경운실험(耕耘實驗)을 위(爲)한 인공토양(人工土壤)의 물리적(物理的) 특성(特性)에 관(關)한 연구(硏究)

Study on the Physical Properties of Artificial Soil for Tillage Experiments

  • 김기대 (충남대학교 농과대학 농업기계학과) ;
  • 허윤근 (충남대학교 농과대학 농업기계학과) ;
  • 김만수 (충남대학교 농과대학 농업기계학과) ;
  • 김성래 (충남대학교 농과대학 농업기계학과)
  • Kim, Kee-Dae (Dept. of Agricultural Machinery Engineering, College of Agriculture, Chungnam Univ.) ;
  • Hur, Yun-Kun (Dept. of Agricultural Machinery Engineering, College of Agriculture, Chungnam Univ.) ;
  • Kim, Man-Soo (Dept. of Agricultural Machinery Engineering, College of Agriculture, Chungnam Univ.) ;
  • Kim, Soung-Rai (Dept. of Agricultural Machinery Engineering, College of Agriculture, Chungnam Univ.)
  • 발행 : 1978.12.31

초록

경운장치(耕耘裝置)의 재량(改良)과 새로운 경운장치(耕耘裝置)의 설계(設計)를 위(爲)한 실험(實驗)을 실내(室內)에서 실시(實施)하기 위하여 Soil bin과 자연토양(自然土壤)과 유사(類似)한 39.35%의 bentonite, 48.10의 모래 및 12.55%의 SAE 10W oil을 사용한 인공토양(人工土壤)을 제조(製造)하였으며 경운실험(耕耘實驗)을 위(爲)한 인공토양(人工土壤)의 물리적(物理的)인 특성(特性)을 구명(究明)하기 위해 전압회수(轉壓回數), 전압속도등(轉壓速度等)을 변화(變化)시켜 가면서 인공토양(人工土壤)의 절대경도(絶對硬度), 밀도(密度), 인공토양(人工土壤)과 철판(鐵板) 및 고무판(板) 및 고무판(板)의 동마찰계수(動摩擦係數)를 측정(測定)하였으며 인공토양(人工土壤)의 밀도변화(密度變化)에 따른 점착력(粘着力)과 내부마찰각(內部摩擦角)의 변화(變化)를 조사(調査)한 결과(結果)를 요약(要約)하면 다음과 같다. 1. 전압회수(轉壓回數)가 증가(增加)할수록 밀도(密度)는 증가(增加)하였으며 그 관계식(關係式)은 다음과 같다. $y=1.073200+0.070780x-0.002263x^2$ 여기서, y : 밀도(密度)($g/cm^3$) x : 전압회수(轉壓回數) 전압속도(轉壓速度) 4.5~10.4 cm/sec의 범위(範圍)에서 전압속도(轉壓速度)는 밀도(密度)에 큰 영향(影響)을 주지 않았다. 2. 토양절대경도(土壤絶對硬度)는 전압속도(轉壓速度) 4.5~10.4cm/sec의 변화(變化)에 거의 영향(影響)을 받지 않았으며 토양절대경도(土壤絶對硬度)(y)는 전압회수(轉壓回數)(x)의 증가(增加)에 대(對)하여 곡선적(曲線的)으로 증가(增加)하였는데 그들 관계식(關係式)은 다음과 같다. $y=37.74{\frac{(0.64 +0.17x-0.0054x^2}{(3.36-0.17x-0.0054x^2)^3}}$ 3. 밀도(密度)(Bulk density : y($g/cm^3$))와 토양절대경도(土壤絶對硬度)(absolute soil hardness : x($kg/cm^3$))의 관계식(關係式)은 다음과 같다. $y=37.74{\frac{2.46x-2.02}{(6.02-2.46x)^3}$ 4. 밀도(密度)의 변화(變化)는 점착력(粘着力)과 내부마찰각(內部摩擦角)에 영향(影響)을 주는데 밀도(密度)가 1.60~1.75에서 함수비(含水比) 29.5%인 자연토양(自然土壤)의 사질(砂質)loam과 유사(類似)한 값을 나타내었다. 5. 동마찰계수(動摩擦係數)는 철판(鐵板)의 경우 0.3~0.4, 고무판(板)의 경우 0.64~0.72로 나타났으며 자연토양(自然土壤)에서의 값과 유사(類似)하다.

For improvement and new design of tillage equipments, indoor test is very useful and more desirable than outdoor because the experiment of outdoor is very difficult and its cost is expensive. This study was carried out to determine the physical properties of artificial soil suitable for the indoor test with the soil bin manufactured at the workshop of the Dept. of Agricultural Machinery Engineering. The artificial soil being studied was made with very similarity to the natural soil of the experimental plots of Chungnam National University, and it consist of 39.35 percent, by weight of bentonite and 48.10 percent of sand with 12.55 percent of SAE 10W oil. The results are summarized as follows: 1. Bulk density increased with increasing number of rolling, and its relationship could be expressed. $y=1.073200+0.070780x-0.002263x^2$ where, y=bulk density ($g/cm^3$), x=number of rolling. These results could be explained that the effect of rolling velocity on the bulk density was not singnificant in the range of 4.5~10.4 em/sec. 2. The absolute soil hardness depended directly upon number of rolling, and their relationship could be expressed by the equation. $y=37.74(0.64 +0.17x-0.0054x^2)/(3.36-0.17x-0.0054x^2)^3$. where, y=absolute soil hardness($kg/cm^3$), x=number of rolling. 3. Relationship between the bulk density and absolute soil hardness could be expressed by the equation; $y=37.74(2.46x-2.02)/(6.02-2.46x)^3$. where, y=absolute soil hardness, x=bulk density. 4. The cohesion and the angle of internal friction of artificial soil were increased with increasing its bulk density. According to the cohesion and angle of internal friction, at the range of 1.60~1.75 ($g/cm^3$) of bulk density, this artificial soil was similar with sandy loam of 29.5% moisture content of natural soil. 5. Sliding-fricfion coefficient of steel plate on the artificial soil was 0.3~0.4 and rubber plate on it is 0.64~0.72. Those values were very similar with those of natural soil being studies by many others.

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