- Pompe Piscine Max Flo Hayward - 1cv 13m³/h MonoLa pompe Max Flo d'Hayward est performante, silencieuse et peu gourmande en énergie. Elle s'adapte aux piscines de petites et moyenne tailles. Plébiscitée par un grand nombre d'utilisateurs, elle est une référence dans sa catégorie. La Max Flo est une pompe hayward auto amorçante et s'adapte à l'eau salée pour une compatibilité avec les électrolyseurs.
- Aucun Pompe de piscine avec filtre à sable, pompe à eau à haut débit 1,5hp-2,5hp, 1850W, pour jacuzzi,Pompe de piscine avec filtre à sable, pompe à eau à haut débit 1,5hp-2,5hp, 1850W, pour jacuzzi,
- Intex Easy Set 28108NP - Piscine gonflable + Pompe filtrePays de fabrication Chine, Forme Ronde, Hauteur piscine 61cm, Capacité piscine 1942L, Largeur piscine 244cm, Hauteur max de l'eau 42cm, Nb maximal de personnes 3-4, Couleur piscine Bleue, Débit horaire max 1250L/h, Filtre À cartouche
- Intex Easy Set 28122NP - Piscine gonflable + Pompe filtrePays de fabrication Chine, Forme Ronde, Hauteur piscine 76cm, Capacité piscine 3853L, Largeur piscine 305cm, Hauteur max de l'eau 53cm, Nb maximal de personnes 3-4, Couleur piscine Bleue, Débit horaire max 1250L/h, Filtre À cartouche
- Pompe Piscine Max Flo Hayward - 1cv 13m³ TriLa pompe Max Flo d'Hayward est performante, silencieuse et peu gourmande en énergie. Elle s'adapte aux piscines de petites et moyenne tailles. Plébiscitée par un grand nombre d'utilisateurs, elle est une référence dans sa catégorie. La Max Flo est une pompe hayward auto amorçante et s'adapte à l'eau salée pour une compatibilité avec les électrolyseurs.
- Pompe Piscine Max Flo Hayward - 0.75cv 11m³/h TriLa pompe Max Flo d'Hayward est performante, silencieuse et peu gourmande en énergie. Elle s'adapte aux piscines de petites et moyenne tailles. Plébiscitée par un grand nombre d'utilisateurs, elle est une référence dans sa catégorie. La Max Flo est une pompe hayward auto amorçante et s'adapte à l'eau salée pour une compatibilité avec les électrolyseurs.
- Pompe Piscine Max Flo Hayward - 0.75cv 11m³/h MonoLa pompe Max Flo d'Hayward est performante, silencieuse et peu gourmande en énergie. Elle s'adapte aux piscines de petites et moyenne tailles. Plébiscitée par un grand nombre d'utilisateurs, elle est une référence dans sa catégorie. La Max Flo est une pompe hayward auto amorçante et s'adapte à l'eau salée pour une compatibilité avec les électrolyseurs.
- Pompe Piscine Max Flo Hayward - 1.5cv 15m³/h TriLa pompe Max Flo d'Hayward est performante, silencieuse et peu gourmande en énergie. Elle s'adapte aux piscines de petites et moyenne tailles. Plébiscitée par un grand nombre d'utilisateurs, elle est une référence dans sa catégorie. La Max Flo est une pompe hayward auto amorçante et s'adapte à l'eau salée pour une compatibilité avec les électrolyseurs.
- Pompe Piscine Max Flo Hayward - 1.5cv 15m³/h MonoLa pompe Max Flo d'Hayward est performante, silencieuse et peu gourmande en énergie. Elle s'adapte aux piscines de petites et moyenne tailles. Plébiscitée par un grand nombre d'utilisateurs, elle est une référence dans sa catégorie. La Max Flo est une pompe hayward auto amorçante et s'adapte à l'eau salée pour une compatibilité avec les électrolyseurs.
