{"id":540,"date":"2025-03-12T04:44:04","date_gmt":"2025-03-12T04:44:04","guid":{"rendered":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/chapter\/6-18-pile-group-effects-on-ultimate-geotechnical-strength\/"},"modified":"2026-03-16T14:11:46","modified_gmt":"2026-03-16T14:11:46","slug":"6-18-pile-group-effects-on-ultimate-geotechnical-strength","status":"publish","type":"chapter","link":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/chapter\/6-18-pile-group-effects-on-ultimate-geotechnical-strength\/","title":{"raw":"6.18 Pile group effects on ultimate geotechnical strength","rendered":"6.18 Pile group effects on ultimate geotechnical strength"},"content":{"raw":"In most practical cases, except of some special structures such as lighting poles or wind turbines, multiple piles arranged in groups are used for the foundation of structures. Piles are arranged in square, rectangle, circular groups, or in pile rows and their heads are connected via a reinforced concrete <em>pile cap <\/em>of adequate thickness (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.63abc-hr.png\">Figure 6.63<\/a>).\n\nPiles groups feature considerable lateral stiffness, which renders them the most efficient foundation solution when large lateral loads or bending moments must be transferred to the subsoil due to e.g., seismic or wind actions or lateral earth pressures.\n\nAdditionally, pile groups have the capacity to carry high vertical loads, although the load capacity of a pile group is not necessarily equal to the load capacity of a single pile multiplied by the number of piles in the group. The <em>pile group efficiency, n<sub>g<\/sub><\/em> is defined as the ratio of the ultimate geotechnical strength of a group of <em>n<\/em> piles, <em>Q<sub>f,group<\/sub><\/em> to the sum of the ultimate geotechnical strength of the individual piles comprising the group, <em>Q<sub>f<\/sub><\/em>. In most common cases where all piles in the group feature the same ultimate geotechnical strength:\n\n<strong>(6.87)<\/strong> [latex]{n_g} = \\left( {\\dfrac{{{Q_{f,group}}}}{{n{Q_f}}}} \\right)[\/latex]\n\nThe pile group efficiency <em>n<sub>g<\/sub><\/em> can be higher or lower than 1, meaning that the bearing capacity of the pile group can be less or greater than the sum of the capacities of the individual piles. Pile group efficiency <em>n<sub>g <\/sub><\/em>&lt; 1 is possible in piles driven into soft clay\/silt or dense sand\/dense gravel formations, while group efficiency <em>n<sub>g <\/sub><\/em>&gt; 1 can be attained when piles are driven into loose sand\/loose gravel formations, due to densification of soil around the piles during driving (see for example <a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.20-hr.png\">Figure 6.20<\/a>). To achieve pile group efficiencies higher than unity, the centre-to-centre spacing of the piles in the group must be dense, generally <em>s <\/em>&lt; 3<em>D <\/em>(<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.63abc-hr.png\">Figure 6.63<\/a>). However, installation of piles with such dense spacing is not recommended, due to constructability issues. According to AS2159, spacing <em>s <\/em>&lt; 2.5<em>D <\/em>is not recommended, unless <em>\u201can analysis of interaction effects indicates that overall pile group performance is not adversely affected\u201d. <\/em>When <em>s <\/em>&gt; 3<em>D, <\/em>the piles perform essentially as individual under vertical compressive loads (<em>n<sub>g <\/sub><\/em>= 1), and the bearing capacity of the pile group can be taken as equal to the sum of capacities of individual piles.