A$B2q>l(B | |||||
---|---|---|---|---|---|
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c%G%U%l!<%7%g%s2<$KBP1~$9$k%3%9%H%(%s%8%K%"%j%s%0!d(B | |||||
(10:20$B!A(B11:00)$B!!(B($B:BD9(B $B6bC+(B $B>;M:(B) | |||||
A205 | $BCf>.%W%i%s%H9);v$K1w$1$k(BWBS$B35G0$NE,MQ(B | WBS Scope Work Element | S-16 | 222 | |
A206 | $B3hF04p=`862A4IM}$K$D$$$F(B | ABS ABM Cost Driver | S-16 | 872 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $BF`NI66(B $BC$O:(B) | |||||
A207 | $B35;;8+@Q6HL3?WB.2=(B | Estimation Accuracy Manpower | S-16 | 35 | |
A208 | $B%W%i%s%H7z@_$K$*$1$k8+@Q@Q;;$N%7%9%F%`2=(B ($B%7%9%F%`!&>pJs%7%_%e%l!<%7%g%sIt2q(BCE$BJ,2J2q(B) $B!{(B($BIt(B)$B@nC<(B $B7r;J(B | Estimating System Cost | S-16 | 280 | |
A209 | $BM"=P%W%i%s%H$N86C10L(B($B5!4o!&:`NA(B)$B$N8!F$$K$D$$$F(B | $B%^!<%1%C%H%W%i%$%9$NJQA+(B $B8=CO7z@_9);v$N86C10L(B | S-16 | 11 | |
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $BK\66!!K'5W(B) | |||||
A213 | $B%0%m!<%P%k2=$KBP1~$9$k%W%m%8%'%/%H$N?d?J(B | project globalization evaluation | S-16 | 208 | |
A214 | TCM:$B%H!<%?%k%3%9%H%^%M%8%a%s%H(B-$BJQ99%^%M%8%a%s%H$K$D$$$F(B | Change Management Deviation Dispute | S-16 | 118 | |
B$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c!V6HL3$N8+$($k2=!W(B -$BLdBj2r7h$X$N%"%W%m!<%A(B-, $BE}9g2=9)3X!!!c0lHL8xJg$;$:!d!d(B | |||||
(9:20$B!A(B10:40)$B!!(B($B:BD9(B $B@D;3!!FX(B) | |||||
B202 | $B6HL3%W%m%;%9%b%G%k$r%Y!<%9$H$7$?0BA44IM}$N=EMW@-(B | Safety Management Business Process Model Lifecycle Engineering | S-1 | 997 | |
B203 | $B1?E>4IM}$N8=>u$HLdBjE@(B | Operation Management Lifecycle Engineering | S-1 | 1003 | |
B204 | $B@_Hw4IM}$N8=>u$HLdBjE@(B | Plant Maintenance Lifecycle Engineering | S-1 | 1004 | |
B205 | $BJQ994IM}$N8=>u$HLdBjE@(B | Manage Of Change Lifecycle Engineering | S-1 | 1005 | |
(10:40$B!A(B12:00)$B!!(B($B:BD9(B $B4X!!9(Li(B) | |||||
B206 | $BLdBj$N=j:_$H6HL3%W%m%;%9%b%G%k9=C[$N%"%W%m!<%A(B | Business Process Model Lifecycle Engineering IDEF0 | S-1 | 1008 | |
B207 | $B1?E>4IM}$KBP$9$k6HL3%W%m%;%9%b%G%k$NE,MQ;vNc(B | Business Process Model Operation Management Lifecycle Engineering | S-1 | 1015 | |
B208 | $B%W%i%s%H%i%$%U%5%$%/%k%(%s%8%K%"%j%s%0$r0U<1$7$?%W%m%;%90BA44IM}$N%U%l!<%`%o!<%/(B | Pulant Lifecycle Safety Management Framework | S-1 | 1018 | |
B209 | $B%P%$%*0eLtIJIJ | Bio Fharmaceutical Enfineering System Design | S-1 | 1024 | |
C$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c(BCO2$BGS=P:o8:$KD)$`%(%M%k%.! | |||||
(9:40$B!A(B11:00)$B!!(B($B:BD9(B $B>.AR(B $BM5D>(B) | |||||
C203 | $B%l%$%j! | Photocatalytic Water Splitting Rayleigh Convection Visible/Infrared Radiation | S-3 | 258 | |
C204 | Ca$B$N?eAG2=G.$rMxMQ$7$?4uEZN`7O?eAG5[B"9g6b$NG3>F9g@.(B | combustion synthesis hydrogen storage powder metallurgy | S-3 | 807 | |
C205 | $B5U%S%k%I%"%C%WK!$rMQ$$$?J#9g?eAGF)2aKl$N:n@.J}K!$N | hydrogen palladium permeation | S-3 | 543 | |
C206 | $B>:297?5[<}%R!<%H%]%s%W$H%a%?%N!<%k?e>x5$2~ | Methanol Steam Reforming Absorption Heat Pump waste heat | S-3 | 848 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B8E;3(B $BDL5W(B) | |||||
C207 | $B9|B@$N%(%M%k%.!<%m!<%I%^%C%WBh(B2$BHG=PHG7W2h(B | Roadmap CO2 reduction | S-3 | 1051 | |
C208 | [$B>7BT9V1i(B] 2040$BG/$N(BCO2$BGS=PNLM=B,!!(B-$B9|B@$N%(%M%k%.!<%m!<%I%^%C%WBh(B2$BHG(B- | Roadmap CO2 reduction Risk analysis | S-3 | 1050 | |
$B%7%s%]%8%&%`(B $B!c%(%M%k%.! | |||||
(13:00$B!A(B13:40)$B!!(B($B;J2q(B $B?@86!!?.;V(B) | |||||
C213 | [$BE8K>9V1i(B]$B@PC:G3>F!&%,%92=O'Fb$K$*$1$k3%$NIUCe5sF0$H$=$NDc8:5;=Q(B | Ash deposition Surface treatment technology Fouling and slagging | S-2 | 6 | |
(13:40$B!A(B14:20)$B!!(B($B;J2q(B $B1|B | |||||
C215 | [$BE8K>9V1i(B]$BDcC:AG | coal research ICCS&T CCT/CCS | S-2 | 968 | |
(14:20$B!A(B15:20)$B!!(B($B:BD9(B $B>.NS!!?.2p(B) | |||||
C217 | $BMO:^$rMQ$$$?2:OB$JJ,2rCj=P$K$h$kDcIJ0LC:$NC: | Brown coal Degradative extraction Coal-independent extract | S-2 | 713 | |
C218 | FeO(OH)$B$r4^$`DcIJ0LE49[@P$HDcIJ0LC:M3Mh$NG.2DA:@-C::`$rMQ$$$?9bB.4T85E4@=B$(B | Rapid reduction of iron ore Iron(III) oxide hydroxide Low rank coal | S-2 | 690 | |
C219 | $BMO:^Cj=P%U%i%/%7%g%M!<%7%g%sK!$K$h$k%3!<%/%9@=B$;~$N86NAC:$*$h$SG47k:`$N5sF02rL@(B | Solvent Extraction Metallurgical Coke Binder | S-2 | 745 | |
D$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c4D6-It2q%7%s%]%8%&%`!d(B | |||||
(9:00$B!A(B10:00)$B!!(B($B:BD9(B $BC]2<7rFs(B) | |||||
D201 | [$BE8K>9V1i(B]$B=88w7?B@M[G.MxMQ5;=Q$K$h$k%5%s%Y%k%H3+H/(B-$BDcC:AG | Low-carbon society Solar thermochemical process | S-6 | 786 | |
D203 | MFA$B$ND94|%7%_%e%l!<%7%g%s%b%G%k$N3+H/(B | MFA Simulation Material | S-6 | 871 | |
(10:00$B!A(B11:00)$B!!(B($B:BD9(B $BD.ED(B $BMN(B) | |||||
D204 | $B?eAG:.9g%O%$%I%l!<%H$K$*$1$k?eAG$N3H;65sF0$N2r@O(B | Gas hydrate Hydrogen storage Kinetics | S-6 | 571 | |
D205 | $BEE5$F)@OK!$rMQ$$$?Fs;@2=C:AGJ,N%!&2s<}5;=Q$N3+H/(B | electrodialysis CO2 recovery bipolar membrane | S-6 | 847 | |
D206 | $B9b055[<}Ec!&>o05J|;6Ec$rMQ$$$?Fs;@2=C:AG$N2s<}(B | carbon dioxide absorption low energy consumption | S-6 | 859 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B9b66(B $B?-1Q(B) | |||||
D207 | $B%$%*%s1UBN%O%$%V%j%C%I5[<}1U$K$h$kFs;@2=C:AG$NJ,N%2s<}5;=Q$N3+H/(B | ionic liquid carbon dioxide absorption | S-6 | 676 | |
D208 | $B9b05MQ(BCO2$B2=3X5[<}1U$N3+H/(B | CO2 capture and storage Amine solution High pressure gas | S-6 | 241 | |
D209 | $B4%AgCO$N | arid land afforestation CO2 fixation photosynthesis | S-6 | 396 | |
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $BCf0fCR;J(B) | |||||
D213 | [$BE8K>9V1i(B] $BNPAtN`%\%H%j%*%3%C%+%9$NM-5!GS?eMxMQ@-$H;:@8%*%$%k$NFC@-(B | LCA Utilization of wastewater Botryococcus | S-6 | 509 | |
D215 | $BGQ?)MQL}$NM-8zMxMQ$K4X$9$k8&5f(B | Waste cooking oil Biodiesel Biomass | S-6 | 987 | |
(14:00$B!A(B15:00)$B!!(B($B:BD9(B $BJ?ED(B $B@?(B) | |||||
D216 | $B4%AgCO?"NS$K$h$kC:AG8GDjNLM=B,(B | ASTER biomass estimation carbon stock | S-6 | 445 | |
D217 | $BLZ | woody biomass tar recovery carbonization | S-6 | 612 | |
D218 | $B%5%H%&%-%S%P%$%*%^%9$NC:2=$K$h$kMx3hMQ5;=Q3+H/(B | biomass sugarcane carbonization | S-6 | 526 | |
E$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c4D6-It2q%7%s%]%8%&%`!d(B | |||||
(9:00$B!A(B10:00)$B!!(B($B:BD9(B $B1|EDE/;N(B) | |||||
E201 | $B0k>F$13$0h$X$N(BFe($B-6(B)$B6!5k$K4X$9$k8!F$(B | Fe($B-6(B) concentration Oxidation rate Elution rate | S-6 | 167 | |
E202 | $B3$At$N8w9g@.$K5Z$\$9MOB8E4$N8z2L$N8!F$(B | seaweed photosynthesis dissolved iron | S-6 | 759 | |
