$B:G=*99?7F|;~!'(B2020-09-26 15:59:01
Ca looping (1$B7o(B) | ||||
---|---|---|---|---|
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
675 | Carbon dioxide methanation in calcium looping process using proton conducting oxides | 13-g | CCU Ca looping Methanation | 12/22 10:44:50 |
cake layer (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
691 | $BEE5$Fs=EAX$N8|$5$K4p$E$/%1!<%/AX$N9=B$I>2A(B | 4-b | cake layer electric double layer Kozeny-Carman | 12/22 12:56:35 |
cake porosity (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
363 | $B%J%N%3%m%$%I$N8B30_I2a$K$*$1$k%1!<%/6u7dN($N4J0WI>2AK!(B | 4-b | filtration cake porosity nanocolloid | 12/20 09:50:54 |
calcium (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 11-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
473 | $B%+%k%7%&%`%$%*%s$rMQ$$$?(BEDLC$B$K$*$1$k%"%K%*%s5Z$SMOG^$NMFNL$KBP$9$k1F6A(B | 11-a | EDLC calcium capacity | 12/20 17:21:12 |
calcium alginate gel (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
230 | $B%"%s%b%K%";@2=:Y6]8GDj2=%2%kN3;RCf$N;@AG$N3H;6$HH?1~$NB.EYO@(B | 12-e | ammonia-oxidizing bacteria calcium alginate gel diffusion/reaction kinetics | 12/18 17:42:09 |
calvin cycle (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
343 | $B%7%"%N%P%/%F%j%"$N%+%k%S%s2sO)$NH?1~B.EYO@%b%G%k$N3+H/(B | 7-f | Synechocystis sp. PCC 6803 kinetic model calvin cycle | 12/19 19:34:05 |
cancer (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
385 | $B2hA|2r@O$rMQ$$$?$,$s:YK&%9%U%'%m%$%I$K$*$1$kLt:^1~EzI>2A(B | 7-e | cancer image analysis spheroid | 12/20 11:15:05 |
capacity (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 11-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
473 | $B%+%k%7%&%`%$%*%s$rMQ$$$?(BEDLC$B$K$*$1$k%"%K%*%s5Z$SMOG^$NMFNL$KBP$9$k1F6A(B | 11-a | EDLC calcium capacity | 12/20 17:21:12 |
capillary (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B IS-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
455 | The role of surface treatment of soil particles in reducing water loss through evaporation | IS-1 | evaporation capillary wettability | 12/20 16:41:49 |
Capillary-induced phase transition (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
617 | $B8GBNI=LL4V$NAB1U@-0zNO$H1U2M660zNO$N(BDFT$B7W;;(B | 12-a | Surface forces Capillary-induced phase transition Density functional theory | 12/21 17:37:15 |
Carbon (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
105 | $B?e7O%+!<%\%s%9%i%j!<$K$*$1$k9bJ,;RE:2C:^$N5[Ce5sF0$,EE6KFC@-$K$*$h$\$91F6A(B | 12-k | Adsorption Dispersion Carbon | 12/16 10:59:31 |
802 | [$B0MMj9V1i(B] $B;:6HO"4X%^%F%j%"%k%U%m!<2r@O$K$h$k@=IJCfBZN1C:AGDjNL2=(B | HQ-21 | Material Flow Analysis Carbon Petrochemical | 12/22 23:51:44 |
carbon black (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 11-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
355 | $B1v2=4xH/K!$K$h$k%j%A%&%`%$%*%sEECSMQ%+!<%\%s%V%i%C%/$N6bB0IT=cJ*=|5n(B ($B%i%$%*%s!&%9%Z%7%c%j%F%#!&%1%_%+%k%:(B/$BG@9)Bg1!9)(B) ($B3X(B)$B!{@P0f(B $B2m9@!&(B | 11-a | carbon black Impurity metal removal Li-ion battery | 12/19 23:19:12 |
carbon dioxide (10$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (4$B7o(B), 1-a (2$B7o(B), IS-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
53 | CAPC$BK!$K$h$kB?AX%U%#%k%?!<$N:n@=(B | 8-e | carbon dioxide polymer filter | 12/3 18:54:46 |
58 | $B%O%K%+%`%m!<%?Fs;@2=C:AGJ,N%K!$N%V%l!<%/%9%k!<(B | 13-g | honeycomb rotor carbon dioxide adsorption | 12/5 09:31:32 |
169 | $BFs;@2=C:AG(B/$B%H%j%(%H%-%7%"%k%-%k%7%i%sFs@.J,7O$NAjJ?9U(B | 1-a | Vapor-Liquid phase equilibrium Carbon dioxide Silicon alkoxide | 12/18 12:18:50 |
225 | $BFs;@2=C:AG(B/$B%a%?%N!<%kFs@.J,7O:.9gN.BNL)EY$NB,Dj$HAj4X(B | 1-a | Methanol Carbon dioxide Density | 12/18 17:29:17 |
348 | $B%7%j%+Cf6u;e$+$i(BCHA$B7?%<%*%i%$%H$X$N7k>=2=@)8f$H(BCO2$BJ,N%$X$N1~MQ(B | 4-a | CHA-type zeolite membrane separation carbon dioxide | 12/19 21:03:20 |
