CN112493068A - Corn planting method for realizing weight-reducing and efficiency-increasing effects - Google Patents

Corn planting method for realizing weight-reducing and efficiency-increasing effects Download PDF

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CN112493068A
CN112493068A CN202011219318.0A CN202011219318A CN112493068A CN 112493068 A CN112493068 A CN 112493068A CN 202011219318 A CN202011219318 A CN 202011219318A CN 112493068 A CN112493068 A CN 112493068A
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corn
corn planting
fertilizer
planting method
weight loss
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CN112493068B (en
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薛艳芳
蒋丽萍
李宗新
崔振岭
张慧
高英波
钱欣
王慧敏
肖蓉
于正贵
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Maize Research Institute of Shandong Academy of Agricultural Sciences
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    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G22/00Cultivation of specific crops or plants not otherwise provided for
    • A01G22/20Cereals
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01BSOIL WORKING IN AGRICULTURE OR FORESTRY; PARTS, DETAILS, OR ACCESSORIES OF AGRICULTURAL MACHINES OR IMPLEMENTS, IN GENERAL
    • A01B79/00Methods for working soil
    • A01B79/02Methods for working soil combined with other agricultural processing, e.g. fertilising, planting
    • CCHEMISTRY; METALLURGY
    • C05FERTILISERS; MANUFACTURE THEREOF
    • C05CNITROGENOUS FERTILISERS
    • C05C9/00Fertilisers containing urea or urea compounds
    • CCHEMISTRY; METALLURGY
    • C05FERTILISERS; MANUFACTURE THEREOF
    • C05GMIXTURES OF FERTILISERS COVERED INDIVIDUALLY BY DIFFERENT SUBCLASSES OF CLASS C05; MIXTURES OF ONE OR MORE FERTILISERS WITH MATERIALS NOT HAVING A SPECIFIC FERTILISING ACTIVITY, e.g. PESTICIDES, SOIL-CONDITIONERS, WETTING AGENTS; FERTILISERS CHARACTERISED BY THEIR FORM
    • C05G3/00Mixtures of one or more fertilisers with additives not having a specially fertilising activity
    • C05G3/40Mixtures of one or more fertilisers with additives not having a specially fertilising activity for affecting fertiliser dosage or release rate; for affecting solubility
    • CCHEMISTRY; METALLURGY
    • C05FERTILISERS; MANUFACTURE THEREOF
    • C05GMIXTURES OF FERTILISERS COVERED INDIVIDUALLY BY DIFFERENT SUBCLASSES OF CLASS C05; MIXTURES OF ONE OR MORE FERTILISERS WITH MATERIALS NOT HAVING A SPECIFIC FERTILISING ACTIVITY, e.g. PESTICIDES, SOIL-CONDITIONERS, WETTING AGENTS; FERTILISERS CHARACTERISED BY THEIR FORM
    • C05G3/00Mixtures of one or more fertilisers with additives not having a specially fertilising activity
    • C05G3/90Mixtures of one or more fertilisers with additives not having a specially fertilising activity for affecting the nitrification of ammonium compounds or urea in the soil
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P60/00Technologies relating to agriculture, livestock or agroalimentary industries
    • Y02P60/20Reduction of greenhouse gas [GHG] emissions in agriculture, e.g. CO2
    • Y02P60/21Dinitrogen oxide [N2O], e.g. using aquaponics, hydroponics or efficiency measures

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  • Life Sciences & Earth Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Organic Chemistry (AREA)
  • Soil Sciences (AREA)
  • Pest Control & Pesticides (AREA)
  • Environmental Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
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  • Fertilizers (AREA)

Abstract

The invention belongs to the technical field of crop planting, and particularly relates to a corn planting method for realizing weight reduction and synergism. According to the corn planting method for realizing weight reduction and synergism, on the basis of a conventional planting mode, a modifier capable of improving the absorption efficiency of a nitrogen fertilizer for corn planting is added while a base fertilizer is applied, wherein the modifier takes esculetin and/or diosmetin as effective components, and the esculetin and/or diosmetin both have an obvious nitrification inhibition effect, so that the utilization efficiency of the nitrogen fertilizer in the crop planting process can be effectively improved, and the yield of corn can be effectively improved in the corn planting process.

