• Title/Summary/Keyword: transplanting bed

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Study on the Cultivation Methods of Transplanting the Turf Seedlings II. Effects of turf grass growth to the selected soils in seedling bed

  • Lee, Myung-Sun
    • Plant Resources
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    • v.5 no.3
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    • pp.187-191
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    • 2002
  • This experiment was conducted to investigate the effects of turf grass growth to seedling rates and bed soil types. The results of this experiment were summarized as follows; the more increasing the seedling rates, the plant height and leaf length were longer, but the number of leaf and number of branch were fewer. Incase of transplanting of turf grass seedling by rice transplanting machine, it might be considered that the proper alternative bed soil was sandy loam soil with regarding to the economic aspects. The maximum seedling rate of turf grass in the seedling tray for rice was 1,000 of seedling amount due to the nutrient competition with intensive seedling. As the results indicated, it might be recommended that the proper alternative bed soil was sandy loam soil with 1,000 of seedling rates in case of transplanting of turf grass seedling by rice transplanting machine.

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Study on the Cultivation Methods of Transplanting the Turf Seedlings II. Effects of turf grass growth to the selected soils in seedling bed

  • Lee, Myoung-Sun
    • Proceedings of the Plant Resources Society of Korea Conference
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    • 2002.11a
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    • pp.31-36
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    • 2002
  • This experiment was conducted to investigate the effects of turf grass growth to seedling rates and bed soil types. The results of this experiment were summarized as follows; the more increasing the seedling rates, the plant height and leaf length were longer, but the number of leaf and number of branch were fewer. In case of transplanting of turf grass seedling by rice transplanting machine, it might be considered that the proper alternative bed soil was sandy loam soil with regarding to the economic aspects. The maximum seedling rate of turf grass in the seedling tray for rice was 1,000 of seedling amount due to the nutrient competition with intensive seedling. As the results indicated, it might be recommended that the proper alternative bed soil was sandy loam soil with 1,000 of seedling rates in case of transplanting of turf grass seedling by rice transplanting machine.

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Selection of the Optimal Transplanting Method and Time for Restoration of Zostera marina Habitats (잘피(Zostera marina)서식지 복원을 위한 최적 이식방법 및 시기 선정에 관한 연구)

  • Park, Jung-Im;Kim, Young-Kyun;Park, Sang-Rul;Kim, Jong-Hyeob;Kim, Young-Sang;Kim, Jeong-Bae;Lee, Pil-Yong;Kang, Chang-Keun;Lee, Kun-Seop
    • ALGAE
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    • v.20 no.4
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    • pp.379-388
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    • 2005
  • Seagrass bed is an important component in coastal and estuarine ecosystems, providing food and shelter to a wide variety of fauna. Recently, seagrass coverage has declined significantly due to anthropogenic influences such as reclamation, dredging, and eutrophication and consequently, necessity of seagrass habitat restoration is rising. Transplantation experiments with Zostera marina using TERFS, staple method, and shell method have been conducted at Dadae Bay, Kosung Bay and Jindong Bay on the south coast of Korea to select an optimal transplanting method for restoration of Z. marina habitat. Three experimental sites located at the vicinity of natural Z. marina beds with an average water depth of about 4m. Z. marina plants, which were collected from donor bed in Koje Bay were also transplanted at 7 different time from October 2003 to July 2004 to find appropriate transplanting time. Density of Z. marina was monitored monthly at both transplanted areas and natural beds. Transplantation using the staple method showed the highest survival rate of transplant. Shell method was also an effective transplanting method at muddy areas in Kosung Bay and Jindong Bay, but not suitable at sandy areas in Dadae Bay. These results suggest that sediment composition of transplanting areas should be considered for the selection of the optimal transplanting method. Z. marina transplanted during fall usually showed the highest survival rate, while most Z. marina plants transplanted in summer died due to high lethal temperature during this period.

