• Title/Summary/Keyword: Punggi-dae

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A Study on the Punggi (風旗), Meteorological Instrument Made in the Joseon Dynasty (조선시대의 바람 관측기기인 풍기(風旗)의 연구)

  • Jeon, Jun Hyeok;Lee, Yong-Sam
    • Atmosphere
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    • v.23 no.1
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    • pp.47-61
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    • 2013
  • The Punggi (風旗) is one of the meteorological instruments made in the Joseon Dynasty (朝鮮王朝). Its purpose was to observe the direction of the wind. It is estimated that it started its operation in the $16^{th}$ century at least. But it does not remain in a perfect form, like the Chugugi (測雨器) and the Supyo (水標). The Punggi (風旗) can only be found at old document data, while the stone used to build the Punggi still remains. Since the stone had been named as the Punggi-dae (風旗臺) by 和田雄治 (1917), the name has not been changed until now. The Punggi is currently located in the Gyeongbok-gung (景福宮) and the Changgyeong-gung (昌慶宮). Meantime, there have been several transfers of its position. However, 和田雄治 (1917)'s paper and the "每日新報" (Maeil-Sinbo, 1929) articles have provided new clues. Also, the word 'Hupungso (候風所)' was found in the "朝鮮王朝實錄" (The annals of the Joseon Dynasty) and the "承政院日記" (Daily records of royal secretariat of Joseon dynasty). A designed harbor where the ship was staying was usually considered a special section for wind observations. It is assumed that the Hupungso was in most of the harbors at that time. This paper assumes the Punggi and the Hupungso had a lot of interest in wind observations in the Joseon Dynasty. In this study, we'll look for contained information about the Punggi and the viewpoints about wind during the Joseon Dynasty.

Effect of Acetic Acid Fumigation to Prevent Postharvest Decay of Grapes (초산훈증에 의한 포도저장병의 발생억제 효과)

  • Park, Seok-Hee;Roh Young-Kyun;Cho, Doo-Hyun;Choo, Yeun-Dae
    • Food Science and Preservation
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    • v.7 no.3
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    • pp.241-244
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    • 2000
  • Grapes(Vitis labruscana B) were fumigated with acetic acid at 20mg/liter to reduce storage decay and packaged with polyethylene film(0.03mm), then stored for 90 days at 2$^{\circ}C$. Modified atmosphere packaging reduced slightly weight loss and soluble solids content during storage. Acetic acid fumigation decreased effectively berry shattering and achieved remarkable control of rotting for storage. Two grape cultivars, 'Campbell Early' and 'Sheridan', fumigated with acetic acid had only 0.7~2.9 berries rot compared with 8.3~27.6 berries rot of cluster for grapes that were not fumigated.

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Discrimination of Panax ginseng Roots Cultivated in Different Areas in Korea Using HPLC-ELSD and Principal Component Analysis

  • Lee, Dae-Young;Cho, Jin-Gyeong;Lee, Min-Kyung;Lee, Jae-Woong;Lee, Youn-Hyung;Yang, Deok-Chun;Baek, Nam-In
    • Journal of Ginseng Research
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    • v.35 no.1
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    • pp.31-38
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    • 2011
  • In order to distinguish the cultivation area of Panax ginseng, principal component analysis (PCA) using quantitative and qualitative data acquired from HPLC was carried out. A new HPLC method coupled with evaporative light scattering detection (HPLC-ELSD) was developed for the simultaneous quantification of ten major ginsenosides, namely $Rh_1$, $Rg_2$, $Rg_3$, $Rg_1$, Rf, Re, Rd, $Rb_2$, Rc, and $Rb_1$ in the root of P. ginseng C. A. Meyer. Simultaneous separations of these ten ginsenosides were achieved on a carbohydrate analytical column. The mobile phase consisted of acetonitrile-water-isopropanol, and acetonitrile-water-isopropanol using a gradient elution. Distinct differences in qualitative and quantitative characteristics for ginsenosides were found between the ginseng roots produced in two different Korean cultivation areas, Ganghwa and Punggi. The ginsenoside profiles obtained via HPLC analysis were subjected to PCA. PCA score plots using two principal components (PCs) showed good separation for the ginseng roots cultivated in Ganghwa and Punggi. PC1 influenced the separation, capturing 43.6% of the variance, while PC2 affected differentiation, explaining 18.0% of the variance. The highest contribution components were ginsenoside $Rg_3$ for PC1 and ginsenoside Rf for PC2. Particularly, the PCA score plot for the small ginseng roots of six-year old, each of which was light than 147 g fresh weight, showed more distinct discrimination. PC1 influenced the separation between different sample sets, capturing 51.8% of the variance, while PC2 affected differentiation, also explaining 28.0% of the variance. The highest contribution component was ginsenoside Rf for PC1 and ginsenoside $Rg_2$ for PC2. In conclusion, the HPLC-ELSD method using a carbohydrate column allowed for the simultaneous quantification of ten major ginsenosides, and PCA analysis of the ginsenoside peaks shown on the HPLC chromatogram would be a very acceptable strategy for discrimination of the cultivation area of ginseng roots.

Identification and quantification of major malonyl ginsenosides isolated from Panax ginseng C.A. Meyer (인삼(Panax ginseng C.A. Meyer)로부터 Malonyl ginsenoside의 분리 및 정량분석)

  • Shin, Woo Cheol;Jung, Jiyun;Na, Hyeon Seon;Bo, Jeon Hwang;Kim, Hyoung-Geun;Yoon, Dahye;Choi, Bo-Ram;Lee, Young-Seob;Kim, Geum-Soog;Baek, Nam-In;Lee, Yi;Lee, Dae Young
    • Journal of Applied Biological Chemistry
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    • v.62 no.4
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    • pp.375-384
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    • 2019
  • The root of Panax ginseng C.A. Meyer were extracted with 70% aqueous EtOH and the concentrates were partitioned into MeOH and H2O fractions using Diaion HP-20. The repeated SiO2 or octadecyl SiO2 column, and MPLC for the MeOH fraction led to isolation of four malonyl ginsenosides. The chemical structures of these compounds were determined as malonyl ginsenoside Rd (1) malonyl ginsenoside Rc (2) malonyl ginsenoside Rb2 (3) malonyl ginsenoside Rb1 (4) based on spectroscopic analyses including Nuclear magnetic resonance and HR-TOF/MS. The contents of malonyl ginsenoside Rb1 was highist as 5.44 mg/g of five years of ginseng. And malonyl ginsenoside Rd was lowest as 0.11 mg/g of six years of ginseng. Additionally, the malonyl ginsenoside Rd exhibited hepatoprotective effect against ethanol-induced hepatotoxicity in HepG2 cell line.