Description

Corn planting method for realizing weight-reducing and efficiency-increasing effects
Technical Field
The invention belongs to the technical field of crop planting, and particularly relates to a corn planting method capable of realizing weight reduction and synergism.
Background
Nitrogen is an essential nutrient element for plants and also is the most important nutrient limiting factor for crop yield, and the application of nitrogen fertilizers has become an essential way for agricultural producers to obtain high yield. According to the food and agriculture organization estimation of the united nations, more than 55 percent of the food yield increasing effect of developing countries is attributed to chemical fertilizers, wherein the application of nitrogen fertilizers is taken as a main management measure in the current crop production and plays an important role in ensuring the high yield of crops. However, the excessive and irrational application of fertilizer nitrogen and its rapid hydrolysis and nitrification in the soil result in a generally low utilization of nitrogen fertilizers. At present, the utilization rate of nitrogen fertilizer in agricultural production in China is only about 20-30% on average, and the yield-increasing benefit of unit usage is gradually reduced from 90 years. Therefore, how to reasonably apply nitrogen fertilizer and improve the utilization rate of the nitrogen fertilizer are always concerned, and the method becomes a problem and a research hotspot which are urgently needed to be solved in agricultural production.
In the corn planting process, nitrogen needs to be continuously absorbed in the whole growth period, and the nitrogen is needed to be the most in the period from the elongation period to the large flare and in the period from the silking period to the grouting period. However, because the top dressing is difficult in the later period of corn growth, the phenomenon that base fertilizer is applied once after one-time fertilization (one-shot blast) and the top dressing is not performed any more in the later period is common. Rural labor transfer and labor cost increase are one of the main limiting factors for further improvement of corn yield. According to the report, farmers in Shandong province who adopt one-time fertilization technology reach 54.5%, but only applying quick-acting nitrogen fertilizer once in the growth period easily causes unbalanced fertilizer distribution, causes volatilization and leaching loss of nitrogen in the early stage, and causes denitrification phenomenon easily in the later stage, thereby reducing the corn yield and the nitrogen fertilizer utilization efficiency.
Research has shown that the nitrogen fertilizer lost through nitrification-denitrification can account for about 34% of the nitrogen loss. The nitrification inhibitor is a general name of substances capable of inhibiting activities of microorganisms such as nitrifying bacteria and the like in soil, and the technical principle is as follows: it can inhibit the sub-nitrification, nitrification and denitrification processes in soil after entering the soil, thereby blocking NH4+To NO2-、NO3-And (3) transformation. The nitrification inhibitor is applied together with the nitrogen fertilizer, and can inhibit the nitrification by inhibiting the activity of nitrifying bacteria, so that NH can be applied to a nitrogen source for a long time4+The form of-N exists for crop utilization. Therefore, the nitrogen fertilizer utilization efficiency can be improved by artificially controlling the absorption of the nitrogen fertilizer by applying the nitrification inhibitor to the farmland. Therefore, the development of a novel nitrification inhibitor product capable of promoting the utilization efficiency of the nitrogen fertilizer has positive significance for improving the yield and the quality of crops, and particularly realizing the planting research of the weight-reducing and efficiency-increasing of the crops.
Disclosure of Invention
Therefore, the technical problem to be solved by the invention is to provide a corn planting method for realizing weight-reducing and efficiency-increasing effects.
In order to solve the technical problems, the corn planting method for realizing weight loss and synergism, which is disclosed by the invention, comprises the following steps of:
(1) before sowing, preparing work such as turning soil and the like is carried out according to a conventional mode, and corn seeds are sown according to the conventional mode;
(2) adding a modifying agent capable of improving the absorption efficiency of the nitrogen fertilizer for corn planting into the base fertilizer to be applied, uniformly mixing, and applying the base fertilizer according to a conventional fertilization mode;
the modifier comprises esculetin with a structure shown in the following formula (I) and/or diosmetin with a structure shown in the following formula (II);
Figure BDA0002761511590000021
the base fertilizer is a special fertilizer for corn, and the nitrogenous fertilizer comprises a mixture of resin coated urea and common urea;
(3) and (4) flattening the soil, and then planting the corn according to a conventional field management mode.
Specifically, in the modifying agent, the mass ratio of esculetin to diosmetin is 1-3: 2-4.
Specifically, the mass ratio of esculetin to diosmetin is 2: 3.
specifically, the addition amount of the modifying agent based on the N-containing base fertilizer is 0.5-5 wt% of the pure N.
Specifically, the modifying agent is the esculetin, and the adding amount of the modifying agent based on the N-containing base fertilizer is 1-5 wt% of the pure N.
