{"id":743,"date":"2019-06-11T14:52:47","date_gmt":"2019-06-11T14:52:47","guid":{"rendered":"https:\/\/opentextbc.ca\/physicalgeology2ed\/chapter\/16-4-glacial-deposition\/"},"modified":"2021-12-08T22:40:50","modified_gmt":"2021-12-08T22:40:50","slug":"16-4-glacial-deposition","status":"publish","type":"chapter","link":"https:\/\/opentextbc.ca\/physicalgeology2ed\/chapter\/16-4-glacial-deposition\/","title":{"raw":"16.4 Glacial Deposition","rendered":"16.4 Glacial Deposition"},"content":{"raw":"Sediments transported and deposited during the Pleistocene glaciations are abundant throughout Canada and much of the northern USA. They are important sources of construction materials and are valuable as reservoirs for groundwater. Because they are almost all unconsolidated, they have significant implications for mass wasting.\r\n\r\n[caption id=\"attachment_735\" align=\"aligncenter\" width=\"750\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg\"><img class=\"wp-image-735\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg\" alt=\"\" width=\"750\" height=\"565\" \/><\/a> Figure 16.4.1 Part of the Bering Glacier in southeast Alaska, the largest glacier in North America. It is about 14 km across in the centre of this view.[\/caption]\r\n\r\nFigure 16.4.1 illustrates some of the ways that sediments are transported and deposited. The Bering Glacier is the largest in North America, and although most of it is in Alaska, it flows from an icefield that extends into southwestern Yukon. The surface of the ice is partially, or in some cases completely covered with rocky debris that has fallen from surrounding steep rock faces. There are muddy rivers issuing from the glacier in several locations, depositing sediment on land, into Vitus Lake, and directly into the ocean. There are dirty icebergs shedding their sediment into the lake. And, not visible in this view, there are sediments being moved along beneath the ice.\r\n\r\n&nbsp;\r\n\r\n[caption id=\"attachment_736\" align=\"aligncenter\" width=\"750\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2.png\"><img class=\"wp-image-736\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2.png\" alt=\"\" width=\"750\" height=\"383\" \/><\/a> Figure 16.4.2 A depiction of the various types of sediments associated with glaciation. The glacier is shown in cross-section.[\/caption]\r\n\r\nThe formation and movement of sediments in glacial environments is shown diagrammatically in Figure 16.4.2. There are many types of glacial sediment generally classified by whether they are transported on, within, or beneath the glacial ice. The main types of sediment in a glacial environment are described below.\r\n\r\nSupraglacial (on top of the ice) and [pb_glossary id=\"1864\"]<strong>englacial<\/strong>[\/pb_glossary] (within the ice) sediments that slide off the melting front of a stationary glacier can form a ridge of unsorted sediments called an [pb_glossary id=\"1866\"]<strong>terminal moraine<\/strong>[\/pb_glossary]. The end moraine that represents the farthest advance of the glacier is a <strong>[pb_glossary id=\"1865\"]end moraine[\/pb_glossary]<\/strong>. Supraglacial and englacial sediments can also be deposited when the ice melts.\u00a0 Sediments transported and deposited by glacial ice are known as <strong>[pb_glossary id=\"1867\"]till[\/pb_glossary]<\/strong>.\r\n\r\n<strong>[pb_glossary id=\"1869\"]Subglacial [\/pb_glossary]<\/strong> sediment (e.g., <strong>[pb_glossary id=\"1870\"]lodgement till[\/pb_glossary]<\/strong>) is material that has been eroded from the underlying rock by the ice, and is moved by the ice. It has a wide range of grain sizes (in other words it is poorly sorted), including a relatively high proportion of silt and clay. The larger clasts (pebbles to boulders in size) tend to become partly rounded by abrasion. Lodgement till forms as a sheet of well-compacted sediment beneath a glacier, and ranges from several centimetres to many metres in thickness. Lodgement till is normally unbedded. An example is shown in Figure 16.4.3a.\r\n\r\n[caption id=\"attachment_737\" align=\"aligncenter\" width=\"800\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2.png\"><img class=\"wp-image-737\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2.png\" alt=\"\" width=\"800\" height=\"384\" \/><\/a> Figure 16.4.3 Examples of glacial till: a: lodgement till from the front of the Athabasca Glacier, Alberta; b: ablation till at the Horstman Glacier, Blackcomb Mountain, B.C.