{"id":12752,"date":"2026-09-12T17:05:08","date_gmt":"2026-09-12T17:05:08","guid":{"rendered":"https:\/\/www.raxpower.com\/?p=12752"},"modified":"2026-09-20T15:07:26","modified_gmt":"2026-09-20T15:07:26","slug":"was-ist-ein-stabbugelisolator-erklarvideo","status":"publish","type":"post","link":"https:\/\/www.raxpower.com\/de\/blog\/what-is-a-pin-insulator-explainer\/","title":{"rendered":"Was ist ein Stiftisolator? Definition und Aufbau"},"content":{"rendered":"<p style=\"line-height: 1.8; margin-bottom: 28px;\">Our order desk still receives inquiries that say \"<a href=\"https:\/\/www.raxpower.com\/blog\/pin-insulator-advantages-practical-guide\">pin insulator<\/a>\" on the drawing and \"spindle insulator\" in the same notes. One product carries two names, and rarely a short definition. Buyers from distribution utilities and buyers from railway or telecom backgrounds often mean the same hardware while describing it in different words.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">This article settles the term once. It defines the term and walks through each part of its anatomy: the body, the sheds, the groove, and the threaded seat. It then explains the steel pin beneath the body and marks the voltage range where this design is the right answer.<\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">What the Name Pin Insulator Actually Means<\/h2>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">A pin insulator is the <a href=\"https:\/\/www.raxpower.com\/blog\/pin-insulator-evolution-materials-cost\">porcelain<\/a>, glass, or <a href=\"https:\/\/www.raxpower.com\/blog\/polymer-vs-glass-insulator-comparison\">polymer<\/a> body that screws onto a separate steel pin to carry a single conductor on an overhead line. The American National Standard test-methods document ANSI C29.1 captures the mechanical idea in one clause, calling it \"an insulator having means for rigid mounting on a separable pin\". Every other feature of the design flows from that arrangement: a rigid insulating body, a separable metal pin, and a structure to hold both.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">In field vocabulary the word can refer to three different things. It may mean the insulating body alone, the steel pin alone, or the pair assembled together. Suppliers catalog the steel fitting as an \"insulator pin\" or \"crossarm pin\", so a specification saying \"pin insulator\" almost always means the body. TTF Power's technical overview describes the assembled role plainly, defining it as \"a type of electrical insulator used in overhead power line construction to support and separate conductors\".<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">One boundary matters before anything else. The assembly supports one conductor at one phase position. It is not a strain assembly. The conductor stays supported in near-vertical loading, and any line angle or dead-end force beyond a few degrees moves the design toward suspension or strain hardware.<\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">Anatomy of a Pin Insulator, Part by Part<\/h2>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">Picture the body turned upside down on a bench, the way a storeroom keeper receives it. From top to bottom you find the same four features on nearly every design. There is a conductor groove, one or more weather sheds, a side groove on tie-top variants, and a threaded or cemented seat that grips the steel pin.<\/p>\n<figure style=\"margin: 0 0 28px;\"><img decoding=\"async\" src=\"https:\/\/www.raxpower.com\/wp-content\/uploads\/Pin-Type-Porcelain-Insulator-3.jpg\" alt=\"Two-shed porcelain pin insulator screwed onto a galvanized steel pin\" style=\"width: 100%; height: auto; border-radius: 8px; object-fit: cover;\" loading=\"lazy\"><figcaption style=\"font-size: 14px; font-style: italic; color: #666; margin-top: 10px; text-align: center; line-height: 1.5;\">Two-shed porcelain body seated on its galvanized steel pin<\/figcaption><\/figure>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The <strong>top groove<\/strong> is the saddle where the conductor rests. The <strong>sheds<\/strong>, also called skirts or petticoats, are the umbrella-shaped flanges that extend the leakage path down the outside of the body. SUNJ Electric's overview puts their function in one line, noting that these bodies \"are made with several skirts to increase surface area and creepage length\". More sheds mean a longer leakage path and steadier behavior in rain and pollution.