417 | Development of Rapidly Preparation for Drug-encapsulated Liposomes | IS-1 | Liposome Ultrasonication Carbon Dioxide | 12/20 14:10:38 |
539 | Selective CO2 separation from biogas and flue gas with ionic liquid MOF mixed matrix membranes | 4-a | mixed matrix membrane carbon dioxide | 12/20 20:44:22 |
540 | Simulation study of CO2 separation with ionic liquid-MOF composite-mixed matrix membranes | 4-a | mixed matrix membrane carbon dioxide molecular simulation | 12/20 20:48:37 |
551 | Development of Novel Mixed Amine Absorbents for Energy Efficient CO2 Capture | 4-d | amine absorbent cyclic capacity carbon dioxide | 12/20 22:31:49 |
709 | $B9bJ,;RKl$rMQ$$$?(BCO2$BJ,N%2s<}%W%m%;%9@_7W$H7P:Q@-I>2A(B | 4-a | Separation Membrane Carbon dioxide | 12/22 15:10:55 |
Carbon dioxide capture (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
610 | CO2$B5[<}:^$HC_G.:`$r0lBN2=$7$?%^%$%/%m%+%W%;%k$N3+H/(B | 4-d | Carbon dioxide capture Heat storage Microfluidics | 12/21 16:35:53 |
Carbon Dioxide Capture and Utilization (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 3-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
728 | $B;@AGC4BN$rMQ$$$?%1%_%+%k%k!<%T%s%05UH?1~$K$h$k(BCO2$B$N(BCO$BJQ49$N8!F$(B | 3-f | Chemical looping Oxygen carrier Carbon Dioxide Capture and Utilization | 12/22 16:58:25 |
carbon dioxide sorption (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
342 | [$B>7BT9V1i(B] Morphologically Tuned Lithium Silicate Based Ceramic Nanostructures for Enhanced CO2 Sorption | K-2 | carbon dioxide sorption lithium silicate nanostructures | 12/19 19:32:09 |
Carbon dixoide mitigation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HC-11 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
350 | [$B0MMj9V1i(B] CO2$BBgI}:o8:$K$`$1$F$NE49]%W%m%;%9$N>-MhA|(B | HC-11 | Steel industry Carbon dixoide mitigation Ironmaking | 12/19 21:23:53 |
Carbon doping (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
601 | Synergistic Effect of 3D Hierarchical Microsphere TiO2 by Carbon Doping for The Photocatalytic Antibiotic Degradation | 5-a | 3D hierarchical TiO2 microsphere structure Carbon doping Antibiotic degradation | 12/21 16:12:38 |
Carbon electrode (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
205 | [$B0MMj9V1i(B] Porous carbon materials as electrodes for redox flow batteries | K-2 | Redox flow battery Carbon electrode Electrochemical reaction | 12/18 16:12:24 |
Carbon free (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
612 | $B6bB0;@2=J*$rC4BN$KMQ$$$?;@AGH/@8H?1~MQ%3%s%]%8%C%HEE6K?(G^$N3+H/(B | 12-c | Water splitting OER electrocatalyst Carbon free | 12/21 16:39:19 |
776 | Connected Pt-Co Catalysts Possessing Chemically Ordered Structures for Improved Oxygen Reduction Performances | 9-e | Polymer electrolyte fuel cell Carbon free ORR electrocatalyst | 12/22 22:23:37 |
Carbon free catalysts (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
587 | $B8GBN9bJ,;R7A?eEE2rMQ(BIr-Ru$B%J%NN3;RO"7k?(G^$N3+H/(B | 12-d | Polymer electrolyte water electrolysis Connected nanoparticle catalysts Carbon free catalysts | 12/21 14:21:04 |
carbon membrane (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (2$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
121 | $B?eG.K!$rMQ$$$?%,%9J,N%MQ%"%b%k%U%!%9%+!<%\%sKl$N:n@=$HI>2A(B | 4-a | Carbon membrane gas separation membrane formation mechanism | 12/16 18:58:56 |
433 | $BCf6u;eC:AGKl$N3F | 4-a | carbon membrane dehydration organic solvent | 12/20 15:25:23 |
carbon membranes (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
688 | $B%]%j%$%_%IM3MhC:AGJ#9gKl$N@=Kl>r7o$H%,%9F)2aJ,N%@-(B | 4-a | carbon membranes gas separation composite membranes | 12/22 12:43:57 |
carbon molecular sieve membranes (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (2$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
687 | Effect of carbonization condition on gas permeation properties of carbon hollow fiber membranes | 4-a | carbon molecular sieve membranes hollow fiber membranes gas separation | 12/22 12:41:59 |