[\/caption]\r\n\r\nSupraglacial sediments are primarily derived from freeze-thaw eroded material that has fallen onto the ice from rocky slopes above. These sediments form <strong>[pb_glossary id=\"1871\"]lateral moraines[\/pb_glossary]<\/strong> (Figure 16.0.1) and, where two glaciers meet, <strong>[pb_glossary id=\"1872\"]medial moraines[\/pb_glossary]<\/strong>. (Medial moraines are visible on the Aletsch Glacier in Figure 16.3.4.) Most of this material is deposited on the ground when the ice melts, and is therefore called <strong>[pb_glossary id=\"1873\"]ablation till[\/pb_glossary]<\/strong>, a mixture of fine and coarse angular rock fragments, with much less sand, silt, and clay than lodgement till. An example is shown in Figure 16.4.3b. When supraglacial sediments become incorporated into the body of the glacier, they are known as englacial sediments (Figure 16.4.2).\r\n\r\nMassive amounts of water flow on the surface, within, and at the base of a glacier, even in cold areas and even when the glacier is advancing. Depending on its velocity, this water is able to move sediments of various sizes and most of that material is washed out of the lower end of the glacier and deposited as outwash sediments. These sediments accumulate in a wide range of environments in the <strong>[pb_glossary id=\"1874\"]proglacial[\/pb_glossary]<\/strong> region (the area in front of a glacier), most in fluvial environments, but some in lakes and the ocean. <strong>[pb_glossary id=\"1875\"]Glaciofluvial sediments[\/pb_glossary]<\/strong> are similar to sediments deposited in normal fluvial environments, and are dominated by silt, sand, and gravel. The grains tend to be moderately well rounded, and the sediments have similar sedimentary structures (e.g., bedding, cross-bedding, clast imbrication) to those formed by non-glacial streams (Figure 16.4.4a and 16.4.4b).\r\n\r\n[caption id=\"attachment_738\" align=\"aligncenter\" width=\"900\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2.png\"><img class=\"wp-image-738\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2.png\" alt=\"\" width=\"900\" height=\"435\" \/><\/a> Figure 16.4.4 Examples of glaciofluvial sediments: a: glaciofluvial sand of the Quadra Sand Formation at Comox, B.C.; b: glaciofluvial gravel and sand, Nanaimo, B.C.[\/caption]\r\n\r\nA large proglacial plain of sediment is called a <strong>[pb_glossary id=\"1876\"]sandur[\/pb_glossary]<\/strong> (a.k.a. an <strong>[pb_glossary id=\"1877\"]outwash plain[\/pb_glossary]<\/strong>)<strong>, <\/strong>and within that area, glaciofluvial deposits can be tens of metres thick (Figure 16.4.5). In situations where a glacier is receding, a block of ice might become separated from the main ice sheet and then get buried in glaciofluvial sediments. When the ice block eventually melts, a depression forms, known as a <strong>[pb_glossary id=\"1878\"]kettle[\/pb_glossary]<\/strong>, and if this fills with water, it is known as a <strong>[pb_glossary id=\"1860\"]kettle lake[\/pb_glossary]<\/strong> (Figure 16.4.6).\r\n\r\n[caption id=\"attachment_739\" align=\"aligncenter\" width=\"900\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur.jpg\"><img class=\"wp-image-739\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur.jpg\" alt=\"\" width=\"900\" height=\"364\" \/><\/a> Figure 16.4.5 Part of a sandur in front of the Vatnajokull Glacier in Iceland,. The Sandur extends for many tens of km. Here is has been partially eroded by a stream (not visible).[\/caption]\r\n\r\n[caption id=\"attachment_740\" align=\"aligncenter\" width=\"900\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2.png\"><img class=\"wp-image-740\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2.png\" alt=\"\" width=\"900\" height=\"341\" \/><\/a> Figure 16.4.6 A kettle lake amid vineyards and orchards in the Osoyoos area of B.C.[\/caption]\r\n\r\n[caption id=\"attachment_741\" align=\"aligncenter\" width=\"650\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2.png\"><img class=\"wp-image-741\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2.png\" alt=\"\" width=\"650\" height=\"410\" \/><\/a> Figure 16.4.7 Part of an esker that formed beneath the Laurentide Ice Sheet in northern Canada.[\/caption]\r\n\r\nA subglacial stream will create its own channel within the ice, and sediments that are being transported and deposited by the stream will build up within that channel. When the ice recedes, the sediment will remain to form a long sinuous ridge known as an <strong>[pb_glossary id=\"1879\"]esker[\/pb_glossary]<\/strong>. Eskers are most common in areas of continental glaciation. They can be several metres high, tens of metres wide, and tens of kilometres long (Figure 16.4.7).