{"id":563,"date":"2026-07-20T04:02:47","date_gmt":"2026-07-20T04:02:47","guid":{"rendered":"https:\/\/forage-balers.com\/?post_type=product&#038;p=563"},"modified":"2026-07-20T04:02:48","modified_gmt":"2026-07-20T04:02:48","slug":"9lzy-9-0-finger-wheel-rake","status":"publish","type":"product","link":"https:\/\/forage-balers.com\/ar\/product\/9lzy-9-0-finger-wheel-rake\/","title":{"rendered":"9LZY-9.0 Finger-Wheel Rake"},"content":{"rendered":"<div style=\"font-family: 'Segoe UI', Roboto, Helvetica, Arial, sans-serif; color: #333333; line-height: 1.8; max-width: 1200px; margin: 0 auto; padding: 20px; background-color: #ffffff;\">\n<p><!-- Header Section --><\/p>\n<div style=\"text-align: center; margin-bottom: 40px; padding: 20px 10px;\">\n<h1 style=\"color: #1a365d; font-size: 2.6em; font-weight: 800; margin-bottom: 20px; line-height: 1.3; text-transform: capitalize;\">9LZY-9.0 Finger-Wheel Rake: Nine-Wheel Wide-Swath Raking for High-Efficiency Commercial Hay Windrow Formation<\/h1>\n<p style=\"font-size: 1.25em; color: #718096; font-style: italic; margin: 0; max-width: 950px; margin-left: auto; margin-right: auto;\">15 finger wheels carrying 900 tines across a 9m working width, trailed side-pull design, 0.8\u20131.2m adjustable windrow width, \u22642% raking loss rate, 7.2\u20139 ha\/h productivity \u2014 delivering fast, gentle, low-loss windrow formation from 50\u201355 kW tractors with a single operator.<\/p>\n<\/div>\n<p><!-- Main Product Image --><br \/>\n<img decoding=\"async\" style=\"width: 100%; max-width: 900px; height: auto; display: block; margin: 40px auto; border-radius: 8px; box-shadow: 0 8px 20px rgba(0,0,0,0.12);\" src=\"https:\/\/forage-balers.com\/wp-content\/uploads\/2026\/07\/9LZY-9.0-Disc-Rake2.webp\" alt=\"9LZY-9.0 Finger-Wheel Rake 9-metre wide trailed side-pull configuration showing 15 finger wheels and 900 tines across full working width for commercial hay windrow formation\" \/><\/p>\n<p><!-- Section 1: Introduction --><\/p>\n<div style=\"margin-bottom: 50px;\">\n<h2 style=\"color: #d32f2f; font-size: 1.9em; border-bottom: 3px solid #d32f2f; padding-bottom: 10px; margin-top: 40px; margin-bottom: 25px; font-weight: bold;\">1. Introduction: Why Windrow Formation Quality Determines Baling Efficiency<\/h2>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">A baler can only work as efficiently as the windrow it follows. Uneven windrow density causes the baler to cycle between overload and underload conditions that reduce average output, increase blockage risk, and produce inconsistent bale density. Windrows placed too wide for the pickup width force the baler to make secondary passes or leave uncollected material on the field. Windrows that scatter leaf material during formation \u2014 through aggressive tine action or excessive travel speed \u2014 reduce the dry matter yield per bale and degrade the protein and energy content of the finished hay. The windrow rake is therefore not a secondary field operation: it is the critical quality control step between mowing and baling, and its performance directly determines the economic outcome of the entire hay production cycle.<\/p>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The 9LZY-9.0 Finger-Wheel Rake addresses these requirements with a nine-wheel trailed design spanning a 9m working width, carrying 15 finger wheels with 60 tines each \u2014 900 tines total \u2014 that gather and consolidate mowed material gently into a 0.8\u20131.2m windrow with a documented raking loss rate of \u22642%. The finger-wheel mechanism&#8217;s fundamental advantage over power-driven rake designs is the absence of an external drive source: finger wheels are ground-driven, rotating through the friction of tine contact with the crop rather than through a PTO or hydraulic motor. This passive rotation mechanism is inherently gentle on fragile dry leaf material, minimises the aggressive tine impact that drives leaf shatter loss in power-driven rakes, and eliminates the mechanical complexity and maintenance requirements of a driven conditioning rotor. Explore our complete range of <a style=\"color: #d32f2f; text-decoration: none; font-weight: bold; border-bottom: 1px dotted #d32f2f;\" href=\"https:\/\/forage-balers.com\/ar\/\">forage harvesting equipment<\/a> including the round balers that pair with this rake for a complete one-pass-per-operation harvest system.<\/p>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">At 7.2\u20139 ha\/h productivity, the 9LZY-9.0 is sized for operations where the raking pass must keep pace with high-output mower conditioners covering 3+ metres per pass. A single operator working at 8\u201310 km\/h transport speed can rake the output of a 3.2m mower conditioner without creating a raking bottleneck that extends the crop&#8217;s time between cutting and baling \u2014 the window during which weather risk accumulates and leaf material continues to dry past optimal baling moisture.<\/p>\n<\/div>\n<p><!-- Section 2: Working Principle --><\/p>\n<div style=\"margin-bottom: 50px;\">\n<h2 style=\"color: #d32f2f; font-size: 1.9em; border-bottom: 3px solid #d32f2f; padding-bottom: 10px; margin-top: 40px; margin-bottom: 25px; font-weight: bold;\">2. How the 9LZY-9.0 Works: Finger-Wheel Ground-Drive Raking Principle<\/h2>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">The Finger-Wheel Mechanism<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">Each of the 15 finger wheels in the 9LZY-9.0 consists of a central hub mounted on a castor-angled spindle, with 60 spring-steel tines radiating from the hub in a star pattern. As the implement advances, the tines contact the mowed material on the field surface and their engagement with the crop drives the wheel to rotate \u2014 no external power source required. The rotation sweeps tines through the crop layer in a consistent rearward arc, lifting and conveying material laterally toward the windrow centre position. Each wheel operates independently on its own spring-loaded arm, allowing individual wheels to follow ground undulations without lifting adjacent wheels from the crop surface \u2014 maintaining consistent tine-to-ground clearance across the full 9m width even on uneven terrain.