{"id":377,"date":"2010-05-01T17:12:41","date_gmt":"2010-05-01T22:12:41","guid":{"rendered":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/?p=377"},"modified":"2012-10-23T08:46:21","modified_gmt":"2012-10-23T13:46:21","slug":"distribution-of-sulfur-containing-compounds-in-ngl-products-by-three-simulators","status":"publish","type":"post","link":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/2010\/05\/distribution-of-sulfur-containing-compounds-in-ngl-products-by-three-simulators\/","title":{"rendered":"Distribution of Sulfur-Containing Compounds in NGL Products by Three Simulators"},"content":{"rendered":"<p>In the February 2010 tip of the month (TOTM) we presented the distribution and concentration of sulfur-containing compounds in an NGL Fractionation (NF) plant using HYSYS [1] with the Peng-Robinson equation of state (PR EOS) [2]. In this TOTM we will present the distribution and concentration of the sulfur-containing compounds in the same NF plant using ProMax [3] and VMGSim [4] both using the PR EoS. These two simulation results will be compared with the HYSYS [1] results. The software\u2019s built-in binary interaction parameters were used in this study. The NF plant is the same as the one described by Alsayegh\u00a0<em>et al.<\/em> [5]. The feed composition, rate, condition, and product specifications are shown in Tables 1 and 2 and the plant process flow diagram is shown in Figure 1 of the February 2010 TOTM. An overall tray efficiency of 90 percent was used for all columns.<\/p>\n<p><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/110.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-378\" title=\"1\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/110.png?resize=445%2C268\" alt=\"Figure 1\" width=\"445\" height=\"268\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/110.png?w=445 445w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/110.png?resize=300%2C180 300w\" sizes=\"auto, (max-width: 445px) 100vw, 445px\" \/><\/a><\/p>\n<p><strong>Expected Product Distribution: <\/strong>Figure 1, reproduced from Figure 9 of a paper published by Likins and Hix [6], shows a descending order log scale bar-graph of the pure compounds vapor pressure for the components of interest to this study. This figure shows that COS should distribute to both the ethane and the propane streams. MeSH, with a vapor pressure close to n-butane should distribute primarily with the butanes with a small amount distributing to the pentane stream. EtSH, having a vapor pressure between butane and pentane, should distribute primarily with butane and pentane. CS<sub>2<\/sub> should distribute primarily to the pentane and the C<sub>6<\/sub><sup>+<\/sup> streams with only minor distribution to the butane stream. The heavier sulfur compounds should end up almost entirely in the C<sub>6<\/sub><sup>+<\/sup> stream.<\/p>\n<p><strong>Results of Computer Simulation:<\/strong><\/p>\n<p>The NF plant described in the previous section was simulated using HYSYS [1], ProMax and VMGSim based on the PR EOS [2]. In this study, the respective software built-in (library) binary interaction parameters were used even though we recommend evaluating the accuracy of VLE results against experimental data and if necessary the insertion of VLE data regression into the EOS interaction parameters. This regression may be required to adequately model the systems dealing with mercaptans.<\/p>\n<ol>\n<li>Table 1. Concentration (PPM, mole) of sulfur containing compounds in the gas and product streams<\/li>\n<\/ol>\n<div><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/29.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-379\" title=\"2\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/29.png?resize=480%2C491\" alt=\"Table 1\" width=\"480\" height=\"491\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/29.png?w=480 480w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/29.png?resize=293%2C300 293w\" sizes=\"auto, (max-width: 480px) 100vw, 480px\" \/><\/a><\/div>\n<p>The focus of this study is on the distribution (% recovery) and concentration (PPM) of the sulfur-containing compounds in the product streams. Table 1 presents the PPM concentration of sulfur-containing compounds in the feed and product streams. Figures 2 through 8 present bar-graphs of the recovery of each sulfur-containing compound in the gas and product streams. The mole percent recovery is defined as the number of moles of a component in the product stream divided by the moles of the same component in the feed stream (Stream 5). In these figures, the gas and product streams are followed by letters H, P, and V representing\u00a0<strong>H<\/strong>YSYS,\u00a0<strong>P<\/strong>roMax, and\u00a0<strong>V<\/strong>MGSim results, respectively.