E203 | $B3$At72Mn7A@.I>2A%b%G%k$K$h$k0k>F$1H/@8MW0x$N8!F$(B | barren ground mathematical model seaweed beds | S-6 | 620 | |
(10:00$B!A(B11:00)$B!!(B($B:BD9(B $B>>ED!!CR(B) | |||||
E204 | $BHy:YAtN`(BHaematococcus pluvialis$B$+$i$N%"%9%?%-%5%s%A%s@8;:$K5Z$\$9G]M\>r7o$N1F6A(B | Biomass Microalgae Useful material production | S-6 | 484 | |
E205 | $B=[4D7?%H%$%l%7%9%F%`9=C[$K8~$1$?>t2=8zN($N8!F$(B | water treatment activated sludge process water recycle | S-6 | 660 | |
E206 | $BD6NW3&N.BNCj=P5;=Q$rMQ$$$?%-%N%s%W%m%U%!%$%kK!$K$h$k7y5$@->C2==hM}$N0BDj@-2r@O(B | Supercritical fluid extraction Quinone profiles Anaerobic digestion | S-6 | 785 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B:XLZ(B $BGn(B) | |||||
E207 | $B%i%C%H5k1B;n83$K4p$E$/9b299b05?eH?1~$K$h$j@=B$$7$?1U>u;tNA2ACM$NI>2A(B | hydrothermal reaction liquid feeding | S-6 | 978 | |
E208 | $B2HDmMQ@8%4%_=hM}5!$N;n:n$H@-G=I>2A(B | garbage treatment microbial decomposition domestic uses | S-6 | 285 | |
E209 | $B4D6-;nNACf$NFCDjHy@8J*!&0dEA;R$N8!=P | Detection of specific microbes Environmental Samples Reverse Transcription - PCR | S-6 | 283 | |
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $B>e9>='(B $B0lLi(B) | |||||
E213 | $B9b299b05?e$G=hM}$7$? | sake lees lactic fermentation SSF | S-6 | 738 | |
E214 | $BGr?'Ie5`6]$K$h$kFqJ,2r@-%Y%s%<%sM6F3BN@8J,2rH?1~$N2r@O(B | basidiomycete xenobiotics biodegradation | S-6 | 866 | |
E215 | $B3&LL3h@-:^$rMQ$$$k?eCfAB?e@-M-5!1x@wJ* | coagulation-sedimentation method anionic surfactant hydrophobic organic pollutants | S-6 | 24 | |
(14:00$B!A(B15:00)$B!!(B($B:BD9(B $B@u8+(B $BOB9-(B) | |||||
E216 | $B@P$1$s$r | activated sludge biodegradation modelling | S-6 | 598 | |
E217 | $B;iKC;@AH@.$K$h$kK">C2P:^$NDc29FC@-$N2~A1(B | firefighting agent fatty acid soap | S-6 | 307 | |
E218 | $B?75,@8J,2r@-J]?e:`$N9g@.$H9ZAGJ,2r$K$h$k@8J,2r@-I>2A(B | biodegradability super absorbent polymers | S-6 | 443 | |
F$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c:`NA!&3&LLF$O@2q!V:`NAAO@.$H3&LL8=>]!W!d(B | |||||
(9:00$B!A(B10:20)$B!!(B($B:BD9(B $B9b8+@?0l(B) | |||||
F201 | ZnO$B%J%N9=B$GvKl$NDc29?eG.9g@.(B | ZnO nanorods seed growth hydrothermal synthesis | S-8 | 170 | |
F202 | $B0!1t4T85K!$rMQ$$$?5!G=@-%7%j%3%s:`NA$N@8@.(B | Zinc reduction silicon materials morphology | S-8 | 295 | |
F203 | $B>o054%AgK!$K$h$kDcL)EY%7%j%+%(%"%m%2%k$ND4@=(B | silica aerogels low density | S-8 | 316 | |
F204 | $BB?7k>=@-5e>u%A%?%K%"N3;R$H6bB0%J%NN3;R$NJ#9g2=$K$D$$$F(B | Titania composite metal nanoparticle | S-8 | 284 | |
(10:20$B!A(B11:00)$B!!(B($B:BD9(B $B1sF#!!L@(B($B;:Am8&(B)) | |||||
F205 | $B%J%NB?9&BN$X$N?eAGF10LBN:.9g5[Ce%7%_%e%l!<%7%g%s(B | quantum effects hydrogen isotopes adsorption GCMC simulation | S-8 | 319 | |
F206 | $B%a%=%]!<%i%9M-5!%7%j%+$K$*$1$kM-5!4p$N?eAG5[CeFC@-(B | hydrogen adsorption periodic mesoporous organosilica adsorption | S-8 | 890 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B@>;3!!7{OB(B) | |||||
F207 | $BA+0\6bB0%I!<%W?75,F)L@7V8wBN$N3+H/$K4X$9$k8&5f(B | silica glass luminescence phosphor | S-8 | 438 | |
F208 | $BM-5!9=B$5,Dj:^$rMQ$$$J$$(BMTW$B7?%<%*%i%$%H$N9g@.$HFC@-(B | zeolite seed-assisted synthesis alkali metal cation | S-8 | 469 | |
F209 | $B%3%P%k%H;@2=J*%J%N%o%$%d9=B$BN$K$*$1$kIT4xH/@-Dq93JQ2=%a%b%j8z2L(B | Oxide nanowire VLS Nonvolatile Resistive Switching | S-8 | 377 | |
G$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c>=@OA`:n$H3&LL8=>]$K4X$9$k%7%s%]%8%&%`!J:`NA!&3&LLIt2q!K!d(B | |||||
(9:00$B!A(B10:20)$B!!(B($B:BD9(B $BA0ED(B $B8w<#(B) | |||||
G201 | $BCl>uCf6uC:;@%+%k%7%&%`$N7A@.5sF0(B | calcium carbonate hollow structure crystallization | S-10 | 209 | |
G202 | $BMO1U9=B$$+$i8!F$$7$?0eLt%i%;%_2=9gJ*$N>=@O5sF0(B | crystallization racemic pharmaceutical | S-10 | 315 | |
G203 | [$B4pD49V1i(B] $BMO1U9=B$$+$i9=C[$9$k>=@O$NO@M}(B | solution structure crystallization | S-10 | 164 | |
(10:20$B!A(B11:20)$B!!(B($B:BD9(B $B>>1:(B $B?-<#(B) | |||||
G205 | $BF}2=>=@OA`:n$K$*$1$k1UE)3&LL$KCeL\$7$?2aNd5QEY@)8f(B | emulsion crystallization pearl agent supercooling | S-10 | 71 | |
G206 | $B%;%0%a%s%H%U%m!<$rMQ$$$?5$1U@\?(H?1~$K$h$kC:;@%+%k%7%&%`N3;R$N9g@.(B | calcium carbonate Segmented flow tubular reactor gas-liquid interface | S-10 | 737 | |
G207 | $B1U(B-$B1U3&LL>=@OK!$K$*$1$kAj8_3H;65sF0$N(BMD$B%7%_%e%l!<%7%g%s(B | Crystallization Liquid-liquid interface Molecular Dynamics simulation | S-10 | 462 | |
(11:20$B!A(B12:00)$B!!(B($B;J2q(B $BGr@n(B $BA19,(B) | |||||
G208 | [$B4pD49V1i(B] $B@=:^2=$N$?$a$N:GE,$J86Lt$N7k>=7ABV$N@_7W(B | polymorphs cocrystal cristal habit | S-10 | 1084 | |
(13:00$B!A(B13:40)$B!!(B($B;J2q(B $BBgEh(B $B42(B) | |||||
G213 | [$B4pD49V1i(B] $B$5$^$6$^$JJ,;R4VAj8_:nMQ$H7k>=B?7A8=>](B | polymorph crystallization | S-10 | 203 | |
(13:40$B!A(B14:40)$B!!(B($B:BD9(B $B0$It(B $B=(0l(B) | |||||
G215 | $B%H%m%Q%sM6F3BN2=9gJ*7k>=$NG.NO3XE*0BDj@-I>2A(B | Crystal Polymorph Thermal analysis | S-10 | 373 | |
G216 | $BHsMOG^E:2C>=@O$G$NMOG^OBJ*$NA*BrE*@O=P>r7o$H$=$N7k>=7ABV(B | Crystallization Polymorph Anti-Solvent | S-10 | 439 | |
G217 | $B>K;@%"%k%_%K%&%`7k>=$NM;2r>=@O$K$*$1$k8GBNIT=cJ*$NJ,N%(B | separation solid impurity melting | S-10 | 774 | |
H$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c | |||||
(9:00$B!A(B10:00)$B!!(B($B:BD9(B $B@P85(B $B9'2B(B) | |||||
H201 | $B%+%=!<%I$N9=B$2~NI$K$h$kG3NAEECS$N=PNO8~>e(B | fuel cell cathode powder | S-12 | 84 | |
H202 | C3N4$B$rMQ$$$?A+0\6bB0%J%NN3;RCb2=J*$ND4@=$H(BPEFC$B%+%=!<%I?(G^$H$7$F$NFC@-(B | non precious metal catalyst oxygen reduction reaction nano particle | S-12 | 560 | |
H203 | PEFC$BMQC:AGC4;}(BPt-Co$B9g6b?(G^$N%7%j%+HoJ$$K$h$k9b3h@-2=(B | Pt-Co alloy Silica-coating Fuel cells | S-12 | 59 | |
(10:00$B!A(B11:00)$B!!(B($B:BD9(B $B;38}(B $BLT1{(B) | |||||
H204 | $B@PC:$r8GBN9bJ,;R7AG3NAEECS$NEE6K?(G^$KMQ$$$?8&5f(B | PEFC coal Pt alternative cathode catalyst | S-12 | 353 | |
H205 | $B%7%j%+HoJ$$K$h$k%+!<%\%s%J%N%A%e!<%VC4;}(BPd$B?(G^$NMO=PBQ@-8~>e(B | Fuel Cell Pd Silica-coating | S-12 | 392 | |
H206 | Pd$B%J%NN3;R$NHy@8J*D4@=$HG3NAEECSEE6K?(G^$X$N1~MQ(B | biomineralization palladium fuel cell | S-12 | 446 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B@>B<(B $B82(B) | |||||
H207 | Nanostructure of a non precious catalyst for fuel cells | Electrospinning carbon nanofibers catalyst | S-12 | 724 | |
H208 | $B;@AG%W%i%:%^=hM}$7$?G3NAEECS;@AG6K$N2a;@2=?eAG@8@.G=$NI>2A(B | Plasma treatment Oxygen reduction reaction RRDE technique | S-12 | 161 | |