- Pompe Piscine Max Flo Hayward - 0.5cv 8m³/h MonoLa pompe Max Flo d'Hayward est performante, silencieuse et peu gourmande en énergie. Elle s'adapte aux piscines de petites et moyenne tailles. Plébiscitée par un grand nombre d'utilisateurs, elle est une référence dans sa catégorie. La Max Flo est une pompe hayward auto amorçante et s'adapte à l'eau salée pour une compatibilité avec les électrolyseurs.
- Pompe Piscine Max Flo HaywardLa pompe Max Flo d'Hayward est performante, silencieuse et peu gourmande en énergie. Elle s'adapte aux piscines de petites et moyenne tailles. Plébiscitée par un grand nombre d'utilisateurs, elle est une référence dans sa catégorie. La Max Flo est une pompe hayward auto amorçante et s'adapte à l'eau salée pour une compatibilité avec les électrolyseurs.
- Intex Rectangular Frame 28274NP - Piscine + Pompe filtreForme Rectangulaire, Longueur piscine 450cm, Largeur piscine 220cm, Hauteur piscine 84cm, Hauteur max de l'eau 72cm, Capacité piscine 7127L, Nb maximal de personnes 5-6, Couleur piscine Bleue, Débit horaire max 2006L/h, Filtre À cartouche
- Intex Easy Set 28118NP - Piscine gonflable + Pompe filtrePays de fabrication Chine, Forme Ronde, Hauteur piscine 61cm, Capacité piscine 3077L, Largeur piscine 305cm, Hauteur max de l'eau 42cm, Nb maximal de personnes 3-4, Couleur piscine Bleue, Filtre À cartouche, Débit horaire max 1250L/h
- Intex Easy Set 28132NP - Piscine gonflable + Pompe filtrePays de fabrication Chine, Forme Ronde, Largeur piscine 366cm, Hauteur piscine 76cm, Hauteur max de l'eau 54cm, Capacité piscine 5621L, Nb maximal de personnes 5-6, Couleur piscine Bleue, Filtre À cartouche, Débit horaire max 2006L/h
- Pompe Piscine Swimmey (Nocchi) Pentair - 0.5cv 7m³/h Monphasée (SW12)La pompe Swimmey de Pentair est une pompe autoamorçante présentant un excellent rapport qualité prix. La pompe Swimmey est compatible avec le traitement au sel. Elle remplace l'ancien modèle NOCCHI et s'adapte en remplacement sans modification de plomberie.
- Pompe Piscine Swimmey (Nocchi) Pentair - 2cv 22m³/h Monophasée (SW33)La pompe Swimmey de Pentair est une pompe autoamorçante présentant un excellent rapport qualité prix. La pompe Swimmey est compatible avec le traitement au sel. Elle remplace l'ancien modèle NOCCHI et s'adapte en remplacement sans modification de plomberie.
- Pompe Piscine Swimmey (Nocchi) Pentair - 1.25cv 16m³/h Monophasée (SW24)La pompe Swimmey de Pentair est une pompe autoamorçante présentant un excellent rapport qualité prix. La pompe Swimmey est compatible avec le traitement au sel. Elle remplace l'ancien modèle NOCCHI et s'adapte en remplacement sans modification de plomberie.
- Pompe Piscine Swimmey (Nocchi) PentairLa pompe Swimmey de Pentair est une pompe autoamorçante présentant un excellent rapport qualité prix. La pompe Swimmey est compatible avec le traitement au sel. Elle remplace l'ancien modèle NOCCHI et s'adapte en remplacement sans modification de plomberie.
- Pompe Piscine Swimmey (Nocchi) Pentair - 1cv 13m³/h Monophasée (SW19)La pompe Swimmey de Pentair est une pompe autoamorçante présentant un excellent rapport qualité prix. La pompe Swimmey est compatible avec le traitement au sel. Elle remplace l'ancien modèle NOCCHI et s'adapte en remplacement sans modification de plomberie.