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Nine-Wheel Array and Windrow Formation<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The 15 wheels are arranged in the 9m-wide array at angles and spacings that create a cascade of lateral crop movement \u2014 each wheel receiving material partially gathered by the wheel ahead of it in the array and passing it further toward the windrow centre. This cascade arrangement means that crop near the outer edges of the 9m working width travels the greatest lateral distance, while crop near the windrow centre travels the least \u2014 but each wheel handles only a fraction of the total material movement, keeping individual wheel tine loading within the range that minimises leaf shatter. The final windrow width of 0.8\u20131.2m is determined by the angle setting of the outer wheels, which is adjusted before field operation to match the target windrow width for the baler following.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Ground-Drive Advantages for Low Loss Rate<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The \u22642% raking loss rate specification is the direct result of the finger-wheel ground-drive mechanism&#8217;s inherent gentleness. Because wheel rotation speed is governed by forward travel speed rather than an external drive motor, the tine tip speed relative to the crop is always proportional to forward speed \u2014 preventing the over-speed tine action that causes aggressive leaf stripping in power-driven rakes when travel speed drops below the rate at which the rotor was designed to run. Constant tine-speed-to-travel-speed ratio means the same gentle tine action at 8 km\/h as at 10 km\/h. This gentleness is most commercially significant with high-leaf-fraction crops like alfalfa and clover, where leaf represents 60\u201370% of the hay&#8217;s nutritional value and aggressive raking can reduce dry matter yield by 5\u201315% per pass compared to finger-wheel alternatives.<\/p>\n<div style=\"background-color: #e2f1f8; border-left: 6px solid #0277bd; padding: 20px; margin: 30px 0; border-radius: 0 8px 8px 0;\"><strong style=\"color: #01579b; display: block; margin-bottom: 8px; font-size: 1.2em;\">900 Tines: Why Higher Tine Count Matters at 9m Width<\/strong><br \/>\n<span style=\"font-size: 1.1em; color: #4a5568;\">With 15 wheels at 60 tines each, the 9LZY-9.0 provides 900 tine contact points across the 9m working width \u2014 approximately 100 tines per metre of width. This high tine density ensures that no material is missed between adjacent tine paths even at working speeds toward the upper end of the 8\u201310 km\/h range. At lower tine densities, gaps between tine paths at higher speeds leave unraked strips that must be collected in a secondary pass or remain on the field as loss. The 60-tine-per-wheel design closes these gaps across the full working width, maintaining the \u22642% loss rate specification at all working speeds within the rated range. For the round balers that follow, see our complete <a style=\"color: #d32f2f; text-decoration: none; font-weight: bold; border-bottom: 1px dotted #d32f2f;\" href=\"https:\/\/forage-balers.com\/ar\/\">hay baler product range<\/a>.<\/span><\/div>\n<\/div>\n<p><!-- Section 3: Technical Specifications --><\/p>\n<div style=\"margin-bottom: 50px;\">\n<h2 style=\"color: #d32f2f; font-size: 1.9em; border-bottom: 3px solid #d32f2f; padding-bottom: 10px; margin-top: 40px; margin-bottom: 25px; font-weight: bold;\">3. Complete Technical Specifications<\/h2>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The following table contains the verified engineering specification sheet for the 9LZY-9.0 Finger-Wheel Rake, derived from factory test documentation under standard operating conditions.<\/p>\n<div style=\"overflow-x: auto; margin: 40px 0; border-left: 10px solid #e60012; border-radius: 4px;\">\n<table style=\"width: 100%; border-collapse: collapse; font-size: 16px; min-width: 700px; box-shadow: 0 4px 10px rgba(0,0,0,0.05);\">\n<thead>\n<tr>\n<th style=\"background-color: #0082c8; color: #ffffff; border: 2px solid #2d3748; padding: 16px; text-align: center; font-weight: bold; width: 10%;\">No.<\/th>\n<th style=\"background-color: #0082c8; color: #ffffff; border: 2px solid #2d3748; padding: 16px; text-align: left; font-weight: bold; width: 42%;\">Item \/ Parameter<\/th>\n<th style=\"background-color: #0082c8; color: #ffffff; border: 2px solid #2d3748; padding: 16px; text-align: center; font-weight: bold; width: 10%;\">Unit<\/th>\n<th style=\"background-color: #0082c8; color: #ffffff; border: 2px solid #2d3748; padding: 16px; text-align: center; font-weight: bold; width: 38%;\">Specification \/ Value<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">1<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Model Name<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">\/<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">Model 9LZY-9.0 Finger-Wheel Rake<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">\/<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Structural Type<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">\/<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">Finger-Wheel Type<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">2<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Hitch Type<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">\/<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">Trailed<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">3<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Model