\r\n\r\nOutwash streams commonly flow into proglacial lakes where <strong>[pb_glossary id=\"1880\"]glaciolacustrine sediments[\/pb_glossary]<\/strong> are deposited. These are dominated by silt- and clay-sized particles and are typically laminated on the millimetre scale. In some cases, <strong>[pb_glossary id=\"1881\"]varves[\/pb_glossary]<\/strong> develop; varves are series of beds with distinctive summer and winter layers: relatively coarse in the summer when melt discharge is high, and finer in the winter, when discharge is very low. Icebergs are common on proglacial lakes, and most of them contain englacial sediments of various sizes. As the bergs melt, the released clasts sink to the bottom and are incorporated into the glaciolacustrine layers as <strong>[pb_glossary id=\"1882\"]drop stones[\/pb_glossary]<\/strong> (Figure 16.4.8a).\r\n\r\nThe processes that occur in proglacial lakes can also take place where a glacier terminates at the ocean. The sediments deposited there are called <strong>[pb_glossary id=\"1883\"]glaciomarine sediments[\/pb_glossary]<\/strong> (Figure 16.4.8b).\r\n\r\n[caption id=\"attachment_742\" align=\"aligncenter\" width=\"900\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2.png\"><img class=\"wp-image-742\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2.png\" alt=\"\" width=\"900\" height=\"432\" \/><\/a> Figure 16.4.8 Examples of glacial sediments formed in quiet water: a: glaciolacustrine sediment with a drop stone, Nanaimo, B.C.; and b: a laminated glaciomarine sediment, Englishman River, B.C. Although not visible in this photo, the glaciomarine sediment has marine shell fossils.[\/caption]\r\n\r\n<div class=\"textbox textbox--exercises\"><header class=\"textbox__header\">\r\n<p class=\"textbox__title\">Exercise 16.4 Identify glacial depositional environments<\/p>\r\n\r\n<\/header>\r\n<div class=\"textbox__content\">\r\n\r\n[caption id=\"attachment_735\" align=\"alignright\" width=\"450\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg\"><img class=\"wp-image-735\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg\" alt=\"\" width=\"450\" height=\"339\" \/><\/a> Figure 16.4.9[\/caption]\r\n\r\nThis photo shows the Bering Glacier in Alaska (same as Figure 16.4.1).\r\n\r\nGlacial sediments of many different types are being deposited throughout this area. Identify where you would expect to find the following types of deposits:\r\n<ol class=\"alphalist\">\r\n \t<li>Glaciofluvial sand<\/li>\r\n \t<li>Lodgement till<\/li>\r\n \t<li>Glaciolacustrine clay with drop stones<\/li>\r\n \t<li>Ablation till<\/li>\r\n \t<li>Glaciomarine silt and clay<\/li>\r\n<\/ol>\r\nSee Appendix 3 for <a href=\"\/physicalgeology2ed\/back-matter\/appendix-3-answers-to-exercises\/#exercisea16.4\">Exercise 16.4 answers<\/a>.\r\n\r\n<\/div>\r\n<\/div>\r\n<h3>Media Attributions<\/h3>\r\n<ul>\r\n \t<li>Figure 16.4.1: \"<a href=\"http:\/\/water.usgs.gov\/edu\/gallery\/glacier-satellite.html\">Bering Glacier<\/a>\" by NASA Earth Observatory. Public domain.<\/li>\r\n \t<li>Figures 16.4.2, 16.4.3, 16.4.4, 16.4.5, 16.4.6, 16.4.8: \u00a9 Steven Earle. CC BY.<\/li>\r\n \t<li>Figure 16.4.7: \"<a href=\"http:\/\/sis.agr.gc.ca\/cansis\/taxa\/landscape\/locsf\/level_nta.jpg\">Esker on a morainal plain<\/a>\" \u00a9 <a href=\"http:\/\/sis.agr.gc.ca\/cansis\/images\/nt\/locsf\/index.html\">Canadian Soil Information Service (CANSIS)<\/a>. Approved for <a href=\"https:\/\/www.canada.ca\/en\/transparency\/terms.html\">non-commercial reproduction<\/a>.<\/li>\r\n \t<li>Figure 16.4.9: \"<a href=\"http:\/\/water.usgs.gov\/edu\/gallery\/glacier-satellite.html\">Bering Glacier<\/a>\" by NASA Earth Observatory. Public domain.<\/li>\r\n<\/ul>","rendered":"<p>Sediments transported and deposited during the Pleistocene glaciations are abundant throughout Canada and much of the northern USA. They are important sources of construction materials and are valuable as reservoirs for groundwater. Because they are almost all unconsolidated, they have significant implications for mass wasting.<\/p>\n<figure id=\"attachment_735\" aria-describedby=\"caption-attachment-735\" style=\"width: 750px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-735\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg\" alt=\"\" width=\"750\" height=\"565\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg 862w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-300x226.jpg 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-768x578.jpg 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-65x49.jpg 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-225x169.jpg 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-350x264.jpg 350w\" sizes=\"auto, (max-width: 750px) 100vw, 750px\" \/><\/a><figcaption id=\"caption-attachment-735\" class=\"wp-caption-text\">Figure 16.4.1 Part of the Bering Glacier in southeast Alaska, the largest glacier in North America. It is about 14 km across in the centre of this view.