689 | $BC:AGKl$N?e>x5$F)2aFC@-(B | 4-a | carbon molecular sieve membranes water vapor gas separation | 12/22 12:47:21 |
Carbon nano tube (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
528 | $B%+!<%\%s%J%N%A%e!<%V(B $BJ,;61U$r86NA$H$7$?%b%N%U%#%i%a%s%HA!0]$NO"B3D4@=(B | 5-f | Microfluidic device Carbon nano tube Jet flow | 12/20 20:01:18 |
carbon nanodots (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
511 | $B%+!<%\%s%J%N%I%C%H$N%=%k%\%5!<%^%k9g@.$K$*$1$kH/8w?'@)8f(B | 8-e | solvothermal synthesis photoluminescence carbon nanodots | 12/20 18:56:44 |
Carbon nanofiber electrode (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
286 | Effect of supercritical CO2 drying condition on properties of porous carbon nanofiber electrode and Li-O2 battery performance. | 8-e | Supercritical CO2 drying Carbon nanofiber electrode Li-O2 battery | 12/19 13:31:04 |
carbon nanohorn (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
804 | $B6bB0J,;6%+!<%\%s%J%N%[!<%s$rMQ$$$??eAGCyB"$K4X$9$k8&5f(B | 12-d | carbon nanohorn hydrogen storage hydrogen spillover | 12/22 23:56:32 |
carbon nanotube (9$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (5$B7o(B), 5-h (3$B7o(B), 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
339 | $B9b8zN(%"%k%+%j?eEE2r$N$?$a$N%+!<%\%s%J%N%A%e!<%VKl%Y!<%9;0 | 9-e | Carbon nanotube Hydrogen production alkaline water electrolysis | 12/19 19:12:30 |
353 | $B;@2=J*%$%*%sEAF3@-;@2=J*>e$G$N%+!<%\%s%J%N%A%e!<%V9g@.$N8!F$(B | 9-e | Carbon Nanotube Solid Oxide Fuel Cell | 12/19 22:12:46 |
395 | $BN.F0AX$K$h$k6bB0>K;@1v%_%9%H$+$i$N?(G^C4;}$HD9<\%+!<%\%s%J%N%A%e!<%V$NN.F0AX9g@.(B | 12-d | Carbon nanotube Fluidized bed Chemical vapor deposion | 12/20 12:26:35 |
396 | $BN.F0AX$K$h$kM-5!6bB0>x5$6!5k$H?(G^C4;}$*$h$SD9<\%+!<%\%s%J%N%A%e!<%V$N9g@.(B | 5-h | carbon nanotube fluidized bed chemical vapor deposition | 12/20 12:26:39 |
515 | X$B@~4IMQ%+!<%\%s%J%N%A%e!<%VEE3&J|=PEE;R8;$N:n@=$H3,AX9=B$@)8f(B | 5-h | carbon nanotube electron field emitter hierarchical structure control | 12/20 19:10:32 |
542 | $B8GBN;@2=J*G3NAEECS$X$N%+!<%\%s%J%N%A%e!<%VD>@\@.D9$KBP$9$k%$%*%sEAF3@-;@2=J*$N1F6A(B | 9-e | Solid oxide fuel cell Carbon nanotube oxide ion conductor | 12/20 21:10:30 |
572 | $B8GBN86NAJ;MQ(BPECVD$BK!$K$*$1$kJ,;6G^$,9g@.$5$l$?J#9gGvKl$K5Z$\$91F6A(B | 5-h | titanium dioxide carbon nanotube photocatalyst | 12/21 10:45:49 |
589 | $B?eAGH/@8$rL\;X$7$?%j%]%=!<%`(B/$BC1AX%+!<%\%s%J%N%A%e!<%V(B/$B%U%i%m%G%s%I%m%s8w?(G^J#9g:`NA$NI>2A(B | 9-e | liposome carbon nanotube photocatalyst | 12/21 14:36:35 |
798 | Thermopower Wave$B$K4p$E$$$?H/EE%G%P%$%9$K4X$9$k8&5f(B | 9-e | thermopower wave carbon nanotube power generation | 12/22 23:43:29 |
Carbon nanotubes (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
337 | $B0BDj!&9b%(%M%k%.! | 12-a | Li metal anode Carbon nanotubes Li nucleation point | 12/19 18:57:56 |
518 | $BC:AGN3;R!&%J%N%A%e!<%VJ#9g<+N)Kl$rMQ$$$?6bB0(BLi$BGvKlFs | 11-a | Li metal anode Carbon nanotubes matrix structure | 12/20 19:27:14 |
Carbon Recycle (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SS-6 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
34 | [$B>7BT9V1i(B] CO2$B$rC:AG8;$H$7$?%W%i%9%A%C%/86NA@=B$(B | SS-6 | Hydrogen Carbon Recycle Olefin | 12/2 15:46:04 |
Carbon supported copper catalyst (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
200 | [$B0MMj9V1i(B] $B9bL)EYC:AGC4;}F | HQ-21 | Hydrodeoxygenation Carbon supported copper catalyst Polyols | 12/18 15:43:22 |
Carbon-Free (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
600 | $B%7%j%+%3!<%HK!$K$h$k(BPEFC$BMQ(BPt-Fe$B%J%NN3;RO"7k?(G^$N9=B$@)8f$H;@AG4T85FC@-$N8~>e(B | 12-i | Chemically Ordered Structure Carbon-Free Nanostructured Catalyst | 12/21 16:05:54 |
Carbonate looping (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
681 | $BC:;@1v%k!<%WK!$K$h$kFs;@2=C:AGMxMQ$r;X8~$7$?%+%j%&%`7O%-%c%j%"N3;R$N3+H/(B | 13-g | Methanation CCU Carbonate looping | 12/22 12:31:17 |
Carboxybetaine polymer (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