Designation<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">\/<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">9LZY-9.0<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">4<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Required Power<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">kW<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">50\u201355<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">5<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Overall Dimensions (L\u00d7W\u00d7H) \u2014 Working State<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">m<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">8.4 \u00d7 11 \u00d7 1.75<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">6<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Machine Weight<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">kg<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">1100<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">7<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Working Width<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">m<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">9<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">8<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Working Speed<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">km\/h<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">8\u201310<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">9<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Transport Speed<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">km\/h<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">12<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">10<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Number of Finger Wheels<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">pcs<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">15<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">11<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Number of Tines<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">pcs<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">900 (15 wheels \u00d7 60 tines\/wheel)<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">12<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Operator(s)<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">person<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">1<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">13<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Windrow Width<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">m<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">0.8\u20131.2 (Adjustable)<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">14<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Raking Loss Rate<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">\/<\/td>\n<td style=\"background-color: #f4ead5; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">\u22642%<\/td>\n<\/tr>\n<tr>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">15<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; color: #1a202c; font-weight: 600;\">Productivity<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">ha\/h<\/td>\n<td style=\"background-color: #fdfaf3; border: 1px solid #2d3748; padding: 14px 16px; text-align: center; color: #1a202c; font-weight: 600;\">7.2\u20139<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<\/div>\n<div style=\"background-color: #e2f1f8; border-left: 6px solid #0277bd; padding: 20px; margin: 20px 0 30px 0; border-radius: 0 8px 8px 0;\"><strong style=\"color: #01579b; display: block; margin-bottom: 8px; font-size: 1.15em;\">Specification Highlights<\/strong><br \/>\n<span style=\"font-size: 1.05em; color: #4a5568;\">The 9LZY-9.0&#8217;s 9m working width combined with 8\u201310 km\/h working speed delivers 7.2\u20139 ha\/h \u2014 sufficient to rake the daily output of two 3.2m mower conditioners operating simultaneously. The 1100 kg machine weight provides structural stability at 12 km\/h transport speed without imposing excessive drawbar load on 50\u201355 kW tractors. The \u22642% raking loss rate specification directly protects the dry matter yield and nutritional quality of every hectare raked.<\/span><\/div>\n<\/div>\n<p><!-- Section 4: Core Advantages --><\/p>\n<div style=\"margin-bottom: 50px;\">\n<h2 style=\"color: #d32f2f; font-size: 1.9em; border-bottom: 3px solid #d32f2f; padding-bottom: 10px; margin-top: 40px; margin-bottom: 25px; font-weight: bold;\">4. Five Core Advantages<\/h2>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Advantage 1: 9m Working Width for Industry-Leading Hectarage Rate<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">At 9m working width and 8\u201310 km\/h working speed, the 9LZY-9.0 delivers 7.2\u20139 ha\/h \u2014 productivity that matches or exceeds wide-swath mowing operations and ensures the raking pass never creates a bottleneck in the hay production sequence. For operations running multiple mower conditioners simultaneously, this throughput rate means one 9LZY-9.0 and tractor combination can service the output of two 3.2m mower conditioners without losing ground. The wide working width also reduces the number of field passes required per hectare compared to narrower rakes, compressing the time window between last mowing pass and baling start \u2014 directly reducing weather exposure risk for the already-cut crop waiting in swath.