{"id":85271,"date":"2026-04-28T05:51:46","date_gmt":"2026-04-28T05:51:46","guid":{"rendered":"https:\/\/www.alalloycasting.com\/?p=85271"},"modified":"2026-04-28T05:51:46","modified_gmt":"2026-04-28T05:51:46","slug":"20-ppi-filter-foam-for-clean-aluminum-castings","status":"publish","type":"post","link":"https:\/\/www.alalloycasting.com\/fr\/20-ppi-filter-foam-for-clean-aluminum-castings\/","title":{"rendered":"Mousse filtrante 20 PPI : le choix incontournable pour des pi\u00e8ces moul\u00e9es en aluminium impeccables"},"content":{"rendered":"<h2>Que signifie r\u00e9ellement \u201c 20 PPI \u201d dans le domaine des filtres en mousse c\u00e9ramique ?<\/h2>\n<p>PPI signifie\u00a0<strong>Pores par pouce<\/strong>\u00a0\u2014 litt\u00e9ralement, le nombre d'ouvertures de pores que l'on compterait sur une ligne d'un pouce de long \u00e0 la surface du filtre. Une mousse filtrante de 20 PPI comporte environ 20 pores par pouce lin\u00e9aire, ce qui correspond \u00e0 un diam\u00e8tre moyen des pores d'environ\u00a0<strong>1,0\u20131,2 mm<\/strong>.<\/p>\n<p>Cela peut sembler \u00eatre un d\u00e9tail insignifiant, mais cela d\u00e9termine pratiquement tous les aspects des performances du filtre : la vitesse \u00e0 laquelle le m\u00e9tal s'\u00e9coule, la taille des particules retenues et la hauteur de pression m\u00e9tallostatique n\u00e9cessaire pour maintenir un d\u00e9bit r\u00e9gulier.<\/p>\n<p>Voici une comparaison rapide pour mettre en perspective la valeur de 20 PPI :<\/p>\n<div class=\"overflow-x-auto\">\n<table class=\"min-w-full\">\n<thead>\n<tr>\n<th class=\"whitespace-nowrap px-3 py-2\">Cat\u00e9gorie PPI<\/th>\n<th class=\"whitespace-nowrap px-3 py-2\">Taille moyenne des pores (mm)<\/th>\n<th class=\"whitespace-nowrap px-3 py-2\">Application type<\/th>\n<th class=\"whitespace-nowrap px-3 py-2\">R\u00e9sistance \u00e0 l'\u00e9coulement<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td class=\"px-3 py-2\">10 PPI<\/td>\n<td class=\"px-3 py-2\">2.0\u20132.5<\/td>\n<td class=\"px-3 py-2\">Fonte, alliages non ferreux lourds<\/td>\n<td class=\"px-3 py-2\">Tr\u00e8s faible<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">20 PPI<\/td>\n<td class=\"px-3 py-2\">1.0\u20131.2<\/td>\n<td class=\"px-3 py-2\">Moulage g\u00e9n\u00e9ral de l'aluminium, moulage sous pression par gravit\u00e9<\/td>\n<td class=\"px-3 py-2\">Faible \u00e0 mod\u00e9r\u00e9<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">30 PPI<\/td>\n<td class=\"px-3 py-2\">0.7\u20130.9<\/td>\n<td class=\"px-3 py-2\">Composants de pr\u00e9cision en aluminium, moyeux de roue<\/td>\n<td class=\"px-3 py-2\">Mod\u00e9r\u00e9<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">40 PPI<\/td>\n<td class=\"px-3 py-2\">0.5\u20130.6<\/td>\n<td class=\"px-3 py-2\">Pi\u00e8ces moul\u00e9es en aluminium de qualit\u00e9 a\u00e9rospatiale, \u00e0 parois minces<\/td>\n<td class=\"px-3 py-2\">\u00c9lev\u00e9<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<\/div>\n<p>Comme vous pouvez le constater, <a href=\"https:\/\/www.alalloycasting.com\/fr\/ceramic-foam-filter-pal\/\" target=\"_blank\" rel=\"noopener\"><em><strong><span class=\"su-highlight\" style=\"background:#eccb42;color:#000000\">&nbsp;Filtres en mousse c\u00e9ramique 20 PPI&nbsp;<\/span><\/strong><\/em><\/a>\u00a0se situent exactement au milieu \u2014 suffisamment polyvalentes pour permettre le traitement d\u2019une vaste gamme d\u2019alliages d\u2019aluminium sans restreindre le d\u00e9bit ni n\u00e9cessiter une pression de refoulement excessive.