H209 | PEFC$BMQGr6bEE6K$NNt2=5!9=$K4X$9$kM}O@E*2r@O(B | polymer electrolyte fuel cell dissolved Pt computer simulation | S-12 | 225 | |
(13:00$B!A(B14:00)$B!!(B($B;J2q(B $BC]Cf(B $BAT(B) | |||||
H213 | [$B>7BT9V1i(B] $B8GBN9bJ,;R7AG3NAEECSMQ?(G^$*$h$SEE2ru67$H:#8e$N2]Bj(B | ion exchange membrane electrocatalysts PEFC | S-12 | 60 | |
(14:00$B!A(B15:00)$B!!(B($B:BD9(B $BDE5W0f(B $BLP | |||||
H216 | CO$B%;%s%5$KMQ$$$kG3NAEECS7?%G%P%$%9$N@_7W(B | PEM fuel cell CO sensor I-V curve | S-12 | 144 | |
H217 | [$BM%=(O@J8>^(B]$B8GBN9bJ,;R7AG3NAEECS$NNt2=KI;_$K4X$9$k8&5f(B | PEFC Degradation Radical scavenger | S-12 | 129 | |
H218 | [$BM%=(O@J8>^(B]Modeling for PEFC MEAs Based on Reaction Rate on Pt Surface and Microstructures of Catalyst Layers | Polymer Electrolyte Fuel Cells Modeling Secondary Pore | S-12 | 137 | |
I$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c:G@hC<2=3X9)3X$r;Y$($kJ*@-8&5f!]B,Dj$H%7%_%e%l!<%7%g%s$N8=>u$HE8K>!]!d(B | |||||
(9:00$B!A(B10:00)$B!!(B($B:BD9(B $B;y6L(B $BBgJe(B) | |||||
I201 | $BMOG^OBK!$K$h$k5$1UJ?9U$K$*$1$k1v8z2L$N?d;;(B | salt effect vapor-liquid equilibria distillation | S-7 | 332 | |
I202 | $BAjJ?9U?d;;$KI,MW$J(BASOG$B%0%k!<%WBP%Q%i%a!<%?$N7hDj(B | ASOG Vapor-liquid equilibria tetrahydrofuran | S-7 | 692 | |
I203 | $B5$1UJ?9U%G!<%?$NG.NO3X7rA4@-H=Dj(B-$BEy29(B2$B@.J,(B7283$B7O%G!<%?$X$NE,MQ$H?d;;(B | Gibbs-Duhem equation Thermodynamic consistency one binary parameter Margules equation | S-7 | 1039 | |
(10:00$B!A(B11:00)$B!!(B($B:BD9(B $B:4F#(B $BA1G7(B) | |||||
I204 | 3$B@.J,7O%"%;%H%s(B+$B%(%?%N!<%k(B+1-$B%V%?%N!<%k7O$N(B101.3kPa$B$K$*$1$kDj055$1UJ?9U$NB,Dj5Z$SAj4X(B | bio butanol vapor liquid equilibria distillation | S-7 | 820 | |
I205 | $B%X%-%5%s(B+$BB?J,;6%]%j%(%A%l%s7O$N9b299b05Aj5sF0(B | polydisperse polyethylene phase behavior Sanchez-Lacombe EOS | S-7 | 624 | |
I206 | $B6I=jBN@QJ,N($rMQ$$$?@5B'MO1U%b%G%k$K$h$k5$1UJ?9U$NAj4X(B | Vapor-Liquid Equilibrium Regular Solution Model Ethanol | S-7 | 21 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B8E@n(B $B?.0l(B) | |||||
I207 | [$BE8K>9V1i(B] $BJ,;R%7%_%e%l!<%7%g%s$K$h$k9bJ,;R$NMOM;J*@-M=B,(B | Molecular simulation Polymer melt Physical property | S-7 | 1085 | |
I209 | [$B>7BT9V1i(B] $BD6NW3&Fs;@2=C:AGCf$NMO | Supercritical carbon dioxide Diffusion coefficient Molecular dynamics simulation | S-7 | 1090 | |
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $BFbED(B $BGn5W(B) | |||||
I213 | [$BE8K>9V1i(B] MolWorks$B$rMxMQ$7$?8EE5E*(B/$B%K%e!<%i%k%M%C%H%o!<%/(B/SVR$B$K$h$kJ*@-?d;;(B | Molworks Physical property prediction Neural network | S-7 | 1086 | |
I215 | [$B>7BT9V1i(B] $BJ,;RF0NO3X%7%_%e%l!<%7%g%s$K$h$kD6NW3&?eCf$N(BNaCl$B$N2q9gDj?t$N7W;;(B | Supercritical water NaCl Molecular dynamics simulation | S-7 | 1091 | |
(14:00$B!A(B15:00)$B!!(B($B:BD9(B $B>.^<(B $BLP | |||||
I216 | $B0dEAE*%"%k%4%j%:%`$K$h$kL)EY$*$h$SG4EY$N?d;;(B | genetic algorithm density viscocity | S-7 | 1042 | |
I217 | $B>uBVJ}Dx<0$K$h$kJ*@-?d;;(B | EOS estimation | S-7 | 391 | |
I218 | $BK0OB$r4^$`5$Aj0h$NG.J*@-7hDj$K$*$1$kM}O@GX7J$NI,MW@-(B | Virial Coefficients Intermolecular Potential Equation of State | S-7 | 322 | |
J$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c%W%i%:%^%W%m%;%C%7%s%0$N:GA0@~!d(B | |||||
(9:20$B!A(B10:20)$B!!(B($B:BD9(B $BLn:j(B $BCRMN(B) | |||||
J202 | $B8GBN;@2=J*7AEE2r | Plasma decomposition Carbon dioxide reduction Solid oxide electrolyser cell | S-19 | 309 | |
J203 | $B%W%i%:%^!&EE>l$rMQ$$$??(G^H?1~$NE83+(B | catalytic reaction plasma hydrogen production | S-19 | 314 | |
J204 | $BITK0OBC:2=?eAGIU2CH?1~$X$NBg5$05HsJ?9U%W%i%:%^%8%'%C%H$NMxMQ(B | non-thermal plasma addition reaction unsaturated hydrocarbon | S-19 | 566 | |
(10:20$B!A(B11:20)$B!!(B($B:BD9(B $B4X:,(B $BBY(B) | |||||
J205 | $B%^%$%/%m%W%i%:%^$K$h$k%a%?%s$ND>@\1UBNG3NA2=(B:$BH?1~29EY$N1F6A(B | GTL Microplasma Non-thermal discharge | S-19 | 623 | |
J206 | $B%W%i%:%^(BCVD$B$K$*$1$k3h@- | Carbon nanotube PECVD Radical | S-19 | 550 | |
J207 | $BBg5$05Dc29%W%i%:%^%8%'%C%H$rMQ$$$?1UAj;@AG8;$N3h@-2=(B | atmospheric pressure plasma-jet oxidation | S-19 | 361 | |
(11:20$B!A(B12:00)$B!!(B($B;J2q(B $BEOJU(B $BN49T(B) | |||||
J208 | [$BE8K>9V1i(B] $BH?1~9)3XE*%"%W%m!<%A$K$h$kBg5$05%W%i%:%^$N3hMQ(B | atmospheric pressure plasma reaction field | S-19 | 359 | |
(13:00$B!A(B13:40)$B!!(B($B;J2q(B $BHx>e(B $B70(B) | |||||
J213 | [$BE8K>9V1i(B]$B2=3X9)3X$K$*$1$kBg5$05%W%i%:%^%W%m%;%C%7%s%0$NLr3d(B | thermal plasma nanoparticle synthesis waste treatment | S-19 | 867 | |
(13:40$B!A(B14:40)$B!!(B($B:BD9(B $BB@ED(B $B8w9@(B) | |||||
J215 | $B%,%i%9B$N3J4BN$NB?Aj%"!<%/$K$h$k%$%s%U%i%$%HMOM;FC@-(B | multi-phase arc in-flight melting glass production | S-19 | 260 | |
J216 | $B2sE>7?%W%i%:%^%j%"%/%?!<$K$h$k(BTiO2$BHyN3;R$NItJ,4T85$H$=$N1~MQ(B | Plasma treatment Titanium dioxide Partial reduction | S-19 | 310 | |
J217 | $B%,%9F3F~?eCf%"!<%/%W%i%:%^K!$K$h$k%+!<%\%s%J%N%[!<%s9g@.$H%a%?%s5[B":`NA$X$N1~MQ(B | arc plasma carbon nanohorn methane | S-19 | 244 | |
K$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c0!NW3&!&D6NW3&N.BN5;=Q$N?7E83+!d(B | |||||
(9:00$B!A(B9:40)$B!!(B($B:BD9(B $BEOn5!!8-(B) | |||||
K201 | $BM-5!J,;R?(G^E*3+4D=E9g$K$h$k%]%jF};@9g@.(B: $BD6NW3&Fs;@2=C:AGCf$G$NM-5!MOG^!&6bB0%U%j!<9g@.(B | Supercritical Carbon Dioxide Ring-opening Polymerization Organocatalyst | S-18 | 152 | |
K202 | $BD6NW3&?eCf$G$N=E | supercritical water heavy oil partial oxidation | S-18 | 593 | |
(9:40$B!A(B10:20)$B!!(B($B:BD9(B $BD9ED!!8w@5(B) | |||||
K203 | $B2a;@2=?eAG?eCf$NAB?e@-M-5!J*=|5n(B | Supercritical carbon dioxide Hydrogen peroxide Wafer | S-18 | 88 | |
K204 | $B0!NW3&?e$K$h$k(BFRP$B$N9bIU2C2ACM2=%j%5%$%/%k5;=Q(B(4) | Fiber Reinforced Plastics Low Profile Additive Compatibility | S-18 | 804 | |
(10:20$B!A(B11:00)$B!!(B($B:BD9(B $B:4F#!!9d;K(B) | |||||
K205 | $B?eG.=hM}$H9ZAGE|2=$rAH$_9g$o$;$?GONk$7$g%G%s%W%s@=B$;D^V$NE|2=%W%m%;%9$N8!F$(B | Biomass Subcritical water Enzymatic saccharification | S-18 | 781 | |
K206 | $B?eG.=hM}$K$h$k%3!<%s%3%V$+$i$N%-%7%m%*%j%4E|@=B$(B | hydrothermal reaction biomass xylooligosaccharide | S-18 | 826 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $BhSED!!??><(B) | |||||
K207 | $B9b299b05?e(B-$B%^%$%/%m%j%"%/%?!<$rMQ$$$k%/%i%$%<%sE>0L(B | high-pressure and high-temperature microreactor Claisen rearrangement | S-18 | 256 | |
K208 | $BBQ5W@-$HA`:n@-$r2~NI$7$?9b299b05?e>r7o2<$N(BTi-lining$B%K%H%m2=MQH?1~AuCV(B | Ti-lining microreactor supercritical water nitration | S-18 | 619 | |