\n\n[caption id=\"attachment_539\" align=\"aligncenter\" width=\"900\"]<img class=\"wp-image-536 size-full\" src=\"https:\/\/libraryresources.nse.org.ng\/wp-content\/uploads\/sites\/9\/2025\/03\/6.63abc-hr-e1743553809635.png\" alt=\"Figure (a) on the left presents a sketch of a square four-pile group, with piles connected with a cap at their head. Figure (b) in the mid presents a sketch of a circular eight-pile group, with piles connected with a circular cap at their head. Figure (c) on the right presents a sketch of a five-pile row, with piles connected with a rectangular cap at their head. In all 3 figures the minimum distance between piles is s>2.5D, measured from the piles' centres.\" width=\"900\" height=\"555\"> Figure 6.63. Piles arranged in (a) square group, (b) circular group, and (c) pile row (figures not in scale).[\/caption]\n\n[caption id=\"attachment_539\" align=\"aligncenter\" width=\"900\"]<img class=\"wp-image-537 size-full\" src=\"https:\/\/libraryresources.nse.org.ng\/wp-content\/uploads\/sites\/9\/2026\/03\/6.63d-e1743553793995.jpg\" alt=\"Construction site featuring a deep excavation with reinforced concrete piles arranged in a row and connected with a pile cap. Anchors are installed below the pile cap.\" width=\"900\" height=\"522\"> Figure 6.63d. Piles arranged in pile row (author's own photo).[\/caption]\n\n&nbsp;\n\n[caption id=\"attachment_539\" align=\"aligncenter\" width=\"505\"]<img class=\"wp-image-538 size-full\" src=\"https:\/\/libraryresources.nse.org.ng\/wp-content\/uploads\/sites\/9\/2026\/03\/6.64-overlapping-stress-zones-in-a-pile-group.png\" alt=\"The figure on the left presents a section of a four-pile group connected with a pile cap, on which an axial compressive force is applied. Stresses transferred in soil from the piles are plotted, and the area where stresses from adjacent piles overlap is marked with red. The figure on the right presents a plan view of the same pile group, with stress overlap zones again marked with red colour. \" width=\"505\" height=\"258\"> Figure 6.64. Overlapping of stress zones in a closely-spaced pile group.[\/caption]\n\nIn fine-grained soils, pile group efficiency <em>n<sub>g <\/sub><\/em>&lt; 1 may need to be considered, to account for overlapping zones of shear deformation in the soil surrounding the piles (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.64-overlapping-stress-zones-in-a-pile-group.png\">Figure 6.64<\/a>). FHWA (2006) recommends:\n<ul>\n \t<li>If the pile cap is in firm contact with the ground, consider <em>n<sub>g <\/sub><\/em>= 1.<\/li>\n \t<li>If the pile cap is not in firm contact with the ground as in the case of e.g., an offshore platform foundation, and the undrained shear strength of the fine-grained foundation soil is <em>S<sub>u <\/sub><\/em>&lt; 100 kPa, a group efficiency <em>n<sub>g <\/sub><\/em>= 0.7 should be considered in the calculation when the center-to-center pile spacing is <em>s <\/em>= 3<em>D<\/em>. When the spacing is greater than <em>s <\/em>= 6<em>D, n<sub>g <\/sub><\/em>= 1 can be considered. Linear interpolation can be used to obtain <em>n<sub>g<\/sub><\/em> for intermediate spacing values:<\/li>\n<\/ul>\n<p style=\"padding-left: 40px\"><strong>(6.88)\u00a0<\/strong>[latex]{n_g} = 0.1\\left( {\\dfrac{s}{D}} \\right) + 0.4 \\le 1[\/latex]<\/p>\n\n<ul>\n \t<li>As above, spacing <em>s<\/em> should not be less than <em>s <\/em>&lt; 3<\/li>\n<\/ul>\nNote that pile driving operations can result in generation of excess pore pressures, that could lead to <em>temporary <\/em>pile group efficiencies of <em>n<sub>g <\/sub><\/em>= 0.4 to 0.8 immediately after construction. As excess pore pressures dissipate, the efficiency will increase to its normal value. If the foundation will be loaded with the full load shortly after its construction, this effect must be taken into account while determining the ultimate geotechnical of the pile group.\n\nWhen estimating the ultimate geotechnical strength of a pile group, the possibility of a general, <em>block-type <\/em>failure mode must be also considered, as described in AS2159. When the pile spacing is generally small, the pile group may fail as a block containing the piles and the soil between them (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.65-hr.png\">Figure 6.65a<\/a>). This type of failure can occur in pile groups installed in fine-grained soils, but also in pile groups founded in a layer of dense coarse-grained soil of limited thickness, when it is underlain by a soft fine-grained layer.