<\/p>\n<figure id=\"attachment_82599\" aria-describedby=\"caption-attachment-82599\" style=\"width: 1349px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-82599\" src=\"https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/03\/3380_cSFN4JDm-1.webp\" alt=\"filtre en mousse c\u00e9ramique, structure poreuse 3D, filtre en alumine \u00e0 cellules ouvertes\" width=\"1349\" height=\"899\" srcset=\"https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/03\/3380_cSFN4JDm-1.webp 1536w, https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/03\/3380_cSFN4JDm-1-300x200.webp 300w, https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/03\/3380_cSFN4JDm-1-768x512.webp 768w\" sizes=\"auto, (max-width: 1349px) 100vw, 1349px\" \/><figcaption id=\"caption-attachment-82599\" class=\"wp-caption-text\"><em>La structure \u00e0 cellules ouvertes interconnect\u00e9es du filtre en mousse c\u00e9ramique permet une filtration en lit profond et une r\u00e9tention efficace des particules.<\/em><\/figcaption><\/figure>\n<h2>Pourquoi la mousse filtrante de 20 PPI est-elle si largement utilis\u00e9e dans les fonderies d'aluminium ?<\/h2>\n<p>Entrez dans n'importe quelle usine de moulage d'aluminium produisant des pi\u00e8ces automobiles, des dissipateurs thermiques ou des profil\u00e9s structurels, et il y a de fortes chances que vous trouviez des filtres PPI empil\u00e9s pr\u00e8s du four. Cette popularit\u00e9 s'explique par des raisons pratiques.<\/p>\n<h3>Il \u00e9limine les inclusions qui posent r\u00e9ellement probl\u00e8me<\/h3>\n<p>L'aluminium fondu est r\u00e9actif. D\u00e8s qu'il entre en contact avec l'air, un mince film d'oxyde d'alumine (Al\u2082O\u2083) se forme \u00e0 sa surface. Lors de la coul\u00e9e, les turbulences brisent ce film en fragments \u2014 g\u00e9n\u00e9ralement de 50 \u00e0 500 microns \u2014 qui sont entra\u00een\u00e9s dans la cavit\u00e9 du moule. Ces inclusions non m\u00e9talliques agissent comme des concentrateurs de contraintes dans la pi\u00e8ce finie, ce qui entra\u00eene l'apparition de fissures sous contrainte ou lors de l'usinage.<\/p>\n<p>Une mousse filtrante de 20 PPI retient les particules d'une taille allant jusqu'\u00e0 environ\u00a0<strong>80 \u00e0 100 microns<\/strong>\u00a0gr\u00e2ce \u00e0 une interception directe, et les inclusions encore plus fines (20 \u00e0 50 microns) sont pi\u00e9g\u00e9es par\u00a0<strong>filtration par g\u00e2teau<\/strong>\u00a0\u2014 o\u00f9 la couche initiale de d\u00e9bris retenus devient elle-m\u00eame un milieu filtrant secondaire. En pratique, un filtre de 20 PPI fonctionnant correctement r\u00e9duit la teneur en inclusions de\u00a0<strong>60\u201380%<\/strong>, en fonction de la puret\u00e9 de l'alliage et de la temp\u00e9rature de coul\u00e9e.<\/p>\n<p>Cela repr\u00e9sente une am\u00e9lioration consid\u00e9rable de la qualit\u00e9 de moulage, sans pour autant compliquer votre syst\u00e8me d'alimentation.<\/p>\n<h3>Cela n'entrave pas votre d\u00e9bit de versement<\/h3>\n<p>C'est plus important qu'on ne le pense. Un filtre trop fin pour l'application g\u00e9n\u00e8re une contre-pression, ralentit l'\u00e9coulement et peut entra\u00eener\u00a0<strong>d\u00e9fauts d'impression ou soudures \u00e0 froid<\/strong>\u00a0\u2014 en particulier dans le cas des pi\u00e8ces moul\u00e9es \u00e0 parois minces, o\u00f9 le m\u00e9tal doit se solidifier rapidement avant de perdre sa surchauffe.