Journal of Agricultural Science and Technology ›› 2022, Vol. 24 ›› Issue (10): 99-108.DOI: 10.13304/j.nykjdb.2021.0868
• INTELLIGENT AGRICULTURE & AGRICULTURAL MACHINERY • Previous Articles Next Articles
Guichuan YANG(), Fugui ZHANG, Le ZHENG(
), Zhen WANG, Manman KONG, Xinpeng ZHANG
Received:
2021-10-12
Accepted:
2021-11-30
Online:
2022-10-15
Published:
2022-10-25
Contact:
Le ZHENG
杨贵川(), 张富贵, 郑乐(
), 王震, 孔曼曼, 章鑫鹏
通讯作者:
郑乐
作者简介:
杨贵川 E-mail: 305164115@qq.com;
基金资助:
CLC Number:
Guichuan YANG, Fugui ZHANG, Le ZHENG, Zhen WANG, Manman KONG, Xinpeng ZHANG. Tuber Physical Characteristics and Calibration of Discrete Element Simulation Parameters of Pinellia ternata[J]. Journal of Agricultural Science and Technology, 2022, 24(10): 99-108.
杨贵川, 张富贵, 郑乐, 王震, 孔曼曼, 章鑫鹏. 半夏块茎物理特性研究及离散元仿真参数标定[J]. 中国农业科技导报, 2022, 24(10): 99-108.
压缩速率Compression rate/ (mm·min-1) | 参数 Paramter | 试验编号Test number | 平均值Average | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | |||
1 | 泊松比μ1 | 0.369 5 | 0.328 7 | 0.360 0 | 0.322 6 | 0.424 4 | 0.290 4 | 0.364 1 | 0.398 8 | 0.366 5 | 0.358 3 |
弹性模量E/MPa | 4.441 4 | 4.861 7 | 4.903 9 | 5.273 5 | 6.529 2 | 5.546 5 | 4.607 9 | 4.523 4 | 5.155 0 | 5.093 6 | |
3 | 泊松比μ1 | 0.472 8 | 0.416 0 | 0.321 7 | 0.310 2 | 0.345 3 | 0.347 6 | 0.387 1 | 0.383 3 | 0.455 6 | 0.382 2 |
弹性模量E/MPa | 5.706 8 | 6.398 7 | 6.986 3 | 5.505 2 | 6.299 6 | 7.351 6 | 7.236 3 | 5.751 7 | 6.007 6 | 6.360 4 | |
5 | 泊松比μ1 | 0.298 8 | 0.461 9 | 0.347 0 | 0.358 4 | 0.335 6 | 0.418 6 | 0.343 4 | 0.424 0 | 0.432 2 | 0.378 7 |
弹性模量E/MPa | 4.777 2 | 6.739 2 | 5.968 6 | 6.707 3 | 7.255 8 | 6.491 0 | 4.481 3 | 4.773 9 | 5.160 5 | 5.817 2 |
Table 1 Result of P. ternata tuber compression
压缩速率Compression rate/ (mm·min-1) | 参数 Paramter | 试验编号Test number | 平均值Average | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | |||
1 | 泊松比μ1 | 0.369 5 | 0.328 7 | 0.360 0 | 0.322 6 | 0.424 4 | 0.290 4 | 0.364 1 | 0.398 8 | 0.366 5 | 0.358 3 |
弹性模量E/MPa | 4.441 4 | 4.861 7 | 4.903 9 | 5.273 5 | 6.529 2 | 5.546 5 | 4.607 9 | 4.523 4 | 5.155 0 | 5.093 6 | |
3 | 泊松比μ1 | 0.472 8 | 0.416 0 | 0.321 7 | 0.310 2 | 0.345 3 | 0.347 6 | 0.387 1 | 0.383 3 | 0.455 6 | 0.382 2 |
弹性模量E/MPa | 5.706 8 | 6.398 7 | 6.986 3 | 5.505 2 | 6.299 6 | 7.351 6 | 7.236 3 | 5.751 7 | 6.007 6 | 6.360 4 | |
5 | 泊松比μ1 | 0.298 8 | 0.461 9 | 0.347 0 | 0.358 4 | 0.335 6 | 0.418 6 | 0.343 4 | 0.424 0 | 0.432 2 | 0.378 7 |
弹性模量E/MPa | 4.777 2 | 6.739 2 | 5.968 6 | 6.707 3 | 7.255 8 | 6.491 0 | 4.481 3 | 4.773 9 | 5.160 5 | 5.817 2 |