266 | $B%+%k%\%-%7%Y%?%$%s%]%j%^!<$r%0%i%U%H$7$?Dc%U%!%&%j%s%0Kl$N3+H/(B | 4-a | Membrane Low-fouling Carboxybetaine polymer | 12/19 11:16:05 |
carotenoid (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
296 | $B9ZJl$rMQ$$$?9ZAG$N%_%H%3%s%I%j%"6I:_2=$K$h$k&B(B-$B%+%m%F%s9b8zN(@8;:(B | 7-a | yeast carotenoid mitochondria | 12/19 14:01:42 |
Cascade (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
622 | $B?75,%+%9%1!<%I7?O"B3%U%m!<>=@O$rMQ$$$?7k>=N3;R72$NIJ | 12-g | Crystallization Continuous flow Cascade | 12/21 18:23:52 |
catalysis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
530 | TiO2-Zeolite $BJ#9gKl$N3+H/(B | 4-a | zeolite membrane catalysis | 12/20 20:15:58 |
catalyst (8$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (3$B7o(B), K-3 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
239 | $B6bB0%I!<%W(BTiO2$B5e>uB?9&BN$N9g@.$H?(G^E*(BCO2$B%a%?%s2=H?1~(B | 12-d | TiO2 doping catalyst | 12/18 19:59:04 |
386 | $B5!3#3X=,$rMQ$$$?9b3h@-?(G^$N3+H/(B | 6-e | Machine Learning Catalyst Organic Synthesis | 12/20 11:21:16 |
466 | $B | 5-a | catalyst WGS simulation | 12/20 17:14:02 |
484 | Pd$BKlH?1~4o$rMQ$$$?%a%?%s%I%i%$%j%U%)!<%_%s%0H?1~$X$N1~MQ$rL\;X$7$??(G^3+H/(B | 5-d | membrane reactor oxygen storage capacity catalyst | 12/20 17:58:12 |
575 | Lattice Boltzmann simulation of catalyst structure-performance relationship in dry reforming of methane | 5-a | Catalyst Structure-performance relationship porous pellet | 12/21 12:10:09 |
724 | $BEE5$2=3XE*B%?J8z2L$rMxMQ$7$?%"%s%b%K%"EE2r9g@.$NEE6K:`NA$N8!F$(B | 9-e | Ammonia electrosynthesis catalyst proton conductor | 12/22 16:38:28 |
771 | [$B>7BT9V1i(B] Nano-catalyst Engineering for Hydrogen Storage and Delivery Utilizing Formic Acid as a Carrier | K-3 | Hydrogen carrier Formic acid Catalyst | 12/22 21:36:31 |
808 | Kinetic analysis of CO2 methanation over a highly active catalyst in a packed bed reactor | 5-a | CO2 methanation catalyst kinetic analysis | 12/22 23:58:45 |
catalyst layer (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-3 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
769 | [$B>7BT9V1i(B] PEMFC modeling based on characterization of effective diffusivity in cathode catalyst layer | K-3 | PEMFC catalyst layer diffusivity | 12/22 21:28:04 |
catalytic cracking (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (2$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
300 | $B%J%U%5@\?(J,2r$NDc292=$rL\;X$7$?(BRh$BC4;}(BZSM-5$B$N?(G^9=B$$N:GE,2=(B | 5-a | naphtha catalytic cracking light olefins | 12/19 14:32:17 |
620 | $BB?4DK'9aB2C:2=?eAG$N@\?(J,2rH?1~$X$N5!3#3X=,$NE,MQ(B | 5-a | machine learning feature engineering catalytic cracking | 12/21 18:04:06 |
catalytic fast pyrolysis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-g (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
580 | $B%j%0%K%s$N5^B.G.J,2rFC@-$K5Z$\$9;vA0?eAG2==hM}$N1F6A(B | 5-g | lignin hydrogenation catalytic fast pyrolysis | 12/21 13:10:13 |
Catalytic mechanism (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
418 | Mg$B$N?eAG5[B"FC@-$KBP$9$k6bB0;@2=J*$NHy:Y9=B$$*$h$S?(G^5!9=$N8!F$(B | 9-e | Magnesium hydride Hydrogen storage Catalytic mechanism | 12/20 14:13:07 |
catalytic membrane reactor (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
347 | $B%7%j%+C4;}(BPt$B?(G^$rMQ$$$?(BMCH$BC&?eAGH?1~$*$h$S?(G^Kl$N:n@=(B | 4-a | catalytic membrane reactor organic hydride hydrogen storage | 12/19 20:53:32 |
catalytic performance (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
306 | $B%=%k%\%5!<%^%kK!$rMQ$$$?(BRu$B6bB04^M-(BTiO2$B5e>uB?9&BN$N0lCJ3,9g@.(B | 8-e | solvothermal method metal nanoparticles catalytic performance | 12/19 14:50:18 |
Catalytic wall plate reactor (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
662 | [$B0MMj9V1i(B] $BG.!&J* | HQ-21 | Catalytic wall plate reactor Assembly-type microreactor Dry reforming of methane with CO2 | 12/22 07:54:42 |
cationic liposome (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