<\/p>\n<p>Avec une ouverture moyenne des pores d'environ 1,1 mm, les filtres en mousse de 20 PPI permettent \u00e0 l'aluminium de s'\u00e9couler \u00e0\u00a0<strong>1,0 \u00e0 2,5 kg\/s<\/strong>\u00a0\u00e0 travers une tuile filtrante standard de 75 \u00d7 75 \u00d7 22 mm, ce qui est largement suffisant pour la plupart des installations de coul\u00e9e par gravit\u00e9 et \u00e0 basse pression.<\/p>\n<p>J'ai moi-m\u00eame vu des fonderies passer de 30 PPI \u00e0 20 PPI dans le seul but d'\u00e9liminer les probl\u00e8mes de temps de remplissage sur les pi\u00e8ces moul\u00e9es de grande taille destin\u00e9es aux bo\u00eetiers \u2014 et les taux d'inclusion sont rest\u00e9s largement dans les limites des sp\u00e9cifications.<\/p>\n<h3>Il fonctionne sur une large plage de temp\u00e9ratures<\/h3>\n<p>Les alliages d'aluminium sont g\u00e9n\u00e9ralement coul\u00e9s entre\u00a0<strong>680 \u00b0C et 760 \u00b0C<\/strong>, selon la famille d'alliages (syst\u00e8mes Al-Si hypoeutectiques, eutectiques ou hypereutectiques). Un filtre en mousse c\u00e9ramique d\u2019alumine de qualit\u00e9 20 PPI \u2014 pr\u00e9sentant une teneur en Al\u2082O\u2083 comprise entre 80 et 85% ou sup\u00e9rieure \u2014 r\u00e9siste \u00e0 cette plage de temp\u00e9ratures sans subir de fissuration due au choc thermique ni de d\u00e9gradation chimique.<\/p>\n<p>Certains filtres de qualit\u00e9 inf\u00e9rieure utilisent des syst\u00e8mes de liants moins co\u00fbteux qui commencent \u00e0 se d\u00e9grader au-del\u00e0 de 730 \u00b0C. Si vous utilisez de l\u2019A356 ou de l\u2019A319 avec une surchauffe plus \u00e9lev\u00e9e pour am\u00e9liorer la fluidit\u00e9, assurez-vous que votre fournisseur de filtres pr\u00e9cise un\u00a0<strong>temp\u00e9rature de fonctionnement d'au moins 1 100 \u00b0C<\/strong>\u00a0dont la teneur en alumine est sup\u00e9rieure \u00e0 80%.<\/p>\n<figure id=\"attachment_85273\" aria-describedby=\"caption-attachment-85273\" style=\"width: 1408px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"size-full wp-image-85273\" src=\"https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/04\/5200_5bQRJBGi.webp\" alt=\"Pourquoi la mousse filtrante de 20 PPI est-elle si largement utilis\u00e9e dans les fonderies d&#039;aluminium ?\" width=\"1408\" height=\"768\" srcset=\"https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/04\/5200_5bQRJBGi.webp 1408w, https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/04\/5200_5bQRJBGi-300x164.webp 300w, https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/04\/5200_5bQRJBGi-768x419.webp 768w\" sizes=\"auto, (max-width: 1408px) 100vw, 1408px\" \/><figcaption id=\"caption-attachment-85273\" class=\"wp-caption-text\"><em>Pourquoi la mousse filtrante de 20 PPI est-elle si largement utilis\u00e9e dans les fonderies d'aluminium ?<\/em><\/figcaption><\/figure>\n<h2>Comment fabrique-t-on un filtre en mousse c\u00e9ramique de 20 PPI ?<\/h2>\n<p>Comprendre le processus de fabrication permet d'expliquer pourquoi la qualit\u00e9 des filtres varie autant d'un fournisseur \u00e0 l'autre. Voici ce qui se passe concr\u00e8tement :<\/p>\n<p><strong>\u00c9tape 1 \u2014 Pr\u00e9paration du gabarit en mousse<\/strong><br \/>\nUn bloc de mousse de polyur\u00e9thane \u00e0 cellules ouvertes \u2014 d\u00e9j\u00e0 d\u00e9coup\u00e9 aux dimensions requises et pr\u00e9sentant l'indice PPI appropri\u00e9 \u2014 sert de structure porteuse.<\/p>\n<p><strong>\u00c9tape 2 \u2014 Impr\u00e9gnation par suspension<\/strong><br \/>\nThe foam is dipped into a carefully formulated alumina-based ceramic slurry. The composition typically includes Al\u2082O\u2083 powder, SiO\u2082 as a sintering aid, and organic binders for green strength. Getting the slurry viscosity right is critical: too thin and the coating won&#8217;t stick; too thick and it blocks the pores.