<\/figcaption><\/figure>\n<p>Figure 16.4.1 illustrates some of the ways that sediments are transported and deposited. The Bering Glacier is the largest in North America, and although most of it is in Alaska, it flows from an icefield that extends into southwestern Yukon. The surface of the ice is partially, or in some cases completely covered with rocky debris that has fallen from surrounding steep rock faces. There are muddy rivers issuing from the glacier in several locations, depositing sediment on land, into Vitus Lake, and directly into the ocean. There are dirty icebergs shedding their sediment into the lake. And, not visible in this view, there are sediments being moved along beneath the ice.<\/p>\n<p>&nbsp;<\/p>\n<figure id=\"attachment_736\" aria-describedby=\"caption-attachment-736\" style=\"width: 750px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2.png\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-736\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2.png\" alt=\"\" width=\"750\" height=\"383\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2.png 1004w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2-300x153.png 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2-768x392.png 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2-65x33.png 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2-225x115.png 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/glacier-cross-section-2-350x179.png 350w\" sizes=\"auto, (max-width: 750px) 100vw, 750px\" \/><\/a><figcaption id=\"caption-attachment-736\" class=\"wp-caption-text\">Figure 16.4.2 A depiction of the various types of sediments associated with glaciation. The glacier is shown in cross-section.<\/figcaption><\/figure>\n<p>The formation and movement of sediments in glacial environments is shown diagrammatically in Figure 16.4.2. There are many types of glacial sediment generally classified by whether they are transported on, within, or beneath the glacial ice. The main types of sediment in a glacial environment are described below.<\/p>\n<p>Supraglacial (on top of the ice) and <a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1864\"><strong>englacial<\/strong><\/a> (within the ice) sediments that slide off the melting front of a stationary glacier can form a ridge of unsorted sediments called an <a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1866\"><strong>terminal moraine<\/strong><\/a>. The end moraine that represents the farthest advance of the glacier is a <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1865\">end moraine<\/a><\/strong>. Supraglacial and englacial sediments can also be deposited when the ice melts.\u00a0 Sediments transported and deposited by glacial ice are known as <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1867\">till<\/a><\/strong>.<\/p>\n<p><strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1869\">Subglacial <\/a><\/strong> sediment (e.g., <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1870\">lodgement till<\/a><\/strong>) is material that has been eroded from the underlying rock by the ice, and is moved by the ice. It has a wide range of grain sizes (in other words it is poorly sorted), including a relatively high proportion of silt and clay. The larger clasts (pebbles to boulders in size) tend to become partly rounded by abrasion. Lodgement till forms as a sheet of well-compacted sediment beneath a glacier, and ranges from several centimetres to many metres in thickness. Lodgement till is normally unbedded. An example is shown in Figure 16.4.3a.<\/p>\n<figure id=\"attachment_737\" aria-describedby=\"caption-attachment-737\" style=\"width: 800px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2.png\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-737\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2.png\" alt=\"\" width=\"800\" height=\"384\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2.png 998w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2-300x144.png 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2-768x369.png 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2-65x31.png 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2-225x108.png 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/till-2-350x168.png 350w\" sizes=\"auto, (max-width: 800px) 100vw, 800px\" \/><\/a><figcaption id=\"caption-attachment-737\" class=\"wp-caption-text\">Figure 16.4.3 Examples of glacial till: a: lodgement till from the front of the Athabasca Glacier, Alberta; b: ablation till at the Horstman Glacier, Blackcomb Mountain, B.C.