Study on Flowering, Bearing Fruit, Seed Harvesting and Seedling Transplanting Cultivation of Valeriana fauriei Briquet (쥐오줌풀 개화·결실 특성과 적정 채종방법 및 육묘이식재배에 관한 연구)

  • Ahn, Young-Sup;Hur, Mok;An, Tae-Jin;Park, Chun-Geun;Kim, Young-Guk;Park, Chung-Berm;Baek, Wan-Sook
    • Korean Journal of Medicinal Crop Science
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    • v.20 no.5
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    • pp.365-371
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    • 2012
  • This study was carried out to know the characteristics of flowering and bearing fruit, the optimum period, regions and methods for seed harvesting, the optimum temperatures for seed storage and germination, and the optimum period for sowing at nursery bed and seedling transplanting of Valeriana fauriei Briquet. The flowering and bearing fruit of Valeriana fauriei was developed from the before-year root. Optimum period for seed harvest of Valeriana fauriei was from late July to middle August, and optimum areas were the high elevated areas over 500 m above the sea level as Jinbu-myeon, Pyeongchang-gun, Gangwon-do. Using of net-bag for seed harvesting was the effective method to gather the full ripe seed, and bagging of net-bag was necessary from the season of middle May that was the flowering middle-stage. Germination rates don't show the difference among the different temperatures of storage as approximately 41% at $-20^{\circ}C$, $2^{\circ}C$ or $20^{\circ}C$ of seed storage temperatures. The optimum temperature range was in $15{\sim}30^{\circ}C$ for seed germination at nursery bed. The optimum period for seed sowing at nursery bed was the late February, and the optimum period for seedling transplanting was the middle April.

Optimizing Planting Distance and Labor-Saving Efficiency for Head Lettuce Using a Transplanter for Summer Season Cultivation in the Alpine Area (고랭지 결구상추의 기계정식시 적정 재식거리 및 노력절감효과)

  • Jang, Suk-Woo;Kim, Won-Bae;Kim, Jin-Young
    • Horticultural Science & Technology
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    • v.18 no.6
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    • pp.787-791
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    • 2000
  • Lettuce seedlings used in this investigation of planting distance and labor-saving efficiency were first grown in 100-hole paper trays for 30 days. Seedling height for transplanting ranged from 3 cm to 6 cm and plants had 3 to 5 leaves. The beds prepared for transplanting were of the arched type and were 35-40 cm in width, 15-20 cm in bed height, and between-bed furrow width was 20 30 cm. Typical seedling planting depth with the transplanter was 4-5 cm, although depth was quite variable because of the irregularities of the ground. Total transplanting time with the transplanter varied from 2.6 to 2.7 hours per 10a, while it took 38.1 hours per 10a with conventional planting. It was critical that the condition of both the seedlings and the bed be adjusted to the transplanter before planting. Considering yield and inter-plant distance, optimal transplanter performance resulted with $60{\times}20cm$ or $60{\times}25cm$spacing, and the labor-saving efficiency using the transplanter was improved by over 93% of that of conventional planting by hand.

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Automatic Feeding and Transplanting Mechanism for Plug Seedling Transplanter (플러그묘 자동이식기의 묘 자동공급 및 이식기구에 관한 연구)

  • 민영봉;문성동
    • Journal of Biosystems Engineering
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    • v.23 no.3
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    • pp.259-270
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    • 1998
  • An automatic seedling transplanter, employed an innovative plug-seedling feeder was developed by improving the problems of conversational feeding and transplanting mechanisms. With conventional methods, missing and damage rates of seedling were high for long seedlings over 20cm and also breaking seed-bed was frequently observed. Thus, a pushout-bucket slide-hopper type trandsplanter was devised and tested. Test results of picking and transferring accuracies of the developed transplanter are as follows : A prototype transplanter performed with 1.5% of missing rate. The deviations of horizontal feed ranged from -0.3mm to 2.8mm and averaged 0.673mm for the 128-hoe test tray : and ranged from -lmm to +3mm and averaged 0.785mm for the 200-hole test tray. The deviations could decrease with precise manufacturing and lightening the mechanism. The maximum and deviations of vertical feed were -2.3mm and + 1mm, respectively, for the 128-hole test tray ; and were +3mm and +2.5mm, respectively, for the 200-hole test tray. The missing rate, seeding bruise rate and seed-bed damage rate were esitmate to be 1.3%, 0.4% and 3.5%, respectively, with the developed automatic transplanter.