<\/p>\n<p><strong>Step 3 \u2014 Excess Slurry Removal<\/strong><br \/>\nThe coated foam passes through rollers or a centrifuge to squeeze out excess slurry, ensuring uniform wall thickness across the struts.<\/p>\n<p><strong>Step 4 \u2014 Drying &amp; Sintering<\/strong><br \/>\nThe coated foam is dried, then fired in a kiln at\u00a0<strong>1500\u20131680\u00b0C<\/strong>. During firing, the polyurethane template burns out completely, leaving behind a rigid, interconnected ceramic skeleton \u2014 the open-cell structure that defines the filter&#8217;s performance.<\/p>\n<p><strong>Step 5 \u2014 Quality Inspection<\/strong><br \/>\nFinished filters are checked for dimensional accuracy, pore uniformity, crush strength (typically \u22651.0 MPa for a 20 PPI filter), and surface defects. Any filter with blocked pores, cracks, or uneven coating gets rejected.<\/p>\n<p>The entire process takes roughly 24\u201348 hours from raw foam to finished filter. Cheap filters often cut corners at the slurry stage or use lower sintering temperatures, which results in weak struts that fracture during priming and release ceramic particles directly into your melt \u2014 the exact opposite of what you want.<\/p>\n<h2>What Size 20 PPI Filter Do I Need for My Casting?<\/h2>\n<p>This is one of the most common questions, and honestly, a lot of foundries get it wrong. They either oversize the filter (wasting money) or undersize it (restricting flow or letting it clog mid-pour).<\/p>\n<p>The general rule:\u00a0<strong>filter area should be 4\u20136\u00d7 the choke area of your gating system.<\/strong>\u00a0But for practical purposes, here&#8217;s what works for most aluminum casting applications:<\/p>\n<div class=\"overflow-x-auto\">\n<table class=\"min-w-full\">\n<thead>\n<tr>\n<th class=\"whitespace-nowrap px-3 py-2\">Casting Weight (kg)<\/th>\n<th class=\"whitespace-nowrap px-3 py-2\">Recommended Filter Size (mm)<\/th>\n<th class=\"whitespace-nowrap px-3 py-2\">Filter Thickness (mm)<\/th>\n<th class=\"whitespace-nowrap px-3 py-2\">Remarques<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td class=\"px-3 py-2\">0.5\u20133<\/td>\n<td class=\"px-3 py-2\">50 \u00d7 50<\/td>\n<td class=\"px-3 py-2\">22<\/td>\n<td class=\"px-3 py-2\">Small parts, gravity permanent mold<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">3\u201310<\/td>\n<td class=\"px-3 py-2\">75 \u00d7 75<\/td>\n<td class=\"px-3 py-2\">22<\/td>\n<td class=\"px-3 py-2\">Mid-size castings, tilt pour setups<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">10\u201330<\/td>\n<td class=\"px-3 py-2\">100 \u00d7 100<\/td>\n<td class=\"px-3 py-2\">22<\/td>\n<td class=\"px-3 py-2\">Structural components, wheel blanks<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">30+<\/td>\n<td class=\"px-3 py-2\">150 \u00d7 150 or custom<\/td>\n<td class=\"px-3 py-2\">25\u201330<\/td>\n<td class=\"px-3 py-2\">Large plate castings, ingot filtration<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<\/div>\n<p>Round filters (\u00d850, \u00d875 mm) are also available and preferred in some automated pouring systems where the filter seat is cylindrical. If your gating system uses a round sprue, ask your supplier about round 20 PPI ceramic foam filter options \u2014 they seat more reliably and reduce the risk of bypass.<\/p>\n<p>One thing worth noting:\u00a0<strong>thickness matters more than most people think.