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Advantage 2: \u22642% Raking Loss \u2014 Protecting Nutritional Value and Dry Matter Yield<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The \u22642% raking loss rate specification is the 9LZY-9.0&#8217;s most commercially significant performance guarantee. In commercial hay production, raking loss is not simply a quantity loss \u2014 it is a quality loss concentrated in the leaf fraction. Leaves are the lightest and most fragile component of cut forage; they also contain 60\u201380% of the plant&#8217;s crude protein and a disproportionate share of digestible energy. Aggressive rakes that shatter and scatter leaf material produce windrows that weigh the same as the unraked swath but with significantly lower nutritional content per tonne \u2014 a quality degradation that is invisible in the field but measurable in the feed analysis that determines market price and livestock performance. The finger-wheel ground-drive mechanism maintains gentle tine action at all working speeds, consistently achieving \u22642% total dry matter loss across the speed range without the leaf-fraction bias of powered rakes.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Advantage 3: No PTO Drive Required \u2014 Reduced Power Demand and Mechanical Simplicity<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The ground-drive finger-wheel mechanism requires no PTO power input \u2014 all wheel rotation energy comes from tine-crop engagement as the implement advances. This eliminates the PTO driveshaft, intermediate gearbox, and power distribution system that powered rake designs require, removing the mechanical complexity that is the primary source of in-field breakdowns for this implement type. The 50\u201355 kW power requirement reflects only the drawbar load of pulling the 1100 kg implement at working speed, not the additional power demand of driving a conditioning rotor \u2014 making the 9LZY-9.0 accessible to mid-range tractors that could not run a comparably wide powered rake within their power budget. With no PTO components to inspect, lubricate, or replace, the daily maintenance routine reduces to tine condition inspection and wheel bearing greasing \u2014 achievable in under 10 minutes.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Advantage 4: 0.8\u20131.2m Adjustable Windrow Width for Baler Compatibility<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The 0.8\u20131.2m windrow width adjustment range covers the pickup width range of round balers from compact models in the 9YG-1.0 class up to mid-size commercial machines. Setting the windrow width to closely match the baler&#8217;s pickup width maximises baling efficiency \u2014 the baler pickup lifts the full windrow in a single pass without leaving material at the windrow margins that would require a second pickup pass or remain as field loss. A windrow that is too wide for the baler&#8217;s pickup causes overflow and incomplete collection; too narrow causes underfill that extends the bale cycle time and reduces throughput. The 9LZY-9.0&#8217;s field-adjustable windrow width allows fine-tuning to match the specific baler being used \u2014 a flexibility that matters when the same rake services multiple baler models across different operations.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Advantage 5: Single-Operator Trailed Design with 12 km\/h Transport Speed<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The 9LZY-9.0&#8217;s trailed hitching configuration and 12 km\/h rated transport speed allow rapid field-to-field movement between the mowing and baling operations that the rake must service in a full harvest day. A single operator manages the complete raking operation from the tractor cab, including transport between fields, windrow width adjustment, and tine height setting \u2014 without additional field personnel requirements. The 1100 kg machine weight and trailed hitch geometry maintain stable straight-line transport at 12 km\/h on farm tracks and public roads, reducing travel time between field sections that can otherwise consume a significant fraction of the working day on dispersed farm layouts.<\/p>\n<\/div>\n<p><!-- Section 5: Application Scenarios --><\/p>\n<div style=\"margin-bottom: 50px;\">\n<h2 style=\"color: #d32f2f; font-size: 1.9em; border-bottom: 3px solid #d32f2f; padding-bottom: 10px; margin-top: 40px; margin-bottom: 25px; font-weight: bold;\">5. Field Application Scenarios<\/h2>\n<p><img decoding=\"async\" style=\"width: 100%; max-width: 900px; height: auto; display: block; margin: 40px auto; border-radius: 8px; box-shadow: 0 8px 20px rgba(0,0,0,0.12);\" src=\"https:\/\/forage-balers.com\/wp-content\/uploads\/2026\/07\/Application-scenarios-of-cutting-and-rigging.webp\" alt=\"9LZY-9.0 Finger-Wheel Rake application scenarios showing commercial alfalfa windrow formation dairy farm hay raking grassland management and multi-mower harvest system coordination\" \/><\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Commercial Alfalfa and High-Protein Legume Hay Production<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">Alfalfa and other legume hays are the highest-value forage crops in commercial hay markets, with prices reflecting crude protein content that depends almost entirely on leaf retention through the cutting-raking-baling cycle. Operations producing export-grade alfalfa for dairy markets \u2014 where buyers specify minimum crude protein levels of 18\u201322% \u2014 cannot afford the leaf loss that aggressive raking causes. The 9LZY-9.0&#8217;s \u22642% loss rate and gentle finger-wheel mechanism specifically preserve the delicate alfalfa leaf while still consolidating wide mower conditioner swaths into compact windrows that match baler pickup widths. The 9m working width allows raking to keep pace with high-cut-rate mowing systems, preventing the scenario where cut alfalfa waits in wide swath through an additional drying period while the rake catches up \u2014 a delay that causes over-drying and leaf shatter even before the rake arrives.