit do dobrih statej ukrayinskoyi Vikipediyi Otrimano z https uk wikipedia org w index php title Nadplinnij gelij 4 amp oldid 37088391