浙江农业学报 ›› 2026, Vol. 38 ›› Issue (6): 1061-1072.DOI: 10.3969/j.issn.1004-1524.20260108
黎佳莉1(
), 张程程1,2, 鲍天牧1, 程哲3, 李云龙3, 刘大群1,2,*(
)
收稿日期:2026-02-10
出版日期:2026-06-25
发布日期:2026-07-14
作者简介:黎佳莉,研究方向为谷物精深加工与综合利用。E-mail:lijiali0913@163.com
通讯作者:
*刘大群,E-mail:daqun.liu@hotmail.com
LI Jiali1(
), ZHANG Chengcheng1,2, BAO Tianmu1, CHENG Zhe3, LI Yunlong3, LIU Daqun1,2,*(
)
Received:2026-02-10
Published:2026-06-25
Online:2026-07-14
摘要:
以小米、黑豆、绿豆蛋白为主要原料,辅以助干剂,利用喷雾干燥工艺制备复合杂粮蛋白固体饮料(multigrain protein solid beverage, MPSB),利用单因素试验优化工艺参数,并研究在优化工艺参数下制得的样品的冲调品质、理化性质与消化特性。结果表明,优化工艺为:以麦芽糊精作为助干剂,添加量为60 g·L-1,进风温度为160 ℃,蠕动泵速率为4 mL·min-1,风机速度为85%。在此条件下制备的MPSB具有较好的冲调性,粒径变小且更均匀,基于流变特性判定MPSB溶液属于牛顿流体。经过喷雾干燥加工后,MPSB的Zeta-电位绝对值和体外蛋白质消化率均显著(p<0.05)升高,说明其物理稳定性增强,且更易被人体吸收。综上,本研究制备出一种复合杂粮蛋白固体饮料,不仅具有良好的冲调特性,还具有较高的营养价值。研究结果可为高蛋白杂粮固体饮料的开发提供参考。
中图分类号:
黎佳莉, 张程程, 鲍天牧, 程哲, 李云龙, 刘大群. 基于喷雾干燥工艺的复合杂粮蛋白固体饮料制备及其冲调品质与消化特性研究[J]. 浙江农业学报, 2026, 38(6): 1061-1072.
LI Jiali, ZHANG Chengcheng, BAO Tianmu, CHENG Zhe, LI Yunlong, LIU Daqun. Study on preparation, rehydration quality and digestive properties of multigrain protein solid beverage via spray drying technology[J]. Acta Agriculturae Zhejiangensis, 2026, 38(6): 1061-1072.
| 样品 Sample | 水分含量 Moisture content | 脂肪含量 Fat content | 灰分含量 Ash content | 蛋白质含量 Protein content |
|---|---|---|---|---|
| 绿豆蛋白粉Mung bean protein powder | 6.68 | 5.13 | 4.01 | 79.39 |
| 小米蛋白粉Millet protein powder | 5.99 | 3.21 | 5.11 | 81.47 |
| 黑豆蛋白粉Black bean protein powder | 6.90 | 3.28 | 5.00 | 83.4 |
表1 小米、黑豆、绿豆蛋白粉的基础成分
Table 1 Basic ingredients of millet, black bean and mung bean protein powders
| 样品 Sample | 水分含量 Moisture content | 脂肪含量 Fat content | 灰分含量 Ash content | 蛋白质含量 Protein content |
|---|---|---|---|---|
| 绿豆蛋白粉Mung bean protein powder | 6.68 | 5.13 | 4.01 | 79.39 |
| 小米蛋白粉Millet protein powder | 5.99 | 3.21 | 5.11 | 81.47 |
| 黑豆蛋白粉Black bean protein powder | 6.90 | 3.28 | 5.00 | 83.4 |
| 处理 Treatment | 溶解度 Solubility | 结块率 Caking rate | 不同时间点的稳定性Stability at different time | ||
|---|---|---|---|---|---|
| 3 min | 5 min | 10 min | |||
| C1 | 24.05±2.63 b | 5.17±0.24 bc | 100±0 a | 97.50±1.08 a | 37.50±6.25 c |
| C2 | 18.50±1.81 b | 5.33±1.18 bc | 35.43±3.61 d | 25.00±2.50 c | 22.50±2.17 d |
| C3 | 52.33±0.76 a | 1.83±0.24 c | 93.75±1.25 b | 89.38±1.08 a | 37.50±0.01 c |
| C4 | 22.73±1.22 b | 4.17±1.25 bc | 69.58±5.05 c | 38.75±9.76 b | 33.75±3.31 c |
| C5 | 25.81±6.87 b | 5.83±1.84 b | 96.67±0.72 ab | 95.44+0.72 a | 87.50±0.01 a |
| C6 | 18.10±4.83 b | 4.33±1.25 bc | 97.08±0.72 ab | 95.63±1.65 a | 93.75±0.01 a |
| C7 | 17.57±2.73 b | 6.83±0.62 b | 98.75±0.01 ab | 97.83±0.38 a | 70.83±3.61 b |
| C8 | 24.89±8.36 b | 12.83±0.47 a | 94.17±0.72 ab | 91.46±0.95 a | 72.29±3.08 b |
| C9 | 30.23±1.71 b | 11.33±0.62 a | 93.54±0.36 b | 87.92±0.72 a | 70.42±2.89 b |
表2 不同配比对样品溶解度、结块率和稳定性的影响
Table 2 Effects of different ratios on solubility, caking rate and stability of samples
| 处理 Treatment | 溶解度 Solubility | 结块率 Caking rate | 不同时间点的稳定性Stability at different time | ||
|---|---|---|---|---|---|
| 3 min | 5 min | 10 min | |||
| C1 | 24.05±2.63 b | 5.17±0.24 bc | 100±0 a | 97.50±1.08 a | 37.50±6.25 c |
| C2 | 18.50±1.81 b | 5.33±1.18 bc | 35.43±3.61 d | 25.00±2.50 c | 22.50±2.17 d |
| C3 | 52.33±0.76 a | 1.83±0.24 c | 93.75±1.25 b | 89.38±1.08 a | 37.50±0.01 c |
| C4 | 22.73±1.22 b | 4.17±1.25 bc | 69.58±5.05 c | 38.75±9.76 b | 33.75±3.31 c |
| C5 | 25.81±6.87 b | 5.83±1.84 b | 96.67±0.72 ab | 95.44+0.72 a | 87.50±0.01 a |
| C6 | 18.10±4.83 b | 4.33±1.25 bc | 97.08±0.72 ab | 95.63±1.65 a | 93.75±0.01 a |
| C7 | 17.57±2.73 b | 6.83±0.62 b | 98.75±0.01 ab | 97.83±0.38 a | 70.83±3.61 b |
| C8 | 24.89±8.36 b | 12.83±0.47 a | 94.17±0.72 ab | 91.46±0.95 a | 72.29±3.08 b |
| C9 | 30.23±1.71 b | 11.33±0.62 a | 93.54±0.36 b | 87.92±0.72 a | 70.42±2.89 b |
图1 不同助干剂对出粉率的影响 柱上无相同字母的表示差异显著(p<0.05)。图2~6同。
Fig.1 Effects of different drying aids on powder yield Bars marked without the same letters indicate significant difference at p<0.05. The same as Fig.2-6.