<\/figcaption><\/figure>\n<p>Supraglacial sediments are primarily derived from freeze-thaw eroded material that has fallen onto the ice from rocky slopes above. These sediments form <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1871\">lateral moraines<\/a><\/strong> (Figure 16.0.1) and, where two glaciers meet, <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1872\">medial moraines<\/a><\/strong>. (Medial moraines are visible on the Aletsch Glacier in Figure 16.3.4.) Most of this material is deposited on the ground when the ice melts, and is therefore called <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1873\">ablation till<\/a><\/strong>, a mixture of fine and coarse angular rock fragments, with much less sand, silt, and clay than lodgement till. An example is shown in Figure 16.4.3b. When supraglacial sediments become incorporated into the body of the glacier, they are known as englacial sediments (Figure 16.4.2).<\/p>\n<p>Massive amounts of water flow on the surface, within, and at the base of a glacier, even in cold areas and even when the glacier is advancing. Depending on its velocity, this water is able to move sediments of various sizes and most of that material is washed out of the lower end of the glacier and deposited as outwash sediments. These sediments accumulate in a wide range of environments in the <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1874\">proglacial<\/a><\/strong> region (the area in front of a glacier), most in fluvial environments, but some in lakes and the ocean. <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1875\">Glaciofluvial sediments<\/a><\/strong> are similar to sediments deposited in normal fluvial environments, and are dominated by silt, sand, and gravel. The grains tend to be moderately well rounded, and the sediments have similar sedimentary structures (e.g., bedding, cross-bedding, clast imbrication) to those formed by non-glacial streams (Figure 16.4.4a and 16.4.4b).<\/p>\n<figure id=\"attachment_738\" aria-describedby=\"caption-attachment-738\" style=\"width: 900px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2.png\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-738\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2.png\" alt=\"\" width=\"900\" height=\"435\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2.png 998w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2-300x145.png 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2-768x371.png 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2-65x31.png 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2-225x109.png 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gf-2-350x169.png 350w\" sizes=\"auto, (max-width: 900px) 100vw, 900px\" \/><\/a><figcaption id=\"caption-attachment-738\" class=\"wp-caption-text\">Figure 16.4.4 Examples of glaciofluvial sediments: a: glaciofluvial sand of the Quadra Sand Formation at Comox, B.C.; b: glaciofluvial gravel and sand, Nanaimo, B.C.<\/figcaption><\/figure>\n<p>A large proglacial plain of sediment is called a <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1876\">sandur<\/a><\/strong> (a.k.a. an <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1877\">outwash plain<\/a><\/strong>)<strong>, <\/strong>and within that area, glaciofluvial deposits can be tens of metres thick (Figure 16.4.5). In situations where a glacier is receding, a block of ice might become separated from the main ice sheet and then get buried in glaciofluvial sediments. When the ice block eventually melts, a depression forms, known as a <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1878\">kettle<\/a><\/strong>, and if this fills with water, it is known as a <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1860\">kettle lake<\/a><\/strong> (Figure 16.4.6).<\/p>\n<figure id=\"attachment_739\" aria-describedby=\"caption-attachment-739\" style=\"width: 900px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur.jpg\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-739\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur.jpg\" alt=\"\" width=\"900\" height=\"364\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur.jpg 4530w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur-300x121.jpg 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur-768x310.jpg 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur-1024x414.jpg 1024w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur-65x26.jpg 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur-225x91.jpg 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/sandur-350x141.jpg 350w\" sizes=\"auto, (max-width: 900px) 100vw, 900px\" \/><\/a><figcaption id=\"caption-attachment-739\" class=\"wp-caption-text\">Figure 16.4.5 Part of a sandur in front of the Vatnajokull Glacier in Iceland,. The Sandur extends for many tens of km. Here is has been partially eroded by a stream (not visible).