<\/p>\n<p><strong>H<sub>2<\/sub>S<\/strong>: Figure 2 shows the distribution and recovery of H<sub>2<\/sub>S in the gas, C<sub>2<\/sub> and C<sub>3<\/sub> product streams. As expected, the majority of the H<sub>2<\/sub>S distributes in the gas and the C<sub>2<\/sub> product streams. As can be seen in this figure, the results of the simulators are the same.<\/p>\n<p><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/39.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-380\" title=\"3\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/39.png?resize=451%2C274\" alt=\"Figure 2\" width=\"451\" height=\"274\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/39.png?w=451 451w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/39.png?resize=300%2C182 300w\" sizes=\"auto, (max-width: 451px) 100vw, 451px\" \/><\/a><\/p>\n<p><strong>COS<\/strong>: Figure 3 shows the distribution and recovery of COS in the gas, C<sub>2<\/sub>, and C<sub>3<\/sub>. As expected, the majority of the COS ends up in the C<sub>3<\/sub> product stream. As can be seen in this figure, the results of the three simulators are almost the same.<\/p>\n<p><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/48.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-381\" title=\"4\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/48.png?resize=404%2C245\" alt=\"Figure 3\" width=\"404\" height=\"245\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/48.png?w=404 404w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/48.png?resize=300%2C181 300w\" sizes=\"auto, (max-width: 404px) 100vw, 404px\" \/><\/a><\/p>\n<p><strong>MeSH<\/strong>: Figure 4 shows the distribution and recovery of MeSH in the gas, C<sub>3<\/sub>, and C<sub>4<\/sub> product streams. For HYSYS and VMGSim, contrary to the data presented in Figure 1, the majority of the MeSH distributes to the C<sub>3<\/sub> stream rather than to the C<sub>4<\/sub> stream. However, the ProMax result follows the same trend as in Figure 1 and the majority of MeSH distributes to the C<sub>4<\/sub> stream.<strong><\/strong><\/p>\n<div><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/56.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-382\" title=\"5\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/56.png?resize=410%2C220\" alt=\"Figure 4\" width=\"410\" height=\"220\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/56.png?w=410 410w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/56.png?resize=300%2C160 300w\" sizes=\"auto, (max-width: 410px) 100vw, 410px\" \/><\/a><\/div>\n<p><strong>EtSH<\/strong>: Figure 5 shows the distribution and recovery of EtSH in the C<sub>3<\/sub>, C<sub>4<\/sub>, and C<sub>5<\/sub> streams. Unexpectedly, HYSYS predicts that the majority of the EtSH ends up in the C<sub>4<\/sub> stream rather than the C5 product as would be expected based on the data of Figure 1. However, the results of ProMax and VMGSim are closer to the Figure 1 data.<\/p>\n<p><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/68.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-383\" title=\"6\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/68.png?resize=422%2C248\" alt=\"Figure 5\" width=\"422\" height=\"248\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/68.png?w=422 422w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/68.png?resize=300%2C176 300w\" sizes=\"auto, (max-width: 422px) 100vw, 422px\" \/><\/a><\/p>\n<p><strong>CS<sub>2<\/sub><\/strong>: Figure 6 shows the distribution and recovery of CS<sub>2<\/sub> in the C<sub>4<\/sub> and C<sub>5<\/sub> product streams. Contrary to the Figure 1 pure CS<sub>2<\/sub> behavior the results of HYSYS and VMGSim show that the majority of the CS<sub>2<\/sub> ends up in the C<sub>4<\/sub> stream. However, based on the ProMax results, the majority of the CS<sub>2<\/sub> ends up in the C<sub>5<\/sub> stream which is consistent with data in Figure 1.<\/p>\n<div><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/78.