$B:G=*99?7F|;~!'(B2018-09-07 21:29:01
$B | $B9V1iBjL\!?H/I=$B%-!<%o!<%I(B | $B | $B?=9~(B | $BJ}K!(B | |
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101 | CAPC$BK!$G:n@.$7$?(BPET$BB?9&BN$N@\Ce6/EY$NI>2A(B | 8-e | porous material polyethylene terephthalate carbon dioxide | 12/15 19:49:01 | WWW |
102 | $B8GBN;@2=J*7AEE2r%;%k$G$N%a%?%sD>@\9g@.$K8~$1$?%+%=!<%I?(G^$N8&5f(B | 9-e | SOEC methane cathode | 12/15 21:30:53 | WWW |
103 | $BD6NW3&?eCf$K$*$1$k(BK2OsCl6$B$*$h$S(BOsO4$B$N5sF0(B | 8-d | Supercritical water Osmium tetroxide Supercritical fluid | 12/15 23:00:32 | WWW |
104 | $BBQG.4p:`>e$G$NB?7k>=(BSi$BKl$N9bB.@=Kl$H5!3#GmN%5;=Q$N3+H/(B | 5-h | polycrystalline silicon films separation layer lift-off process | 12/16 17:13:22 | WWW |
105 | [$B0MMj9V1i(B] $B@iBeED2=9)$N0eLtIJ%(%s%8%K%"%j%s%0(B | SS-1 | Continuous Flow Chemistry Biopharma Process | 12/16 18:33:54 | WWW |
106 | [$B0MMj9V1i(B] Unique separation membranes of bio-based materials | K-3 | separation membrane poly(L-lactic acid) chitosan | 12/16 21:38:02 | WWW |
107 | $B:.9gMOG^Cf$G$N%$%s%I%a%?%7%s$NMO2rEY$N6KBg(B | 1-a | pharmaceutical drugs organic solvent mixtures solubility parameter | 12/17 09:01:48 | WWW |
108 | [$B0MMj9V1i(B] $B%W%i%s%H:`NAB;=};vNc$+$iFI$_2r$/AuCV:`NA$NNt2=$HBP:v(B $B!=!V%9%F%s%l%99]$K$D$$$F!W!=(B | SS-4 | Plant material Damaged cases Stainless steel | 12/17 14:21:43 | WWW |
109 | TiO2$B5e>uB?9& | 12-d | solvothermal synthesis surface nanolevel concave-convex structure sintering resistance | 12/17 16:46:48 | WWW |
110 | Pt$BFbJqCf6u%7%j%+%J%N%A%e!<%V?(G^$ND4@=$HC&?eAGH?1~MQ?(G^Kl$X$NE,MQ(B | 5-a | catalytic membrane Pt-silica hollow nanotubes methylcyclohexane dehydrogenation | 12/18 00:23:02 | WWW |
111 | $B%;%k%m!<%9$r5>@7:^$H$9$kGr6bC4;}Fs;@2=%A%?%s$K$h$k8w?(G^?eAGH/@8(B | 13-g | Cellulose Hydrogen Photocatalysis | 12/18 08:59:13 | WWW |
112 | $BN.$l$N2D;k2=$K$h$kHy:Y2C9)$r;\$7$?(BSUS$B@=EAG.LL$,$b$?$i$9?e$N6I=jJ(F-G.EAC#5!9=$N2rL@(B | 3-c | Local boiling heat transfer mechanism of water Micro-fabricated SUS heat transfer surface Visualizing flow | 12/18 09:53:51 | WWW |
113 | $BJ.L8G.J,2rK!$K$h$kO;J}>=(BWO3$B%J%N%m%C%I$N9g@.(B | 12-d | nano-rods spray pyrolysis tungsten oxide | 12/18 10:08:49 | WWW |
114 | $B%W%m%T%l%s$N5$Aj%(%]%-%72=H?1~$K$*$1$k6bB0=$>~(BSBA-15$B?(G^$N8!F$(B | 5-a | Oxidative epoxidation SBA-15 Propylene | 12/18 10:26:23 | WWW |
115 | $B%P%J%8%&%`$G2~ | 5-a | Oxidative Dehydrogenation Isobutane SBA-15 | 12/18 10:43:41 | WWW |
116 | $B;@=hM}$rMQ$$$?%3%s%]%9%H2=7\J5$+$i$N%j%s$N2s<}(B | 13-e | Composted Chicken Manure Phosphorus Recovery | 12/18 10:53:05 | WWW |
117 | [$B0MMj9V1i(B] $BBP8~3H;6(BCVD$BK!$K$h$k9b29?eAGJ,N%MQ%7%j%+Kl$N:n@=(B | F-1 | Counter diffusion CVD Silica membranes Hydrogen separation | 12/18 11:06:57 | WWW |