341 | $BC@4I$,$s$KBP$9$k%+%A%*%s%j%]%=!<%`$N<#NE8z2L(B | 7-e | antitumor effect cationic liposome cholangiocarcinoma | 12/19 19:15:15 |
Cavitation (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
90 | $B9bB.3IYB5!$K$h$k5$K"4,$-9~$_8=>]$N(BCFD$B2r@O(B | 2-b | Mixing CFD Cavitation | 12/13 16:55:08 |
164 | $B?e$ND62;GHC&5$$X$N<~GH?t$N1F6A(B | 5-b | Ultrasonic Degassing Cavitation | 12/18 10:46:10 |
Cavitation Microbubbles (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
701 | $BN.BNNO3XE*%-%c%S%F!<%7%g%sJ,;6K!$rMQ$$$??(G^%9%i%j!<$ND4@=$H(BPEFC$BH/EE@-G=(B | 9-e | Cavitation Microbubbles Continuous Flow Process Polymer Electrolyte Fuel Cell | 12/22 14:36:55 |
CCS (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SS-8 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
204 | [$B>7BT9V1i(B] CO2$BJ,N%$N$?$a$NJ,;R%2!<%HKl%b%8%e!<%k$N3+H/(B | SS-8 | pre-combustion membrane CCS | 12/18 16:05:30 |
CCU (6$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-g (5$B7o(B), HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
62 | $B%+!<%\%s=[4D%a%?%s2=%7%9%F%`(B $B!=%i%\%9%1!<%k;n835!$rMQ$$$?=[4D%3%s%;%W%H$NZ!=(B | 13-g | CO2 CCU Methanation | 12/6 09:39:59 |
63 | $B%+!<%\%s=[4D%a%?%s2=%7%9%F%`(B -H2$B%9%$!<%W!$%a%?%s2=H?1~G.MxMQ$K$h$k(BCO2$B2s<}F0NO$NDc8:(B- | 13-g | CCU Adsorption Methanation | 12/6 13:44:46 |
65 | $B%+!<%\%s=[4D%a%?%s2=%7%9%F%`!!!=(B $BG.<+N)7?FsCJ%a%?%s2=H?1~4o$N@-G=(B $B!=(B | 13-g | CCU Methanation Heat Recovery | 12/6 18:15:50 |
231 | [$B0MMj9V1i(B] $BD6NW3&(BCO2$B$NM-8zMxMQ$K$h$k?75,B?9& | HQ-21 | CCU Supercritical carbon dioxide Porous material | 12/18 17:46:16 |
675 | Carbon dioxide methanation in calcium looping process using proton conducting oxides | 13-g | CCU Ca looping Methanation | 12/22 10:44:50 |
681 | $BC:;@1v%k!<%WK!$K$h$kFs;@2=C:AGMxMQ$r;X8~$7$?%+%j%&%`7O%-%c%j%"N3;R$N3+H/(B | 13-g | Methanation CCU Carbonate looping | 12/22 12:31:17 |
CDR grafting (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
76 | CDR$B%0%i%U%F%#%s%05;=Q$rMQ$$$?%&%5%.(BscFv$B$NFC0[@-JQ49(B | 7-b | Immunoassay CDR grafting scFv | 12/11 13:54:56 |
cell culture (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
430 | $B8w2M66@-%<%i%A%s$rMQ$$$?B?9&@-%O%$%I%m%2%k$NHy:Y2C9)$H:YK&G]M\(B | 7-e | tissue engineering cell culture hydrogel | 12/20 15:16:03 |
cell image analysis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
89 | $B:YK&2hA|2r@O5;=Q$rMQ$$$??@7PJ]8n2=9gJ*$N%W%m%U%!%$%j%s%0(B | 7-a | drug screening cell image analysis | 12/13 15:26:59 |
cell membrane (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
651 | $B%J%NN3;R$HHy | 12-a | cell membrane nanoparticle electric field | 12/22 00:14:08 |
cell patterning (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
263 | $BMM!9$JAH@.$N%2%k4pHD>e$K$*$1$k:YK&M7Av;n83$N$?$a$N(Binkjet$B<0%W%j%s%F%#%s%0$K$h$k:YK&%Q%?!<%K%s%0(B | 7-e | hydrogel inkjet printing cell patterning | 12/19 11:04:11 |
cell quality (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
139 | $B5!G=@-%^%F%j%"%kI>2A$K$*$1$k:YK&7ABV2hA|2r@O$rMQ$$$?:YK& | 7-e | cell quality biomaterial peptide | 12/17 16:01:12 |
cell seeding (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
155 | iPS$B:YK&<+F0G]M\$K$*$1$kGE | 7-a | human iPS cell regenerative medicine cell seeding | 12/17 18:41:26 |
Cellular behavior (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
75 | $BB.EYO@%b%G%k$rMQ$$$?3QKl>eHi:YK&%7!<%H$N5sF02r@O(B | 7-e | Computer simulation Cellular behavior Kinetic model | 12/11 12:34:38 |
cellulose (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
492 | $B%;%k%m!<%97O%P%$%*%^%9$+$i$N%a%P%m%s;@$N@8;:$r;X8~$7$?BgD26]$NAO@8(B | 7-a | Escherichia coli mevalonate cellulose | 12/20 18:30:05 |
Cellulose Nanofiber (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
475 | $B | 13-d | cellulose nanofiber biomass GHG emission | 12/20 17:27:39 |
679 | $BG.2DA:@- | 12-j | Cellulose Nanofiber Polymer Foams Surface chemical modification | 12/22 11:18:23 |
