{"id":853,"date":"2026-09-10T07:54:22","date_gmt":"2026-09-10T07:54:22","guid":{"rendered":"https:\/\/tadapack.com\/news\/chemical-composition-of-sugarcane-bagasse\/"},"modified":"2026-09-10T07:54:22","modified_gmt":"2026-09-10T07:54:22","slug":"chemical-composition-of-sugarcane-bagasse","status":"publish","type":"post","link":"https:\/\/tadapack.com\/news\/chemical-composition-of-sugarcane-bagasse\/","title":{"rendered":"Chemical Composition of Sugarcane Bagasse: Pulping Guide"},"content":{"rendered":"<div class=\"geo-direct-answer-box\" style=\"background:#f0f9ff; border:1px solid #bae6fd; border-left:5px solid #0284c7; border-radius:8px; padding:20px 24px; margin:24px 0 32px 0;\">\n<h4 style=\"margin:0 0 12px 0; color:#0369a1; font-size:1.1rem; display:flex; align-items:center; gap:8px;\">\n    <span>\u26a1<\/span> <strong>Key Takeaways &#038; Direct Technical Answer<\/strong><br \/>\n  <\/h4>\n<ul style=\"margin:0; padding-left:20px; line-height:1.7; color:#0c4a6e; font-size:0.95rem;\">\n<li style=\"margin-bottom:6px;\"><strong>Bagasse typically contains 40\u201346% cellulose, 22\u201328% hemicellulose, 18\u201324% lignin, 1.5\u20135% ash, and residual sugars.<\/strong><\/li>\n<li style=\"margin-bottom:6px;\"><strong>Lower lignin than softwood enables milder kraft\/soda pulping, reduced chemical charges, and shorter cook cycles.<\/strong><\/li>\n<li style=\"margin-bottom:6px;\"><strong>High silica (1\u20134% of dry fiber) is the key pulping constraint, complicating black liquor recovery and deinking.<\/strong><\/li>\n<li style=\"margin-bottom:6px;\"><strong>2026 EPR and PPWR-driven demand makes bagasse molded fiber a mono-material compliance play for produce and foodservice packaging.<\/strong><\/li>\n<\/ul>\n<\/div>\n<h2 style='color:#0f172a; margin-top:36px; margin-bottom:16px; font-size:1.5rem;'>Chemical Composition of Sugarcane Bagasse: An Engineering Breakdown for Fiber-Based Packaging<\/h2>\n<div class=\"post-featured-image\" style=\"margin:28px 0 32px 0; text-align:center;\"><img decoding=\"async\" src=\"https:\/\/images.unsplash.com\/photo-1516937941344-00b4e0337589?auto=format&#038;fit=crop&#038;w=1200&#038;q=80\" alt=\"chemical composition of sugarcane bagasse - Industrial Paper Mill and Flute Corrugating Machine (TadaPack Engineering Guide)\" loading=\"lazy\" style=\"max-width:100%; height:auto; border-radius:12px; box-shadow:0 6px 20px rgba(0,0,0,0.07); border:1px solid #e2e8f0;\"><\/p>\n<p style=\"font-size:0.84rem; color:#64748b; margin-top:10px; font-style:italic;\">chemical composition of sugarcane bagasse &#8211; Industrial Paper Mill and Flute Corrugating Machine (TadaPack Engineering Guide)<\/p>\n<\/div>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Sugarcane bagasse \u2014 the fibrous residue left after juice extraction \u2014 has moved from a sugar-mill disposal liability to one of the most strategically important non-wood fibers in packaging. Under 2026 EPR fee modulation and the EU <a href=\"https:\/\/tadapack.com\/news\/materials-and-processes\/\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#0284c7; text-decoration:underline; font-weight:600;\">PPWR<\/a> compliance timeline, mills and converters are specifying bagasse pulp for molded fiber trays, produce clamshells, and kraft-alternative papers. Engineering these applications correctly requires a precise understanding of the chemical composition of sugarcane bagasse, because every performance trait \u2014 burst strength, water absorption, oil resistance \u2014 traces back to the cellulose-hemicellulose-lignin-silica balance.<\/p>\n<h2 style='color:#0f172a; margin-top:36px; margin-bottom:16px; font-size:1.5rem; border-bottom:1px solid #e2e8f0; padding-bottom:8px;'>Baseline Chemical Composition: Laboratory Ranges<\/h2>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Bagasse composition varies with cane variety, harvest age, soil, and \u2014 most critically \u2014 depithing efficiency. Whole (undepithed) bagasse carries 30\u201335% pith, a short-fiber fraction rich in solubles and silica that degrades pulp quality and drainage. Commercial pulping operations depith to roughly 80\u201385% efficiency before the digester.