\n\n[caption id=\"attachment_539\" align=\"aligncenter\" width=\"700\"]<img class=\"wp-image-539 size-full\" src=\"https:\/\/libraryresources.nse.org.ng\/wp-content\/uploads\/sites\/9\/2026\/03\/6.65-hr-e1743553835374.png\" alt=\"Figure (a) on the left presents a side view of a group of three piles connected with a pile cap at their head. An axial compressive force Qf,group is applied on the pile cap. A failure surface is formed in soil, around the pile group. Figure (b) presents an isometric view of the same group, and the dimensions of the group are shown as L (length along vertical axis), B (width), Z(breadth). \" width=\"700\" height=\"377\"> Figure 6.65. (a) Block-type failure of pile group in fine-grained soil, and (b) 3-D pile group arrangement.[\/caption]\n\nThe ultimate geotechnical strength of a pile group against block failure is estimated as:\n\n<strong>(6.89)<\/strong> [latex]{Q_{f,group}} = {S_{u,ave}}\\left[ {2L\\left( {B + Z} \\right)} \\right] + {N_{cp}}{S_{u,b}}\\left( {BZ} \\right)[\/latex]\n\nwhere <em>B<\/em> is the width of the pile group (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.65-hr.png\">Figure 6.65b<\/a>); <em>Z <\/em>is the length of the pile group (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.65-hr.png\">Figure 6.65b<\/a>); <em>L<\/em> is the length of the piles; <em>S<sub>u,ave <\/sub><\/em>is the average undrained shear strength of the soil along the length <em>L<\/em>; <em>S<sub>u,b <\/sub><\/em>is the average undrained shear strength at the base of the pile group up to a depth of 2<em>B<\/em> below the pile toe level; <em>N<sub>cp<\/sub><\/em>\u00a0is the bearing capacity factor for undrained conditions defined in <a href=\"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/chapter\/6-9-ultimate-geotechnical-strength-of-piles-subjected-to-axial-compressive-load-under-undrained-conditions-%ce%b1-method\/\">Chapter 6.9<\/a>.","rendered":"<p>In most practical cases, except of some special structures such as lighting poles or wind turbines, multiple piles arranged in groups are used for the foundation of structures. Piles are arranged in square, rectangle, circular groups, or in pile rows and their heads are connected via a reinforced concrete <em>pile cap <\/em>of adequate thickness (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.63abc-hr.png\">Figure 6.63<\/a>).<\/p>\n<p>Piles groups feature considerable lateral stiffness, which renders them the most efficient foundation solution when large lateral loads or bending moments must be transferred to the subsoil due to e.g., seismic or wind actions or lateral earth pressures.<\/p>\n<p>Additionally, pile groups have the capacity to carry high vertical loads, although the load capacity of a pile group is not necessarily equal to the load capacity of a single pile multiplied by the number of piles in the group. The <em>pile group efficiency, n<sub>g<\/sub><\/em> is defined as the ratio of the ultimate geotechnical strength of a group of <em>n<\/em> piles, <em>Q<sub>f,group<\/sub><\/em> to the sum of the ultimate geotechnical strength of the individual piles comprising the group, <em>Q<sub>f<\/sub><\/em>. In most common cases where all piles in the group feature the same ultimate geotechnical strength:<\/p>\n<p><strong>(6.87)<\/strong> [latex]{n_g} = \\left( {\\dfrac{{{Q_{f,group}}}}{{n{Q_f}}}} \\right)[\/latex]<\/p>\n<p>The pile group efficiency <em>n<sub>g<\/sub><\/em> can be higher or lower than 1, meaning that the bearing capacity of the pile group can be less or greater than the sum of the capacities of the individual piles. Pile group efficiency <em>n<sub>g <\/sub><\/em>&lt; 1 is possible in piles driven into soft clay\/silt or dense