序号 Number | x:恢复系数 Recovery coefficient | 碰撞后最大爬升高度Maximum climb height after collision/mm | |
---|---|---|---|
ya:块茎a Tuber a | yb:块茎b Tuber b | ||
1 | 0.20 | 8.96 | 17.91 |
2 | 0.30 | 6.40 | 19.84 |
3 | 0.35 | 6.51 | 22.55 |
4 | 0.40 | 4.29 | 21.98 |
5 | 0.45 | 4.68 | 26.50 |
6 | 0.50 | 4.21 | 27.48 |
7 | 0.60 | 1.81 | 30.81 |
8 | 0.70 | 1.36 | 34.45 |
9 | 0.80 | 1.36 | 39.74 |
10 | 1.00 | 0.00 | 50.00 |
Table 2 Simulation test results of P. ternata-P. ternata collision
序号 Number | x:恢复系数 Recovery coefficient | 碰撞后最大爬升高度Maximum climb height after collision/mm | |
---|---|---|---|
ya:块茎a Tuber a | yb:块茎b Tuber b | ||
1 | 0.20 | 8.96 | 17.91 |
2 | 0.30 | 6.40 | 19.84 |
3 | 0.35 | 6.51 | 22.55 |
4 | 0.40 | 4.29 | 21.98 |
5 | 0.45 | 4.68 | 26.50 |
6 | 0.50 | 4.21 | 27.48 |
7 | 0.60 | 1.81 | 30.81 |
8 | 0.70 | 1.36 | 34.45 |
9 | 0.80 | 1.36 | 39.74 |
10 | 1.00 | 0.00 | 50.00 |
序号 Number | x1:恢复系数Recovery coefficient | y1:回弹高度 |
---|---|---|
1 | 0.58 | 37.58 |
2 | 0.60 | 40.43 |
3 | 0.62 | 43.29 |
4 | 0.64 | 46.24 |
5 | 0.66 | 49.46 |
6 | 0.68 | 52.70 |
7 | 0.70 | 55.98 |
Table 3 Simulation test result of P. ternata-stainless steel plate collision
序号 Number | x1:恢复系数Recovery coefficient | y1:回弹高度 |
---|---|---|
1 | 0.58 | 37.58 |
2 | 0.60 | 40.43 |
3 | 0.62 | 43.29 |
4 | 0.64 | 46.24 |
5 | 0.66 | 49.46 |
6 | 0.68 | 52.70 |
7 | 0.70 | 55.98 |
序号 Number | A:半夏-不锈钢板滚动 摩擦系数 Rolling friction coefficient of P. ternata-stainless steel plate | B:半夏-半夏静 摩擦系数 Static friction coefficient of P. ternata-P. ternata | C:半夏-半夏滚动 摩擦系数 Rolling friction coefficient of P. ternata-P. ternata | 堆积角 Stacking angle/(°) | 相对误差 Relative error/% |
---|---|---|---|---|---|
1 | 0.00 | 0.00 | 0.00 | 0.00 | 100.00 |
2 | 0.03 | 0.10 | 0.03 | 10.56 | 69.94 |
3 | 0.06 | 0.15 | 0.06 | 20.46 | 43.58 |
4 | 0.09 | 0.30 | 0.09 | 30.05 | 18.03 |
5 | 0.12 | 0.45 | 0.12 | 35.37 | 3.85 |
6 | 0.15 | 0.60 | 0.15 | 38.01 | 3.17 |
7 | 0.18 | 0.75 | 0.18 | 38.80 | 5.28 |
Table 4 Steepest climbing test
序号 Number | A:半夏-不锈钢板滚动 摩擦系数 Rolling friction coefficient of P. ternata-stainless steel plate | B:半夏-半夏静 摩擦系数 Static friction coefficient of P. ternata-P. ternata | C:半夏-半夏滚动 摩擦系数 Rolling friction coefficient of P. ternata-P. ternata | 堆积角 Stacking angle/(°) | 相对误差 Relative error/% |
---|---|---|---|---|---|
1 | 0.00 | 0.00 | 0.00 | 0.00 | 100.00 |
2 | 0.03 | 0.10 | 0.03 | 10.56 | 69.94 |
3 | 0.06 | 0.15 | 0.06 | 20.46 | 43.58 |
4 | 0.09 | 0.30 | 0.09 | 30.05 | 18.03 |