K209 | $BN>?FG^@-MOG^E:2CG.?e$K$h$k%O%m%2%s2=%"%k%-%k$+$i$N%"%k%3!<%k$N@8@.(B | 1-dodecanol hydrothermal synthesis | S-18 | 954 | |
(13:00$B!A(B13:40)$B!!(B($B;J2q(B $BBgEg!!5A?M(B) | |||||
K213 | [$BE8K>9V1i(B]$BD6NW3&!&0!NW3&N.BN$rMQ$$$kGQ4~J*$NM-8zMxMQ5;=Q$N | supercritical fluids | S-18 | 1062 | |
(13:40$B!A(B14:40)$B!!(B($B:BD9(B $BCf@n!!>0<#(B) | |||||
K215 | [$BE8K>9V1i(B]$B%P%$%*%^%9;q8;$KBP$9$k0!NW3&!&D6NW3&N.BN$N3hMQK!$H$O!)(B | supercritical fluids | S-18 | 1063 | |
K217 | [$B>7BT9V1i(B] $B0!NW3&?e$r1~MQ$7$?3&LL3h@-:^9g@.%W%m%;%9$N | supercritical fluids | S-18 | 1067 | |
L$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c:`NA$,@Z$jBs$/0eNE$N?7E83+!d(B | |||||
(9:00$B!A(B9:40)$B!!(B($B:BD9(B $B66K\(B $B2mI'(B) | |||||
L201 | $B<'@-BN%J%NN3;R$rMQ$$$?A0N)A#4b<#NEK!$N3+H/(B | magnetic nanoparticles prostate cancer combination therapy | S-23 | 1 | |
L202 | $B<'@-BN%J%NN3;R$rMQ$$$?0dEA;RF3F~K!$N3+H/$H$=$NE83+(B | magnetic nanoparticles gene transfection | S-23 | 2 | |
(9:40$B!A(B10:20)$B!!(B($B:BD9(B $B?eK\(B $BGn(B) | |||||
L203 | ARGET-ATRP$BK!$GJ,;R%$%s%W%j%s%H9bJ,;R$r%0%i%U%H$7$F:n@=$7$?%0%k%3!<%9%;%s%5$N0BDj@-(B | ARGET-ATRP molecularly imprinted polymer glucose sensor | S-23 | 257 | |
L204 | $BJ"KlGE | hyaluronic acid cisplatin nanogel | S-23 | 450 | |
(10:20$B!A(B11:00)$B!!(B($B:BD9(B $B0fEh(B $BGnG7(B) | |||||
L205 | $B7V8w6&LD%(%M%k%.!<0\F0$rMxMQ$7$?(BDNA$B0l1v4pJQ0[$N8!=P(B | ligase detection reaction fluorescence resonance energy transfer quantum dot | S-23 | 80 | |
L206 | $B93BNJ,;R$rMxMQ$7$?0[ | Antibody in vitro selection bioimaging | S-23 | 125 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $BD9@%(B $B7r0l(B) | |||||
L207 | $B@8BNKl43>D(B:$B%j%]%=!<%`Kl>e$K$*$1$k(BRNA$BAj8_:nMQ$*$h$SK]Lu$N@)8f(B | Membrane Stress Biotechnology RNA conformation liposome | S-23 | 915 | |
L208 | $B0-@-9|FpIt | Vesicle Lectin Drug delivery | S-23 | 622 | |
L209 | in situ $B2M66%2%k$+$i$N?eMO@-93$,$s:^=yJ|5sF0$N2rL@$HJ"KlGE | Drug Delivery System Anti-Cancer Drugs in situ crosslinking gel | S-23 | 956 | |
(13:00$B!A(B13:40)$B!!(B($B:BD9(B $B;3K\7r0lO:(B) | |||||
L213 | ITO$BEE6K$rMQ$$$?EE5$2=3XE*86M}$K4p$E$/:YK&C&N%(B | Tissue Engineering Indium Tin Oxide Electrochemistry | S-23 | 247 | |
L214 | $B%V%??UB!C&:YK&2=%9%-%c%U%)!<%k%I$N:n@=K!$N8!F$(B | scaffold decellularization surfactant | S-23 | 998 | |
(13:40$B!A(B14:20)$B!!(B($B:BD9(B $B?y1:?5<#(B) | |||||
L215 | $BB?9& | Cell Sheet RGD-Peptide Electrochemistry | S-23 | 19 | |
L216 | $B4629@-%]%j%^!<=$>~;@AGF)2a@-%W%l!<%H$rMQ$$$?=EAX2=:YK&%7!<%H$N9=C[$HHs?/=1E*2s<}(B | multilayered cell sheet polydimethylsiloxane poly(N-isopropylacrylamide) | S-23 | 466 | |
(14:20$B!A(B15:00)$B!!(B($B;J2q(B $B:j;3(B $BN<0l(B) | |||||
L217 | [$B0MMj9V1i(B]$B2=3X9)3X$+$i%/%j%F%#%+%k%1%"$X$ND)@o(B | medical engineering critical care collaboration | S-23 | 769 | |
M$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c%P%$%*0eLtIJ@8;:$N%W%m%;%9%$%N%Y!<%7%g%s!c0lHL8xJg$;$:!d!d(B | |||||
(9:00$B!A(B10:00)$B!!(B($B:BD9(B $B>eJ?(B $B@5F;(B) | |||||
M201 | $B%W%m%;%9%$%N%Y!<%7%g%s$rL\;X$7$?!V9)6HF0J*:YK&!W$N3+H/(B ($BFAEgBg1!%=%7%*%F%/%N%5%$%(%s%98&5fIt(B) $B!{(B($B@5(B)$BBg@/(B $B7r;K(B | Chinese hamster ovary cell biologics recombinant protein production | S-21 | 1055 | |
M202 | [$B>7BT9V1i(B] $B%P%$%*0eLt@=B$MQ | S-21 | 408 | ||
M203 | [$B>7BT9V1i(B] $BIT6Q9UJQ0[F3F~K!$K$h$kAH49$(%?%s%Q%/ | S-21 | 415 | ||
(10:00$B!A(B11:00)$B!!(B($B:BD9(B $BBg@/(B $B7r;K(B) | |||||
M204 | $B0dEA;RAH49$(F0J*:YK&:n@=$N$?$a$NC` | accumulative gene integration animal cell culture Cre-loxP | S-21 | 900 | |
M205 | [$B>7BT9V1i(B] $B%P%$%*0eLtIJ@8;:$K$*$1$k%G%#%9%]!<%6%V%k%F%/%N%m%8!<$N1~MQ(B | S-21 | 1041 | ||
M206 | $B%P%$%*%m%8%/%9G]M\@8;:$N:G6a$NF08~(B | Biologics Cell Culture Metabolic Engineering | S-21 | 217 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B@>Eg(B $B8,0l(B) | |||||
M207 | $BHFMQ@-$H0BA4@-$KM%$l$??75,7l@6BeBXJ*$rMxMQ$7$?S.F}F0J*M3Mh0x;RIT4^$N:YK&G]M\5;=Q(B | growth factor sericin rakkyo-fructan | S-21 | 61 | |
M208 | [$B>7BT9V1i(B] $B%]%F%j%8%'%s%H5;=Q$,93BN@=B$%W%m%;%9$KM?$($k%$%s%Q%/%H$K$D$$$F(B | S-21 | 417 | ||
M209 | [$B>7BT9V1i(B] $BAH49$(%"%k%V%_%s$N9bIJ | S-21 | 1040 | ||
(13:00$B!A(B13:40)$B!!(B($B;J2q(B $BBg@/(B $B7r;K(B) | |||||
M213 | [$BE8K>9V1i(B] Cell Culture Technologies: What can we learn from the past about what the future may bring | S-21 | 413 | ||
(13:40$B!A(B14:20)$B!!(B($B:BD9(B $B>.@n(B $B0!4u;R(B) | |||||
M215 | [$B>7BT9V1i(B] $B93BN0eLtIJ$N$?$a$N%F!<%i!<%a%$%I@:@=5;=Q3+H/(B | S-21 | 409 | ||
M216 | $BG]M\:+Cn:YK&$rMQ$$$?M-MQJ* | insect cell recombinant protein production vaccine | S-21 | 849 | |
(14:20$B!A(B15:00)$B!!(B($B:BD9(B $B;3CO(B $B=( | |||||
M217 | [$B>7BT9V1i(B] $B%H%i%s%9%8%'%K%C%/%+%$%3$K$h$kM-MQ%?%s%Q%/ | S-21 | 414 | ||
M218 | $B%H%i%s%9%8%'%K%C%/%K%o%H%j$NMqGr$K@8;:$7$?%?%s%Q%/ | Transgenic chicken Pharmaceutical protein Glycosylation | S-21 | 1046 | |
N$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c(BCVD$B!&%I%i%$%W%m%;%9!]9=B$!&5!G=@)8f$NH?1~9)3X!]!d(B | |||||
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $BEgED(B $B3X(B) | |||||
N213 | $B%+!<%\%s%J%NN3;RE:2CD62;GHJ.L8G.J,2rK!$K$h$kG3NAEECSN3;R:`NA$N9g@.(B | carbon nanopowder ultrasonic spray pyrolysis fuel cell | S-29 | 183 | |
N214 | $B%+!<%\%s%J%NN3;RE:2CJ.L8G.J,2rK!$K$h$k%U%'%i%$%H%J%NN3;R$N9g@.(B | synthesis ultrasonic spray pyrolysis ferrite | S-29 | 666 | |
N215 | $BD6NW3&Fs;@2=C:AGCf$G$N6bB0;@2=J*GvKl7A@.$K$*$1$kE:2CJ*8z2L(B | supercritical carbon dioxide metal-oxide thin films device | S-29 | 190 | |
(14:00$B!A(B15:00)$B!!(B($B:BD9(B $B=);3(B $BBY?-(B) | |||||
N216 | [$BE8K>9V1i(B] $B%G%P%$%93+H/!&@8;:$rL\;X$7$?%W%i%:%^%W%m%;%9!&AuCV3+H/(B | $B%W%i%:%^(BCVD $B%W%i%:%^(BRIE $BH>F3BN%G%P%$%9(B | S-29 | 83 | |
N218 | ULSI$BG[@~$N%-%c%C%WAXMQ?75,86NA$H%W%i%:%^(BCVD$B$K$h$k(BSiCH$BKl(B | Plasma Enhanced CVD low-k cap layer SiCH | S-29 | 5 | |
O$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c?)IJ9)3X$N?7E83+!]0BA4!&4D6-!&IJ | |||||
(9:00$B!A(B10:20)$B!!(B($B:BD9(B $B66K\(B $BFF(B) | |||||
O201 | Temperature Distribution Analysis of Solid Food Model Heating in Microwave Oven | Microwave heating Finite element analysis temperature distribution | S-24 | 140 | |
O202 | $B%K%e!<%i%k%M%C%H%o!<%/%b%G%k$K$h$k%l%H%k%H%Q%&%AFb29EY$N@:L)M=B,(B | neural network retort processing starch | S-24 | 1030 | |
O203 | $B%8%e!<%k2CG.J}K!$rMQ$$$FF&Ie@=B$2aDx$N2CG.FC@-J,@O(B | Ohmic heating tofu temperature distribution | S-24 | 572 | |