- Pompe Piscine Swimmey (Nocchi) Pentair - 0.75cv 9m³/h Monophasée (SW15)La pompe Swimmey de Pentair est une pompe autoamorçante présentant un excellent rapport qualité prix. La pompe Swimmey est compatible avec le traitement au sel. Elle remplace l'ancien modèle NOCCHI et s'adapte en remplacement sans modification de plomberie.
- Pompe Piscine Swimmey (Nocchi) Pentair - 1.5cv 19m³/h Monophasée (SW28)La pompe Swimmey de Pentair est une pompe autoamorçante présentant un excellent rapport qualité prix. La pompe Swimmey est compatible avec le traitement au sel. Elle remplace l'ancien modèle NOCCHI et s'adapte en remplacement sans modification de plomberie.
- Astral pool Pompe Piscine Astral Sena - 0.5 CV 8.5m³/h MonophaséeLa pompe Astral Sena est une pompe auto-amorçante fiable et performante. Cette pompe est facile d'utilisation et conviendra à beaucoup de bassins.
- Astral pool Pompe Piscine Astral Sena - 1.25 CV 14m³ MonophaséeLa pompe Astral Sena est une pompe auto-amorçante fiable et performante. Cette pompe est facile d'utilisation et conviendra à beaucoup de bassins.
- Astral pool Pompe Piscine Astral Sena - 0.33 CV 7m³ MonophaséeLa pompe Astral Sena est une pompe auto-amorçante fiable et performante. Cette pompe est facile d'utilisation et conviendra à beaucoup de bassins.
- Filtration is used to separate particles and fluid in a suspension, where the fluid can be a liquid, a gas or a supercritical fluid. Depending on the application, either one or both of the components may be isolated.
- Filtration, as a physical operation enables materials of different chemical composition to be separated. A solvent is chosen which dissolves one component, while not dissolving the other. By dissolving the mixture in the chosen solvent, one component will go into the solution and pass through the filter, while the other will be retained.
- Filtration is widely used in chemical engineering. It may be combined with other unit operations to process the feed stream, as in the biofilter, which is a combined filter and biological digestion device.
- Filtration differs from sieving, where separation occurs at a single perforated layer (a sieve). In sieving, particles that are too big to pass through the holes of the sieve are retained (see particle size distribution). In filtration, a multilayer lattice retains those particles that are unable to follow the tortuous channels of the filter. Oversize particles may form a cake layer on top of the filter and may also block the filter lattice, preventing the fluid phase from crossing the filter (blinding). Commercially, the term filter is applied to membranes where the separation lattice is so thin that the surface becomes the main zone of particle separation, even though these products might be described as sieves.
- Filtration differs from adsorption, where separation relies on surface charge. Some adsorption devices containing activated charcoal and ion-exchange resin are commercially called filters, although filtration is not their principal mechanical function.
- Filtration differs from removal of magnetic contaminants from fluids with magnets (typically lubrication oil, coolants and fuel oils), because there is no filter medium. Commercial devices called ‘magnetic filters’ are sold, but the name reflects their use, not their mode of operation.
- In biological filters, oversize particulates are trapped and ingested and the resulting metabolites may be released. For example, in animals (including humans), renal filtration removes waste from the blood, and in water treatment and sewage treatment, undesirable constituents are removed by adsorption into a biological film grown on or in the filter medium, as in slow sand filtration.
MethodsEdit
There are many different methods of filtration; all aim to attain the separation of substances. Separation is achieved by some form of interaction between the substance or objects to be removed and the filter. The substance that is to pass through the filter must be a fluid, i.e. a liquid or gas. Methods of filtration vary depending on the location of the targeted material, i.e. whether it is dissolved in the fluid phase or suspended as a solid.
There are several laboratory filtration techniques depending on the desired outcome namely, hot, cold and vacuum filtration. Some of the major purposes of obtaining the desired outcome are, for the removal of impurities from a mixture or, for the isolation of solids from a mixture.