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The <strong>threaded seat<\/strong> inside the skirt is where the separable pin enters. On porcelain bodies this cavity is usually cemented to a galvanized steel thimble that carries a standardized lead thread. The body therefore never threads directly against bare steel. The way you thread a mason's anchor into a wall plug is a fair analogy. The soft, standardized interface takes the wear so the strong parts behind it do not.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">History explains why porcelain took the lead. Wet-process ceramic bodies were the <a href=\"https:\/\/www.raxpower.com\/blog\/insulator-evolution-timeline\">first mass-produced insulation for overhead lines<\/a>, and the manufacturing route is well understood on every continent. Kaolin, quartz, and feldspar fire into a dense, glazed shell that ignores sunlight, resists surface tracking, and holds its threads for decades. Glass followed as a rival body material, and polymer arrived last with a weight and vandalism story of its own.<\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">The Steel Pin That Does the Real Holding<\/h2>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The insulator body gets the name on the drawing, but the steel pin under it carries the working load. TTF Power notes the assembly \"mounts directly on a pole using a metal pin\". In practice that pin is a hot-dip galvanized steel or malleable iron fitting with three defining features.<\/p>\n<figure style=\"margin: 0 0 28px;\"><img decoding=\"async\" src=\"https:\/\/www.raxpower.com\/wp-content\/uploads\/Crossarm-Pin.jpg\" alt=\"Galvanized steel crossarm insulator pin with lead thread head and square shank\" style=\"width: 100%; height: auto; border-radius: 8px; object-fit: cover;\" loading=\"lazy\"><figcaption style=\"font-size: 14px; font-style: italic; color: #666; margin-top: 10px; text-align: center; line-height: 1.5;\">Galvanized crossarm insulator pin with lead thread head and square shank<\/figcaption><\/figure>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The first feature is a lead-thread head that the insulator screws onto. The second is a shoulder that seats the body at the correct working angle. The third is a square or tapered shank that bolts into the cross-arm.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">This division of labor explains the whole concept. The porcelain or polymer body handles the electrical duty, standing the line voltage off from the grounded arm. The steel pin handles the mechanical duty of conductor weight, wind, and ice, and passes those loads into the cross-arm. Because the two parts separate, a cracked body can be replaced without changing the pin, and a bent pin can be swapped without touching a sound insulator.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The pin itself is a small catalog of variants once you look closer. Shank lengths differ so the body clears the arm flange by the right distance. Square shanks grip round bolt holes on wood arms, while tapered fittings seat into ironwork. Some heads take a solid cemented body, others carry a replaceable thimble thread. None of this shows in the product name, which is why the drawing and the packing list both need a second look before an order is placed.<\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">How the Conductor Sits on the Top Groove<\/h2>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The conductor is not bolted to the body; it is tied. TTF Power describes the standard practice, in which the conductor \"clamps onto the top groove of the insulator\" and is secured with binding wire. A soft aluminum or copper tie wire wraps the conductor into the groove in practiced patterns. Linemen speak of \"top ties\", \"side ties\", and \"tie-top\" designs as a small discipline of their own.