Cement and FRP (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-k (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
414 | $BGQ(BFRP$BGK:UJ*$r%;%a%s%H$GB$N3$7$??M9)9|:`$N:n@=$H@-G=I>2A(B | 12-k | Pelletization Cement and FRP Artificial aggregate | 12/20 14:08:20 |
CeO2 nanoparticles (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
491 | CeO2$B%J%NN3;R$rMQ$$$?%1%_%+%k%k!<%T%s%07?%a%?%s2~ | 5-a | methane reforming CeO2 nanoparticles Reaction analysis | 12/20 18:27:19 |
Ceramics (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
82 | $B%(%/%;%k%.!<2r@O$K$h$k?M9)J*@=B$$N%W%m%;%9@_7W(B | 13-d | Exergy Life cycle assessment Ceramics | 12/12 13:51:44 |
133 | $BmU | 9-b | Regenerative burner system Ceramics Heat storage tank | 12/17 15:12:28 |
cerium oxide (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
188 | $B%5%$%:!&J,I[$N@)8f$K8~$1$?FsCJ%U%m! | 8-e | Hydrothermal synthesis cerium oxide dual-stage flow reactor | 12/18 14:36:10 |
CFD (6$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-f (2$B7o(B), 2-b (2$B7o(B), SS-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
74 | [$B0MMj9V1i(B] $B@_7W$@$1$8$c$b$C$?$$$J$$!#2=3X9)3XE*(BCFD$B3hMQK!(B | HC-12 | Mixing CFD | 12/11 08:51:09 |
90 | $B9bB.3IYB5!$K$h$k5$K"4,$-9~$_8=>]$N(BCFD$B2r@O(B | 2-b | Mixing CFD Cavitation | 12/13 16:55:08 |
114 | CFD$B$K$h$kMcHD8|$,1):,<~$j$N%U%m!<%Q%?!<%s$XM?$($k1F6AM=B,(B | 2-b | CFD Flow Pattern Power Number | 12/16 16:59:30 |
181 | [$B>7BT9V1i(B] $B%(%?%s$H%J%U%5$NG.J,2r$rBP>]$H$7$?(Btabulated chemistry$B$N%(%A%l%s%W%i%s%H$XE,MQ(B | SS-2 | ethane and naphtha pyrolysis tabulated chemistry CFD | 12/18 13:46:32 |
645 | $B= | 5-f | packed bed reactors CFD process design | 12/21 22:51:05 |
649 | $BB?4I<0G.8r497?%^%$%/%m%j%"%/%?%b%8%e!<%k@_7WK!(B | 5-f | Microreactor Design CFD | 12/21 23:47:11 |
CFD simulation (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
360 | $B5$1U3IYBAe$K$*$1$k2C052<$N%,%95sF0$H?a$-9~$_0LCV$K4X$9$k7W;;$N0l8!F$(B | 2-b | CFD simulation gas-liquid mixing tank gas dispersion | 12/20 09:29:01 |
CFD-DEM (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 2-f (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
456 | $BN.F0AX<0(BPM$B=|5nAuCV$K$*$1$k(BPM$BJa=85sF0$N(BCFD-DEM$B%7%_%e%l!<%7%g%s(B | 2-f | Fluidized bed CFD-DEM PM | 12/20 16:42:00 |
CFRP (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 8-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
644 | $B%"%_%sE:2CG.?e$K$h$kC:AGA!0]6/2=%W%i%9%A%C%/$N | 8-d | hydrothemal CFRP amine | 12/21 22:48:47 |
CH3SiCl3 (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-h (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
222 | SiC-CVI$B%W%m%;%9$K$*$1$kI=LLH?1~$N%b%G%k2=$K8~$1$?H?1~2aDx$NM}O@8!F$(B | 5-h | CH3SiCl3 SiC CVI surface reaction | 12/18 16:59:00 |
CHA-type zeolite (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
348 | $B%7%j%+Cf6u;e$+$i(BCHA$B7?%<%*%i%$%H$X$N7k>=2=@)8f$H(BCO2$BJ,N%$X$N1~MQ(B | 4-a | CHA-type zeolite membrane separation carbon dioxide | 12/19 21:03:20 |
chalcopyrite (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 13-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
10 | $BM-5!2&?e$rMQ$$$?2+F<9[(B (CuFeS2) $B?;=P%W%m%;%9$N3+H/(B | 13-i | hydrometallurgy chalcopyrite dimethyl sulfoxide | 11/21 17:19:20 |
Change,or Die ! (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HC-12 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
613 | [$B>7BT9V1i(B] $BCK!"F|K\?M!"%7%K%"!"M-L>Bg3XB4!D!!$=$s$J?M$?$A$@$1$G@o$($^$9$+!)(B | HC-12 | Change,or Die ! U-A-I (Understanding, Agreement, Implementation) 100+30=100 | 12/21 16:48:35 |
Chemical analysis (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SS-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
182 | [$B>7BT9V1i(B] $B%(%A%l%s%W%i%s%H$NG.J,2rO'$HCfDc29>xN17O$NIUCeJ*$N>\:YJ,@O(B | SS-2 | Chemical analysis polymerization deposits coking deposits | 12/18 13:56:39 |
chemical bath deposition (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