O204 | $B%A!<%:$N@=B$9)Dx$K$*$1$k%$%s%i%$%sG4EY7WB,(B | cheese viscosity in-line | S-24 | 64 | |
(10:20$B!A(B11:20)$B!!(B($B:BD9(B $B:j;3!!9bL@(B) | |||||
O205 | $BE|N`$rMxMQ$7$?%P%$%*%W%i%9%A%C%/%W%l%]%j%^!<$N8&5f(B | Bioplastic Glucose Maltose | S-24 | 213 | |
O206 | $B9ZJl$N4%Ag$K$*$1$kC&?e<:3h5!9=$N2r@O(B | drying yeast inactivation | S-24 | 811 | |
O207 | $B3A$r86NA$H$9$k | Japanese Persimmon Ethanol Fermentation Persimmon Wine | S-24 | 862 | |
(11:20$B!A(B12:00)$B!!(B($B;J2q(B $B8E66(B $BIR><(B) | |||||
O208 | [$B>7BT9V1i(B]$B?)IJ$NIJ | Food quality Freezing Cold storage | S-24 | 584 | |
(13:00$B!A(B14:20)$B!!(B($B:BD9(B $BGk86(B $BCNL@(B) | |||||
O213 | $B%H%l%O%m!<%9$N%,%i%9>uBV$K4X$9$kJ,;RF0NO3X7W;;(B | glass transition trehalose MD simulation | S-24 | 47 | |
O214 | $B%S%?%_%s(BE$B$rFbJq$9$kE`7k4%Ag%^%$%/%m%+%W%;%k$N0BDj@-$H:FJ,;6@-(B | freeze-drying nanocapsule gelatin | S-24 | 592 | |
O215 | $B3F | amorphous sugar hydration state FTIR | S-24 | 712 | |
O216 | $BDc29EYNN0h$K$*$1$kE|N`%"%b%k%U%!%9%^%H%j%/%9$N%?%s%Q%/ | amorphous sugar mobility protein | S-24 | 734 | |
(14:20$B!A(B15:00)$B!!(B($B;J2q(B $BEDLg(B $BH%(B) | |||||
O217 | [$B>7BT9V1i(B]$B4D6-1~Ez7?(B $B%U%l!<%P!<=yJ|J.L84%AgJ4Kv$N:n@=$H$=$NFC | Flavor release Spray drying Antibacterial activity | S-24 | 54 | |
P$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c%0%j!<%s | |||||
(9:00$B!A(B10:00)$B!!(B($B:BD9(B $B2O@%(B $B85L@(B) | |||||
P201 | Study on complete methane oxidation on alumina-supported Pt and Cr2O3 catalysts | complete methane oxidation platinum chromia | S-28 | 742 | |
P202 | $BC:2=J*$N;@2=4T85@-G=$K4X$9$k8&5f(B | Carbide Reduction Oxidization | S-28 | 419 | |
P203 | $BC:AG7O:`NA$rMQ$$$?GS%,%9>t2=?(G^$N3+H/(B | catalyst carbon NOx | S-28 | 513 | |
(10:00$B!A(B11:00)$B!!(B($B:BD9(B $B;3ED!!Gn;K(B) | |||||
P204 | [$BM%=(O@J8>^(B]$B6bB00lBN2=%"%k%^%$%H?(G^$rMQ$$$?%G%#!<%<%kGS%,%9Cf$N(BNOx$B$NA*Br4T85$K4X$9$k8&5f(B | Anodic alumina catalyst Selective catalytic reduction NOx | S-28 | 182 | |
P205 | Pt-Rh$B?(G^$K$h$k<+F0 | automotive catalyst aftertreatment reaction model | S-28 | 292 | |
P206 | Recovery of Petroleum-Related Useful Chemicals from Biomass Pyrolytic Oil | ketones biomass pyrolytic oil zirconia-iron oxide catalyst | S-28 | 930 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $BB?8P(B $B516=(B) | |||||
P207 | $B;q8;=[4D7?ET;TGQ4~J*!&3h@-1xE%$+$i$N%G%#!<%<%k%*%$%k@=B$(B | diesel oil activated sludge hydrotreatment | S-28 | 963 | |
P208 | $B9ZAG$K$h$k%P%$%$%*%G%#!<%<%k9g@.$rL\E*$H$7$?3F | biodiesel lipase esterification | S-28 | 661 | |
P209 | $B4VH2:`M3Mh$NLZC:$rMQ$$$?(BVOCs$B;@2=?(G^$N3+H/$K4X$9$k8&5f(B | VOCs oxidation Platinum alternative catalyst Carbon materials | S-28 | 703 | |
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $B8c6?(B $B7r0l(B) | |||||
P213 | $B6bB0;@2=J*$rE:2C$7$?;@2=E4?(G^$K$h$k%0%j%;%j%s$+$i$NM-MQ2=3XJ* | glycerol iron oxide catalyst biomass | S-28 | 970 | |
P214 | $B;@2=E4?(G^$rMQ$$$?%P%$%*%^%9$+$i$N%1%H%sN`9g@.$H$=$N5!9=2rL@(B | iron oxide biomass carboxylic acid | S-28 | 311 | |
P215 | $B;@2=E4?(G^$K$h$k?e>x5$$r?eAG!&;@AG8;$H$7$?=E | Heavy oil Iron oxide catalyst Steam catalytic cracking | S-28 | 340 | |
(14:00$B!A(B14:40)$B!!(B($B:BD9(B $BO<(B $B7CN$(B) | |||||
P216 | $B?e>x5$J70O5$2<$N;@2=E47O?(G^$K$h$k3lC:G.J,2rL}@\?(J,2r$KBP$9$k=u?(G^E:2C8z2L(B | Pyrolytic oil low-rank coal iron catalysts | S-28 | 412 | |
P217 | $B1v@O8z2L$r9MN8$7$?%"%k%3!<%k(B-NaOH$BCf$G$N(BHCFC-22$BJ,2rH?1~B.EY(B | HCFC-22 Reaction rate Salting-out | S-28 | 597 | |
Q$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c5$K"!&1UE)!&HyN3;RJ,;69)3X(B2010$B!d(B | |||||
(9:20$B!A(B10:20)$B!!(B($B:BD9(B $B5HK\!!@?(B) | |||||
Q202 | $B%9%o!<%k%U%m!<9bB.KlF}2=K!$N3+H/(B | Membrane emulsification Swirl flow SPG membrane | S-40 | 58 | |
Q203 | $B8GBN3&LL$K$*$1$k;i | Membrane Stress Biotechnology Vesicle Stress Response | S-40 | 949 | |
Q204 | $B4pHD>e$G>xH/$9$kMO1UE)Fb$NMO | Internal Flow Natural Convection Polymer Solution | S-40 | 306 | |
(10:20$B!A(B11:20)$B!!(B($B:BD9(B $B4dED!!=$0l(B) | |||||
Q205 | A lattice Boltzmann simulation of contact line motion of evaporating droplets on patterned surface | droplet evaporation contact line motion lattice Boltzmann simulation | S-40 | 839 | |
Q206 | $B%_%/%m%s1UE)$rMQ$$$?%(%"%m%>%kN3;R$NM"Aw$H4pHD$X$ND@Ce$N7WB,(B | aerosols droplets deposition | S-40 | 492 | |
Q207 | $B%J%NN3;R$r$O$8$/G;8|%]%j%^!<%V%i%7I=LL$rMQ$$$?!"%J%NN3;R!"NL;R%I%C%HMQ%5%$%:GS=|%/%m%^%H%0%i%U%#!<$N3+H/(B | nanoparticle size exclusion chromatography concentrated polymer brush | S-40 | 559 | |
(11:20$B!A(B12:00)$B!!(B($B:BD9(B $B?eED!!7I(B) | |||||
Q208 | $B9bL)EYFs;@2=C:AG$N(BJoule-Thomson$B8z2L$rMxMQ$7$?HyN3;R@.7?K!$N3+H/(B | Spray freeze dry Joule-Thomson effect Nano-particle | S-40 | 670 | |
Q209 | $BEE>l2<$K$*$1$kN3;RG;=L5sF0$K4X$9$k | slurry transport rheology | S-40 | 723 | |
$B%7%s%]%8%&%`(B $B!c%P%$%*MxMQ?7%(%M%k%.!<5;=Q$NE83+!d(B | |||||
(13:00$B!A(B14:20)$B!!(B($B:BD9(B $BKY!!9nIR(B) | |||||
Q213 | [$B>7BT9V1i(B]$BE44T85:Y6]$K$h$k2=3X(B-$BEE5$%(%M%k%.! | Microbial fuel cell Energy conversion Electrochemistry | S-22 | 376 | |
Q215 | [$B>7BT9V1i(B]$B?M9)8w9g@.%"%s%F%J$H%J%N%P%$%*%G%P%$%9$X$NE83+(B | artificial photosynthetic antenna photosyntetic bacteria nanobiodevice | S-22 | 371 | |
(14:20$B!A(B15:20)$B!!(B($B:BD9(B $B>oED!!Ao(B) | |||||
Q217 | $BD6BQG.@-(BLaccase$B$rMQ$$$?%P%$%*G3NAEECS%+%=!<%I$N3+H/(B | biofuel cell biocathode hyper-thermophilic laccase | S-22 | 139 | |
Q218 | $B9ZJl$rMQ$$$?>.7?%0%k%3!<%9G3NAEECS$N@-G=8~>e(B | fuel battery glucose yeast | S-22 | 416 | |
Q219 | Direct glucose fuel cell using yeast extract as a complete media for anode | Biofuel cell Yeast extract Membrane electrode assembly | S-22 | 719 | |
R$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!cN3;R!&N.BN7OJ,N%5;=Q$N?7$?$JD)@o!d(B | |||||
(10:00$B!A(B11:00)$B!!(B($B:BD9(B $BH"ED(B $BM%(B) | |||||
R204 | $B%7%j%+%J%NN3;R$N2sJ,<0$*$h$SO"B3<0J,5iAuCV$N3+H/(B | classification electrophoresis fine particles | S-32 | 812 | |
R205 | $B>e8~N._I2a$K$*$1$k:.9g%J%NN3;R%1!<%/AX$NGmN%8z2L$K5Z$\$9;nNA>r7o$N1F6A(B | nanoparticle upward filtration filter cake | S-32 | 1031 | |
R206 | $BIT6Q0l%1!<%/BO@Q%b%G%k$K$h$kKlLL79 | inclined ultrafiltration filter cake nanocolloid | S-32 | 638 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B8~0f(B $B9/?M(B) | |||||
R207 | $BM6EE1KF0$rMQ$$$?J* | dielectrophoresis Clausius-Mossotti Factor quadrupole electrode | S-32 | 197 | |