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The tie is a deliberate wear part. It flexes with conductor wind motion for decades, so utilities inspect ties on regular patrol rounds instead of waiting for a failure. Reading tie-wire wear, neck checks, and the meaning of a leaning unit are maintenance topics. We treat them separately in the support hardware upkeep guide. The anatomy point here is simpler: the groove-and-tie interface is a designed friction joint, not an afterthought.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">Tie patterns deserve a line of respect as well. A top tie locks the conductor against uplift on open spans, while a side tie holds it against a direction the wind favors. The patterns are simple once learned but unforgiving when improvised. Most utilities limit crews to two or three standard wraps across the network, so any lineman can read any pole.<\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">Porcelain, Glass and Polymer Body Materials<\/h2>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">Three body materials cover nearly every unit sold today. Each one changes the maintenance story more than the electrical story. The table below lines them up against the features a buyer actually weighs.<\/p>\n<table style=\"display: block; width: 100%; overflow-x: auto; -webkit-overflow-scrolling: touch; border-collapse: collapse; margin-bottom: 28px; border: 1px solid #e0e0e0; font-family: inherit;\">\n<thead>\n<tr>\n<th style=\"padding: 12px; border: 1px solid #e0e0e0; text-align: left; background: #f6f8fa;\">Body material<\/th>\n<th style=\"padding: 12px; border: 1px solid #e0e0e0; text-align: left; background: #f6f8fa;\">What it is made of<\/th>\n<th style=\"padding: 12px; border: 1px solid #e0e0e0; text-align: left; background: #f6f8fa;\">Field character<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Wet-process porcelain<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Kaolin, quartz, and feldspar, glazed after firing<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">The long-service default; rigid, heavy, unaffected by UV<\/td>\n<\/tr>\n<tr>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Toughened glass<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Annealed, heat-treated glass<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Damage shows visibly; shells shatter on failure instead of hiding it<\/td>\n<\/tr>\n<tr>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Polymer (composite)<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Silicone rubber housing over a fiberglass core<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Light to handle; hydrophobic surface sheds water in wet service<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">PGC's materials comparison highlights the glass advantage exactly as linemen use it, praising a transparency \"which facilitates easy inspection for internal damage\". For polymer, the same source describes a housing of \"silicone rubber molded over a fiberglass core\". It adds that composites \"excel in wet conditions thanks to their hydrophobic properties\". Porcelain remains the volume choice for distribution work because its glaze sheds water predictably and its rigidity suits the pin-and-groove arrangement.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">Material choice also sets the purchasing checklist. Porcelain bodies are audited through porosity and thermal-shock tests, polymer bodies through housing tracking and core tests. Each path has its own factory-QC sourcing tests. The polymer branch of the family sits close to the composite longrod covered in the complete <a href=\"https:\/\/www.raxpower.com\/blog\/polymer-insulator-extreme-weather-guide\">polymer insulator<\/a> guide, with the pin seat adapted for direct cross-arm mounting.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">Which body suits which buyer comes down to service priority. A utility stocking one spare for mixed feeders usually standardizes on porcelain for its predictable glaze behavior and long shelf life. A buyer in a high-vandalism corridor <a href=\"https:\/\/www.raxpower.com\/blog\/insulator-pin-vs-polymer-insulator-comparison\">often moves to polymer<\/a> because a lightweight composite unit has little scrap value and survives handling drops that would crack a shell. Glass suits owners who want failures to announce themselves: a shattered shell is visible from the ground on the next patrol.