Hot filtration method is mainly used to separate solids from a hot solution. This is done to prevent crystal formation in the filter funnel and other apparatus that come in contact with the solution. As a result, the apparatus and the solution used are heated to prevent the rapid decrease in temperature which in turn, would lead to the crystallization of the solids in the funnel and hinder the filtration process.[3]
One of the most important measures to prevent the formation of crystals in the funnel and to undergo effective hot filtration is the use stemless filter funnel. Due to the absence of a stem in the filter funnel, there is a decrease in the surface area of contact between the solution and the stem of the filter funnel, hence preventing re-crystallization of solid in the funnel, adversely affecting the filtration process.
Cold filtration method is the use of ice bath in to rapidly cool the solution to be crystallized rather than leaving it to cool slowly in the room atmosphere. This technique results to the formation of very small crystals as opposed to getting large crystals by cooling the solution at room temperature.
Vacuum filtration technique is mostly preferred for small batches of solution to quickly dry small crystals. This method requires a Büchner funnel, filter paper of smaller diameter than the funnel, Büchner flask, and rubber tubing to connect to vacuum source.
Centrifugal filtration is carried out by rapidly rotating the substance to be filtered. The more dense material is separated from the less dense matter by the horizontal rotation.[4]
Gravity filtration is the process of pouring the mixture from a higher location to a lower one. It is frequently accomplished via simple filtration, which involves placing filter paper in a glass funnel with the liquid passing through by gravity while the insoluble solid particles are caught by the filter paper. Filter cones, fluted filters, or filtering pipets can all be employed, depending on the amount of the substance at hand.[4]
Filtering forceEdit
Only when a driving force is supplied will the fluid to be filtered be able to flow through the filter media. Gravity, centrifugation, applying pressure to the fluid above the filter, applying a vacuum below the filter, or a combination of these factors may all contribute to this force. In both straightforward laboratory filtrations and massive sand-bed filters, gravitational force alone may be utilized. Centrifuges with a bowl holding a porous filter media can be thought of as filters in which a centrifugal force several times stronger than gravity replaces gravitational force. A partial vacuum is typically provided to the container below the filter media when a laboratory filtration is challenging in order to speed up the filtering process. Depending on the type of filter being used, the majority of industrial filtration operations employ pressure or vacuum to speed up filtering and reduce the amount of equipment needed.[5]
Filter mediaEdit
Filter media are the materials used to do the separation of materials.
Two main types of filter media are employed in laboratories: surface filters, which are solid sieves which trap the solid particles, with or without the aid of filter paper (e.g. Büchner funnel, belt filter, rotary vacuum-drum filter, cross-flow filters, screen filter), and depth filters, a bed of granular material which retains the solid particles as they pass (e.g. sand filter). The surface filter type allows the solid particles, i.e. the residue, to be collected intact; the depth filter does not permit this. However, the depth filter is less prone to clogging due to the greater surface area where the particles can be trapped. Also, when the solid particles are very fine, it is often cheaper and easier to discard the contaminated granules than to clean the solid sieve.[6]
Filter media can be cleaned by rinsing with solvents or detergents or backwashing. Alternatively, in engineering applications, such as swimming pool water treatment plants, they may be cleaned by backwashing. Self-cleaning screen filters utilize point-of-suction backwashing to clean the screen without interrupting system flow.[clarification needed]
Achieving flow through the filterEdit
Fluids flow through a filter due to a difference in pressure—fluid flows from the high-pressure side to the low-pressure side of the filter. The simplest method to achieve this is by gravity and can be seen in the coffeemaker example. In the laboratory, pressure in the form of compressed air on the feed side (or vacuum on the filtrate side) may be applied to make the filtration process faster, though this may lead to clogging or the passage of fine particles. Alternatively, the liquid may flow through the filter by the force exerted by a pump, a method commonly used in industry when a reduced filtration time is important. In this case, the filter need not be mounted vertically.
Filter aidEdit
Certain filter aids may be used to aid filtration. These are often incompressible diatomaceous earth, or kieselguhr, which is composed primarily of silica. Also used are wood cellulose and other inert porous solids such as the cheaper and safer perlite. Activated carbon is often used in industrial applications that require changes in the filtrates properties, such as altering color or odor.