<\/strong>\u00a0A 22 mm thick filter gives the molten aluminum more contact time with the ceramic struts, improving both filtration efficiency and flow stabilization compared to a thinner 15 mm filter of the same PPI. If you&#8217;re experiencing marginal quality, try stepping up to 25 mm thickness before jumping to a finer PPI.<\/p>\n<h2>When Should You Choose 20 PPI Over 30 PPI or 10 PPI?<\/h2>\n<p>This is where real-world experience beats catalog specs every time.<\/p>\n<p><strong>Choose 20 PPI when:<\/strong><\/p>\n<ul>\n<li>You&#8217;re casting general-purpose aluminum components (A356, A380, A319, 6061)<\/li>\n<li>Your inclusion defect rate is moderate \u2014 say 2\u20135% scrap from porosity or hard spots<\/li>\n<li>You need a balance between filtration and flow, especially on\u00a0<strong>gravity die casting<\/strong>\u00a0et\u00a0<strong>sand casting<\/strong>\u00a0setups<\/li>\n<li>You want a single filter grade that works across multiple part numbers without re-engineering the gating<\/li>\n<\/ul>\n<p><strong>Step up to 30 PPI when:<\/strong><\/p>\n<ul>\n<li>You&#8217;re producing safety-critical or pressure-tight parts (brake calipers, hydraulic manifolds)<\/li>\n<li>The end customer specifies X-ray or CT inspection with strict inclusion size limits<\/li>\n<li>Your melt treatment (degassing, fluxing) is already excellent, and the filter is your final polishing step<\/li>\n<\/ul>\n<p><strong>Drop down to 10 PPI when:<\/strong><\/p>\n<ul>\n<li>You&#8217;re filtering iron or copper-based alloys with higher viscosity<\/li>\n<li>The primary goal is flow stabilization rather than inclusion removal<\/li>\n<li>You&#8217;re dealing with very large volume pours where back-pressure is a serious concern<\/li>\n<\/ul>\n<p>I&#8217;ve talked with foundry engineers who run 30 PPI on everything &#8220;just to be safe,&#8221; only to find that the higher flow resistance causes turbulence at the filter exit \u2014 reintroducing oxide films downstream of the filter. More isn&#8217;t always better. For the vast majority of aluminum casting,\u00a0<strong>20 PPI gives you the best results with the fewest headaches.<\/strong><\/p>\n<figure id=\"attachment_85274\" aria-describedby=\"caption-attachment-85274\" style=\"width: 1322px\" class=\"wp-caption alignnone\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-85274\" src=\"https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/04\/3676_K9XRqDb4.webp\" alt=\"ceramic foam filter selection guide\" width=\"1322\" height=\"721\" srcset=\"https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/04\/3676_K9XRqDb4.webp 1408w, https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/04\/3676_K9XRqDb4-300x164.webp 300w, https:\/\/www.alalloycasting.com\/wp-content\/uploads\/2026\/04\/3676_K9XRqDb4-768x419.webp 768w\" sizes=\"auto, (max-width: 1322px) 100vw, 1322px\" \/><figcaption id=\"caption-attachment-85274\" class=\"wp-caption-text\"><em>ceramic foam filter selection guide<\/em><\/figcaption><\/figure>\n<h2>Does Filter Placement Affect 20 PPI Performance?<\/h2>\n<p>Absolutely \u2014 and this is something that often gets overlooked during gating design.<\/p>\n<h3>Horizontal vs. Vertical Placement<\/h3>\n<p>La plupart <a href=\"https:\/\/www.alalloycasting.com\/fr\/ceramic-foam-filter\/\" target=\"_blank\" rel=\"noopener\"><em><strong><span class=\"su-highlight\" style=\"background:#eccb42;color:#000000\">&nbsp;filtres en mousse c\u00e9ramique&nbsp;<\/span>\u00a0<\/strong><\/em><\/a>place the filter\u00a0<strong>horizontally<\/strong>\u00a0in a filter print (a recessed pocket in the runner). This is the standard approach and works well for gravity-fed systems. The full face of the filter contacts the metal, and the weight of the metallostatic head drives flow through evenly.