<\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">Why the Pin Design Rarely Goes Above 33 kV<\/h2>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">This design is a distribution-class workhorse, and <a href=\"https:\/\/www.raxpower.com\/blog\/pin-insulator-voltage-limit-explainer\">its voltage ceiling comes from geometry rather than materials<\/a>. The whole line-to-ground voltage stands across one body mounted on one rigid pin. Every voltage step upward demands a longer, wider body, and the cantilever load on the pin grows with it.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The traditional porcelain ladder runs in one-piece, two-piece, and three-piece builds. TTF Power's construction overview gives the classic bands. Single-piece designs serve systems up to 11 kV, two-piece designs handle up to 22 kV, and three-piece designs are ideal for 33 kV systems. Above that level the body grows heavy and costly enough that the pin arrangement loses to alternatives. MacLean Power Systems catalogs its pin-class polymeric units for \"distribution class applications at voltages below 35kV\", the same boundary stated as a product range.<\/p>\n<table style=\"display: block; width: 100%; overflow-x: auto; -webkit-overflow-scrolling: touch; border-collapse: collapse; margin-bottom: 28px; border: 1px solid #e0e0e0; font-family: inherit;\">\n<thead>\n<tr>\n<th style=\"padding: 12px; border: 1px solid #e0e0e0; text-align: left; background: #f6f8fa;\">Line voltage class<\/th>\n<th style=\"padding: 12px; border: 1px solid #e0e0e0; text-align: left; background: #f6f8fa;\">Typical build<\/th>\n<th style=\"padding: 12px; border: 1px solid #e0e0e0; text-align: left; background: #f6f8fa;\">Shed count, porcelain<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Low voltage \/ to 11 kV<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">One-piece body on a single pin<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">1\u20132 sheds<\/td>\n<\/tr>\n<tr>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">11\u201322 kV<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Two-piece body, cemented stack<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">2\u20133 sheds<\/td>\n<\/tr>\n<tr>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">22\u201333 kV<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Three-piece body, or polymer equivalent<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">3+ sheds<\/td>\n<\/tr>\n<tr>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Above 33 kV<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Suspension strings or line posts take over<\/td>\n<td style=\"padding: 12px; border: 1px solid #e0e0e0;\">Not economical as pin type<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<figure style=\"margin: 0 0 28px;\"><img decoding=\"async\" src=\"https:\/\/www.raxpower.com\/wp-content\/uploads\/alley-arm-urban-grid-guide-stock-crossarm.webp\" alt=\"Suspension insulator strings hanging from a steel crossarm between wood poles\" style=\"width: 100%; height: auto; border-radius: 8px; object-fit: cover;\" loading=\"lazy\"><figcaption style=\"font-size: 14px; font-style: italic; color: #666; margin-top: 10px; text-align: center; line-height: 1.5;\">Suspension insulator strings take over where the pin design runs out<\/figcaption><\/figure>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">Within the pin family's own range, the selection questions decide which unit fits. Creepage for pollution zones, cantilever strength, and thread style top that list. Those sizing questions are engineering-guide territory. They are covered line by line in the composite selection guide and the companion piece on choosing the right composite unit.<\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">Where a Pin Insulator Mounts on the Pole<\/h2>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">In service, <a href=\"https:\/\/www.raxpower.com\/blog\/pole-top-pin-application-guide\">position tells you the job<\/a>. The pin bolts vertically into a wood or steel cross-arm, the body screws onto the pin, and the tied conductor runs past the arm at its phase position. Distribution poles commonly carry two arms, so a single structure holds six phase positions, each on its own insulator.