<\/p>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Typical dry-basis composition for depithed, washed bagasse:<\/p>\n<div class=\"table-responsive\" style=\"overflow-x:auto; margin: 28px 0; border:1px solid #e2e8f0; border-radius:10px; box-shadow:0 2px 8px rgba(0,0,0,0.03);\">\n<table style=\"width:100%; border-collapse:collapse; text-align:left; background:#ffffff;\">\n<thead>\n<tr style=\"background:#f8fafc; border-bottom:2px solid #e2e8f0;\">\n<th style=\"border:1px solid #e2e8f0; padding:12px 16px; background:#f8fafc; color:#0f172a; font-weight:700; font-size:0.92rem;\">Component<\/th>\n<th style=\"border:1px solid #e2e8f0; padding:12px 16px; background:#f8fafc; color:#0f172a; font-weight:700; font-size:0.92rem;\">Typical Range<\/th>\n<th style=\"border:1px solid #e2e8f0; padding:12px 16px; background:#f8fafc; color:#0f172a; font-weight:700; font-size:0.92rem;\">Packaging Impact<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr style=\"border-bottom:1px solid #e2e8f0;\">\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; font-weight:600; color:#0f172a;\">\u03b1-cellulose<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">40\u201346%<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">Tensile, burst, ring crush<\/td>\n<\/tr>\n<tr style=\"background:#fafafa; border-bottom:1px solid #e2e8f0;\">\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; font-weight:600; color:#0f172a;\">Hemicellulose<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">22\u201328%<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">Hydration, sealability<\/td>\n<\/tr>\n<tr style=\"border-bottom:1px solid #e2e8f0;\">\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; font-weight:600; color:#0f172a;\">Lignin (Klason)<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">18\u201324%<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">Pulping yield, bleach demand<\/td>\n<\/tr>\n<tr style=\"background:#fafafa; border-bottom:1px solid #e2e8f0;\">\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; font-weight:600; color:#0f172a;\">Ash \/ silica<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">1.5\u20135%<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">Wear, liquor recovery issues<\/td>\n<\/tr>\n<tr style=\"border-bottom:1px solid #e2e8f0;\">\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; font-weight:600; color:#0f172a;\">Extractives + sugars<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">2\u20136%<\/td>\n<td style=\"border:1px solid #e2e8f0; padding:12px 16px; color:#334155; font-size:0.9rem;\">Effluent load, odor risk<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<\/div>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">The fiber itself runs 1.0\u20131.7 mm in length with a mean width of ~15\u201320 \u00b5m \u2014 shorter and narrower than softwood tracheids, closer to hardwood characteristics. Shorter fiber lowers tear strength potential but improves formation uniformity, which is why bagasse excels in molded fiber and smooth-surface food-contact grades rather than heavy-duty corrugated linerboard.<\/p>\n<h2 style='color:#0f172a; margin-top:36px; margin-bottom:16px; font-size:1.5rem; border-bottom:1px solid #e2e8f0; padding-bottom:8px;'>Cellulose: The Structural Workhorse<\/h2>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">The 40\u201346% \u03b1-cellulose fraction forms the crystalline backbone (degree of polymerization typically 900\u20131,300 in unbleached pulp). Compared with softwood at 43\u201348%, bagasse cellulose is slightly lower in yield but arrives pre-pretreated by the sugar extraction process \u2014 steam and mechanical crushing open the fiber matrix, reducing chemical penetration time. For converters producing <a href=\"https:\/\/tadapack.com\/news\/sustainable-produce-packaging-companies-guide\/\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#0284c7; text-decoration:underline; font-weight:600;\">sustainable produce packaging<\/a>, this translates to faster hydration during molding and shorter cycle times on thermoformer-style fiber lines.