<\/figcaption><\/figure>\n<figure id=\"attachment_740\" aria-describedby=\"caption-attachment-740\" style=\"width: 900px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2.png\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-740\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2.png\" alt=\"\" width=\"900\" height=\"341\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2.png 999w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2-300x114.png 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2-768x291.png 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2-65x25.png 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2-225x85.png 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/kettle-2-350x133.png 350w\" sizes=\"auto, (max-width: 900px) 100vw, 900px\" \/><\/a><figcaption id=\"caption-attachment-740\" class=\"wp-caption-text\">Figure 16.4.6 A kettle lake amid vineyards and orchards in the Osoyoos area of B.C.<\/figcaption><\/figure>\n<figure id=\"attachment_741\" aria-describedby=\"caption-attachment-741\" style=\"width: 650px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2.png\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-741\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2.png\" alt=\"\" width=\"650\" height=\"410\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2.png 867w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2-300x189.png 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2-768x485.png 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2-65x41.png 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2-225x142.png 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/esker-2-350x221.png 350w\" sizes=\"auto, (max-width: 650px) 100vw, 650px\" \/><\/a><figcaption id=\"caption-attachment-741\" class=\"wp-caption-text\">Figure 16.4.7 Part of an esker that formed beneath the Laurentide Ice Sheet in northern Canada.<\/figcaption><\/figure>\n<p>A subglacial stream will create its own channel within the ice, and sediments that are being transported and deposited by the stream will build up within that channel. When the ice recedes, the sediment will remain to form a long sinuous ridge known as an <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1879\">esker<\/a><\/strong>. Eskers are most common in areas of continental glaciation. They can be several metres high, tens of metres wide, and tens of kilometres long (Figure 16.4.7).<\/p>\n<p>Outwash streams commonly flow into proglacial lakes where <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1880\">glaciolacustrine sediments<\/a><\/strong> are deposited. These are dominated by silt- and clay-sized particles and are typically laminated on the millimetre scale. In some cases, <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1881\">varves<\/a><\/strong> develop; varves are series of beds with distinctive summer and winter layers: relatively coarse in the summer when melt discharge is high, and finer in the winter, when discharge is very low. Icebergs are common on proglacial lakes, and most of them contain englacial sediments of various sizes. As the bergs melt, the released clasts sink to the bottom and are incorporated into the glaciolacustrine layers as <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1882\">drop stones<\/a><\/strong> (Figure 16.4.8a).<\/p>\n<p>The processes that occur in proglacial lakes can also take place where a glacier terminates at the ocean. The sediments deposited there are called <strong><a class=\"glossary-term\" aria-haspopup=\"dialog\" aria-describedby=\"definition\" href=\"#term_743_1883\">glaciomarine sediments<\/a><\/strong> (Figure 16.4.8b).<\/p>\n<figure id=\"attachment_742\" aria-describedby=\"caption-attachment-742\" style=\"width: 900px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2.png\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-742\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2.png\" alt=\"\" width=\"900\" height=\"432\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2.png 998w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2-300x144.png 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2-768x369.png 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2-65x31.png 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2-225x108.png 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/08\/gl-gm-2-350x168.png 350w\" sizes=\"auto, (max-width: 900px) 100vw, 900px\" \/><\/a><figcaption id=\"caption-attachment-742\" class=\"wp-caption-text\">Figure 16.4.8 Examples of glacial sediments formed in quiet water: a: glaciolacustrine sediment with a drop stone, Nanaimo, B.C.; and b: a laminated glaciomarine sediment, Englishman River, B.C. Although not visible in this photo, the glaciomarine sediment has marine shell fossils.