sand\/dense gravel formations, while group efficiency <em>n<sub>g <\/sub><\/em>&gt; 1 can be attained when piles are driven into loose sand\/loose gravel formations, due to densification of soil around the piles during driving (see for example <a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.20-hr.png\">Figure 6.20<\/a>). To achieve pile group efficiencies higher than unity, the centre-to-centre spacing of the piles in the group must be dense, generally <em>s <\/em>&lt; 3<em>D <\/em>(<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.63abc-hr.png\">Figure 6.63<\/a>). However, installation of piles with such dense spacing is not recommended, due to constructability issues. According to AS2159, spacing <em>s <\/em>&lt; 2.5<em>D <\/em>is not recommended, unless <em>\u201can analysis of interaction effects indicates that overall pile group performance is not adversely affected\u201d. <\/em>When <em>s <\/em>&gt; 3<em>D, <\/em>the piles perform essentially as individual under vertical compressive loads (<em>n<sub>g <\/sub><\/em>= 1), and the bearing capacity of the pile group can be taken as equal to the sum of capacities of individual piles.<\/p>\n<figure id=\"attachment_539\" aria-describedby=\"caption-attachment-539\" style=\"width: 900px\" class=\"wp-caption aligncenter\"><img decoding=\"async\" width=\"900\" height=\"555\" class=\"wp-image-536 size-full\" src=\"https:\/\/libraryresources.nse.org.ng\/wp-content\/uploads\/sites\/9\/2025\/03\/6.63abc-hr-e1743553809635.png\" alt=\"image\" srcset=\"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2025\/03\/6.63abc-hr-e1743553809635.png 900w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2025\/03\/6.63abc-hr-e1743553809635-300x185.png 300w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2025\/03\/6.63abc-hr-e1743553809635-768x474.png 768w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2025\/03\/6.63abc-hr-e1743553809635-65x40.png 65w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2025\/03\/6.63abc-hr-e1743553809635-225x139.png 225w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2025\/03\/6.63abc-hr-e1743553809635-350x216.png 350w\" sizes=\"(max-width: 900px) 100vw, 900px\" \/><figcaption id=\"caption-attachment-539\" class=\"wp-caption-text\">2.5D, measured from the piles&#8217; centres.&#8221; width=&#8221;900&#8243; height=&#8221;555&#8243;&gt; Figure 6.63. Piles arranged in (a) square group, (b) circular group, and (c) pile row (figures not in scale).<\/figcaption><\/figure>\n<figure id=\"attachment_539\" aria-describedby=\"caption-attachment-539\" style=\"width: 900px\" class=\"wp-caption aligncenter\"><img decoding=\"async\" class=\"wp-image-537 size-full\" src=\"https:\/\/libraryresources.nse.org.ng\/wp-content\/uploads\/sites\/9\/2026\/03\/6.63d-e1743553793995.jpg\" alt=\"Construction site featuring a deep excavation with reinforced concrete piles arranged in a row and connected with a pile cap. Anchors are installed below the pile cap.\" width=\"900\" height=\"522\" srcset=\"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.63d-e1743553793995.jpg 900w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.63d-e1743553793995-300x174.jpg 300w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.63d-e1743553793995-768x445.jpg 768w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.63d-e1743553793995-65x38.jpg 65w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.63d-e1743553793995-225x131.jpg 225w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.63d-e1743553793995-350x203.jpg 350w\" sizes=\"(max-width: 900px) 100vw, 900px\" \/><figcaption id=\"caption-attachment-539\" class=\"wp-caption-text\">Figure 6.63d. Piles arranged in pile row (author&#8217;s own photo).