303 | $B2=3X1UAjK!$rMQ$$$?%;%l%s2=F | 9-d | thermoelectric properties copper selenide chemical bath deposition | 12/19 14:40:34 |
Chemical Diffusion (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B K-4 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
814 | [$B%"%8%"9q:]>^(B] Rational Synthesis of Materials by Controlling Chemical Diffusion and Reaction | K-4 | Rational Synthesis Chemical Diffusion Reaction | 12/24 09:02:23 |
chemical durability (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
643 | $B9b%9%k%[%s;@4pL)EY%"%$%*%N%^!<= | 9-e | polymer electrolyte fuel cells pore-filling membrane chemical durability | 12/21 22:26:25 |
chemical experiment (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 14-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
102 | $B?73cBg3X$G$N0BA4650i$H2=3X9)3X%3!<%9$N8=>u(B | 14-c | safety education lecture chemical experiment | 12/15 21:08:36 |
Chemical failing (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SS-2 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
184 | [$B>7BT9V1i(B] $B%]%j%^!<2=%U%!%&%j%s%02aDx$NEAG.$*$h$S%l%*%m%8!2A%7%9%F%`$N3+H/(B | SS-2 | Chemical failing Rheology Monitoring | 12/18 14:08:22 |
Chemical heat storage (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HQ-21 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
101 | [$B0MMj9V1i(B] $B?e;@2=%j%A%&%`!??e>x5$7O2D5UH?1~$rMxMQ$7$?Dc292=3XC_G.%7%9%F%`$N3+H/(B | HQ-21 | Chemical heat storage Lithium hydroxide Water vapor | 12/15 18:01:48 |
chemical kinetics (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
61 | $B%j%"%/%?%M%C%H%o!<%/2r@O$K$h$kHyJ4C:G3>F$NH?1~FC@-I>2A(B | 9-c | chemical kinetics NOx drop tube furnace | 12/5 17:35:58 |
Chemical liquid phase method (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
352 | $BN22=F<7OGvKl$NG.EEFC@-(B | 9-d | Low-cost Chemical liquid phase method | 12/19 21:57:20 |
Chemical looping (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
605 | $B2=3X%k!<%WK!$K$h$kE4%I!<%W%P%j%&%`%8%k%3%M!<%H$rMQ$$$?%a%?%sG.J,2r7??eAG@8@.(B | 9-c | Methane decomposition CO2 activation Chemical looping | 12/21 16:14:52 |
728 | $B;@AGC4BN$rMQ$$$?%1%_%+%k%k!<%T%s%05UH?1~$K$h$k(BCO2$B$N(BCO$BJQ49$N8!F$(B | 3-f | Chemical looping Oxygen carrier Carbon Dioxide Capture and Utilization | 12/22 16:58:25 |
Chemical recycle (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B SS-1 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
27 | [$B>7BT9V1i(B] $B%W%i%9%A%C%/%j%5%$%/%k$H%P%$%*%W%i%9%A%C%/(B | SS-1 | Material recycle Chemical recycle Biomassplastics | 12/2 14:39:23 |
Chemical Si-O-Ti Bonds (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
26 | $B8w?(G^MxMQ$N$?$a$N(BTiO2-SiO2$BJ#9g%J%NN3;R$N9g@.(B | 12-d | Chemical Si-O-Ti Bonds Coflow Diffusion Burner Laval Nozzle | 12/2 12:40:10 |
Chemical vapor deposion (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
395 | $BN.F0AX$K$h$k6bB0>K;@1v%_%9%H$+$i$N?(G^C4;}$HD9<\%+!<%\%s%J%N%A%e!<%V$NN.F0AX9g@.(B | 12-d | Carbon nanotube Fluidized bed Chemical vapor deposion | 12/20 12:26:35 |
chemical vapor deposition (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-h (2$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
396 | $BN.F0AX$K$h$kM-5!6bB0>x5$6!5k$H?(G^C4;}$*$h$SD9<\%+!<%\%s%J%N%A%e!<%V$N9g@.(B | 5-h | carbon nanotube fluidized bed chemical vapor deposition | 12/20 12:26:39 |
462 | Time-evolution of film thickness profiles by level set method during CVD multiscale simulation | 5-h | multiscale simulation chemical vapor deposition level set method | 12/20 16:56:34 |
Chemically Ordered Structure (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-i (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
600 | $B%7%j%+%3!<%HK!$K$h$k(BPEFC$BMQ(BPt-Fe$B%J%NN3;RO"7k?(G^$N9=B$@)8f$H;@AG4T85FC@-$N8~>e(B | 12-i | Chemically Ordered Structure Carbon-Free Nanostructured Catalyst | 12/21 16:05:54 |
chemiluminescence (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 5-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