5 | 0.12 | 0.45 | 0.12 | 35.37 | 3.85 |
6 | 0.15 | 0.60 | 0.15 | 38.01 | 3.17 |
7 | 0.18 | 0.75 | 0.18 | 38.80 | 5.28 |
序号 Number | A:半夏-不锈钢板滚动摩擦系数 Rolling friction coefficient of P. ternata-stainless steel plate | B:半夏-半夏静摩擦系数Static friction coefficient of P. ternata-P. ternata | C:半夏-半夏滚动摩擦系数 Rolling friction coefficient of P. ternata-P. ternata | 堆积角 Stacking angle/(°) |
---|---|---|---|---|
1 | -1(0.12) | -1(0.45) | 0(0.15) | 35.759 9 |
2 | 1(0.18) | -1 | 0 | 35.685 9 |
3 | -1 | 1(0.75) | 0 | 38.078 7 |
4 | 1 | 1 | 0 | 37.847 9 |
5 | -1 | 0(0.6) | -1(0.12) | 35.494 8 |
6 | 1 | 0 | -1 | 35.546 1 |
7 | -1 | 0 | 1(0.18) | 39.635 0 |
8 | 1 | 0 | 1 | 39.395 2 |
9 | 0(0.15) | -1 | -1 | 34.890 7 |
10 | 0 | 1 | -1 | 35.058 5 |
11 | 0 | -1 | 1 | 37.285 6 |
12 | 0 | 1 | 1 | 41.032 2 |
13 | 0 | 0 | 0 | 37.269 6 |
14 | 0 | 0 | 0 | 37.601 0 |
15 | 0 | 0 | 0 | 37.803 6 |
Table 5 Result of stacking angle Box-Behnken test
序号 Number | A:半夏-不锈钢板滚动摩擦系数 Rolling friction coefficient of P. ternata-stainless steel plate | B:半夏-半夏静摩擦系数Static friction coefficient of P. ternata-P. ternata | C:半夏-半夏滚动摩擦系数 Rolling friction coefficient of P. ternata-P. ternata | 堆积角 Stacking angle/(°) |
---|---|---|---|---|
1 | -1(0.12) | -1(0.45) | 0(0.15) | 35.759 9 |
2 | 1(0.18) | -1 | 0 | 35.685 9 |
3 | -1 | 1(0.75) | 0 | 38.078 7 |
4 | 1 | 1 | 0 | 37.847 9 |
5 | -1 | 0(0.6) | -1(0.12) | 35.494 8 |
6 | 1 | 0 | -1 | 35.546 1 |
7 | -1 | 0 | 1(0.18) | 39.635 0 |
8 | 1 | 0 | 1 | 39.395 2 |
9 | 0(0.15) | -1 | -1 | 34.890 7 |
10 | 0 | 1 | -1 | 35.058 5 |
11 | 0 | -1 | 1 | 37.285 6 |
12 | 0 | 1 | 1 | 41.032 2 |
13 | 0 | 0 | 0 | 37.269 6 |
14 | 0 | 0 | 0 | 37.601 0 |
15 | 0 | 0 | 0 | 37.803 6 |
方差来源 Soruce of variation | 均方 Mean square | 自由度 Freedom | 平方和 Quadratic sum | P 值 P value |
---|---|---|---|---|
R2=0.995 6 | R2adj=0.987 8 | CV=0.544 1 | 精密度Adeq precision=37.422 2 | |
模型 Model | 46.880 0 | 9 | 5.210 0 | 0.000 1* |
A | 0.030 4 | 1 | 0.030 4 | 0.428 5 |
B | 8.810 0 | 1 | 8.810 0 | 0.000 1* |
C | 33.450 0 | 1 | 33.450 0 | 0.000 1* |
AB | 0.006 1 | 1 | 0.006 1 | 0.714 6 |
AC | 0.021 2 | 1 | 0.021 2 | 0.504 5 |
BC | 3.200 0 | 1 | 3.200 0 | 0.000 3* |
A2 | 0.064 3 | 1 | 0.064 3 | 0.265 9 |
B2 | 1.260 0 | 1 | 1.260 0 | 0.002 6* |
C2 | 0.031 0 | 1 | 0.031 0 | 0.424 2 |
残差 Residual | 0.205 1 | 5 | 0.041 0 | — |
失拟项 Lack of fit | 0.059 8 | 3 | 0.019 9 | 0.842 7 |
纯误差 Pure error | 0.145 3 | 2 | 0.072 7 | — |
总和 Sum | 47.080 0 | 14 | — | — |