<\/figcaption><\/figure>\n<p>&nbsp;<\/p>\n<figure id=\"attachment_539\" aria-describedby=\"caption-attachment-539\" style=\"width: 505px\" class=\"wp-caption aligncenter\"><img decoding=\"async\" class=\"wp-image-538 size-full\" src=\"https:\/\/libraryresources.nse.org.ng\/wp-content\/uploads\/sites\/9\/2026\/03\/6.64-overlapping-stress-zones-in-a-pile-group.png\" alt=\"The figure on the left presents a section of a four-pile group connected with a pile cap, on which an axial compressive force is applied. Stresses transferred in soil from the piles are plotted, and the area where stresses from adjacent piles overlap is marked with red. The figure on the right presents a plan view of the same pile group, with stress overlap zones again marked with red colour.\" width=\"505\" height=\"258\" srcset=\"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.64-overlapping-stress-zones-in-a-pile-group.png 505w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.64-overlapping-stress-zones-in-a-pile-group-300x153.png 300w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.64-overlapping-stress-zones-in-a-pile-group-65x33.png 65w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.64-overlapping-stress-zones-in-a-pile-group-225x115.png 225w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.64-overlapping-stress-zones-in-a-pile-group-350x179.png 350w\" sizes=\"(max-width: 505px) 100vw, 505px\" \/><figcaption id=\"caption-attachment-539\" class=\"wp-caption-text\">Figure 6.64. Overlapping of stress zones in a closely-spaced pile group.<\/figcaption><\/figure>\n<p>In fine-grained soils, pile group efficiency <em>n<sub>g <\/sub><\/em>&lt; 1 may need to be considered, to account for overlapping zones of shear deformation in the soil surrounding the piles (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.64-overlapping-stress-zones-in-a-pile-group.png\">Figure 6.64<\/a>). FHWA (2006) recommends:<\/p>\n<ul>\n<li>If the pile cap is in firm contact with the ground, consider <em>n<sub>g <\/sub><\/em>= 1.<\/li>\n<li>If the pile cap is not in firm contact with the ground as in the case of e.g., an offshore platform foundation, and the undrained shear strength of the fine-grained foundation soil is <em>S<sub>u <\/sub><\/em>&lt; 100 kPa, a group efficiency <em>n<sub>g <\/sub><\/em>= 0.7 should be considered in the calculation when the center-to-center pile spacing is <em>s <\/em>= 3<em>D<\/em>. When the spacing is greater than <em>s <\/em>= 6<em>D, n<sub>g <\/sub><\/em>= 1 can be considered. Linear interpolation can be used to obtain <em>n<sub>g<\/sub><\/em> for intermediate spacing values:<\/li>\n<\/ul>\n<p style=\"padding-left: 40px\"><strong>(6.88)\u00a0<\/strong>[latex]{n_g} = 0.1\\left( {\\dfrac{s}{D}} \\right) + 0.4 \\le 1[\/latex]<\/p>\n<ul>\n<li>As above, spacing <em>s<\/em> should not be less than <em>s <\/em>&lt; 3<\/li>\n<\/ul>\n<p>Note that pile driving operations can result in generation of excess pore pressures, that could lead to <em>temporary <\/em>pile group efficiencies of <em>n<sub>g <\/sub><\/em>= 0.4 to 0.8 immediately after construction. As excess pore pressures dissipate, the efficiency will increase to its normal value. If the foundation will be loaded with the full load shortly after its construction, this effect must be taken into account while determining the ultimate geotechnical of the pile group.<\/p>\n<p>When estimating the ultimate geotechnical strength of a pile group, the possibility of a general, <em>block-type <\/em>failure mode must be also considered, as described in AS2159. When the pile spacing is generally small, the pile group may fail as a block containing the piles and the soil between them (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.65-hr.png\">Figure 6.65a<\/a>). This type of failure can occur in pile groups installed in fine-grained soils, but also in pile groups founded in a layer of dense coarse-grained soil of limited thickness, when it is underlain by a soft fine-grained layer.