These filter aids can be used in two different ways. They can be used as a precoat before the slurry is filtered. This will prevent gelatinous-type solids from plugging the filter medium and also give a clearer filtrate. They can also be added to the slurry before filtration. This increases the porosity of the cake and reduces resistance of the cake during filtration. In a rotary filter, the filter aid may be applied as a precoat; subsequently, thin slices of this layer are sliced off with the cake.
The use of filter aids is usually limited to cases where the cake is discarded or where the precipitate can be chemically separated from the filter.
AlternativesEdit
Filtration is a more efficient method for the separation of mixtures than decantation, but is much more time-consuming. If very small amounts of solution are involved, most of the solution may be soaked up by the filter medium.
An alternative to filtration is centrifugation—instead of filtering the mixture of solid and liquid particles, the mixture is centrifuged to force the (usually) denser solid to the bottom, where it often forms a firm cake. The liquid above can then be decanted. This method is especially useful for separating solids which do not filter well, such as gelatinous or fine particles. These solids can clog or pass through the filter, respectively.
Biological filtration may take place inside an organism, or the biological component may be grown on a medium in the material being filtered. Removal of solids, emulsified components, organic chemicals and ions may be achieved by ingestion and digestion, adsorption or absorption. Because of the complexity of biological interactions, especially in multi-organism communities, it is often not possible to determine which processes are achieving the filtration result. At the molecular level, it may often by individual catalytic enzyme actions within an individual organisms. The waste products of sone organisms may subsequently broken down by other organisms to extract as much energy as possible and in so doing reducing complex organic molecules to very simple inorganic species such as water, carbon dioxide and nitrogen.
ExcretionEdit
Inside mammals reptile and birds, the kidneys function by renal filtration in which the glomerulus selectively removes undesirable constituents such as Urea, followed by selective reabsorption of many substances essential for the body to maintain homeostasis. The complete process is termed excretion.
Similar but often less complex solutions are deployed in all animals even the Protozoa where the contractile vacuole provides a similar function.
BiofilmsEdit
Biofilms are often complex communities of bacteria, phages, yeasts and often more complex organisms including protozoa, Rotifers and Annelids which form dynamic and complex, frequently gelatinous films on wet substrates. Such biofilms coat the rocks of most rivers and the sea and they provide the key filtration capability of the Schmutzdecke on the surface of slow sand filters and the film on the filter media of trickling filters which are used to create potable water and treat sewage respectively.
An example of a biofilm is a biological slime, which may be found in lakes, rivers, rocks, etc. The utilization of single- or dual-species biofilms is a novel technology since natural biofilms are sluggish developing. Use of biofilms in the biofiltration process allows for the attachment of desirable biomass and critical nutrients to immobilized support. So that water may be reused for various processes, advances in biofiltration methods assist to remove significant volumes of effluents from the wastewater.[7]
Systems for biologically treating wastewater are crucial for enhancing both human health and water quality. Biofilm technology, the formation of biofilms on various filter media, and other factors have an impact on both the growth and structure and function of these biofilms. In order to conduct a thorough investigation of the composition, diversity, and dynamics of biofilms, it also takes on a variety of traditional and contemporary molecular approaches.[8]
Filter feedersEdit
Filter feeders are organisms that obtain their food by filtering their, generally aquatic, environment. Many of the protozoa are filter feeders using a range of adaptations including rigid spikes of protoplasm held in the water flow as in the Suctoria to various arrangements of beating Cillia to direct particles to the mouth including organisms such as Vorticella which have a complex ring of cilia which create a vortex in the flow drafting particles into the oral cavity. Similar feeding techniques are used by the Rotifera and the Ectoprocta. Many aquatic arthropods are filter feeders . Some use rhythmical beating of abdominal limbs to create a water current to the mouth whilst the hairs on the legs trap any particle. Other such as some caddis flies spin fine webs in the water flow to trap particles.