Table 6 Analysis of variance in the stacking angle test
方差来源 Soruce of variation | 均方 Mean square | 自由度 Freedom | 平方和 Quadratic sum | P 值 P value |
---|---|---|---|---|
R2=0.995 6 | R2adj=0.987 8 | CV=0.544 1 | 精密度Adeq precision=37.422 2 | |
模型 Model | 46.880 0 | 9 | 5.210 0 | 0.000 1* |
A | 0.030 4 | 1 | 0.030 4 | 0.428 5 |
B | 8.810 0 | 1 | 8.810 0 | 0.000 1* |
C | 33.450 0 | 1 | 33.450 0 | 0.000 1* |
AB | 0.006 1 | 1 | 0.006 1 | 0.714 6 |
AC | 0.021 2 | 1 | 0.021 2 | 0.504 5 |
BC | 3.200 0 | 1 | 3.200 0 | 0.000 3* |
A2 | 0.064 3 | 1 | 0.064 3 | 0.265 9 |
B2 | 1.260 0 | 1 | 1.260 0 | 0.002 6* |
C2 | 0.031 0 | 1 | 0.031 0 | 0.424 2 |
残差 Residual | 0.205 1 | 5 | 0.041 0 | — |
失拟项 Lack of fit | 0.059 8 | 3 | 0.019 9 | 0.842 7 |
纯误差 Pure error | 0.145 3 | 2 | 0.072 7 | — |
总和 Sum | 47.080 0 | 14 | — | — |
方差来源 Soruce of variation | 均方 Mean square | 自由度 Freedom | 平方和 Quadratic sum | P 值 P value |
---|---|---|---|---|
模型 Model | 46.720 0 | 4 | 11.680 0 | 0.000 1* |
B | 8.810 0 | 1 | 8.810 0 | 0.000 1* |
C | 33.450 0 | 1 | 33.450 0 | 0.000 1* |
BC | 3.200 0 | 1 | 3.200 0 | 0.000 2* |
B2 | 1.260 0 | 1 | 1.260 0 | 0.002 6* |
残差 Residual | 0.365 6 | 10 | 0.036 6 | — |
失拟项 Lack of fit | 0.220 3 | 8 | 0.027 5 | 0.868 2 |
纯误差 Pure error | 0.145 3 | 2 | 0.072 7 | — |
总和 Sum | 47.080 0 | 14 | — | — |
R2=0.992 2 | R2adj=0.989 1 | CV=0.513 7 | 精密度Adeq precision=56.052 9 |
Table 7 Regression model after second optimization
方差来源 Soruce of variation | 均方 Mean square | 自由度 Freedom | 平方和 Quadratic sum | P 值 P value |
---|---|---|---|---|
模型 Model | 46.720 0 | 4 | 11.680 0 | 0.000 1* |
B | 8.810 0 | 1 | 8.810 0 | 0.000 1* |
C | 33.450 0 | 1 | 33.450 0 | 0.000 1* |
BC | 3.200 0 | 1 | 3.200 0 | 0.000 2* |
B2 | 1.260 0 | 1 | 1.260 0 | 0.002 6* |
残差 Residual | 0.365 6 | 10 | 0.036 6 | — |
失拟项 Lack of fit | 0.220 3 | 8 | 0.027 5 | 0.868 2 |
纯误差 Pure error | 0.145 3 | 2 | 0.072 7 | — |
总和 Sum | 47.080 0 | 14 | — | — |
R2=0.992 2 | R2adj=0.989 1 | CV=0.513 7 | 精密度Adeq precision=56.052 9 |
1 | 黄凤英,高健美,龚其海.半夏药理作用及其毒性研究进展[J].天然产物研究与开发,2020,32(10):1773-1781. |
HUANG F Y, GAO J M, GONG Q H. Research progress on pharmacological effects and toxicity of Pinellia ternate [J]. Nat. Prod. Res. Dev., 2020,32(10):1773-1781. | |
2 | 蔡世珍,邹忠梅,徐丽珍,等.半夏属药用植物的研究进展[J].国外医学(中医中药分册),2004(1):17-24. |
3 | WANG Y P. Chinese pharmacopoeia [J]. China Standardization, 2015,4(73):132-135. |
4 | 中药材天地网半夏市场价格[EB/OL]. (2021-09-01)[2021-09-15]. . |
5 | 王小勇.赫章半夏:打开药材“基因库”推动地方品牌“出圈”[EB/OL]. (2020-07-27) [2021-09-15]. . |