Specifically, the modifier is the diosmetin, and the addition amount of the modifier based on the N-containing base fertilizer is 0.5-3 wt% of the amount of pure N.
Specifically, the improver also comprises an acceptable auxiliary agent in corn planting.
Specifically, the mass ratio of the resin coated urea to the common urea is 3-7: 7-3.
Specifically, the formula of the base fertilizer is 26-11-8.
Specifically, the application amount of the base fertilizer is 600-750 kg/ha.
According to the corn planting method for realizing weight reduction and synergism, on the basis of a conventional planting mode, a modifier capable of improving the absorption efficiency of a nitrogen fertilizer for corn planting is added while a base fertilizer is applied, wherein the modifier takes esculetin and/or diosmetin as effective components, and the esculetin and/or diosmetin both have an obvious nitrification inhibition effect, so that the utilization efficiency of the nitrogen fertilizer in the crop planting process can be effectively improved, and the yield of corn can be effectively improved in the corn planting process.
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In order that the present disclosure may be more readily and clearly understood, the following detailed description of the present disclosure is provided in connection with specific embodiments thereof and the accompanying drawings, in which,
FIG. 1 shows the results of corn yields for each experimental group;
FIG. 2 shows the difference between the partial fertility influences of the experimental groups.
Detailed Description
Example 1
The modifier for improving the absorption efficiency of the nitrogen fertilizer for corn planting comprises the following components in percentage by mass: 3 escin and diosmetin.
Example 2
The modifier for improving the absorption efficiency of the nitrogen fertilizer for corn planting comprises the following components in percentage by mass: 2 and aesculin.
Example 3
The modifier for improving the absorption efficiency of the nitrogen fertilizer for corn planting comprises the following components in percentage by mass: 4 escin and diosmetin.
Example 4
The modifier for improving the absorption efficiency of the nitrogen fertilizer for corn planting comprises the following components in percentage by mass: 2 and aesculin.
Example 5
The modifier for improving the absorption efficiency of the nitrogen fertilizer for corn planting comprises the following components in percentage by mass: 4 escin and diosmetin.
Example 6
The modifier for improving the absorption efficiency of the nitrogen fertilizer for corn planting is esculetin.
Example 7
The modifier for improving the absorption efficiency of the nitrogen fertilizer for corn planting is diosmetin.
Examples of the experiments
In the following experimental examples of the present invention, the evaluation and study of nitrification inhibition performance were carried out with reference to the inhibition experimental protocol described in chinese patent CN 107673941B.
1. Inhibition assay for the pure ammonia oxidizing bacterium Nitrosomonas europaea ATCC25978T
In pure medium (1L sterile water containing 2.5g (NH4)2SO4,0.5g KH2PO4,5mg CaCl2.2H2O,0.1g MgSO4.7H2O,0.5g NaHCO31g NaCl, 1mL 75mg FeNaEDTA, 11.92g HEPES) to which esculetin, diosmetin, and a mixture of esculetin and diosmetin at different concentrations (mass ratio 2: 3) calculating the values generated in each set of schemes
Figure BDA0002761511590000052
The concentration, as reflected by NPI, of nitrification inhibition, and the results of the assay are shown in Table 1 below.
Figure BDA0002761511590000051
TABLE 1% NPI results for each experimental group
NPI% 0.01mM 0.05mM 0.1mM 0.5mM
Esculetin 45.4 68.6 94.3 100
Diosmetin 49.3 72.5 96.1 100
Mixture of 53.1 76.9 99.9 100
From the results in the table, the esculetin, the diosmetin and the mixture thereof selected by the invention have obvious inhibition effect on nitrosation process of the Nitrosomonas europaea strain, can realize 100% inhibition rate under 0.05mM addition concentration, can obtain higher inhibition effect under 0.01mM addition concentration, and can be used as nitrification inhibitor for planting crops.
2. Soil sample nitrification inhibition
A soil sample (10g, oven dried weight) was taken into a 100mL Erlenmeyer flask and treated with distilled water to achieve 40% water retention. The samples were incubated at 25 ℃ in the dark for 7 days to stabilize microbial activity, and then aerobic culture experiments were performed for 42 days to study the effect of different amendments on soil nitrification performance. Reacting NH4Cl solution was added to each Erlenmeyer flask to provide 400mg N kg-1NH of soil (dry soil calculation)4And (4) Cl solution. In each experimental group, esculetin, diosmetin and a mixture of esculetin and diosmetin were added in an amount of 100. mu. mol/kg of dry soil (mass ratio 2: 3), respectively.
NH was measured on days 7, 14, 21, 28, 35 and 42 during the culture of each experimental group, respectively4+-N and NO3--concentration of N, nitrification inhibition (NI%) was calculated by the following formula:
nitration ratio (%) < NO >3--N/(NH4+-N+NO3--N)×100%;
Nitrification inhibition (NI%) (nitrification of control-nitrification of sample)/nitrification of control × 100%.
The NI% test results for each experimental group are shown in table 2 below.
TABLE 2 NI% test results for each experimental group
NI% 7d 14d 21d 28d 35d 42d
Esculetin 53.7 63.9 65.5 66.8 67.2 69.8
