农业工程学报
農業工程學報
농업공정학보
2014年
24期
1-10
,共10页
王英%陈建能%吴加伟%赵匀
王英%陳建能%吳加偉%趙勻
왕영%진건능%오가위%조균
力学特性%移栽%机械化%西兰花钵苗%正交试验%抗压强度%运动阻力系数%接触力学
力學特性%移栽%機械化%西蘭花缽苗%正交試驗%抗壓彊度%運動阻力繫數%接觸力學
역학특성%이재%궤계화%서란화발묘%정교시험%항압강도%운동조력계수%접촉역학
mechanical properties%transplants%mechanization%broccoli seedling%orthogonal experiment%compressive strength%motion resistance coefficient%contact mechanics
为了降低西兰花钵苗机械化栽植过程中的破损率,避免栽植嘴已经运行到栽植位置而钵苗还未滑到栽植嘴的底部而造成移栽失败,该文采用正交试验的方法,以土钵体积(表示穴盘规格)、苗龄和含水率为试验因素,针对栽植过程农艺要求,进行了不同方案下土钵的抗压强度试验和钵苗沿栽植嘴壁面下滑的运动阻力系数测试。通过建立西兰花土钵与栽植嘴壁面碰撞过程接触力学模型,分析得到为避免土钵破损钵苗和栽植嘴碰撞时不同组合允许的最大相对速度。以栽植作业中避免钵苗破损,同时运动阻力不能过大为目标,采用综合评分法,得到适宜机械化栽植的4个土钵体积、苗龄和含水率组合,进而对这4个组合进行模拟田间栽植试验,得到最优的组合:土钵体积为中(穴盘规格为128),苗龄为2~3片真叶,含水率约为63%。该研究为栽植机构的设计提供依据。
為瞭降低西蘭花缽苗機械化栽植過程中的破損率,避免栽植嘴已經運行到栽植位置而缽苗還未滑到栽植嘴的底部而造成移栽失敗,該文採用正交試驗的方法,以土缽體積(錶示穴盤規格)、苗齡和含水率為試驗因素,針對栽植過程農藝要求,進行瞭不同方案下土缽的抗壓彊度試驗和缽苗沿栽植嘴壁麵下滑的運動阻力繫數測試。通過建立西蘭花土缽與栽植嘴壁麵踫撞過程接觸力學模型,分析得到為避免土缽破損缽苗和栽植嘴踫撞時不同組閤允許的最大相對速度。以栽植作業中避免缽苗破損,同時運動阻力不能過大為目標,採用綜閤評分法,得到適宜機械化栽植的4箇土缽體積、苗齡和含水率組閤,進而對這4箇組閤進行模擬田間栽植試驗,得到最優的組閤:土缽體積為中(穴盤規格為128),苗齡為2~3片真葉,含水率約為63%。該研究為栽植機構的設計提供依據。
위료강저서란화발묘궤계화재식과정중적파손솔,피면재식취이경운행도재식위치이발묘환미활도재식취적저부이조성이재실패,해문채용정교시험적방법,이토발체적(표시혈반규격)、묘령화함수솔위시험인소,침대재식과정농예요구,진행료불동방안하토발적항압강도시험화발묘연재식취벽면하활적운동조력계수측시。통과건립서란화토발여재식취벽면팽당과정접촉역학모형,분석득도위피면토발파손발묘화재식취팽당시불동조합윤허적최대상대속도。이재식작업중피면발묘파손,동시운동조력불능과대위목표,채용종합평분법,득도괄의궤계화재식적4개토발체적、묘령화함수솔조합,진이대저4개조합진행모의전간재식시험,득도최우적조합:토발체적위중(혈반규격위128),묘령위2~3편진협,함수솔약위63%。해연구위재식궤구적설계제공의거。
In order to reduce the breakage rate of the broccoli seedling during mechanized planting and to avoid the transplanting failure caused by the discordance between planting nozzle and seedling while the planting nozzle has arrived at the planting location but the seedling has not slipped to the bottom of planting nozzle, the orthogonal experiments based on agronomic requirements has been carried out in this paper. The volume of soil block (represent plate size), seedling age, and moisture content of soil blocks are selected as the experimental factors. Every factor has three levels. One experiment has been carried out to test the compressive strength of soil blocks under different schemes. Through using the universal material testing machine, the relationships between compressive force and compressive amount have been obtained and expressed as curves. In order to analyze these curves, the compression elasticity of the soil block has been proposed, which was defined as the straight slope between point D (starting point of linear elastic) and point E (yield point). Then, several sets of compression elasticity and yield limit under different schemes have been obtained. Analysis results show that the compression elasticity increases at first, then decreases with the reduction of the volume of soil blocks, while the yield limit decreases with the reduction of the volume of soil blocks. Both of them have no significant relationship with seedling age, but decrease with the increase in moisture content. Another experiment was carried out to test the motion resistance coefficient between seedling and planting nozzle. The broccoli seedling was put on an incline, then the process of broccoli seedling sliding along the incline was recorded by the high-speed camera. The sliding acceleration along the incline of broccoli seedling was obtained by video processing technology. Afterwards, the motion resistance coefficient was derived by using Newtonian mechanics theory. Analysis results show that the motion resistance coefficient decreases with the reduction of soil block volume, and increases with the increase of both the seedling age and moisture content. The mechanics model of the colliding process between seedling and planting nozzle has been built, and the highest relative speed allowed was obtained from the model. In order to avoid the breakage of seedling, meanwhile the motion resistance coefficient shouldn’t be too high, a comprehensive scoring method was applied to evaluate the combinations of soil block volume, seedling age, and moisture content. Four combinations were chosen by comparing the scores. In order to achieve the best combination, the field planting simulation experiment was conducted. This experiment was done indoors by using a rotating circular soil tank driven by the friction of tires. Breakage rate and rewind rate were obtained from this experiment. The best combination that is suitable for mechanized planting of broccoli seedling was obtained:medium soil block (128 holes plate), 2-3 leaves, and water content at 63%. This study provides reference for the design of planting mechanism.