<\/p>\n<p><strong>Disposition verticale<\/strong>\u00a0is sometimes used in tilt-pour or low-pressure systems. It can work, but you need to ensure the filter is fully primed before the cavity starts filling \u2014 otherwise you get partial bypass and unfiltered metal entering the mold.<\/p>\n<h3>How Far From the Casting?<\/h3>\n<p>Place the filter\u00a0<strong>as close to the mold cavity as practical<\/strong>\u00a0\u2014 ideally in the runner, just before the ingates. If the filter is too far upstream (e.g., right below the pouring cup), any turbulence or oxide generation that happens between the filter and the cavity won&#8217;t be caught.<\/p>\n<p>That said, you need enough runner length after the filter to let the flow re-stabilize. A good target is\u00a0<strong>2\u20133\u00d7 the runner width<\/strong>\u00a0between filter exit and the first ingate.<\/p>\n<h2>Key Material Properties of a Quality 20 PPI Filter Foam<\/h2>\n<p>Not all 20 PPI ceramic foam filters are created equal. The physical and chemical properties of the filter material directly impact durability, thermal stability, and whether the filter itself introduces contaminants into your melt.<\/p>\n<p>Here&#8217;s what to look for on a supplier&#8217;s datasheet:<\/p>\n<div class=\"overflow-x-auto\">\n<table class=\"min-w-full\">\n<thead>\n<tr>\n<th class=\"whitespace-nowrap px-3 py-2\">Propri\u00e9t\u00e9<\/th>\n<th class=\"whitespace-nowrap px-3 py-2\">Target Value<\/th>\n<th class=\"whitespace-nowrap px-3 py-2\">Pourquoi est-ce important ?<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td class=\"px-3 py-2\">Teneur en Al\u2082O\u2083<\/td>\n<td class=\"px-3 py-2\">\u2265 80% (ideally 85%+)<\/td>\n<td class=\"px-3 py-2\">Chemical resistance to molten aluminum<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">Porosity (open)<\/td>\n<td class=\"px-3 py-2\">80\u201390%<\/td>\n<td class=\"px-3 py-2\">Ensures adequate flow-through<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">R\u00e9sistance \u00e0 la compression<\/td>\n<td class=\"px-3 py-2\">\u2265 1,0 MPa<\/td>\n<td class=\"px-3 py-2\">Prevents filter breakage during priming<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">Temp\u00e9rature de fonctionnement<\/td>\n<td class=\"px-3 py-2\">\u2265 1100\u00b0C<\/td>\n<td class=\"px-3 py-2\">Safety margin above aluminum pour temps<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">R\u00e9sistance aux chocs thermiques<\/td>\n<td class=\"px-3 py-2\">Survives \u0394T &gt; 800\u00b0C<\/td>\n<td class=\"px-3 py-2\">Filter contacts 700\u00b0C+ metal from cold start<\/td>\n<\/tr>\n<tr>\n<td class=\"px-3 py-2\">Volume Density<\/td>\n<td class=\"px-3 py-2\">0.3\u20130.5 g\/cm\u00b3<\/td>\n<td class=\"px-3 py-2\">Indicates proper strut coating thickness<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<\/div>\n<p>If a supplier can&#8217;t provide these numbers, that&#8217;s a red flag. Reputable manufacturers \u2014 particularly those with ISO 9001 certification and dedicated foundry-grade production lines \u2014 will have full test reports available.<\/p>\n<p>One detail that separates good filters from cheap ones:\u00a0<strong>strut uniformity<\/strong>. Under magnification, a well-made 20 PPI alumina filter shows consistent wall thickness on every strut and clean, open pore windows. A poor-quality filter will have thin spots (weak points) and partially blocked cells (dead zones that reduce effective filtration area).