118 | Preparation and formation mechanism of polyethersulfone/sulfonated polyethersulfone ultrafiltration membranes | 4-a | sulfonated polyethersulfone (SPES) high molecular weight blend membranes | 12/18 11:20:38 | WWW |
119 | [$B0MMj9V1i(B] $BHs@~7A8=>]$H2=3X9)3X(B | HQ-21 | nonlinear phenomenon autonomous motion self-organization | 12/18 11:30:18 | WWW |
120 | $B%^%$%/%mGH>H | 2-e | microwave bubble formation aggregate | 12/18 12:15:13 | WWW |
121 | $B%^%$%/%mGH6I=j2CG.$K$h$k1U1U3&LL$NFC0[8z2L(B | 1-a | microwave interfacial tension non-equilibrium heating | 12/18 12:26:59 | WWW |
122 | $BG.2=3X?eAG@=B$$N$?$a$NJ| | 4-a | hermochemical water splitting IS process ion exchange membrane Bunsen reaction | 12/18 12:30:21 | WWW |
123 | $B8G1U1U;0AjN3;RJ,;67O$N%l%*%m%8! | 2-e | Rheology Capillary suspension Structure formation | 12/18 12:37:48 | WWW |
124 | [$B0MMj9V1i(B] $B:F@82DG=%(%M%k%.!<$N8&5f$K$D$$$F(B | HQ-21 | solar cells hydrogen storage and fusion information thermodynamics | 12/18 12:51:21 | WWW |
125 | $BDcG;EY9b3h@- | 5-h | carbon nanotubes catalytic chemical vapor deposition carbon source | 12/18 13:02:07 | WWW |
126 | [$B>7BT9V1i(B] $BFs;@2=C:AG%j%5%$%/%k$N$?$a$N%I%i%$%j%U%)!<%_%s%0!!(B-$BH?1~5!9=$H3h@-Nt2=(B- | K-4 | Dry Reforming Syngas Catalyst Deactivation | 12/18 13:10:18 | WWW |
127 | [$B>7BT9V1i(B] $B%f%K!<%/$J7k>=9=B$$rM-$9$k(BLi-M-Ti-O(M = Nb, Ta)$B:`NA$N1~MQ$H%9%^!<%H%W%m%;%C%7%s%0(B | HC-11 | Super structure Phosphor Anisotopic electric property | 12/18 13:17:05 | WWW |
128 | $B2~NI$5$l$?G3>FB.EY7W;;K!$NM-8z@-$K4X$9$k8&5f(B | 3-b | combustion flame velocity | 12/18 13:18:15 | WWW |
129 | $BA48GBNFs | 11-a | all solid state battery | 12/18 13:19:43 | WWW |
130 | $BIbM7?(G^$rMQ$$$?C1AX%+!<%\%s%J%N%A%e!<%V$N5$Aj9g@.$HH?1~>l!&N.$l>l$N2r@O(B | 5-h | single-wall carbon nanotube reaction field control computational fluid dynamics ( CFD ) | 12/18 13:33:38 | WWW |
131 | Improvement of bio-hydrogen production by using zeolite-CPE fixed-bed reactor | 9-e | zeolite-CPE fixed-bed reactor bio-hydrogen production long-term operation | 12/18 13:40:52 | WWW |
132 | [$B0MMj9V1i(B] $BC:AG7O5[Ce:^$NHyJ42==hM}$K$h$kGQ?eC&?'@-G=$N8~>e$HE83+(B | HC-11 | carbonaceous adsorbents super-pulverization wastewater treatment | 12/18 13:54:23 | WWW |
133 | [$B0MMj9V1i(B] $B%$%*%s1UBN$NFC@-$r<($9?75,%*%k%,%N%7%j%+Kl$N3+H/(B | HQ-21 | organosilica membrane ionic liquid vapor permeation | 12/18 13:57:19 | WWW |
134 | [$B0MMj9V1i(B] $B9bB.YxYB5!$N2r@O;vNc(B | SP-8 | mixing CFD PIV | 12/18 14:03:54 | WWW |
135 | $B1_E{7?%;%k$rMQ$$$?%@%$%l%/%H%+!<%\%sG3NAEECS$N3+H/(B | 9-c | DCFC Molten carbonate Tubular type cell | 12/18 14:57:09 | WWW |