6 | 文恩杨,李玉华,牛子孺,等.蒜种颗粒离散元模型参数标定[J].农机化研究,2021,43(5):160-167. |
WEN E Y, LI Y H, NIU Z R, et al.. Parameters calibration of discrete element model for garlic particles [J]. J. Agric. Mech. Res., 2021,43(5):160-167. | |
7 | 文恩杨.大蒜播种机排种与扶正装置仿真模拟与试验研究[D].泰安:山东农业大学,2020. |
WEN E Y. Simulation and experimental study on metering and righting device of garlic planter [D]. Tai’an: Shandong Agricultural University,2020. | |
8 | 文恩杨,吴彦强,李天华,等.牵引式大蒜播种机的设计[J].农机化研究,2020,42(1):96-100. |
WEN E Y, WU Y Q, LI T H, et al.. Design of traction garlic sowing machine [J]. J. Agric. Mech. Res., 2020,42(1):96-100. | |
9 | 刘文政,何进,李洪文,等.基于振动排序的马铃薯微型种薯播种机设计与试验[J].农业机械学报,2019,50(8):70-80. |
LIU W Z, HE J, LI H W, et al.. Design and experiment of vibration-arranging based seeder for potato micro-seed [J]. Trans. Chin. Soc. Agric. Mach., 2019,50(8):70-80. | |
10 | 刘文政,何进,李洪文,等.马铃薯微型种薯振动排序播种装置播种性能优化[J].农业工程学报,2019,35(7):1-11. |
LIU W Z, HE J, LI H W, et al.. Seeding performance optimization on vibration-arranging type seeding device for potato micro-seed [J]. Trans. Chin. Soc. Agric. Eng., 2019,35(7):1-11. | |
11 | 刘文政,何进,李洪文,等.基于离散元的微型马铃薯仿真参数标定[J].农业机械学报,2018,49(5):125-135. |
LIU W Z, HE J, LI H W, et al.. Calibration of simulation parameters for potato minituber based on EDEM [J]. Trans. Chin. Soc. Agric. Mach., 2018,49(5):125-135. | |
12 | 温翔宇,袁洪方,王刚,等.颗粒肥料离散元仿真摩擦系数标定方法研究[J].农业机械学报,2020,51(2):115-122. |
WEN X Y, YUAN H F, WANG G, et al.. Calibration method of friction coefficient of granular fertilizer by discrete element simulation [J]. Trans. Chin. Soc. Agric. Mach., 2020,51(2):115-122. | |
13 | 刘彩玲,黎艳妮,宋建农,等.基于EDEM的离心甩盘撒肥器性能分析与试验[J].农业工程学报,2017,33(14):32-39. |
LIU C L, LI Y N, SONG J N, et al.. Performance analysis and experiment on fertilizer spreader with centrifugal swing disk based on EDEM [J]. Trans. Chin. Soc. Agric. Eng., 2017, 33(14): 32-39. | |
14 | 刘彩玲,魏丹,宋建农,等.颗粒肥料离散元仿真边界参数系统化研究[J].农业机械学报,2018,49(9):82-89. |
LIU C L, WEI D, SONG J N, et al.. Systematic study on boundary parameters of discrete element simulation of granular fertilizer [J]. Trans. Chin. Soc. Agric. Mach., 2018,49(9):82-89. | |
15 | 吴孟宸,丛锦玲,闫琴,等.花生种子颗粒离散元仿真参数标定与试验[J].农业工程学报,2020,36(23):30-38. |
WU M C, CONG J L, YAN Q, et al.. Calibration and experiments for discrete element simulation parameters of peanut seed particles [J]. Trans. Chin. Soc. Agric. Eng., 2020,36(23):30-38. | |
16 | 赖庆辉,贾广鑫,苏微,等.凸包异形孔窝眼轮式人参精密排种器设计与试验[J].农业机械学报,2020,51(7):60-71. |