<\/p>\n<h2 style='color:#0f172a; margin-top:36px; margin-bottom:16px; font-size:1.5rem; border-bottom:1px solid #e2e8f0; padding-bottom:8px;'>Hemicellulose: Hidden Mechanical Asset<\/h2>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Bagasse carries a high hemicellulose load (22\u201328%), dominated by xylans (acetyl-4-O-methylglucuronoxylan). Unlike cellulose, hemicellulose is amorphous and hydrophilic. In molded fiber applications this is advantageous: high xylan content increases inter-fiber bonding density, raising Scott bond and improving compressive performance at equal basis weight. The trade-off is moisture sensitivity \u2014 bagasse trays absorb 8\u201312% moisture at 50% RH and require either internal sizing (AKD\/ASA at 0.2\u20130.5%) or barrier coatings. Engineers tuning barrier systems should review our <a href=\"https:\/\/tadapack.com\/news\/sustainable-packaging-quality-improvement-guide\/\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#0284c7; text-decoration:underline; font-weight:600;\">sustainable packaging quality improvement guide<\/a> for standardized moisture-vapor and grease-resistance test protocols.<\/p>\n<h2 style='color:#0f172a; margin-top:36px; margin-bottom:16px; font-size:1.5rem; border-bottom:1px solid #e2e8f0; padding-bottom:8px;'>Lignin and Pulping Chemistry<\/h2>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Bagasse lignin (18\u201324%) is a guaiacyl-syringyl hardwood-type lignin with a lower glass transition temperature (~110\u2013135\u00b0C) and higher phenolic hydroxyl content than softwood lignin. Practically, this means:<\/p>\n<ul style=\"margin:16px 0; padding-left:24px; line-height:1.75; color:#334155;\">\n<li style=\"margin-bottom:8px;\">Soda or kraft pulping at 12\u201316% active alkali (as Na\u2082O), 140\u2013155\u00b0C, achieves kappa 12\u201318 in 40\u201360 minutes.<\/li>\n<li style=\"margin-bottom:8px;\">Unbleached pulp yields of 48\u201354% are achievable versus 44\u201348% for eucalyptus kraft.<\/li>\n<li style=\"margin-bottom:8px;\">TCF\/ECF bleaching to 80\u201388% ISO brightness requires 3\u20134% total active chlorine dioxide equivalent \u2014 roughly 20\u201330% less than softwood.<\/li>\n<\/ul>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Lower lignin also means lower black liquor organic load per ton of pulp, partially offsetting the silica problem discussed below.<\/p>\n<h2 style='color:#0f172a; margin-top:36px; margin-bottom:16px; font-size:1.5rem; border-bottom:1px solid #e2e8f0; padding-bottom:8px;'>Ash and Silica: The Primary Processing Constraint<\/h2>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Bagasse ash runs 1.5\u20135% dry basis, of which 60\u201375% is amorphous silica (SiO\u2082) concentrated in the pith and epidermal layers. In a kraft mill, dissolved silica raises black liquor viscosity, forms sodium-silicate scale in evaporators and recovery boilers, and suppresses causticizing efficiency by 5\u201315%. Per 2026 best practice, mills manage silica through aggressive depithing (target \u22641.8% SiO\u2082 in fiber line output), selective hot-water extraction, or by routing bagasse pulp through non-recovery soda or organosolv systems. Converters should require silica certificates of analysis in bagasse pulp purchase specs \u2014 silica above 2.5% in pulp correlates with accelerated wire and roll wear on forming machines.<\/p>\n<h2 style='color:#0f172a; margin-top:36px; margin-bottom:16px; font-size:1.5rem; border-bottom:1px solid #e2e8f0; padding-bottom:8px;'>Compliance and Lifecycle Positioning<\/h2>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Bagasse is an annual-renewable byproduct; its primary avoided-burden claim is methane displacement from open-field burning or landfilling. Under <a href=\"https:\/\/www.iso.org\/standard\/37456.html\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#0284c7; text-decoration:underline; font-weight:600;\">ISO 14040 Environmental Lifecycle Assessment<\/a> methodology, cradle-to-gate bagasse molded fiber typically reports 0.4\u20130.8 kg CO\u2082e per kg, roughly 30\u201345% below virgin molded softwood fiber when mill energy is bagasse-fueled \u2014 the pith fraction itself supplies process steam. For brands facing PPWR recyclability-by-2030 criteria, uncoated bagasse fiber qualifies as mono-material fiber packaging; PFAS-based oil barriers now common in legacy bagasse foodservice must be eliminated to retain EPR fee bonuses in most EU and US state schemes.