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Dairy and Livestock Farm Hay Supply Operations<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">Farm-scale hay operations typically follow a tight three-implement sequence: mower conditioner, rake, baler. The 9LZY-9.0&#8217;s ability to keep pace with 3.2m+ mower conditioner output at 7.2\u20139 ha\/h means a single rake-and-tractor combination services the mowing output without creating a field bottleneck that extends the total harvest time per field. This matters because extending harvest time extends the period during which cut crop in the earliest swaths continues to cure past optimal baling moisture \u2014 the risk of inconsistent bale moisture across a field that leads to fermentation failures in wrapped silage or spoilage in dry hay storage. Consistent raking pace also improves baler operator efficiency by ensuring uniformly formed windrows arrive at the baler in consistent condition throughout the day rather than varying between freshly raked and over-cured.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Multi-Mower Coordinated Harvest Systems<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">Large commercial hay operations often deploy multiple mower conditioners simultaneously on the same field to maximise cutting rate during the available weather window. A single 9LZY-9.0 at 7.2\u20139 ha\/h can rake behind two 3.2m mower conditioners working in parallel, consolidating their parallel swaths into a single windrow pattern that the following baler can collect in a continuous circuit. This multi-mower coordination capability means the raking operation scales to match cutting intensity without requiring proportional rake fleet expansion \u2014 one additional rake investment services a significant increase in cutting capacity.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Grass Hay, Mixed Sward, and Natural Forage Raking<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">Permanent grassland, mixed grass-legume swards, and natural meadow hay operations involve diverse material types \u2014 fine-stemmed grasses, broad-leaf legumes, coarse mature seedheads \u2014 that respond differently to raking action. The finger-wheel mechanism&#8217;s inherent adaptability to varied material density means tine loading adjusts automatically as material density changes across the field, without operator intervention or speed adjustment. Fields that transition from dense grass areas to sparse patches to tall coarse-stemmed areas all receive consistent, gentle raking action that consolidates the windrow without the tine bounce and material scattering that occurs when a fixed-speed powered rake moves through variable-density crop.<\/p>\n<\/div>\n<p><!-- Section 6: Integration with the Complete Hay Harvest System --><\/p>\n<div style=\"margin-bottom: 50px;\">\n<h2 style=\"color: #d32f2f; font-size: 1.9em; border-bottom: 3px solid #d32f2f; padding-bottom: 10px; margin-top: 40px; margin-bottom: 25px; font-weight: bold;\">6. Integration with a Complete Hay Harvest System<\/h2>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The 9LZY-9.0 is designed as one element in an integrated three-implement hay harvest system. Understanding how the rake specification connects to the mowing and baling stages helps operators optimise the full system performance rather than optimising each implement in isolation.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Pairing with Mower Conditioners<\/h3>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The 9LZY-9.0&#8217;s 7.2\u20139 ha\/h productivity capacity at 9m working width matches the output of two 3.2m mower conditioners such as the 9GQY-3.2 operating simultaneously at 10 km\/h. The mower conditioner&#8217;s swath width output (set to 1.5\u20132.2m per pass) and the rake&#8217;s windrow width setting (0.8\u20131.2m) should be coordinated so the rake is consolidating swaths to a width that matches the specific baler being used. A common system design: two 9GQY-3.2 mowers creating 2m swaths, one 9LZY-9.0 raking those swaths into 1.0\u20131.1m windrows, followed by a round baler with 1.9\u20132.2m pickup working the finished windrows. This three-implement system completes the full cut-rake-bale cycle within the weather window that determines hay quality.<\/p>\n<h3 style=\"color: #2c3e50; font-size: 1.5em; margin-top: 30px; margin-bottom: 15px; font-weight: 600;\">Windrow Width Setting for Common Baler Models<\/h3>\n<div style=\"margin-left: 0; margin-top: 10px; margin-bottom: 20px;\">\n<div style=\"margin-bottom: 10px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>9YG-1.0 class balers (1900mm pickup):<\/strong> Set windrow width to 1.0\u20131.1m \u2014 slightly narrower than pickup width to prevent overflow at windrow edges.<\/div>\n<\/div>\n<div style=\"margin-bottom: 10px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>9YG-1.25 \/ 9YG-1.25A class balers (2150\u20132240mm pickup):<\/strong> Set windrow width to 1.1\u20131.2m \u2014 allows the wider pickup to collect the full windrow cleanly in one pass.<\/div>\n<\/div>\n<div style=\"margin-bottom: 10px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>S9000 series balers (2240mm pickup):<\/strong> Maximum 1.2m windrow width, concentrated to the baler&#8217;s centreline for clean single-pass collection at 40\u2013100 bales\/h throughput.<\/div>\n<\/div>\n<div style=\"margin-bottom: 0; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div>For baler model selection and windrow configuration advice specific to your operation, <a style=\"color: #d32f2f; text-decoration: none; font-weight: bold; border-bottom: 1px dotted #d32f2f;\" href=\"https:\/\/forage-balers.com\/ar\/contact-us\/\">contact our technical team<\/a>.<\/div>\n<\/div>\n<\/div>\n<\/div>\n<p><!