<\/p>\n<figure style=\"margin: 0 0 28px;\"><img decoding=\"async\" src=\"https:\/\/www.raxpower.com\/wp-content\/uploads\/triple-eye-linemen-pole-work-stock.jpg\" alt=\"Linemen working on the crossarm of a wood distribution pole\" style=\"width: 100%; height: auto; border-radius: 8px; object-fit: cover;\" loading=\"lazy\"><figcaption style=\"font-size: 14px; font-style: italic; color: #666; margin-top: 10px; text-align: center; line-height: 1.5;\">Linemen working at the cross-arm positions this design occupies<\/figcaption><\/figure>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The cross-arm mounting separates a pin insulator from its nearest neighbors. A cross-arm insulator is the broader category: any insulator standing at the arm position, including posts and spools. The arm-attachment mechanics are explained in the cross-arm insulator explainer. A pin insulator is one specific answer at that position, with a body plus separable pin and a tied conductor on top. A line post, by contrast, bolts directly to the arm without a separable pin and leans on its own cantilever strength instead.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">The mounting position also dictates the failure view. The body sits upright with the conductor tied above it. Flashover damage therefore marks the skirts from the tie wire downward, and mechanical failures show first as a lean. That lean is the visible symptom which sends crews back to check the pin, the seat, and the tie, in that order.<\/p>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">Clearances close the checklist. The tied conductor must keep its regulated distance from the arm, from the pole, and from neighboring phases through wind swing, and the body height is what buys that distance. Crews therefore treat the body as a dimensioned component, not a generic fitting. Any substitution goes back through the line drawings rather than being judged by eye at the pole.<\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">Sourcing a Pin Insulator That Fits Your Line<\/h2>\n<div class=\"cta-box\" style=\"display: flex; flex-wrap: wrap; align-items: center; justify-content: space-between; background-color: #2e72ab; border-radius: 8px; min-height: 210px; padding: 25px; margin-bottom: 28px; gap: 20px;\">\n<div style=\"flex: 1 1 320px; min-width: 260px;\">\n<p style=\"line-height: 1.8; margin-bottom: 16px; color: #ffffff; font-size: 17px; font-weight: bold;\">Defining the term is step one \u2014 matching the body, pin, and thread to your line voltage is step two.<\/p>\n<p><a href=\"https:\/\/www.raxpower.com\/overhead-line-insulator\/\" style=\"display: inline-block; background-color: #ffffff; color: #2e72ab; padding: 12px 28px; border-radius: 4px; text-decoration: none; font-weight: bold;\">Explore Overhead Line Insulators<\/a>\n<\/div>\n<div style=\"flex: 0 1 300px; min-width: 240px;\"><img decoding=\"async\" src=\"https:\/\/www.raxpower.com\/wp-content\/uploads\/Pin-Type-Porcelain-Insulator-4.jpg\" alt=\"Multi-shed porcelain pin insulator body\" style=\"width: 100%; height: auto; border-radius: 8px; object-fit: cover;\"><\/div>\n<\/div>\n<p style=\"line-height: 1.8; margin-bottom: 28px;\">Between definition and purchase sit the practical gates. These are factory compliance paperwork, mechanical and electrical test reports, and galvanizing verification on the pin side. Buyers who need a defensible incoming-quality process can start from the five factory QC sourcing tests run on these units before shipment. The anatomy above then folds directly into their own receiving checks.<\/p>\n<p><!-- raxgate:C1 --><\/p>\n<h2 style=\"margin-top: 50px; margin-bottom: 30px; font-size: 28px; font-weight: bold;\">Frequently Asked Questions<\/h2>\n<div class=\"faq-card\" style=\"margin-bottom: 20px; padding: 25px; background-color: #f9f9f9; border-left: 4px solid #2e72ab; border-radius: 4px;\">\n<p style=\"line-height: 1.8; margin-bottom: 12px;\"><strong>What is a pin insulator in simple terms?<\/strong><\/p>\n<p style=\"line-height: 1.8; margin-bottom: 0;\">An insulating body, usually porcelain or polymer, that screws onto a separate steel pin on the cross-arm and carries one tied conductor, generally on lines up to 33 kV.<\/p>\n<\/div>\n<div class=\"faq-card\" style=\"margin-bottom: 20px; padding: 25px; background-color: #f9f9f9; border-left: 4px solid #2e72ab; border-radius: 4px;\">\n<p style=\"line-height: 1.8; margin-bottom: 12px;\"><strong>What is the difference between the insulator and the pin?