LAI Q H, JIA G X, SU W, et al.. Design and test of ginseng precision special-hole type seed-metering device with convex hull [J]. Trans. Chin. Soc. Agric. Mach., 2020,51(7):60-71. | |
17 | 赖庆辉,于庆旭,苏微,等.三七超窄行气吸式精密排种器设计与试验[J].农业机械学报,2019,50(4):102-112. |
LAI Q H, YU Q X, SU W, et al.. Design and experiment of air-suction ultra-narrow-row device for precise Panax notoginseng seed metering [J]. Trans. Chin. Soc. Agric. Mach.,2019,50(4):102-112. | |
18 | 赖庆辉,袁海阔,胡子武,等.三七种苗物料特性研究及离散元法参数标定[J].扬州大学学报(农业与生命科学版),2018,39(2):74-79. |
LAI Q H, YUAN H K, HU Z W, et al.. Experimental study of physical characteristics and parameters calibration of Panax notoginseng seedling [J]. J. Yangzhou Univ. (Agric. Life Sci.),2018,39(2):74-79. | |
19 | 赖庆辉,袁海阔,胡子武,等.滚筒板齿式三七种苗分离装置结构设计与试验[J].农业机械学报,2018,49(4):121-129. |
LAI Q H, YUAN H K, HU Z W, et al.. Design and experiment on seedling separation device of Panax notoginseng seedlings based on roller zigzag mechanism [J]. Trans. Chin. Soc. Agric. Mach., 2018,49(4):121-129. | |
20 | 马彦华,宋春东,宣传忠,等.苜蓿秸秆压缩仿真离散元模型参数标定[J].农业工程学报,2020,36(11):22-30. |
MA Y H, SONG C D, XUAN C Z, et al.. Parameters calibration of discrete element model for alfalfa straw compression simulation [J]. Trans. Chin. Soc. Agric. Eng.,2020,36(11):22-30. | |
21 | 马秋成,郭耿君,马婕,等.莲仁力学特性参数测定及挤压破碎特性试验[J].农业工程学报,2018,34(6):263-271. |
MA Q C, GUO G J, MA J, et al.. Determination of mechanical characteristic parameters and extrusion crushing characteristics test for lotus seed kernel [J]. Trans. Chin. Soc. Agric. Eng.,2018,34(6):263-271. | |
22 | 成大先.机械设计手册第1卷[M]. 第三版.北京:化学工业出版社,2017:1-365. |
23 | GHODKI B M, GOSWAMI T K. DEM simulation of flow of black pepper seeds in cryogenic grinding system [J]. J. Food. Eng., 2017,196: 36-51. |
24 | YANG C H, KUANG X, LI B, et al.. Study on release mechanism of inhibitory components from cinnamon and clove powders [J]. J. Food. Safe., 2012,32(2):189-197. |
25 | ZHOU Y C, XU B H, YU A B, et al.. An experimental and numerical study of the angle of repose of coarse spheres [J]. Power Technol., 2002,125(1):45-54. |
26 | 石林榕,吴建民,孙伟,等.基于离散单元法的水平圆盘式精量排种器排种仿真试验[J].农业工程学报,2014,30(8):40-48. |
SHI L R, WU J M, SUN W, et al.. Simulation test for metering process of horizontal disc precision metering device based on discrete element method [J]. Trans. Chin. Soc. Agric. Eng., 2014,30(8):40-48. | |
27 | 贾富国,韩燕龙,刘扬,等.稻谷颗粒物料堆积角模拟预测方法[J].农业工程学报,2014(11):254-260. |
