999精品在线视频,手机成人午夜在线视频,久久不卡国产精品无码,中日无码在线观看,成人av手机在线观看,日韩精品亚洲一区中文字幕,亚洲av无码人妻,四虎国产在线观看 ?

Commentary on the“Measurement and correlation of solubility of meropenem trihydrate in binary(water+acetone/tetrahydrofuran)solvent mixtures”☆

2018-11-15 03:34:46RenjieXuMinZhengJiaoChenHongkunZhao
Chinese Journal of Chemical Engineering 2018年10期

Renjie Xu ,Min Zheng ,Jiao Chen ,Hongkun Zhao ,*

1 Guangling College,Yangzhou University,Yangzhou 225009,China

2 College of Chemistry&Chemical Engineering,Yangzhou University,Yangzhou 225002,China

ABSTRACT Article history:Received 2 July 2018 Accepted 20 August 2018 Available online 28 September 2018 Problem was discussed on the reported equation parameters by Zhou and co-workers[Chinese Journal of Chemical Engineering 25(10)(2017)1461-1466]for expressing the meropenem trihydrate solubility in binary(water+acetone and water+tetrahydrofuran)mixtures with the modified Apelblat equation.The reported model parameters do not back-calculate correctly the evaluated solubility as shown in their published work.The reported parameters of the modified Apelblat equation tabulated in Tables 3 and 4 by Zhou and coworkers are in mistake.

Zhou and coworkers determined the meropenem trihydrate solubility in binary(water+acetone and water+tetrahydrofuran)mixtures in their paper published in Chinese Journal of Chemical Engineering[1].Solubility was obtainable over the temperatures ranging from 278.15 K to 303.15 K by using a static technique.As an important part of their paper,Zhou and coworkers expressed the mole fraction solubility of meropenem trihydrate solubility in the two binary mixtures via the modified Apelblat equation

and the CNIBS/Redlich-Kister model:

here x1is the mole fraction of acetone or tetrahydrofuran in initial(water+acetone and water+tetrahydrofuran)mixtures free of meropenem trihydrate.xsrefers to the solubility of meropenem trihydrate in mole fraction in saturated solutions.The parameters in the modified Apelblat equation are referred to A,B and C;and in the CNIBS/Redlich-Kister model,B0,B1,B2,B3and B4.

The reported solubility data by Zhou et al.is of greatimportance and can offer crucialsupportfor the meropenem trihydrate purification.The aim of this comment is merely to show some errors in the authors'reported equation parameters rather than doubt the accuracy of their determined solubility data.For this equation,the parameters'values reported in Table 3 by Zhou and co-workers[1]give the mole fraction solubility which are greatly different from the determined ones.So as to demonstrate the problem,we back-calculate the meropenem trihydrate solubility in acetone(1)+water(2)mixtures with x1=0 at 278.15 K through substituting the reported model parameters of the modified Apelblat equation(A=-580.00,B=23,051.00 and C=87.00)from Table 3[1]into Eq.(1):

The back-calculated solubility values are xS=5.567×10-4and xS=10.87×10-4at 278.15 K and 303.15 K,respectively.The calculated values reported by Zhou et al.are xS=4.103×10-4at 278.15 K and xS=7.812×10-4at 303.15 K which are presented in Table 2 of their published work[1].The back-calculated solubilities by us for meropenem trihydrate in acetone(1)+water(2)mixtures with x1=0 with the published modified Apelblat equation coefficients are about 1.4 times the reported values by Zhou et al.

We subsequently back-calculate the meropenem trihydrate solubility in acetone(1)+water(2)mixtures with x1=0.0058 through substituting the reported equation coefficients(A=-778.00;B=30525.00 and C=117.00)from Table 3 into Eq.(1).

There are some differences in the results between ourcalculated and those reported in their work[1].The back-calculated solubilities by us using the authors'equation parameters,xS=5.758×10-5at 278.15 K and xS=1.596×10-4at 303.15 K,are also far from the data of xS=2.132×10-4at 278.15 K and xS=6.030×10-4at 303.15 K that tabulated in Table 2 of their work[1]for the computed solubility values of meropenem trihydrate in acetone(1)+water(2)mixtures with x1=0.0058.The relative deviations are 72.99%and 73.53%at 278.15 K and 303.15 K,respectively.

The reported parameters'values of Apelblat equation for tetrahydrofuran(2)+water(3)mixed solutions have also shortcoming.If we substitute the parameters'values of A,B and C for the tetrahydrofuran(2)+water(3)solutions with x1=0.307(A=-369.00;B=12527.00;C=56.00)from Table 4 oftheirwork[1]into Eq.(1),we obtain

The back-calculated solubility value is xS=1.528×10-4for meropenem trihydrate in tetrahydrofuran(1)+water(2)at 278.15 K.The back-calculated solubility by us by employing the values of authors'equation parameters is roughly 597%greater than the authors'back-calculated one of xS=0.256×10-4tabulated in the Table 2[1].