<\/figcaption><\/figure>\n<div class=\"textbox textbox--exercises\">\n<header class=\"textbox__header\">\n<p class=\"textbox__title\">Exercise 16.4 Identify glacial depositional environments<\/p>\n<\/header>\n<div class=\"textbox__content\">\n<figure id=\"attachment_735\" aria-describedby=\"caption-attachment-735\" style=\"width: 450px\" class=\"wp-caption alignright\"><a href=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-735\" src=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg\" alt=\"\" width=\"450\" height=\"339\" srcset=\"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2.jpg 862w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-300x226.jpg 300w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-768x578.jpg 768w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-65x49.jpg 65w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-225x169.jpg 225w, https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-content\/uploads\/sites\/298\/2019\/06\/alaska-2-350x264.jpg 350w\" sizes=\"auto, (max-width: 450px) 100vw, 450px\" \/><\/a><figcaption id=\"caption-attachment-735\" class=\"wp-caption-text\">Figure 16.4.9<\/figcaption><\/figure>\n<p>This photo shows the Bering Glacier in Alaska (same as Figure 16.4.1).<\/p>\n<p>Glacial sediments of many different types are being deposited throughout this area. Identify where you would expect to find the following types of deposits:<\/p>\n<ol class=\"alphalist\">\n<li>Glaciofluvial sand<\/li>\n<li>Lodgement till<\/li>\n<li>Glaciolacustrine clay with drop stones<\/li>\n<li>Ablation till<\/li>\n<li>Glaciomarine silt and clay<\/li>\n<\/ol>\n<p>See Appendix 3 for <a href=\"\/physicalgeology2ed\/back-matter\/appendix-3-answers-to-exercises\/#exercisea16.4\">Exercise 16.4 answers<\/a>.<\/p>\n<\/div>\n<\/div>\n<h3>Media Attributions<\/h3>\n<ul>\n<li>Figure 16.4.1: &#8220;<a href=\"http:\/\/water.usgs.gov\/edu\/gallery\/glacier-satellite.html\">Bering Glacier<\/a>&#8221; by NASA Earth Observatory. Public domain.<\/li>\n<li>Figures 16.4.2, 16.4.3, 16.4.4, 16.4.5, 16.4.6, 16.4.8: \u00a9 Steven Earle. CC BY.<\/li>\n<li>Figure 16.4.7: &#8220;<a href=\"http:\/\/sis.agr.gc.ca\/cansis\/taxa\/landscape\/locsf\/level_nta.jpg\">Esker on a morainal plain<\/a>&#8221; \u00a9 <a href=\"http:\/\/sis.agr.gc.ca\/cansis\/images\/nt\/locsf\/index.html\">Canadian Soil Information Service (CANSIS)<\/a>. Approved for <a href=\"https:\/\/www.canada.ca\/en\/transparency\/terms.html\">non-commercial reproduction<\/a>.<\/li>\n<li>Figure 16.4.9: &#8220;<a href=\"http:\/\/water.usgs.gov\/edu\/gallery\/glacier-satellite.html\">Bering Glacier<\/a>&#8221; by NASA Earth Observatory. Public domain.<\/li>\n<\/ul>\n<div class=\"glossary\"><span class=\"screen-reader-text\" id=\"definition\">definition<\/span><template id=\"term_743_1864\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1864\"><div tabindex=\"-1\"><p>within a glacier, referring especially to sediment carried within the glacial ice<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1866\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1866\"><div tabindex=\"-1\"><p>and end moraine that marks the farthest forward advance of a glacier<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1865\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1865\"><div tabindex=\"-1\"><p>a deposit of sediment that accumulates at the front of a glacier<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1867\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1867\"><div tabindex=\"-1\"><p>unsorted sediment transported and deposited by glacial ice<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1869\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1869\"><div tabindex=\"-1\"><p>beneath a glacier<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1870\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1870\"><div tabindex=\"-1\"><p>sediment that accumulates at the base of a glacier and typically has a wide range of grain sizes (including clay) and is well compacted<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1871\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1871\"><div tabindex=\"-1\"><p>a deposit of rocky material that forms along the margin of a