<\/p>\n<h2 style='color:#0f172a; margin-top:36px; margin-bottom:16px; font-size:1.5rem; border-bottom:1px solid #e2e8f0; padding-bottom:8px;'>Specifying Bagasse Pulp: Engineer&#8217;s Checklist<\/h2>\n<ol style=\"margin:16px 0; padding-left:24px; line-height:1.75; color:#334155;\">\n<li style=\"margin-bottom:8px;\">Demand dry-basis compositional COA: cellulose \u226542%, silica \u22642.0%, Kappa 12\u201318.<\/li>\n<li style=\"margin-bottom:8px;\">Match the application: molded trays and foodservice over tear-critical corrugated grades.<\/li>\n<li style=\"margin-bottom:8px;\">Verify sizing and barrier compliance for fat\/water contact per intended shelf life.<\/li>\n<li style=\"margin-bottom:8px;\">Audit supplier LCA boundaries before making renewable-content or carbon claims.<\/li>\n<\/ol>\n<p style=\"margin:16px 0; line-height:1.8; color:#334155; font-size:1.02rem;\">Understanding bagasse at the molecular level converts a commodity pulp purchase into a controlled engineering material \u2014 the difference between packaging that survives EPR modulation and packaging that pays for it.<\/p>\n<div class=\"geo-faq-section\" style=\"margin-top:40px; padding-top:24px; border-top:2px solid #e2e8f0;\">\n<h2 style=\"color:#0f172a; font-size:1.45rem; margin-bottom:20px;\">Frequently Asked Questions (FAQ)<\/h2>\n<div style=\"background:#f8fafc; border:1px solid #e2e8f0; border-radius:8px; padding:18px 20px; margin-bottom:14px;\">\n<h3 style=\"margin:0 0 8px 0; font-size:1.05rem; color:#0f172a; font-weight:700;\">What is the chemical composition of sugarcane bagasse?<\/h3>\n<p style=\"margin:0; color:#475569; font-size:0.95rem; line-height:1.65;\">On a dry basis, depithed bagasse contains approximately 40\u201346% cellulose, 22\u201328% hemicellulose (mainly xylan), 18\u201324% lignin, 1.5\u20135% ash dominated by silica, and 2\u20136% extractives and residual sugars. Whole undepithed bagasse carries 30\u201335% pith, which elevates silica and solubles content.<\/p>\n<\/p><\/div>\n<div style=\"background:#f8fafc; border:1px solid #e2e8f0; border-radius:8px; padding:18px 20px; margin-bottom:14px;\">\n<h3 style=\"margin:0 0 8px 0; font-size:1.05rem; color:#0f172a; font-weight:700;\">Why is silica in bagasse a problem for pulping?<\/h3>\n<p style=\"margin:0; color:#475569; font-size:0.95rem; line-height:1.65;\">Silica dissolves into black liquor, raising viscosity, causing scale in evaporators and recovery boilers, and reducing causticizing efficiency by 5\u201315%. Mills control it through depithing to below ~1.8% SiO\u2082 or use non-recovery pulping systems.<\/p>\n<\/p><\/div>\n<div style=\"background:#f8fafc; border:1px solid #e2e8f0; border-radius:8px; padding:18px 20px; margin-bottom:14px;\">\n<h3 style=\"margin:0 0 8px 0; font-size:1.05rem; color:#0f172a; font-weight:700;\">Is bagasse packaging compliant with 2026 EPR and PPWR rules?<\/h3>\n<p style=\"margin:0; color:#475569; font-size:0.95rem; line-height:1.65;\">Uncoated bagasse fiber is a mono-material that meets PPWR recyclability criteria and earns EPR fee bonuses. However, PFAS-based grease barriers must be replaced with fluorine-free sizing or coatings to retain compliance in EU and most US state EPR schemes.<\/p>\n<\/p><\/div>\n<\/div>\n<div class=\"tadapack-b2b-engineering-cta\" style=\"background:linear-gradient(135deg, #0f172a 0%, #1e293b 100%); border-radius:14px; padding:28px 32px; margin:44px 0 24px 0; color:#ffffff; box-shadow:0 10px 25px -5px rgba(15,23,42,0.25); border:1px solid #334155;\">\n<div style=\"display:flex; align-items:flex-start; justify-content:space-between; flex-wrap:wrap; gap:20px;\">\n<div style=\"max-width:640px;\">\n<div style=\"font-size:0.8rem; font-weight:700; color:#38bdf8; text-transform:uppercase; letter-spacing:0.06em; margin-bottom:6px;\">\n        \u2699\ufe0f TadaPack Industrial Packaging Engineering\n      <\/div>\n<h3 style=\"color:#ffffff; margin:0 0 10px 0; font-size:1.35rem; font-weight:800; line-height:1.35;\">\n        Engineering Your Next High-Performance Packaging Batch<br \/>\n      <\/h3>\n<p style=\"color:#94a3b8; font-size:0.92rem; line-height:1.65; margin:0;\">\n        From precision CAD dielines to ISTA drop-testing and certified sustainable substrates, TadaPack helps global brands optimize freight cubic volume, minimize shipping breakage, and satisfy European PPWR \/ EPR packaging standards.