<\/p>\n<h2>How to Get the Best Results From Your 20 PPI Filter Foam<\/h2>\n<p>After working with various foundries and testing different configurations, here are the practical tips that consistently make the biggest difference:<\/p>\n<p><strong>1. Always preheat the filter before use.<\/strong><br \/>\nA dry ceramic foam filter dropped into 720\u00b0C aluminum will experience a thermal shock of 700\u00b0C+ in under a second. Quality filters survive this, but preheating to 200\u2013300\u00b0C dramatically reduces the risk of hairline fractures that release ceramic debris. Some automated lines use radiant preheaters built into the filter print \u2014 if you have the option, use it.<\/p>\n<p><strong>2. Don&#8217;t reuse filters.<\/strong><br \/>\nThis should be obvious, but I&#8217;ve seen it happen. Once a filter has been primed with molten aluminum, the pores are partially filled with captured inclusions and solidified metal. Reheating a used filter releases trapped oxides back into the melt. One filter per pour \u2014 no exceptions.<\/p>\n<p><strong>3. Monitor your scrap data after switching PPI grades.<\/strong><br \/>\nWhen you move from one PPI to another \u2014 say from 30 to 20 \u2014 track your defect rates for at least 50 pours before drawing conclusions. A single bad pour doesn&#8217;t tell you anything; statistical trends do.<\/p>\n<p><strong>4. Match the filter to your melt quality, not the other way around.<\/strong><br \/>\nA 20 PPI filter isn&#8217;t a substitute for proper\u00a0degassing\u00a0and dross removal. If your incoming metal is excessively dirty, the filter will clog prematurely, slow the pour, and potentially crack under pressure buildup. Clean your metal first, then let the filter handle the residual inclusions \u2014 that&#8217;s where it shines.<\/p>\n<p><strong>5. Ensure a proper filter seat.<\/strong><br \/>\nThe filter print (the recessed pocket in the runner) should hold the filter snugly with no gaps around the edges. Any gap allows unfiltered metal to bypass the filter entirely. A clearance of\u00a0<strong>0.5\u20131.0 mm per side<\/strong>\u00a0is typical; anything more and you&#8217;re losing filtration effectiveness.<\/p>\n<h2>Wrapping This Up<\/h2>\n<p>There&#8217;s a reason\u00a0<strong>20 PPI filter foam<\/strong>\u00a0has become the industry default for aluminum casting filtration. It delivers meaningful inclusion removal \u2014 typically capturing particles down to 80 microns and achieving 60\u201380% cleanliness improvement \u2014 while maintaining the flow rates that keep your pour times on target and your fill patterns stable.<\/p>\n<p>It&#8217;s not the finest filter available, and it&#8217;s not meant to be. It&#8217;s the one that works reliably, day after day, across the widest range of aluminum alloys and casting methods. For most foundries producing automotive, industrial, or structural aluminum castings, 20 PPI is where you start \u2014 and more often than not, where you stay.<\/p>\n<p>If you&#8217;re currently running without filtration, or using a lower-grade filter and seeing persistent inclusion-related scrap, switching to a properly made\u00a0ceramic foam filter for aluminum\u00a0in 20 PPI is one of the highest-ROI changes you can make on the shop floor. The cost per filter is negligible compared to the cost of a single scrapped casting \u2014 let alone a batch.<\/p>\n<p>Choose a reputable supplier, match the filter size to your pour weight, place it correctly in the gating system, and let the ceramic do its job. That&#8217;s really all there is to it.