Diosmetin 59.3 68.2 69.9 70.3 71.7 74.6
Mixture of 69.1 75.4 78.2 80.7 81.8 82.3
From the results in the table, it can be seen that the esculetin, diosmetin and their mixture selected by the present invention have long-term stable nitrification inhibition.
Application example
The field test is carried out in Zibo city Zizizili district Zhutaizhen Xuwancun (118 degrees 12 'E, 36 degrees 57' N) in 6 months to 2019 months in 2019. The physicochemical properties of the soil 0-30cm in the test field are as follows: the pH value is 7.8, the organic matter content is 18.8g/kg, the total nitrogen content is 0.60g/kg, the alkaline hydrolysis nitrogen content is 73.6mg/kg, the quick-acting phosphorus content is 30.8mg/kg and the quick-acting potassium content is 174 mg/kg.
The test sets up 4 experimental treatments altogether, specifically includes:
group T0: according to a conventional sowing and planting mode, the base fertilizer is a special fertilizer for corn, the formula is 26-11-8, the dosage is 675kg/ha, and the base fertilizer is applied at one time during sowing, wherein the proportion of resin coated urea (sold in the market) to common urea is respectively 5: 5, topdressing is not carried out during the planting period;
group T1: according to a conventional sowing and planting mode, the base fertilizer is a special fertilizer for corn, the formula is 26-11-8, the dosage is 675kg/ha, and the base fertilizer is applied at one time during sowing, wherein the proportion of resin coated urea (sold in the market) to common urea is respectively 5: 5, when the base fertilizer is applied, esculetin is added according to 1 wt% of the pure N amount of the special fertilizer for corn and is fully stirred, and no additional fertilizer is applied during planting;
group T2: according to a conventional sowing and planting mode, the base fertilizer is a special fertilizer for corn, the formula is 26-11-8, the dosage is 675kg/ha, and the base fertilizer is applied at one time during sowing, wherein the proportion of resin coated urea (sold in the market) to common urea is respectively 5: 5, when the base fertilizer is applied, adding diosmetin according to 1 wt% of pure N of the special fertilizer for corn, fully stirring, and not performing additional fertilization during planting;
group T3: according to a conventional sowing and planting mode, the base fertilizer is a special fertilizer for corn, the formula is 26-11-8, the dosage is 675kg/ha, and the base fertilizer is applied at one time during sowing, wherein the proportion of resin coated urea (sold in the market) to common urea is respectively 5: and 5, when the base fertilizer is applied, adding a mixture (mass ratio of 2: 3) of diosmetin and diosmetin according to 1 wt% of the pure N of the special fertilizer for corn, and fully stirring, wherein no additional fertilizer is applied during planting.
The tested varieties processed by the T0-T3 are farmyard manure 372, the processing in each large area is convenient for mechanical operation, and the processing sowing area is 600m2. The prevention and control of diseases, pests and weeds are uniformly managed according to the conventional field, and no obvious diseases, pests and weeds occur in the growth period. The sowing time is 6 months and 15 days, and the harvesting time is 9 months and 28 days.
3 corns with uniform growth vigor are taken in each cell in the mature period, and the mature period is divided into two parts of grains and straws. Deactivating enzyme of the sample at 105 ℃ for 30min, drying the sample to constant weight at 75 ℃, recording the weight of the dried sample, and using the powder sample for measuring the concentration of nitrogen, phosphorus and potassium. Randomly selecting 10.5m in each cell in the mature period2And (4) selecting 10 ears from the samples for seed test, air-drying, threshing, measuring the total weight, and finally converting into the yield with the water content of 14%.
The yield of the fertilizer (kg/kg) is the yield of grains/the amount of fertilizer (the total amount of nitrogen, phosphorus and potassium fertilizers).
Data processing was performed using Microsoft Excel 2007; data analysis was performed using IBM SPSS Statistics 20 software and significance analysis was performed using the Duncan method (P <0.05 level).
The corn yield of each experimental group is shown in the attached figure 1, and the corn yield of the experimental group is greatly improved after the modifier is added, so that the utilization of nitrogen fertilizer can be effectively promoted, and the crop yield is improved.
The influence difference of the partial productivity of the corn fertilizer in each experimental group is shown in the attached figure 2, and the change range of the partial productivity (PFP) of the fertilizer is 21.2kg/kg-40.0kg/kg under different treatment modes. The PFP of the other treatments was significantly increased compared to the T0 treatment, with the PFP of the T3 treatment being the highest (40.0 kg/kg).
Therefore, the modifier has a good nitrification inhibition effect, can promote the effective utilization of nitrogen fertilizer in the corn planting process, and further improves the yield of corn crops.
It should be understood that the above examples are only for clarity of illustration and are not intended to limit the embodiments. Other variations and modifications will be apparent to persons skilled in the art in light of the above description. And are neither required nor exhaustive of all embodiments. And obvious variations or modifications therefrom are within the scope of the invention.