R208 | $B7>AtEZ_I2a;D^V$+$i$N%l%"%a%?%k2s<}$rL\E*$H$7$?6bLV@QAX7?M6EE1KF0J,N%AuCV$N3+H/(B | dielectrophoresis diatomite filtration rare metal | S-32 | 252 | |
R209 | $BD>N.=E>v8rN.EE05$rMQ$$$?:Y9&@d1oHD7?M6EE1KF0AuCV$K$*$1$kJ,N%FC@-(B | dielectrophoresis separation | S-32 | 494 | |
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $B4dED(B $B@/;J(B) | |||||
R213 | $BF0J*:YK&$N%b%G%k$H$7$?(BW/O/W$B%(%^%k%7%g%s$NM6EE1KF05sF0$N8!F$(B | dielectrophoresis emulsion | S-32 | 407 | |
R214 | $BEE5$?;F)C&?eK!$K$h$kG;=L1xE%$NC&?eFC@-(B | filtration activated sludge electro-osmosis dewatering | S-32 | 433 | |
R215 | $BEE5$?;F)C&?eK!$K$*$1$kC&?e;nNA$NE,MQ@-$KBP$9$k | Solid-Liquid Separation Electro-Osmotic Dewatering Available Sludge | S-32 | 364 | |
S$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c?7$?$JE83+$r7^$($k%_%-%7%s%05;=Q$NM}O@!&B,Dj!&AuCV!d(B | |||||
(9:00$B!A(B10:00)$B!!(B($B:BD9(B $B2CF#Dw?M(B) | |||||
S201 | $B@55U8r8_2sE>YxYBMc$N:.9gFC@-(B | angular reciprocation chaotic mixing CFD | S-41 | 1029 | |
S202 | $BBg7?Mc$rMQ$$$?JP?43IYB$K$*$1$kF0NO$*$h$S:.9gFC@-$H%9%m%C%7%s%08=>](B | eccentric mixing large type impeller power consumption | S-41 | 192 | |
S203 | $BN.BN:.9g35G0$N0lHL2=(B | fluid mixing periodic reaction concentration pattern | S-41 | 287 | |
(10:00$B!A(B11:00)$B!!(B($B:BD9(B $B66K\=SJe(B) | |||||
S204 | $B:81&HsBP>N$N8rBX79 | mixing agitation turbulent | S-41 | 13 | |
S205 | $BMpN.>uBV$K$*$1$k=jMWF0NO$HAm3g:.9g@-G=;XI8!&:.9g%9%Z%/%H%k;XI8$N4X78(B | Mixing Power consumption Mixing Performance | S-41 | 775 | |
S206 | $BFsCJMc$K$*$1$k | mixing dual impeller laminar | S-41 | 46 | |
(11:00$B!A(B12:00)$B!!(B($B:BD9(B $B9b669,;J(B) | |||||
S207 | $B9ZJl$K$h$k%(%?%N!<%kH/9Z$K5Z$\$93IYBQrCG8z2L(B | Bioethanol Shear stress Fermentation | S-41 | 548 | |
S208 | Analysis of Enhancement Mechanism on Mixing with Baffles by use of Three-Dimensional Streak Visualization | Fluid Mixing Streak Visualization Baffle | S-41 | 467 | |
S209 | $B%?!<%S%sMc$rMQ$$$?3IYBAeFb$N(Bshear-thinning$B@-N.BNCfHyN3;RJ,;6FC@-(B | mixing non newton(shear-thinning)fluid dispersion | S-41 | 856 | |
(13:00$B!A(B13:40)$B!!(B($B;J2q(B $B:#Cf>HM:(B) | |||||
S213 | [$BE8K>9V1i(B] $B9bJ,;R:`NA$NMOM;:.N}(B:$B8=>u$H:#8e$NE8K>(B | Melt Mixing Mixing Theory Polymer Materials | S-41 | 73 | |
(13:40$B!A(B14:40)$B!!(B($B:BD9(B $B?N;VOBI'(B) | |||||
S215 | $B%O%$%V%j%C%IMc=E9g4o$K$*$1$k>xH/LL@Q$*$h$SI=LL99?7B.EY$N8!F$(B | CFD Free Surface Polymerization | S-41 | 112 | |
S216 | $B%N%s%(%l%a%s%H%_%-%5!<$K$*$1$k:.9gFC@-$K$D$$$F$N;0 | 3D visualization non-element mixer chaotic mixing | S-41 | 386 | |
S217 | $BDL5$3IYB$K$*$1$kJ?6Q5$K"7B$K5Z$\$9A`:n>r7o$N1F6A(B | Gas Dispersion Diameter of Bubble Gas Flow Rate | S-41 | 751 | |
(14:40$B!A(B15:20)$B!!(B($B:BD9(B $B8VED1YG7(B) | |||||
S218 | LDV$B$*$h$S(BPIV$B$rMQ$$$?2sE>1_E{7?1U1UCj=PAuCV$K$*$1$kN.F0>uBV$N7WB,(B | mixing liquid-liquid extraction fluid behavior | S-41 | 191 | |
S219 | CFD$B$rMQ$$$?O"B3<0%K<4%(%/%9%H%k!<%@$N:.N}@-G=I>2A(B | Kneading Twin-Screw Extruder CFD | S-41 | 120 | |
T$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!cJ4BN%W%m%;%95;=Q$N?7E83+!A5!G=2=!"4pAC%W%m%;%95;=Q$+$i1~MQ;vNc$^$G!d(B | |||||
(9:20$B!A(B10:40)$B!!(B($B:BD9(B $B8eF#!!K.>4(B) | |||||
T202 | $BJ.L84%AgK!$K$h$kD6=c?eCf$N%J%NN3;R7WB,K!$N3+H/(B | Ultrapure water Atomization Drying | S-42 | 263 | |
T203 | $B2C05!&Nd5Q7?(BParticle Size Magnifier$B$N3+H/$H@-G=I>2A(B | Particle Size Magnifier Particle Growth Nanoparticle | S-42 | 788 | |
T204 | $BN3;R$N3H;6$r9MN8$7$?D61s?4J,@O$K$h$kN3;R7BJ,I[2r@O$N8!F$(B | analytical ultracentrifugation particle size distribution nanoparticle | S-42 | 971 | |
T205 | $B?eJ?EE>l$rM?$($?$H$-$NEE5$1KF07?J,5iAuCV$N@-G=I>2A(B | electrophoresis classification nanoparticle | S-42 | 512 | |
(10:40$B!A(B12:00)$B!!(B($B:BD9(B $BB-N)!!85L@(B) | |||||
T206 | $BEE050u2C7?1UBN%5%$%/%m%s$K$*$1$kN3;RJ,5i@-G=(B | electro-hydrocyclone classification | S-42 | 82 | |
T207 | $B>F7k6bB0@=1_?m$r;}$D1UBN%5%$%/%m%s$N_I2aFC@-(B | Hydrocyclone Sintered metal Filtration | S-42 | 649 | |
T208 | $B4%<0%5%$%/%m%s$K$*$1$k:GE,$JDI2C5$N.F3F~K!$N8!F$(B | secondary flow classification cyclone | S-42 | 77 | |
T209 | Generation of hydrogen from polyvinyl chloride by milling and heating with CaO and Ni(OH)2 | mechanochemical hydrogen PVC | S-42 | 179 | |
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $BLZKs(B $B8w@5(B) | |||||
T213 | $B%S!<%:%_%k<><0J4:U$K$*$1$kK`LWJ4H/@8NL$NI>2A$H$=$N%7%_%e%l!<%7%g%s(B | stirred mill grinding wear | S-42 | 184 | |
T214 | Synthesis of LiFePO4/C Composite Powders by an Emulsion Drip Combustion in Fluidized Bed Reactor | Emulsion drip combustion LiFePO4/C Lithium batteries | S-42 | 200 | |
T215 | $BN.F0AXE)2 | titanium oxide photocatalyst anion doping | S-42 | 1034 | |
(14:00$B!A(B15:00)$B!!(B($B:BD9(B $BCfN$(B $BJY(B) | |||||
T216 | $BGQ%W%i%9%A%C%/$N%^%F%j%"%k%j%5%$%/%k$K8~$1$?4%<0Hf=EJ,N%$N4pACE*8!F$(B | waste plastics dry separation fluidized bed | S-42 | 621 | |
T217 | $BFbIt=[4D7?%1%_%+%k%k!<%WG3>F4o$NN3;R=[4DFC@-(B | chemical looping internal circulation | S-42 | 1013 | |
T218 | $B%9%/%j%e!<%U%#!<%@!<$K$*$1$k(B2$B | Screw feeder Simulation Powder mixing | S-42 | 87 | |
U$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!c@.D9$KD)$`4D6-5;=Q!d(B | |||||
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $B2CF#(B $B>!H~(B) | |||||
U213 | $BB@M[8w$r8w8;$H$9$kH?1~LL2DF07?8w?(G^H?1~4o$K$h$k(B2,4-$B%8%K%H%m%U%'%N!<%k$NJ,2r(B | Photocatalyst Reactor Evaporation | S-30 | 113 | |
U214 | $BB?9&@-;@2=%A%?%sGvKl$GHoJ$$7$?3h@-C:N3;R$K$h$k%$%=%W%m%Q%N!<%k4^M-6u5$=hM}(B | Photocatalyst Isopropanol Air purification | S-30 | 114 | |
U215 | $BB?9&@-;@2=%A%?%sGvKl$GHoJ$$7$?3h@-C:N3;R$K$h$k?eMO2rM-5!J*=hM}$N?t<0%b%G%k(B | Photocatalyst Mathematical model Activated carbon | S-30 | 115 | |
(14:00$B!A(B15:20)$B!!(B($B:BD9(B $BGr@P(B $BJ8=((B) | |||||
U216 | $B%A%?%K%"(B/$B%7%j%+8w?(G^$rMQ$$$?M-2jK&6]$N;&6](B | photocatalyst disinfection bacillus subtillis | S-30 | 754 | |
U217 | Effect of Cu-Doping on the Photocatalytic Activity of TiO2/SiO2 Beads | TiO2 photocatalyst SiO2 beads Copper | S-30 | 789 | |
U218 | $B%H%j%/%m%m%7%i%s$NK=AvH?1~4m81@-(B | trichlorosilane runaway reaction chemical safety | S-30 | 924 | |
U219 | $BC:;@%+%k%7%&%`$NL82=9g@.(B | calcium carbonate atomization sonochemistry | S-30 | 536 | |
V$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$B%7%s%]%8%&%`(B $B!cKl3+H/$N4pAC$+$i1~MQ!d(B | |||||
(9:00$B!A(B10:00)$B!!(B($B:BD9(B $BCfB<(B $B0lJf(B) | |||||