JIA F G, HAN Y L, LIU Y, et al.. Simulation prediction method of repose angle for rice particle materials [J]. Trans. Chin. Soc. Agric. Eng., 2014(11):254-260. | |
28 | 周德义,马成林,左春柽,等.散粒农业物料孔口出流成拱的离散单元仿真[J].农业工程学报,1996, 12(2):190-193. |
ZHOU D Y, MA C L, ZUO C C, et al.. Discrete element simulation for arch flowing of agricultural particle material in outlet [J]. Trans. Chin. Soc. Agric. Eng., 1996, 12(2):190-193. | |
29 | 陆仲华.散粒农业物料孔口出流成拱机理分析[J].农业工程学报,1991, 7(1):78-85. |
LU Z H. The mechanism analysis of flowing agricultural particle material arching in hole [J]. Trans. Chin. Soc. Agric. Eng., 1991, 7(1):78-85. |
[1] | Feixiang LI, Peng WANG, Yunfei WANG, Yuefeng GE, Kaiyi TANG, Dezhi LI. Calibration of Discrete Element Parameters of Corn Coated Seeds Based on Stacking Test [J]. Journal of Agricultural Science and Technology, 2022, 24(7): 97-107. |
[2] | Shisheng SONG, Songlin SUN, Qin FANG, Caiwang PENG, Ting ZHOU, Haiying ZHU. Parameters Calibration of Discrete Element for Kitchen Waste Organic Fertilizer Bioconversion by Black Soldier Fly [J]. Journal of Agricultural Science and Technology, 2022, 24(6): 123-132. |
[3] | Jianwei YAN, Song WEI, Dongjun HU, Qihe LIU, Fuigui ZHANG. Parameter Calibration of Radish Seeds with Different Filling Particle Radius by DEM [J]. Journal of Agricultural Science and Technology, 2022, 24(5): 119-128. |
[4] | QUAN Wei, WU Mingliang, GUAN Chunyun, LUO Haifeng. Experimental Study on the Shape Optimization of Soil Opener for Rapeseed Pot Seedling Transplanter [J]. Journal of Agricultural Science and Technology, 2021, 23(10): 97-106. |
[5] | XIANG Wei1,2, WU Mingliang1*, LYU Jiangnan2, MA Lan2, QUAN Wei1, LIU Jiajie2, XIAO Le3. Simulation and Experiment on Hole-forming Performance of Hole-forming Mechanism for Rape Seedling Transplanting Based on EDEM [J]. Journal of Agricultural Science and Technology, 2019, 21(7): 70-81. |
[6] | LIU Yuping, ZHANG Tuo, LIU Yu*. Calibration and Experiment of Contact Parameters of Rice Grain Based on Discrete Element Method [J]. Journal of Agricultural Science and Technology, 2019, 21(11): 70-76. |
[7] | YANG Quannv, ZHOU Quanju, WANG Yunbo*, HONG Yu, ZHANG Min, NONG Huazhan, HUANG Chaohong. Establishment of NIRS Models for the Content of Glucose, Fructose and Sucrose in Sweet Corn [J]. Journal of Agricultural Science and Technology, 2018, 20(1): 137-146. |
[8] | Han Huaqiong Li Weige. Statistical Monitoring Method for Pesticides and Harmful Substances [J]. , 1999, 1(1): 71-73. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||