valley or alpine glacier, mostly from the freeze-thaw release of material from the steep slopes above<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1872\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1872\"><div tabindex=\"-1\"><p>a lateral moraine that has been shifted towards the centre of a valley glacier at a point where two glaciers meet<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1873\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1873\"><div tabindex=\"-1\"><p>till that is formed when englacial and supraglacial sediments are deposited because the ice that was supporting them melts<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1874\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1874\"><div tabindex=\"-1\"><p>referring to the area in front of a glacier<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1875\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1875\"><div tabindex=\"-1\"><p>referring to sediments deposited from a stream that is derived from a glacier<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1876\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1876\"><div tabindex=\"-1\"><p>an extensive region of sand and gravel deposited by streams flowing out of a glacier (same as outwash plain)<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1877\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1877\"><div tabindex=\"-1\"><p>an extensive region of sand and gravel deposited by streams flowing out of a glacier (same as sandur)<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1878\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1878\"><div tabindex=\"-1\"><p>a depression formed at the front of a large glacier when a stranded ice block that was surrounded by sediment eventually melts<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1860\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1860\"><div tabindex=\"-1\"><p>a lake that forms within a kettle<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1879\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1879\"><div tabindex=\"-1\"><p>a ridge of sediment deposited by a sub-glacial stream<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1880\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1880\"><div tabindex=\"-1\"><p>referring to sediments deposited within a lake in a glacial environment<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1881\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1881\"><div tabindex=\"-1\"><p>a recognizable layer within sediments that represents a single year of deposition<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1882\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1882\"><div tabindex=\"-1\"><p>a fragment of rock within otherwise fine-grained sediment that has been dropped from floating ice on a body of water<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><template id=\"term_743_1883\"><div class=\"glossary__definition\" role=\"dialog\" data-id=\"term_743_1883\"><div tabindex=\"-1\"><p>referring to sediments deposited within the ocean in a glacial environment<\/p>\n<\/div><button><span aria-hidden=\"true\">&times;<\/span><span class=\"screen-reader-text\">Close definition<\/span><\/button><\/div><\/template><\/div>","protected":false},"author":90,"menu_order":4,"template":"","meta":{"pb_show_title":"on","pb_short_title":"","pb_subtitle":"","pb_authors":[],"pb_section_license":"cc-by"},"chapter-type":[],"contributor":[],"license":[52],"class_list":["post-743","chapter","type-chapter","status-publish","hentry","license-cc-by"],"part":697,"_links":{"self":[{"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/pressbooks\/v2\/chapters\/743","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/wp\/v2\/users\/90"}],"version-history":[{"count":5,"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/pressbooks\/v2\/chapters\/743\/revisions"}],"predecessor-version":[{"id":2357,"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/pressbooks\/v2\/chapters\/743\/revisions\/2357"}],"part":[{"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/pressbooks\/v2\/parts\/697"}],"metadata":[{"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/pressbooks\/v2\/chapters\/743\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/wp\/v2\/media?parent=743"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/pressbooks\/v2\/chapter-type?post=743"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/wp\/v2\/contributor?post=743"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/opentextbc.ca\/physicalgeology2ed\/wp-json\/wp\/v2\/license?post=743"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}