V201 | $B%G%C%I%(%s%I@:L)$m2a%W%m%;%9$ND>@\%7%_%e%l!<%7%g%s(B | simulation microfiltration backwash | S-38 | 732 | |
V202 | $B9bBQLtIJ@-(BPVDF$BCf6u;eKl$N@_7W%3%s%;%W%H$*$h$S$=$l$r3h$+$7$?1?E>;vNc(B | polyvinylidene fluoride chemical resistance membrane structure | S-38 | 1022 | |
V203 | $B8r8_5[CeK!$rMQ$$$?%J%N$m2aKl$N:n@=$H2M66F3F~$K$h$k0BDj@-$N8~>e(B | Layer-by-layer Nano filtration Crosslinking | S-38 | 864 | |
(10:00$B!A(B11:20)$B!!(B($B:BD9(B $B@V>>(B $B7{ | |||||
V204 | $BCf6u;e7?5U?;F)Kl$NGS?e=hM}:FMxMQ$X$N1~MQ(B | Reverse Osmosis Membrane Cellulose Triacetate fouling prevention | S-38 | 342 | |
V205 | $BKl$K$h$kB$?e0BDj2=5;=Q(B | RO membrane Low fouling | S-38 | 134 | |
V206 | $BKl$m2a%W%m%;%9$K$*$1$k%P%$%*%U%!%&%j%s%0$N%b%K%?%j%s%0J}K!$N3+H/(B | bio fouling membrane filtration | S-38 | 996 | |
V207 | $B?75,BQ1x@w@-5U?;F)Kl$N3+H/(B | RO membrane Low fouling | S-38 | 404 | |
(11:20$B!A(B12:00)$B!!(B($B;J2q(B $B>>;3(B $B=(?M(B) | |||||
V208 | [$BE8K>9V1i(B]$B?e=hM}MQJ,N%Kl$N:G@hC<5;=Q$H:#8e$NF08~(B-$B5U?;F)Kl$rCf?4$K(B- | RO membrane water treatment | S-38 | 1044 | |
(13:00$B!A(B14:00)$B!!(B($B:BD9(B $B2CF#(B $B2mM5(B) | |||||
V213 | Pd-SiO2 mixed-matrix$BKl$N?eAGF)2aFC@-(B | Palladium Hydrogen Mixed-matrix | S-38 | 600 | |
V214 | $BL5EE2r%a%C%-K!$K$h$k(BPd$B<+N)Kl$NGvKl2=$H$=$N?eAGF)2aFC@-(B | Palladium Self-supported membranes Thinning effect | S-38 | 265 | |
V215 | $B:Y9&Fb= | Gas separation membrane Hydrogen Palladium | S-38 | 625 | |
(14:00$B!A(B15:00)$B!!(B($B:BD9(B $BM>8l(B $B9nB'(B) | |||||
V216 | ($B9V1iCf;_(B) | 100 | 931 | ||
V217 | $BB?9&@-(BSUS$B4I$X@=Kl$7$?(BPd$BKl7?H?1~4o$rMQ$$$?%a%?%s$N%9%A!<%`%j%U%)!<%_%s%0(B | palladium membrane porous SUS tube methane steam reforming | S-38 | 374 | |
V218 | Design of high performance zeolite-polyamide nanocomposite membranes for reverse osmosis and nanofiltration | zeolite-polyamide nanocomposite membrane RO | S-38 | 573 | |
W$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
W2P01 | $B%7%j%+J#9gKl$rMQ$$$?%Y%s%<%s(B-$B%7%/%m%X%-%5%s7O$N(BPV$BJ,N%(B | silica hybrid membrane counter diffusion CVD pervaporation | S-36 | 8 | |
W2P02 | $B%?%s%Q%/ | bioflocculant protein-based kaolin | S-36 | 126 | |
W2P03 | $BC:AGKl%b%8%e!<%k$rMQ$$$?(BCO2/CH4$BJ,N%$K$*$1$k29EY0MB8@-(B | Carbon membrane Hollow fiber Dehydration | S-36 | 127 | |
W2P04 | $B2sE>1_E{7?%U%#%k%?!<$K$h$k(BPMMA$BN3;R$r4^$`%i!<%I!?%j%s;@4K>W1U7O%(%^%k%7%g%s$N%@%$%J%_%C%/@:L)_I2a(B | rotating membrane filter crossflow microfiltration o/w emulsion | S-36 | 156 | |
W2P05 | $BB?9&@-%;%i%_%C%/%9KlLL>e$K7A@.$7$?C]C:%1!<%/AX$K$h$k%U%_%s;@MO1U$N%/%m%9%U%m!<8B30_I2a(B | humic acid porous ceramics bamboo charcoal | S-36 | 378 | |
W2P06 | $B@PC:%,%92=O'$K$*$1$kMOM;3%$NN.F02r@O(B | coal gasification slag flow simulation | S-36 | 166 | |
W2P07 | $B%$%*%s1UBN4^?;Kl$rMQ$$$??;F)5$2=K!$K$h$k%V%?%N!<%k$NJ,N%(B | Pervaparation Butanol Ionic liquid | S-36 | 358 | |
W2P08 | $B@PC:3%$r86NA$H$9$k%<%*%i%$%HKl$NAO@.$H$=$NF)2aJ*@-(B | Coal fly ash Zeolite Pervaporation | S-36 | 421 | |
W2P09 | $B%U%'%N!<%k | Carbon membrane Pervaporation Phenol | S-36 | 426 | |
W2P10 | $BE7A3M3Mh@.J,$rMQ$$$?3$?e%&%i%s$NJa=85;=Q$N3+H/(B | Seawater Uranium Tannin | S-36 | 440 | |
W2P11 | $B%7%s%0%kDj05_I2a;n83K!$K4p$E$/8G1UJ,N%FC@-I>2AK!$N3+H/(B | filtration cake characteristics membrane resistance | S-36 | 645 | |
W2P12 | $B9ZJl7|By1U$N%G%C%I%(%s%I@:L)_I2aFC@-$NI>2A(B | microfiltration cake resistance compressibility | S-36 | 647 | |
W2P13 | $BKl:Y9&JD:I!&%1!<%/BO@Q%3%s%P%$%s%I%b%G%k$K$h$k4uGv%3%m%$%I$N@:L)_I2a5sF0$N2r@O(B | microfiltration pore blocking cake resistance | S-36 | 648 | |
W2P14 | $BF0J*M3Mh%P%$%*%^%9$rMQ$$$?5.6bB0J,N%5;=Q$N3+H/(B | recycle biomass precious metal ions | S-36 | 349 | |
W2P15 | Spinodal$BJ,2r$K$h$k9=B$7A@.2aDx$N%7%_%e%l!<%7%g%s$rMQ$$$?(BTIPS$BK!$G$N(BNF$BKlAO@=$N2DG=@-$N8!F$(B | TIPS spinodal decomposition NF membrane | S-36 | 643 | |
W2P16 | $B936]@-9ZAG8GDj2=$K$h$kBQ%P%$%*%U%!%&%j%s%0@-5U?;F)Kl$N(B $BAO@=(B | reverse osmosis membrane antimicrobial lysozyme | S-36 | 823 | |
W2P17 | $BCf6u;eKl$K$*$1$k%U%_%s;@$H%?%s%Q%/ | fouling metal ion hollow fiber membrane | S-36 | 850 | |
W2P18 | $B936]@-$rM-$9$k6d%J%NN3;R4^M-?e=hM}MQB?9&Kl$N3+H/(B | anti-biofouling silver nanoparticle membrane | S-36 | 863 | |
W2P19 | $BHsMOG^M65/7?AjJ,N%K!$K$h$k9ZJlFbJqB?9&Kl$N3+H/$*$h$SFC@-I>2A(B | Yeast Nonsolvent induced phase separation Bioreactor | S-36 | 1036 | |
W2P20 | $BJ4KvE:2CJ}<0$K$h$k6E=8:^$N:nMQ5!9=(B | flocculation composite flocculant powder form | S-36 | 675 | |
W2P21 | $B%^%$%/%mN.O)Fb5$AjCf1UE)$N2CB.$H>WFM$N2r@O(B | microfluidics droplet-in-gas micro droplet collider | S-36 | 791 | |
W2P22 | $B%P%$%*%^%9GQ4~J*$rMxMQ$7$?3h@-C:$ND4@=$H%P%$%*%(%?%N!<%kJ,N%G;=L$X$N1~MQ(B | bioethanol biomass waste activated carbon | S-36 | 874 | |
W2P23 | $B%P%$%*%^%9$rMxMQ$7$?EtL}Cf$+$i$NN22+2=9gJ*$N=|5n:`$N3+H/$H$=$N | activated carbon sulfur compound kerosene | S-36 | 881 | |
W2P24 | $BEE2rF)@OK!$K$h$k(BEDTA-Cu$B:xBN?eMO1U$+$i$N(BEDTA$B$H(BCu$B$NJ,N%(B | Electrolytic dialysis EDTA-Cu | S-36 | 893 | |
W2P25 | $BD9:?%$%*%s1UBN4^M-%a%=%]!<%i%9%7%j%+5e$NFs;@2=C:AG5[CeFC@-(B | ionic liquids mesostructured silica CO2 adsorption | S-36 | 906 | |
W2P26 | $B%;%k%m!<%97O9bJ,;RKl$NFs;@2=C:AGF)2aJ,N%5sF0(B | cellulose carbon dioxide membrane separation | S-36 | 945 | |
W2P27 | $B?eCfMOB8%,%9$NKlF)2aFC@-$K5Z$\$91v$N1F6A(B | membrane dissolved gas permeation Salting out | S-36 | 953 | |
W2P28 | $B%j%]%=!<%`8GDj2=Kl%b%8%e!<%k$K$h$k%"%_%m%$%I@-%?%s%Q%/ | Membrane Stress Biotechnology | S-36 | 946 | |
W2P29 | $BCf6u;eKl%3%s%?%/%?!<$K$h$k(BCO2$B2=3X5[<}$K$*$1$k29EYJ,I[$N1F6A(B | CO2 absorption hollow fiber membrane contactor temperature distribution | S-36 | 986 | |
W2P30 | $BO"7k5e>u9&$rM-$9$k(BPC-88A$BFbJq%^%$%/%m%+%W%;%k$K$h$k0!1t$NCj=P5!9=(B | Extractant Microcapsules Extraction equlibrium Zn extraction | S-36 | 1033 | |
W2P31 | $BB?CJ$m2a%U%#%k%?!<$K$h$k:YK&G]M\1U$N@6@!2=(B | Filtration Redundant Optimaization | S-37 | 272 | |
W2P32 | $B7>AtEZ_I2a=u:^$H$=$N1~MQ(B | diatomaceous earth filter aid filtration | S-37 | 402 | |
W2P33 | $B%^%$%/%m%,%9J,@O%7%9%F%`$N3+H/$HD94|O"B3F0:n5!G=$NI>2A(B | extraction separation gas | S-37 | 456 | |
W2P34 | $B%@%$%J%_%C%/!&%/%m%9%U%m!<0%;%i%_%C%/KlJ,N%$N;vNc>R2p(B | Dynamic Crossflow Filtration Ceramic Membrane Rotation Membrane | S-37 | 481 | |
W2P35 | $B%+!<%H%j%C%8$m2a@:EY$K5Z$\$9$m2a05NO$N1F6A(B | Filtration Filtration accuracy Plating | S-37 | 642 | |
