Degradation of sucrose, glucose and fructose in concentrated aqueous solutions under constant pH conditions at elevated temperature

被引:73
作者
Eggleston, G [1 ]
Vercellotti, JR [1 ]
机构
[1] USDA ARS, So Reg Res Ctr, New Orleans, LA 70179 USA
关键词
D O I
10.1080/07328300008544153
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The degradation of sucrose can decrease sucrose yield, reduce the efficiency of sugar factory and refinery processes, and affect end product quality. Characterization of sucrose degradation under modeled industrial processing conditions will underpin further technological improvements. Effects of constant reaction pH on sucrose degradation were investigated using simulated industrial model systems (100 degreesC; 65 degrees Brix [% dissolved solids]; N-2; 0.05-3 mol NaOH titrant; 8 h), with the use of an autotitrator. Reaction pH values ranged from 4.40 to 10.45. Polarimetry and ion chromatography with integrated pulsed amperometric detection (IC-IPAD) were used to quantify sucrose degradation and first-order reaction constants were calculated. Minimum sucrose degradation occurred between pH 6.45 - 8.50, with minimum color formation between pH's 4.40 - 7.00. Polarimetry, often used in U.S. sugar factories and refineries to monitor chemical sucrose losses, was shown not to be viable to measure sucrose degradation under alkaline conditions, because of the formation of fructose degradation products with an overall positive optical rotation. For comparison, fructose and glucose (80 degreesC; 65 degrees Brix; N-2; 3 mol NaOH; 2 h) were also degraded at constant pH 8.3 conditions. For sucrose, fructose, and glucose, formation of organic acids on degradation was concomitant with color formation, indicating they are probably produced from similar reaction pathways. For the glucose and fructose degradation reactions, color and organic acid formation also were highly correlated (R-2>0.966) with changes in optical rotation values, confirming that these compounds are formed from similar reaction pathways.
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页码:1305 / 1318
页数:14
相关论文
共 17 条
[1]   Sucrose decomposition in aqueous solution, and losses in sugar manufacture and refining [J].
Clarke, MA ;
Edye, LA ;
Eggleston, G .
ADVANCES IN CARBOHYDRATE CHEMISTRY AND BIOCHEMISTRY, VOL 52, 1997, 52 :441-470
[2]  
de Bruyn C.A.L., 1895, RECL TRAV CHIM PAY B, V14, P203, DOI DOI 10.1002/RECL.18950140703
[3]  
DEBRUIJN JM, 1986, THESIS DELFT U TECHN
[4]   ENOLIZATION AND ISOMERIZATION OF MONOSACCHARIDES IN AQUEOUS, ALKALINE-SOLUTION [J].
DEWIT, G ;
KIEBOOM, APG ;
VANBEKKUM, H .
CARBOHYDRATE RESEARCH, 1979, 74 (SEP) :157-175
[5]  
Eggleston G, 1998, INT SUGAR J, V100, P49
[6]  
Eggleston G, 1999, INT SUGAR J, V101, P469
[7]   BEHAVIOR OF WATER STRUCTURE-BREAKING AND STRUCTURE-ENHANCING SOLUTES ON THE THERMAL-DEGRADATION OF CONCENTRATED-SOLUTIONS OF SUCROSE [J].
EGGLESTON, G ;
VERCELLOTTI, JR ;
EDYE, L ;
CLARKE, MA .
JOURNAL OF CARBOHYDRATE CHEMISTRY, 1995, 14 (07) :1035-1042
[8]   Effects of salts on the initial thermal degradation of concentrated aqueous solutions of sucrose [J].
Eggleston, G ;
Vercellotti, JR ;
Edye, LA ;
Clarke, MA .
JOURNAL OF CARBOHYDRATE CHEMISTRY, 1996, 15 (01) :81-94
[9]   Use of differential scanning calorimetry and thermogravimetric analysis to characterize the thermal degradation of crystalline sucrose and dried sucrose-salt residues [J].
Eggleston, G ;
TraskMorrell, BJ ;
Vercellotti, JR .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 1996, 44 (10) :3319-3325
[10]  
KELLY FHC, 1978, SUGAR TECHNOL REV, V6, P1