143 | $B2=3XH/8wK!$rMQ$$$?DcG;EY$N;@AG | 5-c | chemiluminescence active oxgen species low concentration | 12/17 16:24:10 |
chemisorption (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 9-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
454 | $B2=3X5[CeK!$rMQ$$$F$NG3NAEECS?(G^$K$*$1$kC4BN8z2L$N8&5f(B | 9-e | fuel cell catalyst chemisorption support effect | 12/20 16:41:27 |
Chinese hamster ovary cell (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
758 | Chinese hamster ovary cell$B$rMQ$$$?%5%aM3Mh=E:?93BN@8;:$K$*$1$kCGJR2=$NM^@)(B | 7-d | Chinese hamster ovary cell Shark-derived heavy chain antibody fragmentation | 12/22 20:51:50 |
chitin and chitosan (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B HC-12 (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
609 | [$B=w@->^(B] $B2=>QIJ%W%m%8%'%/%H%j!<%@!<$H$7$F$N3hF0(B | HC-12 | unutilized resources chitin and chitosan gender equality | 12/21 16:34:32 |
chitosan (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
661 | Fabrication of biodegradable carrier based on chitosan with flow focusing method using microfluidic chip | 7-b | microfluidic chip chitosan uniform carrier | 12/22 07:36:14 |
chitosan nanofibers (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
570 | $B%-%H%5%s(B&$B%-%H%5%s%J%N%U%!%$%P!<4^M-%$%s%/$rMQ$$$?AO=}HoJ$:`$N(B3D$B%W%j%s%F%#%s%0(B | 7-e | chitosan nanofibers wound dressing 3D print | 12/21 09:36:09 |
Chlorinated poly (vinyl chloride) (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-a (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
25 | Effects of Pluronic TR-702 as additive on pore-forming of CPVC flat-sheet membranes prepared by VIPS | 4-a | Pluronic surfactant Pore-forming Chlorinated poly (vinyl chloride) | 12/2 09:25:35 |
CHO cell (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 4-b (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
790 | $BIbM7@-(BCHO$B:YK&$N_I2a%1!<%/(B | 4-b | microfiltration filter cake CHO cell | 12/22 23:21:48 |
CHO cells (4$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-d (3$B7o(B), 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
602 | Recombinant antibody production using a transactivator system in CHO cells. | 7-e | CHO cells recombinant antibody biopharmaceuticals | 12/21 16:13:27 |
666 | $B%2%N%`0BDj2=$rL\;X$7$?(BCHO$B:YK&$K$*$1$k(Bp21/p53$B0dEA;R$N5!G=2r@O(B | 7-d | CHO cells genome instability p21 | 12/22 09:29:12 |
732 | IgG$B@8;::YK&3t9=C[$K$*$1$k0[?t@-(BCHO$B:YK&$N?M0YE*M6F3$N8z2L(B | 7-d | CHO cells aneuploidy chromosome | 12/22 17:45:01 |
753 | CHO$B:YK&$K$*$1$k(BERGIC-53$B$N2a>jH/8=$,93BN$N@8;:@-$KM?$($k1F6A(B | 7-d | CHO cells biopharmaceuticals protein secretion | 12/22 20:02:42 |
cholangiocarcinoma (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-e (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
341 | $BC@4I$,$s$KBP$9$k%+%A%*%s%j%]%=!<%`$N<#NE8z2L(B | 7-e | antitumor effect cationic liposome cholangiocarcinoma | 12/19 19:15:15 |
Cholesterol (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 12-m (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
650 | $B<+8J=89gBN$rH?1~>l$H$7$FMQ$$$?(Bcholesterol$B$N%(%]%-%72=H?1~(B | 12-m | Self-assembly Cholesterol Epoxidation | 12/21 23:58:38 |
chromatography (2$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-c (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
254 | [$B>7BT9V1i(B] $B%/%m%^%H%0%i%U%#! | SP-10 | chromatography hydrophobic interaction chromatography (HIC) ion exchange chromatography (IEX) | 12/19 10:33:06 |
745 | $B%b%N%j%9%/%m%^%H%0%i%U%#!<$K$h$k=$>~%*%j%43K;@$N9=B$2r@O(B | 7-c | chromatography monolith oligonucleotide | 12/22 19:04:03 |
chromosome (1$B7o(B) | ||||
$B$3$N%-!<%o!<%I$,$h$/;H$o$l$F$$$k%7%s%]%8%&%`!&9V1iJ,N`!'(B 7-d (1$B7o(B) | ||||
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | | |
732 | IgG$B@8;::YK&3t9=C[$K$*$1$k0[?t@-(BCHO$B:YK&$N?M0YE*M6F3$N8z2L(B | 7-d | CHO cells aneuploidy chromosome | 12/22 17:45:01 |