<\/strong><\/p>\n<p style=\"line-height: 1.8; margin-bottom: 0;\">The insulator is the porcelain, glass, or polymer body that handles the electrical duty. The pin, also called a spindle, is the galvanized steel fitting beneath it that carries the mechanical load into the cross-arm.<\/p>\n<\/div>\n<div class=\"faq-card\" style=\"margin-bottom: 20px; padding: 25px; background-color: #f9f9f9; border-left: 4px solid #2e72ab; border-radius: 4px;\">\n<p style=\"line-height: 1.8; margin-bottom: 12px;\"><strong>How is the conductor fixed to the insulator?<\/strong><\/p>\n<p style=\"line-height: 1.8; margin-bottom: 0;\">It rests in the top groove and is secured with binding wire tied in standard patterns. Top ties and side ties are chosen per line position, and the tie is treated as a renewable wear part.<\/p>\n<\/div>\n<div class=\"faq-card\" style=\"margin-bottom: 20px; padding: 25px; background-color: #f9f9f9; border-left: 4px solid #2e72ab; border-radius: 4px;\">\n<p style=\"line-height: 1.8; margin-bottom: 12px;\"><strong>Why are sheds added to the insulator body?<\/strong><\/p>\n<p style=\"line-height: 1.8; margin-bottom: 0;\">Sheds extend the leakage path along the outside surface, increasing creepage distance. More sheds improve performance in rain and pollution by keeping part of the surface dry and protected.<\/p>\n<\/div>\n<div class=\"faq-card\" style=\"margin-bottom: 20px; padding: 25px; background-color: #f9f9f9; border-left: 4px solid #2e72ab; border-radius: 4px;\">\n<p style=\"line-height: 1.8; margin-bottom: 12px;\"><strong>What voltage can this insulator handle?<\/strong><\/p>\n<p style=\"line-height: 1.8; margin-bottom: 0;\">Conventional designs serve systems up to 33 kV: one-piece bodies to about 11 kV, two-piece to 22 kV, three-piece to 33 kV. Above that, suspension strings and line posts take over.<\/p>\n<\/div>\n<p><script type=\"application\/ld+json\">\n{\n  \"@context\": \"https:\/\/schema.org\",\n  \"@type\": \"Article\",\n  \"headline\": \"What Is a Pin Insulator? Definition and Anatomy\",\n  \"description\": \"A pin insulator defined: its porcelain, glass or polymer body, the steel pin under it, the tied top groove, and why it rarely serves above 33 kV.\",\n  \"about\": \"Pin insulator definition, anatomy, materials, and voltage range\",\n  \"inLanguage\": \"en\"\n}\n<\/script><br \/>\n<script type=\"application\/ld+json\">\n{\n  \"@context\": \"https:\/\/schema.org\",\n  \"@type\": \"FAQPage\",\n  \"mainEntity\": [\n    {\n      \"@type\": \"Question\",\n      \"name\": \"What is a pin insulator in simple terms?\",\n      \"acceptedAnswer\": {\"@type\": \"Answer\", \"text\": \"An insulating body, usually porcelain or polymer, that screws onto a separate steel pin on the cross-arm and carries one tied conductor, generally on lines up to 33 kV.\"}\n    },\n    {\n      \"@type\": \"Question\",\n      \"name\": \"What is the difference between the insulator and the pin?\",\n      \"acceptedAnswer\": {\"@type\": \"Answer\", \"text\": \"The insulator is the porcelain, glass, or polymer body that handles the electrical duty. 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More sheds improve performance in rain and pollution by keeping part of the surface dry and protected.\"}\n    },\n    {\n      \"@type\": \"Question\",\n      \"name\": \"What voltage can this insulator handle?\",\n      \"acceptedAnswer\": {\"@type\": \"Answer\", \"text\": \"Conventional designs serve systems up to 33 kV: one-piece bodies to about 11 kV, two-piece to 22 kV, three-piece to 33 kV. Above that, suspension strings and line posts take over.