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-384\" title=\"7\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/78.png?resize=417%2C249\" alt=\"Figure 6\" width=\"417\" height=\"249\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/78.png?w=417 417w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/78.png?resize=300%2C179 300w\" sizes=\"auto, (max-width: 417px) 100vw, 417px\" \/><\/a><\/div>\n<p><strong>iC<sub>3<\/sub>SH<\/strong>: Figure 7 shows the distribution and recovery of iC<sub>3<\/sub>SH in the C<sub>4<\/sub>, C<sub>5<\/sub> and C<sub>6+<\/sub> product streams. As expected, iC<sub>3<\/sub>SH ends up in the C<sub>5<\/sub> and C<sub>6+<\/sub> streams. Notice that ProMax shows a higher concentration of iC<sub>3<\/sub>SH in the C<sub>5<\/sub> product stream while HYSYS and VMGSim predict lower but nearly the same recovery of iC<sub>3<\/sub>SH.<\/p>\n<p><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/88.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-385\" title=\"8\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/88.png?resize=448%2C273\" alt=\"Figure 7\" width=\"448\" height=\"273\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/88.png?w=448 448w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/88.png?resize=300%2C182 300w\" sizes=\"auto, (max-width: 448px) 100vw, 448px\" \/><\/a><\/p>\n<p><strong>iC<sub>4<\/sub>SH<\/strong>: Figure 8 shows recovery of iC<sub>4<\/sub>SH in the C<sub>6+<\/sub> product stream. All of the iC<sub>4<\/sub>SH ends up in the C<sub>6+<\/sub> stream as expected when the Figure 1 data is analyzed.<\/p>\n<p><a href=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/97.png\"><img data-recalc-dims=\"1\" decoding=\"async\" loading=\"lazy\" class=\"aligncenter size-full wp-image-386\" title=\"9\" src=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/97.png?resize=449%2C276\" alt=\"Figure 8\" width=\"449\" height=\"276\" srcset=\"https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/97.png?w=449 449w, https:\/\/i0.wp.com\/www.jmcampbell.com\/tip-of-the-month\/wp-content\/uploads\/2011\/03\/97.png?resize=300%2C184 300w\" sizes=\"auto, (max-width: 449px) 100vw, 449px\" \/><\/a><\/p>\n<p><strong>Conclusions:<\/strong><\/p>\n<p>The calculation results presented and discussed here are specific to the NGL fractionation plant studied here, but there are some general conclusions that can be drawn from this study.<\/p>\n<p>The results indicate that the highest concentration of methyl mercaptan (MeSH) is present in the C<sub>3<\/sub> product (stream 15) based on HYSYS and VMGSim but its highest concentration is in the C<sub>4<\/sub> product (stream 20) based on the ProMax results.<\/p>\n<p>The results of HYSYS indicate that the highest concentration of ethyl mercaptan (EtSH) is present in the C<sub>4<\/sub> product (stream 20) but ProMax and VMGSim results indicate that its highest concentration occurs in the C<sub>5<\/sub> Product (stream 23).<\/p>\n<p>The highest concentration of carbon disulfide (CS<sub>2<\/sub>) is present in C<sub>5<\/sub> Product (stream 23) according to the three simulator results.<\/p>\n<p>The binary interaction parameters used in the EOS play an important role in the VLE behavior of the system under study, and affect the distribution of the sulfur-containing compounds present in the feed. Use of improper or incorrect binary interaction parameters may generate erroneous results. Care must be taken to use correct values of binary interaction parameters. In this study, the simulator library values of the binary interaction parameters were used.<\/p>\n<p>The predictions by HYSYS, ProMax, and VMGSim in Figures 4 through 7 (showing the distribution of MeSH, EtSH, CS<sub>2<\/sub>, and iCH<sub>3<\/sub>SH respectively) contain some disagreements. The results also indicate that these compounds were not distributed among the hydrocarbon products in the same way one would expect from their volatilities and concentrations. This may be explained by the conclusion reported by Harryman and Smith [7, 8] who wrote \u201ciC<sub>3<\/sub>SH is formed during fractionation within the depropanizer and the deethanizer.\u201d Therefore, further evaluation should be conducted to arrive at a concrete decision.\u00a0<em>In an upcoming TOTM, we will investigate the VLE behavior of the theses systems using experimental data.<\/em> This should be a good reason to perform laboratory tests and detailed thermodynamic calculations to determine process flow rates and composition. Detailed process analysis should<span style=\"text-decoration: underline;\">always<\/span> be made to justify and prove correct decisions as to selection of process flow schemes.<\/p>\n<p>To learn more about similar cases and how to minimize operational problems, we suggest attending the John M. Campbell courses;\u00a0<a href=\"http:\/\/www.jmcampbell.com\/gas-conditioning-and-processing-g4.php\">G4 (Gas Conditioning and Processing)<\/a>,\u00a0<a href=\"http:\/\/www.jmcampbell.com\/gas-conditioning-and-processing-special.php\">G5 (Gas Conditioning and Processing &#8211; Special)<\/a> and <a href=\"http:\/\/www.jmcampbell.com\/gas-treating-and-sulfur-recovery-g6.php\">G-6 Gas Treating and Sulfur Recovery<\/a>.