<\/p>\n<p style=\"text-align: center;\"><a href=\"https:\/\/web.whatsapp.com\/send?phone=8617344611163&amp;text=\" target=\"_blank\" rel=\"noopener\"><em><strong><span class=\"su-highlight\" style=\"background:#ffffff;color:#e76d6d\">&nbsp;Si votre projet n\u00e9cessite l'utilisation d'un filtre en mousse c\u00e9ramique, n'h\u00e9sitez pas \u00e0 nous contacter pour obtenir un devis gratuit.&nbsp;<\/span><\/strong><\/em><\/a><\/p>\n<h2>FAQ<\/h2>\n<details>\n<summary>1. What is a 20 PPI filter foam?<\/summary>\n<p>A 20 PPI filter foam is a ceramic foam filter with 20 pores per inch, commonly used to clean molten aluminum during casting.<\/p>\n<\/details>\n<details>\n<summary>2. What is 20 PPI filter foam used for?<\/summary>\n<p>It is mainly used to remove inclusions, reduce turbulence, and improve casting quality in aluminum foundries.<\/p>\n<\/details>\n<details>\n<summary>3. Is 20 PPI good for aluminum casting?<\/summary>\n<p>Yes. 20 PPI is one of the most widely used grades for aluminum casting because it offers a good balance between filtration efficiency and metal flow.<\/p>\n<\/details>\n<details>\n<summary>4. How does a 20 PPI ceramic foam filter work?<\/summary>\n<p>It traps oxide films, slag, and other non-metallic inclusions while allowing molten aluminum to flow smoothly through the filter.<\/p>\n<\/details>\n<details>\n<summary>5. What size 20 PPI filter foam should I choose?<\/summary>\n<p>The right size depends on casting weight, gating design, and flow rate. Common sizes include 50\u00d750 mm, 75\u00d775 mm, and 100\u00d7100 mm.<\/p>\n<\/details>\n<details>\n<summary>6. What material is 20 PPI filter foam made of?<\/summary>\n<p>For aluminum casting, it is usually made of high-purity alumina (Al2O3) for strong thermal shock resistance and chemical stability.<\/p>\n<\/details>\n<details>\n<summary>7. Can 20 PPI filter foam improve casting quality?<\/summary>\n<p>Yes. It helps reduce inclusions, improves surface finish, and lowers the risk of porosity and machining defects.<\/p>\n<\/details>\n<details>\n<summary>8. What is the difference between 10 PPI and 20 PPI filter foam?<\/summary>\n<p>A 20 PPI filter has smaller pores than 10 PPI, so it provides finer filtration but slightly higher flow resistance.<\/p>\n<\/details>\n<details>\n<summary>9. Can 20 PPI filter foam be reused?<\/summary>\n<p>No. Ceramic foam filters are designed for single use only.<\/p>\n<\/details>\n<details>\n<summary>10. Why is 20 PPI filter foam so popular?<\/summary>\n<p>Because it is versatile, cost-effective, and suitable for many aluminum casting applications without causing excessive flow restriction.<\/p>\n<\/details>","protected":false},"excerpt":{"rendered":"<p>What Does &#8220;20 PPI&#8221; Actually Mean in Ceramic Foam Filters? PPI stands for\u00a0Pores Per Inch\u00a0\u2014 literally, the number of pore openings you&#8217;d count along a&hellip;<\/p>","protected":false},"author":1,"featured_media":0,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[233],"tags":[],"class_list":["post-85271","post","type-post","status-publish","format-standard","hentry","category-blog"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.9 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>20 PPI Filter Foam: The Go-To Choice for Clean Aluminum Castings - alalloycasting<\/title>\n<meta name=\"description\" content=\"20 PPI filter foam helps aluminum foundries remove oxide inclusions and stabilize molten metal flow. 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