TECHNICAL STUDY ON THE CONTROLLING MECHANIQUES OF THE ENVIRONMENTAL FACTORS IN THE MUSHROOM GROWING HOUSE IN CHONNAM PROVINCE

전남지방(全南地方)에 있어서의 양송이 재배(栽培)에 최적(最適)한 환경조건(環境條件) 조절법분석(調節法分析)에 관(關)한 연구(硏究)

  • Received : 1969.09.20
  • Published : 1969.12.30

Abstract

The important results which have been obtained in the investigation can be recapitulated as follows. 1. As demostrated by the experimental results and analyses concerning their effects in the on-ground type mushroom house, the constructions in relation to the side wall and ceiling of the experimental houses showed a sufficient heat insulation on effect to protect insides of the houses from outside climatic conditions. 2. As the effect on the solar type experimental mushroom house which was constructed in a half basement has been shown by the experimental results and analyses, it has been proved to be effective for making use of solar heat. However there were found two problems to be improved for putting solar houses to practical use in the farm mushroom growing: (1) the construction of the roof and ceiling should be the same as for the on-ground type house, and (2) the solar heat generating system should be reconstructed properly. A trial solar heat generating system is shown in Fig. 40. 3. Among several ventilation systems which have been studied in the experiments, the underground earthen pipe and ceiling ventilation, and vertical side wall and ceiling ventilation systems have been proved to be most effective for natural ventilation. 4. The experimental results have shown that ventilation systems such as the vertical side wall and underground ventilation systems are suitable to put to practical use as natural ventilation systems for farm mushroom houses. These ventilation systems can remarkably improve the temperature of fresh air which is introduced into the house by heat transfers within the ventilation passages, so as to approach to the desired temperature of the house without any cooling or heating operation. For example, if it is assuming that x is the outside temperature and y is the amount of temperature adjustment made by the influence of the ventilation system, the relationships that exist between x and y can be expressed by the following regression lines. Underground iron pipe ventilation system ${\cdots}{\cdots}$ y=0.9x-12.8 Underground earthen pipe ventilation system ${\cdots}{\cdots}$y=0.96x-15.11 Vertical side wall ventilation system${\cdots}{\cdots}$ y=0.94x-17.57 5. The experimental results have shown that the relationships existing between the admitted and expelled air and the $Co_2$ concentration can be described with experimental regression lines or an exponent equation as follows: 1) If it is assumed that x is an air speed cm/sec. and y is an expelled air speed in cm/sec. in a natural ventilation system, since the y is a function of the x, the relationships that exist between x and y can be expressed by the regression lines shown below: 2) If it is assumed that x is an admitted volume of air in $m^3/hr$ and y is an expelled volume of air in $m^3/hr$ in a natural ventilation system, since the y is a function of the x, the relationships that exist between x and y can be expressed by the regression lines shown below. 3) If it is assumed that the expelled air speed in cm/sec and replacement air speed in cm/sec. at the bed surface in a natural ventilation system are shown as x and y, respectively, since the y is a function of the x, the relationships that exist between x and y can be expressed by the following regression line: G.E. (100%)- C.V. (50%) ventilation system${\cdots}$ y=0.54X+0.84 4) If it is assumed that the replacement air speed in cm/sec. at the bed surface is shown as x, and $CO_2$ concentration which is expressed by multiplying 1000 times the actual value of $CO_2$ % is shown as y, in a natural ventilation system, since the y is a function of the x the relationships that exist between x and y can be expressed by the following regression line: G.E. (100%)- C.V. (50%) ventilation system${\cdots}{\cdots}$ y=114.53-6.42x 5) If it is assumed that the expelled volume of air is shown as x and the $CO_2$ concentration which is expressed by multiplying 1000 times the actual of $CO_2$ % is shown as y in a natural ventilation system, since the y is a function of of the x, the relationships that exist between x and y can be expressed by the following exponent equation: G.E. (100%)-C.V. (50%) ventilation system${\cdots}{\cdots}$ $$y=127.18{\times}1.0093^{-X}$$ 6. The experimental results have shown that the ratios of the crass sectional area of the G.E. and C.V. vent to the total cubic capacity of the house, required for providing an adequate amount of air in a natural ventilation system, can be estimated as follows: G.E. (admitting vent of the underground ventilation)${\cdots}{\cdots}$ 0.30-0.5% (controllable) C.V. (expelling vent of the ceiling ventilation)${\cdots}{\cdots}$ 0.8-1.0% (controllable) 7. Among several heating devices which were studied in the experiments, the hot-water boilor which was modified to be fitted both as hot-water toiler and as a pressureless steam-water was found most suitable for farm mushroom growing.