-- Section 7: PTO Shaft Note --><\/p>\n<div style=\"margin-bottom: 50px;\">\n<h2 style=\"color: #d32f2f; font-size: 1.9em; border-bottom: 3px solid #d32f2f; padding-bottom: 10px; margin-top: 40px; margin-bottom: 25px; font-weight: bold;\">7. Related Product: PTO Shaft for Tractor-Implement Connections<\/h2>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The 9LZY-9.0 itself does not use a PTO drive \u2014 its finger wheels are ground-driven by tine-crop engagement. However, when the 9LZY-9.0 operates as part of an integrated hay harvest system alongside a mower conditioner such as the 9GQY-3.2, the mower conditioner requires a correctly specified <a style=\"color: #d32f2f; text-decoration: none; font-weight: bold; border-bottom: 1px dotted #d32f2f;\" href=\"https:\/\/tractor-pto-shaft.net\/product\/replacement-pto-shaft-for-new-holland-big-baler\/\" target=\"_blank\" rel=\"noopener noreferrer\">pto shaft<\/a> for its disc cutterbar and conditioning rotor drive. Similarly, round balers following the rake require a PTO driveshaft matched to their power input specification. For a complete and efficient hay harvest system, ensuring every powered implement in the chain is connected with a properly rated, dynamically balanced, and guarded driveshaft is as important as specifying the implements themselves.<\/p>\n<p><img decoding=\"async\" style=\"width: 100%; max-width: 900px; height: auto; display: block; margin: 40px auto; border-radius: 8px; box-shadow: 0 8px 20px rgba(0,0,0,0.12);\" src=\"https:\/\/forage-balers.com\/wp-content\/uploads\/2026\/07\/pto-shaft-collection.webp\" alt=\"PTO shaft collection for hay harvest system including mower conditioner and round baler connections showing universal joint safety guard telescoping spline and alloy steel coupling options\" \/><\/p>\n<div style=\"margin-left: 0; margin-top: 10px;\">\n<div style=\"margin-bottom: 12px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>Mower conditioner PTO shaft:<\/strong> Must be rated for \u226580.88 kW (110 HP) at 540\u20131000 r\/min with 1.5mm reinforced guard for high-speed operation.<\/div>\n<\/div>\n<div style=\"margin-bottom: 12px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>Round baler PTO shaft:<\/strong> Rated for the specific baler&#8217;s power input at 540\u20131000 r\/min depending on model; friction clutch or shear-bolt overload protection for chamber obstruction events.<\/div>\n<\/div>\n<div style=\"margin-bottom: 12px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>Spline compatibility:<\/strong> Verify 6-spline or 21-spline interface on all powered implements matches the respective tractor&#8217;s PTO output specification before coupling.<\/div>\n<\/div>\n<div style=\"margin-bottom: 0; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>Safety absolute:<\/strong> All PTO driveshafts on all powered implements must be fully guarded at all times during operation. Inspect every guard before each operating shift without exception.<\/div>\n<\/div>\n<\/div>\n<\/div>\n<p><!-- Section 8: Manufacturing Quality --><\/p>\n<div style=\"margin-bottom: 50px;\">\n<h2 style=\"color: #d32f2f; font-size: 1.9em; border-bottom: 3px solid #d32f2f; padding-bottom: 10px; margin-top: 40px; margin-bottom: 25px; font-weight: bold;\">8. Manufacturing Quality and Long-Term Reliability<\/h2>\n<p><img decoding=\"async\" style=\"width: 100%; max-width: 900px; height: auto; display: block; margin: 40px auto; border-radius: 8px; box-shadow: 0 8px 20px rgba(0,0,0,0.12);\" src=\"https:\/\/forage-balers.com\/wp-content\/uploads\/2026\/07\/Factory-real-scene2-1.webp\" alt=\"Modern agricultural machinery manufacturing facility producing 9LZY-9.0 finger-wheel rakes with precision frame fabrication ISO quality management and structured tine assembly for commercial hay raking equipment\" \/><\/p>\n<p style=\"font-size: 1.15em; color: #4a5568; margin-bottom: 20px; text-align: justify;\">The 9LZY-9.0&#8217;s 9m working width places high demands on frame rigidity: the implement must maintain consistent tine-to-ground clearance across the full width on uneven terrain without the frame flex that causes outer-wheel ground contact loss on one side of a cross-slope. The main frame, fold joints, and wheel-arm mounting points are fabricated to dimensional tolerances that maintain alignment through the vibration and terrain loading of commercial-intensity raking operation.<\/p>\n<div style=\"margin-left: 0; margin-top: 10px;\">\n<div style=\"margin-bottom: 12px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>High-tensile spring steel tines:<\/strong> All 900 tines are manufactured from high-tensile spring steel with appropriate heat treatment to maintain spring rate through repeated deflection cycles in commercial raking use. Worn or bent tines are field-replaceable without workshop involvement.<\/div>\n<\/div>\n<div style=\"margin-bottom: 12px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>Individual wheel suspension:<\/strong> Each finger wheel is mounted on an independent spring-loaded arm that absorbs individual terrain variation without transmitting the disturbance to adjacent wheels \u2014 maintaining consistent ground contact across uneven field surfaces.<\/div>\n<\/div>\n<div style=\"margin-bottom: 12px; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>ISO 9001 quality management:<\/strong> Production under international quality management certification ensures consistent dimensional control across manufacturing batches for both structural components and tine assemblies.<\/div>\n<\/div>\n<div style=\"margin-bottom: 0; font-size: 1.1em; color: #4a5568; display: flex; align-items: flex-start;\"><span style=\"color: #d32f2f; font-weight: bold; font-size: 18px; margin-right: 15px; flex-shrink: 0;\">\u2714<\/span><\/p>\n<div><strong>Corrosion protection:<\/strong> Frame and wheel-arm surfaces receive multi-layer surface treatment appropriate for sustained outdoor and field-moisture exposure across multiple operating seasons.<\/div>\n<\/div>\n<\/div>\n<\/div>\n<p><!