<\/p>\n<p>John M. Campbell Consulting (JMCC) offers consulting expertise on this subject and many others. For more information about the services JMCC provides, visit our website at\u00a0<a href=\"http:\/\/www.jmcampbellconsulting.com\/\" target=\"_blank\">www.jmcampbellconsulting.<wbr>com<\/wbr><\/a>, or email your consulting needs to\u00a0<a href=\"mailto:consulting@jmcampbell.com\" target=\"_blank\">consulting@jmcampbell.com<\/a>.<\/p>\n<p><em>By: Dr. Mahmood Moshfeghian<\/em><\/p>\n<p>Reference:<\/p>\n<ol>\n<li>ASPENone, Engineering Suite, HYSYS Version 7.0, Aspen Technology, Inc., Cambridge, Massachusetts U.S.A., 2009.<\/li>\n<li>Peng, D.,Y. and D. B. Robinson, Ind. Eng. Chem. Fundam. 15, 59-64, 1976.<\/li>\n<li>ProMax 3.1, Bryan Research and Engineering, Inc, Bryan, Texas, 2009.<\/li>\n<li>VMGSim 5.0.5, Virtual materials Group, Inc, Calgary, Alberta, 2010.<\/li>\n<li>Al-Sayegh, A.R., Moshfeghian, M.\u00a0 Abbszadeh, M.R., Johannes, A. H. and R. N. Maddox, \u201cComputer simulation accurately\u00a0 determines volatile sulfur compounds,\u201d Oil and Gas J., Oct 21, 2002.<\/li>\n<li>Likins, W. and M. Hix, \u201cSulfur Distribution Prediction with Commercial Simulators,\u201d the 46th Annual Laurance Reid Gas Conditioning Conference Norman, OK 3 &#8211; 6 March, 1996.<\/li>\n<li>Harryman, J.M. and B. Smith, \u201cSulfur Compounds Distribution in NGL\u2019s; Plant Test Data \u2013 GPA Section A Committee, Plant design,\u201c Proceedings 73<sup>rd<\/sup> GPA Annual Convention, New Orleans, Louisiana, March, 1994.<\/li>\n<li>Harryman, J.M. and B. Smith, \u201cUpdate on Sulfur Compounds Distribution in NGL\u2019s; Plant Test Data \u2013 GPA Section A Committee, Plant design,\u201c Proceedings 75<sup>th<\/sup> GPA Annual Convention, Denver, Colorado, March, 1996.<\/li>\n<\/ol>\n","protected":false},"excerpt":{"rendered":"<p>In the February 2010 tip of the month (TOTM) we presented the distribution and concentration of sulfur-containing compounds in an NGL Fractionation (NF) plant using HYSYS [1] with the Peng-Robinson equation of state (PR EOS) [2]. In this TOTM we will present the distribution and concentration of the sulfur-containing compounds in the same NF plant [&hellip;]<\/p>\n","protected":false},"author":23,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"nf_dc_page":"","_monsterinsights_skip_tracking":false,"_monsterinsights_sitenote_active":false,"_monsterinsights_sitenote_note":"","_monsterinsights_sitenote_category":0,"_jetpack_newsletter_access":"","_jetpack_dont_email_post_to_subs":false,"_jetpack_newsletter_tier_id":0,"_jetpack_memberships_contains_paywalled_content":false,"_jetpack_feature_clip_id":0,"_jetpack_memberships_contains_paid_content":false,"footnotes":"","jetpack_publicize_message":"","jetpack_publicize_feature_enabled":true,"jetpack_social_post_already_shared":false,"jetpack_social_options":{"image_generator_settings":{"template":"highway","default_image_id":0,"font":"","enabled":false},"version":2},"jetpack_post_was_ever_published":false},"categories":[3],"tags":[],"coauthors":[15],"class_list":["post-377","post","type-post","status-publish","format-standard","hentry","category-gas-processing"],"jetpack_publicize_connections":[],"jetpack_featured_media_url":"","jetpack_shortlink":"https:\/\/wp.me\/p1pQc4-65","jetpack_sharing_enabled":true,"_links":{"self":[{"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/posts\/377","targetHints":{"allow":["GET"]}}],"collection":[{"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/users\/23"}],"replies":[{"embeddable":true,"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/comments?post=377"}],"version-history":[{"count":6,"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/posts\/377\/revisions"}],"predecessor-version":[{"id":1491,"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/posts\/377\/revisions\/1491"}],"wp:attachment":[{"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/media?parent=377"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/categories?post=377"},{"taxonomy":"post_tag","embeddable":true,"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/tags?post=377"},{"taxonomy":"author","embeddable":true,"href":"http:\/\/www.jmcampbell.com\/tip-of-the-month\/wp-json\/wp\/v2\/coauthors?post=377"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}