<\/p>\n<figure id=\"attachment_539\" aria-describedby=\"caption-attachment-539\" style=\"width: 700px\" class=\"wp-caption aligncenter\"><img decoding=\"async\" class=\"wp-image-539 size-full\" src=\"https:\/\/libraryresources.nse.org.ng\/wp-content\/uploads\/sites\/9\/2026\/03\/6.65-hr-e1743553835374.png\" alt=\"Figure (a) on the left presents a side view of a group of three piles connected with a pile cap at their head. An axial compressive force Qf,group is applied on the pile cap. A failure surface is formed in soil, around the pile group. Figure (b) presents an isometric view of the same group, and the dimensions of the group are shown as L (length along vertical axis), B (width), Z(breadth).\" width=\"700\" height=\"377\" srcset=\"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.65-hr-e1743553835374.png 700w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.65-hr-e1743553835374-300x162.png 300w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.65-hr-e1743553835374-65x35.png 65w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.65-hr-e1743553835374-225x121.png 225w, https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-content\/uploads\/sites\/9\/2026\/03\/6.65-hr-e1743553835374-350x189.png 350w\" sizes=\"(max-width: 700px) 100vw, 700px\" \/><figcaption id=\"caption-attachment-539\" class=\"wp-caption-text\">Figure 6.65. (a) Block-type failure of pile group in fine-grained soil, and (b) 3-D pile group arrangement.<\/figcaption><\/figure>\n<p>The ultimate geotechnical strength of a pile group against block failure is estimated as:<\/p>\n<p><strong>(6.89)<\/strong> [latex]{Q_{f,group}} = {S_{u,ave}}\\left[ {2L\\left( {B + Z} \\right)} \\right] + {N_{cp}}{S_{u,b}}\\left( {BZ} \\right)[\/latex]<\/p>\n<p>where <em>B<\/em> is the width of the pile group (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.65-hr.png\">Figure 6.65b<\/a>); <em>Z <\/em>is the length of the pile group (<a href=\"https:\/\/oercollective.caul.edu.au\/app\/uploads\/sites\/143\/2025\/03\/6.65-hr.png\">Figure 6.65b<\/a>); <em>L<\/em> is the length of the piles; <em>S<sub>u,ave <\/sub><\/em>is the average undrained shear strength of the soil along the length <em>L<\/em>; <em>S<sub>u,b <\/sub><\/em>is the average undrained shear strength at the base of the pile group up to a depth of 2<em>B<\/em> below the pile toe level; <em>N<sub>cp<\/sub><\/em>\u00a0is the bearing capacity factor for undrained conditions defined in <a href=\"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/chapter\/6-9-ultimate-geotechnical-strength-of-piles-subjected-to-axial-compressive-load-under-undrained-conditions-%ce%b1-method\/\">Chapter 6.9<\/a>.<\/p>\n","protected":false},"author":1,"menu_order":24,"template":"","meta":{"pb_show_title":"","pb_short_title":"6.18 Pile group effects on ultimate geotechnical strength","pb_subtitle":"","pb_authors":[],"pb_section_license":""},"chapter-type":[],"contributor":[],"license":[],"class_list":["post-540","chapter","type-chapter","status-publish","hentry"],"part":421,"_links":{"self":[{"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/pressbooks\/v2\/chapters\/540","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/wp\/v2\/users\/1"}],"version-history":[{"count":1,"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/pressbooks\/v2\/chapters\/540\/revisions"}],"predecessor-version":[{"id":541,"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/pressbooks\/v2\/chapters\/540\/revisions\/541"}],"part":[{"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/pressbooks\/v2\/parts\/421"}],"metadata":[{"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/pressbooks\/v2\/chapters\/540\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/wp\/v2\/media?parent=540"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/pressbooks\/v2\/chapter-type?post=540"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/wp\/v2\/contributor?post=540"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/libraryresources.nse.org.ng\/fundamentalsoffoundationengineering\/wp-json\/wp\/v2\/license?post=540"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}