-- Section 9: FAQ --><\/p>\n<div style=\"margin-bottom: 50px; background-color: #f8fafc; padding: 40px; border-radius: 12px; border: 1px solid #e2e8f0;\">\n<h2 style=\"color: #1a365d; font-size: 1.9em; margin-top: 0; margin-bottom: 30px; font-weight: bold; text-align: center;\">9. Frequently Asked Questions (FAQ)<\/h2>\n<div style=\"margin-bottom: 30px;\"><strong style=\"color: #d32f2f; font-size: 1.2em; display: block; margin-bottom: 8px;\">Q1: Why does the 9LZY-9.0 not require a PTO drive?<\/strong><\/p>\n<p style=\"color: #4a5568; font-size: 1.1em; margin-top: 0; text-align: justify;\">The finger-wheel mechanism is ground-driven: the tines contact the crop material and the resulting drag friction rotates each wheel as the implement advances. No external power input is required because the energy for crop movement comes from the forward travel of the implement rather than a driven rotor. This design is possible because finger-wheel rakes move crop laterally with gentle progressive tine sweeps rather than the high-energy impact mechanisms that powered tedders and powered rakes use to lift and scatter material. The result is lower mechanical complexity, reduced power demand, and \u2014 critically \u2014 gentler crop handling that preserves the leaf fraction responsible for hay nutritional quality.<\/p>\n<\/div>\n<div style=\"margin-bottom: 30px;\"><strong style=\"color: #d32f2f; font-size: 1.2em; display: block; margin-bottom: 8px;\">Q2: How does the 9m working width fold for transport?<\/strong><\/p>\n<p style=\"color: #4a5568; font-size: 1.1em; margin-top: 0; text-align: justify;\">The outer wheel sections fold hydraulically (or mechanically, depending on configuration) from the 9m working position to a transport configuration that reduces the road transport width to within legal limits for farm track and public road travel. The transport speed rating of 12 km\/h applies only in the folded transport configuration. Always confirm the implement is fully folded and all transport locks engaged before moving on public roads. The working-state overall dimensions of 8.4 \u00d7 11 \u00d7 1.75m apply to field operation; confirm the folded transport dimensions match your specific route requirements before moving between remote field locations.<\/p>\n<\/div>\n<div style=\"margin-bottom: 30px;\"><strong style=\"color: #d32f2f; font-size: 1.2em; display: block; margin-bottom: 8px;\">Q3: What windrow width setting should I use for my specific baler?<\/strong><\/p>\n<p style=\"color: #4a5568; font-size: 1.1em; margin-top: 0; text-align: justify;\">Set windrow width 10\u201315% narrower than your baler&#8217;s rated pickup width as a starting point. For a baler with 1900mm (1.9m) pickup, try 1.1\u20131.2m windrow width; for 2150\u20132240mm pickup balers, 1.1\u20131.2m windrow width concentrates material cleanly within the pickup span. Observe the first several bales: if the pickup is missing material at the windrow edges, narrow the windrow slightly; if the baler is frequently stopping or surging on heavy windrow sections, the windrow may be too heavy per unit length and working speed should be reduced. Fine-tuning the windrow width for each baler and crop combination improves baling throughput and bale density consistency.<\/p>\n<\/div>\n<div style=\"margin-bottom: 30px;\"><strong style=\"color: #d32f2f; font-size: 1.2em; display: block; margin-bottom: 8px;\">Q4: How do I minimise leaf loss when raking dry alfalfa?<\/strong><\/p>\n<p style=\"color: #4a5568; font-size: 1.1em; margin-top: 0; text-align: justify;\">Four practices minimise alfalfa leaf loss during raking: (1) Rake when crop moisture is above 35\u201340% \u2014 at lower moisture, leaves are extremely fragile and any tine contact causes shattering; if the crop has over-dried, raking at dawn when overnight humidity has slightly re-moistened the leaf surface reduces loss significantly. (2) Operate at the lower end of the 8\u201310 km\/h speed range \u2014 slower tine tip speed means less impact force on leaf junctions. (3) Set tine height to just clear the ground surface \u2014 excessive ground clearance misses material; excessive soil contact scatters gathered material backward. (4) Avoid raking in conditions above 20 km\/h wind \u2014 lateral wind deflects scattered leaf material away from the forming windrow.<\/p>\n<\/div>\n<div style=\"margin-bottom: 30px;\"><strong style=\"color: #d32f2f; font-size: 1.2em; display: block; margin-bottom: 8px;\">Q5: What is the maintenance schedule for the 9LZY-9.0?<\/strong><\/p>\n<p style=\"color: #4a5568; font-size: 1.1em; margin-top: 0; text-align: justify;\">Daily: inspect all 900 tines for bending, breakage, or loosening; a bent tine contacts adjacent tines during rotation and causes progressive secondary damage. Check that all 15 wheel arms move freely on their pivot points. Remove any crop material wrapped around wheel hubs or spindles. Every 50 hours: grease all wheel hub bearings and fold joint pivot bearings through the marked grease nipples. Inspect fold joint locking mechanism for wear. At season end: wash off all crop residue and soil from the frame and wheel assemblies; apply corrosion protection to bare metal surfaces; store in a covered, dry location with wheel arms in the folded position to reduce wind load on the tine assemblies.<\/p>\n<\/div>\n<div style=\"margin-bottom: 30px;\"><strong style=\"color: #d32f2f; font-size: 1.2em; display: block; margin-bottom: 8px;\">Q6: Can the 9LZY-9.0 be used for tedding as well as raking?