이상(以上)과 같이 조사(調査) 또는 실험(實驗)한 결과중(結果中) 그 중요(重要)한 것을 요약(要約)하면 다음과 같다. 1. 실험용(實驗用) 지상식(地上式) 양송이 재배사(栽培舍)의 효과(効果)에 관(關)하여는 이미 실험결과(實驗結果)및 그 분석(分析)에서 지적(指摘)된 바 있거니와 그 측벽(側壁)및 천정(天井)의 구조(構造)는 재배사(栽培舍)를 외계(外界)의 기상조건(氣象條件)에서 격리(隔離)하는데 충분(充分)한 효과(効果)가 있는 것으로 고려(考慮)된다. 2. 반지하실(半地下室)에 구축(構築)한 실험용(實驗用) 태양식(太陽式) 양송이 재배사(栽培舍)의 효과(効果)에 관(關)하여는 실험결과(實驗結果)및 그 분석(分析)에서 지적(指摘)한 바와 같거니와 태양열(太陽熱)을 이용(利用)하는데 있어 충분(充分)한 효과(効果)가 있는 것으로 고려(考慮)된다. 그러나 이것을 농가(農家)에 적용(適用)하기 위(爲)하여는 다음과 같은 제점(諸點)이 개선(改善)되어야 할 것으로 고려(考慮)된다. 즉 (1) 태양식(太陽式)의 지붕과 천정(天井)은 실험용(實驗用) 지상식(地上式) 재배사(栽培舍)의 그것과 동일(同一)히 하고 (2) 태양열(太陽熱) 수열장치(受熱裝置)는 적당(適當)히 재고(再考)되어야 할 것으로 고려(考慮)된다. 태양열(太陽熱) 수열장치(受熱裝置)는 그림 40과 같이 하면 유효(有效)할 것으로 구상(構想)된다. 3. 본실험연구(本實驗硏究)에서 실시(實施)한 각종(各種)의 환기법중(換氣法中) G.E.-C.V. 및 V.S.-C.V. 환기법(換氣法)이 가장 효과적(效果的)인 것으로 본다. 4. 측벽수직(側壁垂直)및 지중(地中) 환기장치(換氣裝置)는 이미 지적(指摘)된 바와 같이 농가(農家) 양송이 재배사(栽培舍)의 자연환기법(自然換氣法)으로 실용적(實用的) 가치(價値)가 충분(充分)하다. 그것은 이들 환기장치(換氣裝置)는 그 환기로(換氣路)를 통(通)하여 사내(舍內)에 유입(流入)되는 외기(外氣)의 온도(溫度)를 인공적(人工的)으로 가열(加熱)이나 또는 냉각(冷却)하지 않고 사내온도(舍內溫度)에 접근(接近)하도록 조절(調節)하는 효과(効果)가 있기 때문이다. 지금 외온(外溫)을 $X^{\circ}C$로 할 때 각종(各種) 환기로(換氣路)에 의(依)하여 흡수(吸收)되는 온도(溫度) $Y^{\circ}C$을 X의 흉수(凶數)로 하는 실험식(實驗式)은 다음과 같이 회귀직선(回歸直線)으로 표시(表示)된다. $$G.P.{\cdots}Y=0.9x-12.8$$ $$G.E.{\cdots}Y=0.96x-15.11$$ $$V.S.{\cdots}Y=0.94x-17.57$$ 5. 재배사내(栽培舍內)에 유입(流入)되는 공기(空氣)및 사외(舍外)로 배출(排出)되는 공기(空氣)에 관(關)한 실험식(實驗式)은 각각(各各) 다음과 같이 회귀직선(回歸直線)및 지수곡선(指數曲線)으로 표시(表示)된다. (1) 배출속도(排出速度) Ycm/Sec를 유입속도(流入速度)${\times}$cm/Sec의 흉수(凶數)로 하는 회귀직선식(回歸直線式) G.E.-C.V.(50%)법(法) $${\cdots}Y=1.01x-1.65$$ G.E.-C.V.(100%)법(法)$${\cdots}Y=0.42x+2.03$$ V.S.-C.V.(100%)법(法)Y=0.85x+0.96 (2) 배출량(排出量) Y $m^3/hr$ 유출량(流出量) ${\times}m^3/hr$의 함수(凾數)로 하는 회귀직선식(回歸直線式) G.E.-C.V.(50%)법(法)$${\cdots}Y=2.59x-10.88$$ G.E.-C.V.(10%)법(法)Y=2.16x+26.53 (3) 상면(床面) 공기이동(空氣移動) 속기(速氣) Y m/Sec를 배출공기(排出空氣) 속도(速度)${\times}$m/Sec의 함수(凾數)로 하는 회귀직선식(回歸直線式) G.E.-C.V.(50%)법(法)$${\cdots}Y=0.54x+0.84$$ (4) $Co_2$ 축적량(蓄積量)Y(%)를 상면(床面) 공기이동(空氣移動) 속도(速度)${\times}$cm/Sec의 함수(凾數)로 하는 회귀직선식(回歸直線式) G.E.-C.V(50%)법(法)$${\cdots}Y=114.53-6.42x$$ (5) $Co_2$ 축적량(蓄積量)Y(%)를 배출(排出) 공기량(空氣量) $m^3/hr$ 함수(凾數)로 하는 지수곡선식(指數曲線式) G.E.-C.V.(50%)법(法) -$$y=127.18{\times}1.0093^{-X}$$ (6) natural vontilation system에 있어서 양송이 생육(生育)에 적합(適合)한 환경적조건(環境的條件)을 마련하기 위(爲)한 환기구(換氣口)의 단면적(斷面績)은 재배사(栽培舍) 전용적(全容積)에 대(對)하여 다음과 같은 비율(比率)로 할 수 있다. G.E. (지중유입환기구단면적(地中流入換氣口斷面績) $${\cdots}0.3-0.5%$$(요조절(要調節)) C.V. (천정배출환기구단면적(天井排出換氣口斷面績) $${\cdots}0.8-1.0%$$(요조절(要調節)) (7) 본연구(本硏究)에서 실험(實驗)한 각종(各種)의 가열장치중(加熱裝置中) 무압(無壓) 증기수(蒸氣水) 보이라로 사용(使用)할 수 있는 온수(溫水) 보이라가 농가용(農家用) 양송이 재배사(栽培舍) 가열장치(加熱裝置)로서, 그 효과면(効果面)에 있어서나 또는 그가격면(價格面)에 있어서 최적합(最適合)하다는 것이 확인(確認)되고 있다.

Keywords