With the intention of illustrating the inconsistency clearly,we carry out back-calculations for the meropenem trihydrate solubility in acetone(1)+water(2)and tetrahydrofuran(1)+water(2)mixtures within whole composition range at investigated temperatures according to authors'reported model coefficients from Tables 3 and 4 into Eq.(1).The back-calculated values by us and the reported ones by Zhou and co-workers[1]are presented in Tables 1 and 2 of thepresent communication,along with the values of RAD(relative average deviation)expressed as Eq.(6).

Table 1 The back-calculated mole fraction solubilities x S of meropenem trihydrate in acetone(1)+water(2)mixtures at different temperatures①

Table 2 The back-calculated mole fraction solubilities x S of meropenem trihydrate in tetrahydrofuran(1)+water(2)mixtures at different temperatures①

As can be observed from Tables 1 and 2,the back-calculated solubility values are all disagreement with the reported data by Zhou and co-workers[1]with the exception for the acetone(2)+water(3)solutions with x1=0.595 and fortetrahydrofuran(1)+water(2)solutions with x1=0.152 and 0.605.Some deviations are observed between our back-calculated solubility data and those reported by Zhou et al.

We speculate that Zhou etal.used the following equation(Eq.(7))to correlate their determined solubility values,which is given as Eq.(4)in their published work.

By using A=-580.00,B=23,051.00 and C=87.00 for acetone(1)+water(2)solutions with x1=0,the back-calculated solubilities are xs=1 at all temperatures,which are still noticeably different from their back-calculated ones listed in Table 2 of their work[1].

The computation results performed by us exhibit clearly that the parameters'values of the modified Apelblat equation that Zhou et al.reported in their work[1]cannot express correctly the meropenem trihydrate solubility in acetone(1)+water(2)and tetrahydrofuran(1)+water(2)solutions with most compositions of acetone(2)and tetrahydrofuran(2).Therefore the readers should pay attention to this in using their reported model coefficients.

主站蜘蛛池模板: 精品国产黑色丝袜高跟鞋| 欧美成人精品一区二区| 性做久久久久久久免费看| 午夜爽爽视频| 国产成人91精品| 高清精品美女在线播放| 久久精品中文字幕少妇| 免费av一区二区三区在线| 国产成人精品视频一区二区电影| 亚洲经典在线中文字幕| 69精品在线观看| 红杏AV在线无码| 国产精品免费电影| 免费国产无遮挡又黄又爽| 人妻精品久久无码区| 99精品一区二区免费视频| 欧美精品高清| 激情乱人伦| 一级爆乳无码av| 99国产精品一区二区| 人妻丝袜无码视频| 亚洲v日韩v欧美在线观看| 97国产在线观看| 久青草免费视频| 九月婷婷亚洲综合在线| 夜夜操国产| 91啦中文字幕| 人人澡人人爽欧美一区| 日本午夜影院| 91精品福利自产拍在线观看| 国产一国产一有一级毛片视频| 岛国精品一区免费视频在线观看| 成人无码区免费视频网站蜜臀| 日本成人一区| 影音先锋丝袜制服| 亚洲国产欧洲精品路线久久| 久久综合丝袜长腿丝袜| 好紧太爽了视频免费无码| 亚洲国产av无码综合原创国产| 国产一区二区精品福利| 国产精品99r8在线观看| 国产在线视频福利资源站| JIZZ亚洲国产| 欧美黄色网站在线看| 国产色伊人| 国产偷倩视频| 欧美日韩成人| 亚洲另类第一页| 99视频精品在线观看| 国产精品亚欧美一区二区| 国产一在线观看| 中国特黄美女一级视频| 四虎国产精品永久一区| 精品小视频在线观看| 国产手机在线小视频免费观看| 国产乱子伦视频三区| 国内精品一区二区在线观看| 免费人成又黄又爽的视频网站| 乱系列中文字幕在线视频| 免费一级无码在线网站| 亚洲精品第一页不卡| 亚洲成人黄色在线| 天堂av综合网| 欧美va亚洲va香蕉在线| 国产精品密蕾丝视频| 午夜视频www| YW尤物AV无码国产在线观看| 国产日韩欧美在线视频免费观看| 日韩在线2020专区| 日韩免费毛片视频| 蜜桃视频一区二区| 久久频这里精品99香蕉久网址| 久久公开视频| 国产日韩久久久久无码精品| 国产在线麻豆波多野结衣| 亚洲视频色图| 国产成人夜色91| 狠狠ⅴ日韩v欧美v天堂| 日本亚洲成高清一区二区三区| 91香蕉视频下载网站| 日韩黄色精品| 欧美日韩专区|