<\/strong><\/p>\n<p style=\"color: #4a5568; font-size: 1.1em; margin-top: 0; text-align: justify;\">No \u2014 the 9LZY-9.0 is a raking machine designed to consolidate wide swaths into narrower windrows, not a tedder designed to spread windrows into wider, thinner swaths for drying. The wheel angle settings that produce the 0.8\u20131.2m windrow width are configured for lateral gathering movement. Tedding requires the opposite action \u2014 spreading material outward from the windrow \u2014 which requires a different wheel angle geometry and, typically, a powered rotor that throws material rather than sweeping it. If tedding is required in your operation, a separate tedder implement is needed; the 9LZY-9.0 should only be applied after tedding is complete and the crop has reached target raking moisture.<\/p>\n<\/div>\n<div style=\"margin-bottom: 30px;\"><strong style=\"color: #d32f2f; font-size: 1.2em; display: block; margin-bottom: 8px;\">Q7: What tractor hydraulic connections does the 9LZY-9.0 require?<\/strong><\/p>\n<p style=\"color: #4a5568; font-size: 1.1em; margin-top: 0; text-align: justify;\">The 9LZY-9.0 requires at least one tractor hydraulic remote valve for implement lift control (raising the finger wheels for headland turns and transport). If the fold function is hydraulically operated (confirm in the product specification for your specific unit), a second hydraulic remote valve is required for folding and unfolding. The hydraulic demand is low \u2014 only occasional actuation for lift and fold rather than continuous flow \u2014 so the 50\u201355 kW tractors specified for this implement typically provide adequate hydraulic capacity from their standard remote valve system.<\/p>\n<\/div>\n<div style=\"margin-bottom: 0;\"><strong style=\"color: #d32f2f; font-size: 1.2em; display: block; margin-bottom: 8px;\">Q8: How does the 9LZY-9.0 compare to a powered rotary rake of similar working width?<\/strong><\/p>\n<p style=\"color: #4a5568; font-size: 1.1em; margin-top: 0; text-align: justify;\">Powered rotary rakes of 9m working width require 75\u2013100+ kW tractors to drive the rotor, versus 50\u201355 kW for the ground-driven 9LZY-9.0 \u2014 a significant tractor cost and fuel economy advantage. Powered rakes offer higher speed capability (some rated to 12\u201315 km\/h) and can be used for tedding as well as raking. For operations where leaf retention is the primary quality priority \u2014 particularly alfalfa and high-protein legume hay \u2014 the finger-wheel mechanism&#8217;s \u22642% loss rate consistently outperforms powered rotary rakes at equivalent working speeds. For operations processing primarily grass hay where leaf loss is less critical and maximum raking speed is the priority, powered rakes may be preferred despite their higher power requirement and operating cost. <a style=\"color: #d32f2f; text-decoration: none; font-weight: bold; border-bottom: 1px dotted #d32f2f;\" href=\"https:\/\/forage-balers.com\/ar\/contact-us\/\">Contact our team<\/a> for a system recommendation matched to your specific crop mix and operation scale.<\/p>\n<\/div>\n<\/div>\n<p><!-- Footer CTA --><\/p>\n<div style=\"background: linear-gradient(135deg, #1a365d 0%, #0277bd 100%); color: #ffffff; padding: 50px 20px; text-align: center; border-radius: 12px; margin-top: 60px; box-shadow: 0 10px 30px rgba(0,0,0,0.15);\">\n<h3 style=\"color: #ffffff; font-size: 2em; margin-top: 0; margin-bottom: 20px; font-weight: 800;\">Rake 9 Metres Wide, Lose Less Than 2% \u2014 The Low-Loss High-Throughput Windrow Solution<\/h3>\n<p style=\"font-size: 1.25em; max-width: 850px; margin: 0 auto 35px auto; line-height: 1.6; color: #e2e8f0;\">The 9LZY-9.0 Finger-Wheel Rake delivers 7.2\u20139 ha\/h across a 9m working width with 900 ground-driven tines \u2014 gentle enough for \u22642% leaf loss on premium alfalfa, fast enough to match multi-mower cutting systems, and economical enough for 50\u201355 kW tractors. Request your quote today.<\/p>\n<div style=\"display: flex; justify-content: center; flex-wrap: wrap; gap: 20px;\"><a style=\"display: inline-block; background-color: #f1c40f; color: #1a365d; padding: 16px 40px; text-decoration: none; font-size: 1.15em; font-weight: bold; border-radius: 6px; box-shadow: 0 4px 6px rgba(0,0,0,0.1);\" href=\"https:\/\/forage-balers.com\/ar\/\">Explore All Forage Equipment<\/a><br \/>\n<a style=\"display: inline-block; background-color: #d32f2f; color: #ffffff; padding: 16px 40px; text-decoration: none; font-size: 1.15em; font-weight: bold; border-radius: 6px; box-shadow: 0 4px 6px rgba(0,0,0,0.1);\" href=\"https:\/\/forage-balers.com\/ar\/contact-us\/\">Request a Quote<\/a><\/div>\n<\/div>\n<\/div>","protected":false},"excerpt":{"rendered":"<p>9LZY-9.0 Finger-Wheel Rake \u2014 9m working width, 15 wheels, 900 tines, \u22642% loss rate, 7.2\u20139 ha\/h. Adjustable 0.8\u20131.2m windrow. No PTO. Suits 50\u201355kW tractors.<\/p>","protected":false},"featured_media":564,"comment_status":"open","ping_status":"closed","template":"","meta":{"_et_pb_use_builder":"","_et_pb_old_content":"","_et_gb_content_width":""},"product_brand":[],"product_cat":[33],"product_tag":[],"class_list":["post-563","product","type-product","status-publish","has-post-thumbnail","product_cat-hay-rake","first","instock","shipping-taxable","product-type-simple"],"_links":{"self":[{"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/product\/563","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/product"}],"about":[{"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/types\/product"}],"replies":[{"embeddable":true,"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/comments?post=563"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/media\/564"}],"wp:attachment":[{"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/media?parent=563"}],"wp:term":[{"taxonomy":"product_brand","embeddable":true,"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/product_brand?post=563"},{"taxonomy":"product_cat","embeddable":true,"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/product_cat?post=563"},{"taxonomy":"product_tag","embeddable":true,"href":"https:\/\/forage-balers.com\/ar\/wp-json\/wp\/v2\/product_tag?post=563"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}