\"}\n    }\n  ]\n}\n<\/script><\/p>\n\n\n<div class=\"kk-star-ratings kksr-auto kksr-align-left kksr-valign-bottom\"\n    data-payload='{&quot;align&quot;:&quot;left&quot;,&quot;id&quot;:&quot;12752&quot;,&quot;slug&quot;:&quot;default&quot;,&quot;valign&quot;:&quot;bottom&quot;,&quot;ignore&quot;:&quot;&quot;,&quot;reference&quot;:&quot;auto&quot;,&quot;class&quot;:&quot;&quot;,&quot;count&quot;:&quot;0&quot;,&quot;legendonly&quot;:&quot;&quot;,&quot;readonly&quot;:&quot;&quot;,&quot;score&quot;:&quot;0&quot;,&quot;starsonly&quot;:&quot;&quot;,&quot;best&quot;:&quot;5&quot;,&quot;gap&quot;:&quot;4&quot;,&quot;greet&quot;:&quot;Rate this post&quot;,&quot;legend&quot;:&quot;0\\\/5 - (0 votes)&quot;,&quot;size&quot;:&quot;24&quot;,&quot;title&quot;:&quot;What Is a Pin Insulator? Definition and Anatomy&quot;,&quot;width&quot;:&quot;0&quot;,&quot;_legend&quot;:&quot;{score}\\\/{best} - ({count} {votes})&quot;,&quot;font_factor&quot;:&quot;1.25&quot;}'>\n            \n<div class=\"kksr-stars\">\n    \n<div class=\"kksr-stars-inactive\">\n            <div class=\"kksr-star\" data-star=\"1\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" data-star=\"2\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" data-star=\"3\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" data-star=\"4\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" data-star=\"5\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n    <\/div>\n    \n<div class=\"kksr-stars-active\" style=\"width: 0px;\">\n            <div class=\"kksr-star\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" style=\"padding-right: 4px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n    <\/div>\n<\/div>\n                \n\n<div class=\"kksr-legend\" style=\"font-size: 19.2px;\">\n            <span class=\"kksr-muted\">Rate this post<\/span>\n    <\/div>\n    <\/div>\n","protected":false},"excerpt":{"rendered":"<p>Unsere Bestellabteilung erh\u00e4lt immer noch Anfragen, die auf der Zeichnung \u201cStiftisolator\u201d und in denselben Notizen \u201cWellenisolator\u201d angeben. Ein Produkt tr\u00e4gt zwei Namen, und nur selten eine kurze Definition. K\u00e4ufer aus Versorgungsunternehmen und K\u00e4ufer aus Eisenbahn- oder Telekommunikationshintergr\u00fcnden meinen oft dieselbe Hardware, beschreiben sie jedoch in unterschiedlichen Worten. Dieser Artikel kl\u00e4rt\u2026<\/p>","protected":false},"author":2,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":"","rank_math_title":"Pin Insulator Explained: Parts, Materials, Voltage","rank_math_description":"A pin insulator defined: its porcelain, glass or polymer body, the steel pin under it, the tied top groove, and why it rarely serves above 33 kV.","rank_math_focus_keyword":"pin insulator","rank_math_robots":"","rank_math_canonical_url":"","rank_math_facebook_title":"","rank_math_facebook_description":"","rank_math_twitter_title":"","rank_math_twitter_description":"","_yoast_wpseo_title":"","_yoast_wpseo_metadesc":"","_yoast_wpseo_focuskw":"","_yoast_wpseo_canonical":"","_yoast_wpseo_meta-robots-noindex":"","_yoast_wpseo_meta-robots-nofollow":"","_yoast_wpseo_opengraph-title":"","_yoast_wpseo_opengraph-description":"","_yoast_wpseo_twitter-title":"","_yoast_wpseo_twitter-description":"","_aioseo_title":"","_aioseo_description":"","_aioseo_keywords":"","_aioseo_robots_default":"","_aioseo_robots_noindex":"","_aioseo_og_title":"","_aioseo_og_description":"","_aioseo_twitter_title":"","_aioseo_twitter_description":"","aiosp_title":"","aiosp_description":"","aiosp_keywords":"","_seopress_titles_title":"","_seopress_titles_desc":"","_seopress_analysis_target_kw":"","_seopress_robots_canonical":"","_seopress_robots_index":"","_seopress_robots_follow":"","_seopress_social_fb_title":"","_seopress_social_fb_desc":"","_seopress_social_twitter_title":"","_seopress_social_twitter_desc":"","_genesis_title":"","_genesis_description":"","_genesis_canonical":"","_genesis_noindex":"","_genesis_nofollow":"","slim_seo":""},"categories":[98],"tags":[],"class_list":["post-12752","post","type-post","status-publish","format-standard","hentry","category-product-knowledge","category-98","description-off"],"_links":{"self":[{"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/posts\/12752","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/comments?post=12752"}],"version-history":[{"count":8,"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/posts\/12752\/revisions"}],"predecessor-version":[{"id":13008,"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/posts\/12752\/revisions\/13008"}],"wp:attachment":[{"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/media?parent=12752"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/categories?post=12752"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.raxpower.com\/de\/wp-json\/wp\/v2\/tags?post=12752"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}