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Development of a Hydraulic Level Control System for High-speed Rice Transplanting Machines (고속 이앙기의 유압 수평 제어 장치 개발에 관한 연구)

  • 정연근;정병학;김경욱
    • Journal of Biosystems Engineering
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    • v.27 no.2
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    • pp.79-88
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    • 2002
  • This study was conducted to develop system for high speed rice transplanting machines. The control system includes a sensor detecting the tilt angle of the seedling bed, a micro-controller and a hydraulic system consisting of a double acting cylinder, a four-way three-position solenoid valve, a relief valve and a hydraulic pump. The levelling system shared the pump with the existing steering control, resulting in a tandem center circuit for the steering and levelling control systems. Using the input signal from the sensor, the micro-controller determined and generated the output signal to control the cylinder through the solenoid valve to keep the seedling bed always parallel to the water surface regardless of soil unevenness during the transplanting operations. Both an ON/OFF and a PWM control schemes were tested. When the flow rate was more than 1 ι/min in the ON/OFF control, the system showed unstable rolling. However, in the PWM control, the system worked stably although the flow rate was more than 1 ι/min. The PWM control showed a better performance when a large difference between the angle and the dead band of the control system occurred. The characteristics of tile system response to given tilt angles were predicted by a computer simulation. Both the ON/OFF and the PWM control systems worked well providing that the operating and waiting times were properly adjusted.

Effect of Inorganic Environmental Factors on the Growth on Pinus koraiensis Seedlings (II) - The Influence of Root cuttings on the Growth of Seedlings Grown on the Transplanting Bed - (무기적(無機的) 환경요인(環境要因)이 잣나무 유묘(幼苗)의 생육(生育)에 미치는 영향(影響)에 관(關)한 연구(硏究) (II) - 파종상(播種床)에서 피음(被陰) 처리(處理)한 유묘(幼苗)의 단근영향(斷根影響) -)

  • Kim, Young Chae
    • Journal of Korean Society of Forest Science
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    • v.76 no.1
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    • pp.1-10
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    • 1987
  • This study was carried out to examine the influence of shading and root-cutting on the survival and growth of Pinus koraiensis seedlings. 1, The highest survival percentage of seedlings transplanted to transplanting bed appeared at the plot of 19% in shading. The 50% of the seedlings were survived if half of them were root-cutting. 2. Shoot elongation, root growth and diameter increment were the best at the plot of 100% in relative light intensity. However, those were the best at the plot with 1/4 root cutting. 3. The increase of needle fascicle number and the growth of needle surface area per seedling were the longest at the plot of 63% relative light intensity. Among root cutting treatments the 1/4 cutting plot showed the largest growth of needle areas.

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Effect of Inorganic Environmental Factors on the Growth of Pinus koraiensis Seedlings(IX) -The Influence of Seedling Weight Growth and T/R Ratio of Seedlings in Transplanting Bed- (무기적(無機的) 환경요인(環境要因) 잣나무 유묘(幼苗)의 생육(生育)에 미치는 영향(影響)에 관(關)한 연구(硏究)(IX) -이식상(移植床)에서의 묘중(苗重) 생장(生長) 및 T/R율(率)-)

  • Kim, Young Chai
    • Journal of Korean Society of Forest Science
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    • v.77 no.4
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    • pp.414-420
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    • 1988
  • This research was performed to estimate the degree of influence of relative light intensity and planting density on the weight growth in the trans-planting bed. The Piuns koraionsis seedlings treated for different degrees of shading on seed bed were planted in transplanting bed. 1. The seedling weight growth under 100% relative light intensity and $6{\times}6$ plot(36 individual) density showed the largest growth and the best growth was found during 26th of May 25 of June. 2. As the relative light intensity decrease and with planting density increased, the weight growth decreased. And the weight growth had a tendency to decrease after 26th of May-25th of June. 3. T/R ratio showed the highest value under 63% relative light intensity and $12{\times}12$ plot (224 individual) of planting density. The highest T/R ratio was found during 26th of July-25th August.

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