ANSI EP545-1995 Loads Exerted by Free-Flowing Grain on Shallow Storage Structures.pdf
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1、 ANSI/ASAE EP545 MAR1995 (R2015) Loads Exerted by Free-Flowing Grain on Shallow Storage Structures American Society of Agricultural and Biological Engineers ASABE is a professional and technical organization, of members worldwide, who are dedicated to advancement of engineering applicable to agricul
2、tural, food, and biological systems. ASABE Standards are consensus documents developed and adopted by the American Society of Agricultural and Biological Engineers to meet standardization needs within the scope of the Society; principally agricultural field equipment, farmstead equipment, structures
3、, soil and water resource management, turf and landscape equipment, forest engineering, food and process engineering, electric power applications, plant and animal environment, and waste management. NOTE: ASABE Standards, Engineering Practices, and Data are informational and advisory only. Their use
4、 by anyone engaged in industry or trade is entirely voluntary. The ASABE assumes no responsibility for results attributable to the application of ASABE Standards, Engineering Practices, and Data. Conformity does not ensure compliance with applicable ordinances, laws and regulations. Prospective user
5、s are responsible for protecting themselves against liability for infringement of patents. ASABE Standards, Engineering Practices, and Data initially approved prior to the society name change in July of 2005 are designated as “ASAE“, regardless of the revision approval date. Newly developed Standard
6、s, Engineering Practices and Data approved after July of 2005 are designated as “ASABE“. Standards designated as “ANSI“ are American National Standards as are all ISO adoptions published by ASABE. Adoption as an American National Standard requires verification by ANSI that the requirements for due p
7、rocess, consensus, and other criteria for approval have been met by ASABE. Consensus is established when, in the judgment of the ANSI Board of Standards Review, substantial agreement has been reached by directly and materially affected interests. Substantial agreement means much more than a simple m
8、ajority, but not necessarily unanimity. Consensus requires that all views and objections be considered, and that a concerted effort be made toward their resolution. CAUTION NOTICE: ASABE and ANSI standards may be revised or withdrawn at any time. Additionally, procedures of ASABE require that action
9、 be taken periodically to reaffirm, revise, or withdraw each standard. Copyright American Society of Agricultural and Biological Engineers. All rights reserved. ASABE, 2950 Niles Road, St. Joseph, Ml 49085-9659, USA, phone 269-429-0300, fax 269-429-3852, hqasabe.org ANSI/ASAE EP545 MAR1995 (R2015) C
10、opyright American Society of Agricultural and Biological Engineers 1 ANSI/ASAE EP545 MAR1995 (R2015) Approved February 1996; reaffirmed January 2015 as an American National Standard Loads Exerted by Free-Flowing Grain on Shallow Storage Structures Developed by the ASAE Loads Due to Bulk Grains, Fert
11、ilizers and Silage Subcommittee of the Structures Group; approved by the Structures and Environment Division Standards Committee; adopted by ASAE March 1995; approved as an American National Standard February 1996; reaffirmed by ASAE December 1999; reaffirmed by ANSI June 2000; reaffirmed by ASAE Fe
12、bruary 2005; reaffirmed by ANSI March 2005; revised editorially March 2005; reaffirmed by ASABE January 2010; reaffirmed by ANSI February 2010; reaffirmed by ASABE January 2015; reaffirmed by ANSI January 2015. Keywords: Grain, Loads, Pressure, Structures 1 Purpose 1.1 This Engineering Practice pres
13、ents methods of estimating the grain pressures within shallow storage structures used to store free-flowing, agricultural whole grains. 2 Normative References The following standards contain provisions which, through reference in this text, constitute provisions of this Engineering Practice. At the
14、time of publication, the editions indicated were valid. All standards are subject to revision, and parties to agreements based on this Engineering Practice are encouraged to investigate the possibility of applying the most recent editions of the standards indicated below. Standards organizations mai
15、ntain registers of currently valid standards. ANSI/ASAE D241.4 FEB93, Density, Specific Gravity, and Mass-Moisture Relationships of Grain for Storage 3 Terminology 3.1 Terms used in this Engineering Practice are defined as follows: 3.1.1 shallow storage structure: Grain storage with a square or rect
16、angular floor plan used to store grain where the width of the building is greater than 2 times the height of the grain at the wall. 4 Nomenclature k is ratio of lateral to vertical pressure, dimensionless; z is equivalent grain depth at a discrete point, m (ft); G is gravity acceleration constant, 9
17、.8 10-3 kN/kg (1.0 lbf/lb); ANSI/ASAE EP545 MAR1995 (R2015) Copyright American Society of Agricultural and Biological Engineers 2 H is total equivalent grain height, used to calculate resultant shear vertical and lateral forces acting on the wall, and floor pressure at the base of the wall, m (ft);
18、L(z) is lateral pressure at equivalent grain depth z, kPa (lbf/ft2); PHis resultant lateral force acting on the wall, kN/m (lbf/ft); PSis resultant shear force acting on the wall, kN/m (lbf/ft); V(z) is vertical pressure at equivalent grain depth z, kPa (lbf/ft2); W is bulk density of stored grain,
19、kg/m3 (lb/ft3); Y is height of grain on the wall, m (ft); is factor used to calculate total equivalent grain height, dimensionless (equation 2 and Table 1); is angle of repose of the grain, deg; is coefficient of friction of grain on structural surfaces, dimensionless; is internal angle of friction
20、for grain, deg. Table 1 Coefficient, , to determine the total equivalent grain height, H, for storages with sloping backfill Internal Angle of Friction, , deg Angle of Repose, , deg 16 18 20 22 24 26 28 30 24 1.15 1.17 1.19 1.22 1.25 - - - 26 1.16 1.19 1.22 1.25 1.28 1.31 - - 28 1.18 1.21 1.24 1.27
21、1.31 1.35 1.39 - 30 1.20 1.23 1.27 1.30 1.35 1.39 1.44 1.50 5 General Design Information 5.1 Total equivalent grain height. For conditions in which the top grain surface is not horizontal (sloping backfill condition), use the total equivalent grain height, H (see Figure 1). The total equivalent grai
22、n height can be determined by multiplying the actual grain depth at the wall by the appropriate coefficient, , from Table 1 or by using equation 2. =YH (1)()+=cossinsinYYH (2) 5.2 Equivalent depth of grain. The equivalent depth of grain, z, is shown in Figure 1. ANSI/ASAE EP545 MAR1995 (R2015) Copyr
23、ight American Society of Agricultural and Biological Engineers 3 Figure 1 Flat storage geometry 5.3 Bulk density. For design purposes a bulk density of 834 kg/m3 (52 lb/ft3) is recommended. This corresponds with the bulk density of wheat modified by a packing factor. For pressures imposed by grains
24、other than wheat, use bulk densities determined by the Winchester Bushel Test (USDA, 1980) or those listed in ANSI/ASAE D241, increased by packing factor of 1.08. 5.4 Ratio of lateral to vertical pressure. The ratio of lateral to vertical pressure, k, is assumed to be 0.5. 5.5 Internal angle of fric
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