Claims (10)

1. A corn planting method for realizing weight-reducing synergy is characterized by comprising the following steps:
(1) before sowing, preparing work such as turning soil and the like is carried out according to a conventional mode, and corn seeds are sown according to the conventional mode;
(2) adding a modifying agent capable of improving the absorption efficiency of the nitrogen fertilizer for corn planting into the base fertilizer to be applied, uniformly mixing, and applying the base fertilizer according to a conventional fertilization mode;
the modifier comprises esculetin with a structure shown in the following formula (I) and/or diosmetin with a structure shown in the following formula (II);
Figure FDA0002761511580000011
the base fertilizer is a special fertilizer for corn, and the nitrogenous fertilizer comprises a mixture of resin coated urea and common urea;
(3) and (4) flattening the soil, and then planting the corn according to a conventional field management mode.
2. The corn planting method for realizing weight loss and synergism according to claim 1, wherein in the improver, the mass ratio of esculetin to diosmetin is 1-3: 2-4.
3. The corn planting method for achieving weight loss and synergism according to claim 2, wherein the mass ratio of esculetin to diosmetin is 2: 3.
4. the corn planting method for realizing weight loss and synergism according to claims 1-3, wherein the addition amount of the improver based on the N-containing base fertilizer is 0.5-5 wt% of the pure N amount.
5. The corn planting method for achieving weight loss and synergism according to claim 4, wherein the modifying agent is the esculetin, and the adding amount of the modifying agent based on the N-containing base fertilizer is 1-5 wt% of the pure N.
6. The corn planting method for achieving weight loss and synergism according to claim 4, wherein the modifying agent is diosmetin, and the adding amount of the modifying agent based on the N-containing base fertilizer is 0.5-3 wt% of the pure N amount.
7. The corn planting method for achieving weight loss and synergism according to any one of claims 1-6, wherein the improver further comprises an auxiliary agent acceptable in corn planting.
8. The corn planting method for realizing weight loss and synergism according to any one of claims 1-7, wherein the mass ratio of the resin coated urea to the common urea is 3-7: 7-3.
9. The corn planting method for achieving weight loss and synergism according to any one of claims 1-8, wherein the formula of the base fertilizer is 26-11-8.
10. The corn planting method for realizing weight loss and synergism as claimed in any one of claims 1-9, wherein the application amount of the base fertilizer is 600-750 kg/ha.
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Publication number Priority date Publication date Assignee Title
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CN106187419A (en) * 2016-06-30 2016-12-07 山东胜伟园林科技有限公司 A kind of anti-salt alkali composition containing Rhizoma Polygoni Cuspidati and preparation method thereof
CN109717026A (en) * 2019-03-06 2019-05-07 黑龙江省畜牧研究所 A kind of method of salt-soda soil maize planting
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CN102918971A (en) * 2012-10-22 2013-02-13 中国科学院东北地理与农业生态研究所 Ridging sowing method for improving corn yield of saline-alkali soils
CN106187419A (en) * 2016-06-30 2016-12-07 山东胜伟园林科技有限公司 A kind of anti-salt alkali composition containing Rhizoma Polygoni Cuspidati and preparation method thereof
KR20200005890A (en) * 2018-07-09 2020-01-17 김형규 Method for manufacturing liquefied fertilizer using butchery blood
CN109717026A (en) * 2019-03-06 2019-05-07 黑龙江省畜牧研究所 A kind of method of salt-soda soil maize planting
CN110226504A (en) * 2019-07-12 2019-09-13 山西省农业科学院农作物品种资源研究所 A kind of cultural method promoting Resistance of Wheat To Adversity

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