136 | Development of a high efficiency bioreactor for mitigating ammonia inhibition of anaerobic digestion | 9-a | ammonia inhibition fixed-bed bioreactor anaerobic digestion | 12/18 15:14:03 | WWW |
137 | Enhancement of hydrogen production via formic acid decomposition on carbon supported Pt-Ni alloy catalysts with high metal loading | 5-a | Ion-exchange resin Ni-Pt alloy formic acid decomposition | 12/18 15:26:58 | WWW |
138 | $BGr6b(B-$B%9%:?(G^$rMQ$$$?%^%$%/%m%j%"%/%?!<$K$h$kC:2=?eAGC&?eAGH?1~$N(B in-situ $B82Hy%i%^%sJ,8w(B | 5-f | In-situ Raman spectroscopy Microreactor Platinum-tin catalyst | 12/18 15:36:25 | WWW |
139 | [$B0MMj9V1i(B] $B%W%i%s%H?GCG!&2~A1%5!<%S%9!V(BPLANT PLUS$B!W(B | SP-7 | PLANT PLUS Thermohydraulic Analysis Technology Structural Analysis Technology | 12/18 15:43:01 | WWW |
140 | $B%a%?%N!<%k(B-$BL};i(B2$BAjCf$G$NL};i%H%i%s%9%(%9%F%k2=$NAm3gH?1~B.EY%b%G%k(B | 5-a | transesterification palm oil mass transfer | 12/18 15:53:19 | WWW |
141 | $B%P%$%*%^%9G3>F%,%9Cf$G$N(BEFB$B$*$h$S(BPKS$B$N;@2=E*%H%l%U%!%/%7%g%s(B | 9-c | torrefaction oil palm biomass residue combustion gas | 12/18 16:23:47 | WWW |
142 | Exploration on mesophilic and thermophilic illuminated anaerobic digestion with ammonium-rich substrate | 9-e | Illuminated anaerobic digestion Ammonia inhibition Mesophilic and thermophilic conditions | 12/18 16:27:51 | WWW |
143 | Photocatalytic inactivation of Gram-positive Enterococcus sp. and Gram-negative E. coli by using a novel visible-light-driven TiO2 based composite | 13-a | P/Ag/Ag2O/Ag3PO4/TiO2 photocatalyst disinfection two model bacterial groups | 12/18 16:37:50 | WWW |
144 | $B?7$7$$3hNL78?t%b%G%k$N%Q%i%a!<%?$N29EY0MB8@-$N8!F$$H(BEoS-GE$B%b%G%k$K$h$k(B2$B@.J,7O5$1UJ?9U$NAj4X(B | 1-a | activity coefficient model vapor-liquid equilibria EoS-GE | 12/18 16:42:27 | WWW |
145 | 2$B$D$N1UE)$NJILL>WFM$K$h$k1UKl$N7A@.$K4X$9$k?tCM2r@OE*8!F$(B | 2-e | Volume of Fluid Drop impact Liquid film formation | 12/18 17:05:34 | WWW |
146 | $B0LAj%7%U%H%(%j%W%=%a!<%?3+H/$H%J%NGvKl$NKl8|J,I[$N2D;k2=7WB,(B | 2-a | ellipsometry phase-shifting technique thickness measurement | 12/18 17:30:10 | WWW |
147 | Verification of CFD Prediction Accuracy of Erosion Rate for Engineering Applications | 2-e | Erosion Rate Multi-phase Flow Particle | 12/18 17:45:14 | WWW |
148 | $BCbAGCV49(BSBA-15$B$N(BCO2$BJQ49H?1~$KBP$9$k?(G^I>2A$HH?1~B.EY2r@O(B | 5-a | Mesoporous silica Kinetics CO2 transformation | 12/18 17:59:29 | WWW |
149 | $B:YK&$H:YK&30%^%H%j%C%/%9$NAj8_:nMQ$,6ZJ,2=$H?M9)6ZAH?%D%NO$KM?$($k1F6A(B | 7-a | Skeletal muscle Extracellular matrix Cell-substrate interaction | 12/18 18:37:14 | WWW |
150 | $BAj3&LLH?1~$K$h$k%"%s%b%K%"@8@.$K$*$1$k3h@-2=CbAG | 5-c | Ammonia Plasma Activated nitrogen | 12/18 18:51:33 | WWW |