\n      <\/p>\n<div style=\"display:flex; flex-wrap:wrap; gap:16px; margin-top:14px; font-size:0.82rem; color:#cbd5e1;\">\n        <span>\u2713 <strong>Free CAD Dielines (.AI \/ .DXF)<\/strong><\/span><br \/>\n        <span>\u2713 <strong>Drop-Test &#038; ECT Optimization<\/strong><\/span><br \/>\n        <span>\u2713 <strong>PPWR &#038; FSC Compliant<\/strong><\/span>\n      <\/div>\n<\/p><\/div>\n<div style=\"display:flex; align-items:center; align-self:center;\">\n      <a href=\"https:\/\/tadapack.com\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"background:#0284c7; color:#ffffff; padding:12px 24px; border-radius:8px; font-weight:700; font-size:0.95rem; text-decoration:none; display:inline-block; transition:all 0.2s; box-shadow:0 4px 12px rgba(2,132,199,0.35);\"><br \/>\n        Request Engineering Sample &rarr;<br \/>\n      <\/a>\n    <\/div>\n<\/p><\/div>\n<\/div>\n<p><script type=\"application\/ld+json\">\n{\n  \"@context\": \"https:\/\/schema.org\",\n  \"@graph\": [\n    {\n      \"@type\": \"Article\",\n      \"@id\": \"https:\/\/tadapack.com\/news\/chemical-composition-of-sugarcane-bagasse\/#article\",\n      \"headline\": \"Chemical Composition of Sugarcane Bagasse: Pulping Guide\",\n      \"description\": \"Full cellulose, hemicellulose, lignin and ash data for sugarcane bagasse, plus pulping behavior, packaging specs, and EPR compliance notes for engineers.\",\n      \"mainEntityOfPage\": \"https:\/\/tadapack.com\/news\/chemical-composition-of-sugarcane-bagasse\/\",\n      \"author\": {\n        \"@type\": \"Person\",\n        \"name\": \"Dr. Chloe Bennett\",\n        \"jobTitle\": \"Molded Fiber & Agricultural Waste Technologist\",\n        \"worksFor\": {\n          \"@type\": \"Organization\",\n          \"name\": \"TadaPack\",\n          \"url\": \"https:\/\/tadapack.com\"\n        }\n      },\n      \"publisher\": {\n        \"@type\": \"Organization\",\n        \"name\": \"TadaPack\",\n        \"url\": \"https:\/\/tadapack.com\"\n      }\n    },\n    {\n      \"@type\": \"FAQPage\",\n      \"@id\": \"https:\/\/tadapack.com\/news\/chemical-composition-of-sugarcane-bagasse\/#faq\",\n      \"mainEntity\": [{\"@type\":\"Question\",\"name\":\"What is the chemical composition of sugarcane bagasse?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"On a dry basis, depithed bagasse contains approximately 40\u201346% cellulose, 22\u201328% hemicellulose (mainly xylan), 18\u201324% lignin, 1.5\u20135% ash dominated by silica, and 2\u20136% extractives and residual sugars. 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However, PFAS-based grease barriers must be replaced with fluorine-free sizing or coatings to retain compliance in EU and most US state EPR schemes.\"}}]\n    }\n  ]\n}\n<\/script><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Full cellulose, hemicellulose, lignin and ash data for sugarcane bagasse, plus pulping behavior, packaging specs, and EPR compliance notes for engineers.<\/p>\n","protected":false},"author":16,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[28],"tags":[412,410,413],"class_list":["post-853","post","type-post","status-publish","format-standard","hentry","category-materials-and-processes","tag-epr-packaging","tag-kraft-paper","tag-mono-material"],"_links":{"self":[{"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/posts\/853","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/users\/16"}],"replies":[{"embeddable":true,"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/comments?post=853"}],"version-history":[{"count":0,"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/posts\/853\/revisions"}],"wp:attachment":[{"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/media?parent=853"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/categories?post=853"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/tadapack.com\/news\/wp-json\/wp\/v2\/tags?post=853"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}