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A Study of Dispersion Characteristics of Sunsik Using Fluidized-Bed Granulator

유동층 과립기를 이용한 선식의 분산 특성

  • Received : 2017.06.23
  • Accepted : 2017.08.11
  • Published : 2017.08.31

Abstract

To improve dispersibility of cereal powder without additives, granulation of cereal powder was conducted using fluidized-bed granulator. Operation condition was sample 300 g, internal temperature $40^{\circ}C$, ventilation speed $30-90m^3/h$, inlet temperature $90^{\circ}C$ and spray pressure 2.5 bar. The amount of distilled water (20-45%) as binder, granulation time (10-15 min) and drying time (3-10 min) were controlled. Mean diameter over volume (Brouckere mean, $D_{4,3}$) was increased from $123{\mu}m$ to $263{\mu}m$ and dispersibility was improved from 73% to 92.25% at experiment conditions. Wettability (wetting time) was drastically decreased from 5,000 second to 7 second. Granulation of cereal powder did not affect sinkability and mean diameter over volume as wet analysis was about the same between raw and granulated cereals. Such phenomenon means that granulation with only water as binder enables cereal powder to disperse in water or milk without rapid sedimentation.

분산성을 높이기 위한 첨가물이 들어가지 않은 선식을 제조하기 위하여 유동형 과립기를 이용하여 분산성, 용해성, 침강성 등이 개선된 선식을 제조하였다. 선식입자는 200-325 mesh ($45-75{\mu}m$) 사이에 분포하여 미세한 분말로 구성되어 있었고 입도분석기를 이용하여 측정한 입도분포도는 $D_{50}$$86.2{\mu}m$, 용적평균입도($D_{4,3}$)는 $123{\mu}m$이었다. 선식제품을 유동층 과립기를 이용하여 내부온도 $40^{\circ}C$, 송풍량 $30-90m^3/h$, 시료량 300 g, 입구온도 $90^{\circ}C$, 분무압은 2.5 bar로 고정하고 바인더량과 과립시간, 건조시간의 조건을 조절하여 과립시료를 제조하였다. 과립시료는 과립화 시간과 건조시간을 합친 처리시간과 바인더로 사용한 증류수 양에 크게 영향을 받는 것으로 나타나 처리시간 20분, 바인더 양 45%일 경우에 원물에 비하여 분산성이 73.46%에서 92.25%로 증가하였고, 습윤시간은 5,000초에서 7초로 현저히 감소하였다. 입자의 침강에 의한 층 분리 현상과 침강성은 원물과 과립 시료에서 거의 차이를 보이지 않았으며 이러한 현상은 습식으로 측정한 용적평균입도($D_{4,3}$)가 원물과 과립시료가 거의 유사한 것으로 확인되어, 과립되었던 입자들이 분산 시에 단일 입자로 쉽게 붕괴되어 원물과 거의 유사한 부력과 침강성을 갖는 것으로 판단되었다. 결론적으로 유동형 과립기를 이용하여 분산성과 용해성이 개선된 선식제품의 생산이 가능하였다.

Keywords

Acknowledgement

Supported by : 농림축산식품부

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Cited by

  1. Rice granules with improved solubility prepared via fluidised-bed granulation vol.17, pp.2, 2017, https://doi.org/10.1515/ijfe-2019-0287