W2P36 | $B%-%H%5%s$r%3!<%F%#%s%0$7$?%+!<%H%j%C%8%U%#%k%?!<$K$h$k%(%C%A%s%0GQ1U$+$i$N%$%s%8%&%`$N2s<}5;=Q$N | chitosan-filter adsorption indium | S-37 | 662 | |
WA$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
WA2P01 | $BF0E*$;$sCGB,Dj$K$*$1$k9bJ,;R4V3&LL$N%l%*%m%8!<(B | polymer interfaces viscoelasticity dynamic shear | S-9 | 103 | |
WA2P02 | $B2q9g@-9bJ,;R$K$h$k%+!<%\%s%J%N%U%!%$%P! | Rheology Carbon nanofiber Associating polymer | S-9 | 105 | |
WA2P03 | $B46(BpH$B@-B?AX9=B$%2%k$N9g@.$H$=$N6~6JFC@-(B | double layer gel pH temperature | S-9 | 132 | |
WA2P04 | $BFs;@2=%A%?%sHyN3;R%U%#%k%`$NB@M[8wH/EE@-G=$HJ,;67O$NN.F0@-(B | dye-sensitized solar cell titanium dioxide rheology | S-9 | 133 | |
WA2P05 | $BJ#9g%(%^%k%7%g%s$rMxMQ$9$k$j$s;@%+%k%7%&%`2=9gJ*%_%/%m%9%U%#%"$ND4@=!!Bh(B2$BJs!!L}Aj3&LL3h@-:^G;EY$N1F6A(B | calcium phosphate surfactant emulsion | S-9 | 145 | |
WA2P06 | W/O$BJ,;67O$N1UE)7B@)8f$HL55! | emulsion temperature stability | S-9 | 153 | |
WA2P07 | $B%(%^%k%7%g%s$*$h$S%5%9%Z%s%8%g%s$NEIKl4%Ag$K4X$9$kBPHfE*8&5f(B | emulsion film drying | S-9 | 248 | |
WA2P08 | $B4629@-9bJ,;RHoJ$%a%=%]!<%i%9%7%j%+$N%$%*%s8r49FC@-(B | Mesoporous Silica Temperature Responsive Polymer Adsorption | S-9 | 274 | |
WA2P09 | $B?e$H%"%k%3!<%k:.9g1UCf$K$*$1$k%[%&;@%"%k%_%K%&%`$N6E=8$HJ,;67O%l%*%m%8!<(B | Water Alcohol Aggregation | S-9 | 276 | |
WA2P10 | BaTiO3$B%J%NN3;RJ,;6F)L@%J%N%3%s%]%8%C%H9b6~@^N(GvKl$N:n@=(B | Nanoparticle Refractive Index Polymer Thin Film | S-9 | 282 | |
WA2P11 | $B5e>uN3;RGvKl$NJ#6~@^H/8=%a%+%K%:%`(B | birefringence particulate film structure spherical colloidal particles | S-9 | 286 | |
WA2P12 | $BEII[4%Ag$K$h$k%J%NN3;R$NLVL\>uN3;RGvKl$N7A@.%a%+%K%:%`(B | coating process thin film structure contact line motion | S-9 | 288 | |
WA2P13 | $BN.$l>l$K$*$1$k%3%m%$%IJ,;61U$N(Bshear-thickening$B8=>]$N%l%*%m%8! | shear-thickening rheology dilatancy | S-9 | 289 | |
WA2P14 | $BAjJ,N%K!$rMQ$$$?%]%jF};@B?9& | porous membrane phase separation poly(L-lactic acid) | S-9 | 323 | |
WA2P15 | $B9bJ,;R%2%k$N%M%C%H%o!<%/9=B$$*$h$SJ* | polymer gel cross-linking density diffusivity | S-9 | 397 | |
WA2P16 | $B@xG.C_G.:`$r4^M-$5$;$?%O%$%V%j%C%H%7%'%k%+%W%;%k$ND4@=(B | microcapsul Phase Change Material SiC | S-9 | 410 | |
WA2P17 | $B29EY1~Ez@-%]%j%^!<%J%NN3;R$r%F%s%W%l!<%H$H$7$?%7%j%+Cf6uN3;R$ND4@=(B | silica sol-gel Temperature Responsive Polymer | S-9 | 422 | |
WA2P18 | $B3&LL=E=L9gK!$K$h$k%7%j%+%3%m%$%I$N%^%$%/%m%+%W%;%k2=(B | microcapsule interfacial polycondensation silica | S-9 | 424 | |
WA2P19 | $B1vE:2CD6NW3&N.BN%"%K!<%k$K$h$kL55!HyJ4$N9b7k>=2=5;=Q$N3+H/(B | Subcritical/Supercritical Annealing Crystallinity Improvement Non-agglomeration | S-9 | 471 | |
WA2P20 | $B%(%^%k%7%g%s%F%s%W%l!<%H$rMxMQ$7$?%]%j%^! | Emulsion Templete Composite Morphology | S-9 | 482 | |
WA2P21 | $B;I7c1~Ez7?%f%K%^!<%_%;%k$rMxMQ$7$?AB?e@-M-5!J*$NJ,N%(B | unimolecular micelle pH responsive micelle bisphenol-A | S-9 | 488 | |
WA2P22 | $BAjJ,N%K!$K$h$kB?9&@-%7%j%3!<%s%7!<%H$ND4@=(B | porous film silicone | S-9 | 491 | |
WA2P23 | $B@{2s3IYB=E9gK!$K$h$k%_%j%*!<%@!<5e>u9bJ,;R%2%k$N:n@=(B | polymer gel beads circulation polymerization poly(N-isopropylacrylamide) | S-9 | 524 | |
WA2P24 | $BMOG^Cj=P! | ZnO hydrothermal continuous synthesis | S-9 | 532 | |
WA2P25 | $B%^%$%/%mGH2CG.$K$h$k1UAj4T856d%J%N%o%$%d$N7A>u@)8f(B | silver nanowire microwave heating liquid phase reduction | S-9 | 556 | |
WA2P26 | Dendrimer$B$rMQ$$$?(BCdS$BH>F3BN%J%NN3;R9g@.(B | Dendrimer Nanoparticle Semiconductor | S-9 | 575 | |
WA2P27 | $B%^%$%/%m%_%-%5!<$K$h$k(BAu@SiO2$B%3%"(B-$B%7%'%kN3;R$N9g@.(B | Core-shell particle Micromixer Silica | S-9 | 576 | |
WA2P28 | $B0luJ,;R=8CD$N5<;w6E8G5sF0(B | Porous Coordination Polymer Pseud-freezing Configurational-Bias MC | S-9 | 578 | |
WA2P29 | $BAF;k2=J,;R%7%_%e%l!<%7%g%s$K$h$k9bJ,;R4V3&LL$N%l%*%m%8!<$HAjMO@-(B | Coarse grained molecular dynamics Polymer-polymer interface Rheology | S-9 | 615 | |
WA2P30 | $B?e!&M-5!MOG^!&?)MQL}!&%$%*%s1UBN$r%2%k2=2DG=$J?75,DcJ,;R%2%k2=:^$N3+H/(B | self-assembly gels supramolecular chemistry | S-9 | 730 | |
WA2P31 | ($B9V1iCf;_(B) | 100 | 736 | ||
WA2P32 | $B%"%_%N;@$rMQ$$$??75,5.6bB0HyN3;R9g@.J}K!$N3+H/(B | nanoparticle amino acid gold | S-9 | 799 | |
WA2P33 | $BJ,;R=89gBN$rMQ$$$?%Q%i%8%&%`%J%NN3;R$ND4@=$H$=$NJ,;6FC@-(B | nanoparticle palladium dispersibility | S-9 | 822 | |
WA2P34 | $B@8J,2r@-9bJ,;R3&LL3h@-:^$rMQ$$$?(BW/O$B%^%$%/%m%(%^%k%7%g%s$K$h$k(BDNA$BFbJq%^%$%/%m%+%W%;%k$N3+H/(B | microemulsion biodegradable polymer microencapsulation | S-9 | 879 | |
WA2P35 | RHO$B7?%<%*%i%$%H$ND4@=$H$=$NFC@-I>2A(B | RHO Zeolite synthesis condition acid stability | S-9 | 910 | |
WA2P36 | $B1UAjJ,;67O$rMxMQ$7$?%3%P%k%H%U%'%i%$%H%^%$%/%mN3;R$NDc299g@.(B | emulsion low temperature ferrite | S-9 | 911 | |
WA2P37 | $BM-5!Cr7?K!$K$h$k%a%=%]!<%i%9%+!<%\%s$N9g@.$HEE5$Fs=EAX%-%c%Q%7%?FC@-(B | mesoporous carbon organic-organic interaction phenolic resin | S-9 | 913 | |
WA2P38 | $BC1J,;6@-%+!<%\%s5e$NN3;R7B@)8f$HEE5$Fs=EAX%-%c%Q%7%?FC@-(B | phenolic resin carbon nanosphere monodisperse | S-9 | 914 | |
WA2P39 | $B4629@-%]%j%^!<$r%0%i%U%H$7$?<'@-HyN3;R$NAB?e@-M-5!J*5[CeFC@-(B | thermosensitive polymer ATRP magnetic particle | S-9 | 919 | |
WA2P40 | $B%$%*%s@-4629@-%2%k$K$h$kM[%$%*%s$N5[CeJ,N%(B | thermosensitive gel adsorption cation | S-9 | 920 | |
WA2P41 | $B;i | giant vesicle entrapment yield monodisperse emulsion | S-9 | 922 | |
WA2P42 | $BMOG^%"%K!<%kK!$rMQ$$$?:FG[Ns2=$K$h$k%J%NN3;R9bCa=x5[Ce9=B$$N:n@=(B | Nanocrystals Solvent annealing Adsorption | S-9 | 925 | |
WA2P43 | $B%"%_%m%$%I@-%?%s%Q%/ | Biomembrane crystallization Amyloidgenic protein Membrane Stress Biotechnology | S-9 | 928 | |
WA2P44 | $B%+%A%*%s@-3&LL3h@-%]%j%^! | surfactant drying rate phase separation | S-9 | 962 | |
WA2P45 | $BMO1UCf$K$*$1$k%,%i%9N3;R!&%^%$%+4pHD4V$NIUCeNO$K5Z$\$9I=LL@\?(>uBV$N1F6A(B | adhesion force surface contact in liquid phase | S-9 | 975 | |
WA2P46 | $B5U%_%;%k7O$X$N(Bgelatin$B$N2DMO2=$H$=$N2DMO2=>uBV(B | reverse micelle gelatin solubilization | S-9 | 982 | |
WA2P47 | $B4%AgM65/AjJ,N%$rH<$&EII[Kl$NMOG^4%AgB.EY$KM?$($kKl8|5Z$SAH@.$N1F6A(B | phase-separation coating drying rate | S-9 | 1012 | |
WA2P48 | $B1BNAMQ%?%s%Q%/r7o$N1F6A(B | Protein Microcapsules Microwave heating Capsule structure | S-9 | 1035 | |
WL$B2q>l(B | |||||
$B9V1i(B $B;~9o(B | $B9V1i(B $BHV9f(B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $BJ,N`(B | $BHV9f(B $B | |
$BFCJL9V1i(B | |||||
$BFCJL9V1i(B | |||||
$BAm2q!JM=Dj!K(B | |||||
$BAm2q(B |