图2 助干剂添加量对样品溶解度、松散堆积密度和吸湿率的影响 a)、b)分别表示饱和碳酸钾溶液和饱和氯化钠溶液下的吸湿率。下同。
Fig.2 Effects of drying aids dosage on solubility, loose bulk density and moisture absorption rate of samples a) and b) represent moisture absorption rates under saturated potassium carbonate solution and saturated sodium chloride solution, respectively. The same as below.
| 样品 Sample | 松散堆积密度/ (g·mL-1) Loose bulk density/ (g·mL-1) | 溶解度/% Solubility/% | 吸湿率(饱和氯 化钠溶液)/% Moisture absoprtion rate (saturated sodium chloride solution)/% | 吸湿率(饱和碳酸钾 溶液)/% Moisture absoprtion rate (saturated potassium carbonate solution)/% | L* | a* | b* |
|---|---|---|---|---|---|---|---|
| CPP | 0.19±0.06 a | 44.04±0.81 b | 4.57±0.29 a | 4.85±0.34 a | 60.19±1.52 b | 2.91±0.04 a | 15.15±0.38 a |
| MPSB | 0.21±0.01 a | 61.88±2.50 a | 3.37±0.46 b | 3.71±0.41 b | 70.99±1.06 a | 1.86±0.02 b | 11.57±0.29 b |
表3 不同样品的冲调特性与色泽
Table 3 Rehydration characteristics and color of different samples
| 样品 Sample | 松散堆积密度/ (g·mL-1) Loose bulk density/ (g·mL-1) | 溶解度/% Solubility/% | 吸湿率(饱和氯 化钠溶液)/% Moisture absoprtion rate (saturated sodium chloride solution)/% | 吸湿率(饱和碳酸钾 溶液)/% Moisture absoprtion rate (saturated potassium carbonate solution)/% | L* | a* | b* |
|---|---|---|---|---|---|---|---|
| CPP | 0.19±0.06 a | 44.04±0.81 b | 4.57±0.29 a | 4.85±0.34 a | 60.19±1.52 b | 2.91±0.04 a | 15.15±0.38 a |
| MPSB | 0.21±0.01 a | 61.88±2.50 a | 3.37±0.46 b | 3.71±0.41 b | 70.99±1.06 a | 1.86±0.02 b | 11.57±0.29 b |
图6 不同样品的Zeta-电位 CPP,基于本研究确定的最优配比的复合蛋白粉;MPSB,基于本研究确定的优化工艺制得的复合杂粮蛋白固体饮料。下同。
Fig.6 Zeta-potential of different samples CPP, Compound protein powder with the optimal ratio determined in this study; MPSB, Multigrain protein solid beverage prepared under the optimized process established in this study. The same as below.
图7 不同样品的扫描电子显微镜观测结果 A、B是未经喷雾干燥处理的CPP样品;C、D是经过喷雾干燥后得到的MPSB样品。
Fig.7 Observation results of different samples by scanning electron microscope Panel A and B are samples of CPP which have not undergone spray drying treatment; Panel C and D are samples of MPSB obtained after spray drying.
图8 不同样品的粒径分布 图中的粒径值均已转换为常用对数值。
Fig.8 Particle size distribution of different samples All particle size values in the figure are converted into common logarithmic values.
图9 不同样品的流变特性 G',储能模量;G″,损耗模量。图中的黏度、模量、频率(f)值均已转换为常用对数值。
Fig.9 Rheological properties of different samples G', Storage modulus; G″, Loss modulus. All the values of viscosity, modelus and frequency (f) in the figure are converted into common logarithmic values.
图10 不同样品tan δ随频率的变化曲线 tan δ= G″/G',即损耗模量与储能模量之比。图中的tan δ和频率(f)值均已转换为常用对数值。
Fig.10 Variation curves of tan δ with frequency for different samples tan δ=G''/G', which is the ratio of loss modulus to storage modulus. All the values of tan δ and frequency (f) fin the figure are converted into common logarithmic values.
图11 不同样品的的体外蛋白质消化率 柱上无相同字母的表示不同样品在同一时期差异显著(p<0.05)。
Fig.11 In vitro protein digestibility of different samples Bars marked without the same letters indicate significant (p<0.05) difference between samples at the same period.
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