WO2014133474A2 - Telescopic cleaning system for exhaust air filters - Google Patents

Telescopic cleaning system for exhaust air filters Download PDF

Info

Publication number
WO2014133474A2
WO2014133474A2 PCT/TR2014/000032 TR2014000032W WO2014133474A2 WO 2014133474 A2 WO2014133474 A2 WO 2014133474A2 TR 2014000032 W TR2014000032 W TR 2014000032W WO 2014133474 A2 WO2014133474 A2 WO 2014133474A2
Authority
WO
WIPO (PCT)
Prior art keywords
air
filter
telescopic
filters
cleaning system
Prior art date
Application number
PCT/TR2014/000032
Other languages
French (fr)
Other versions
WO2014133474A3 (en
Inventor
Hasan Engin BALÇIK
Original Assignee
Adeba Mühendi̇sli̇k, Danişmanlik, Halkla İli̇şki̇ler, İnşaat Ve Ti̇caret A.Ş.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Adeba Mühendi̇sli̇k, Danişmanlik, Halkla İli̇şki̇ler, İnşaat Ve Ti̇caret A.Ş. filed Critical Adeba Mühendi̇sli̇k, Danişmanlik, Halkla İli̇şki̇ler, İnşaat Ve Ti̇caret A.Ş.
Priority to EP14722396.0A priority Critical patent/EP2961511A2/en
Priority to US14/770,257 priority patent/US9662604B2/en
Publication of WO2014133474A2 publication Critical patent/WO2014133474A2/en
Publication of WO2014133474A3 publication Critical patent/WO2014133474A3/en

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/66Regeneration of the filtering material or filter elements inside the filter
    • B01D46/70Regeneration of the filtering material or filter elements inside the filter by acting counter-currently on the filtering surface, e.g. by flushing on the non-cake side of the filter
    • B01D46/71Regeneration of the filtering material or filter elements inside the filter by acting counter-currently on the filtering surface, e.g. by flushing on the non-cake side of the filter with pressurised gas, e.g. pulsed air
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/02Particle separators, e.g. dust precipitators, having hollow filters made of flexible material
    • B01D46/023Pockets filters, i.e. multiple bag filters mounted on a common frame
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/42Auxiliary equipment or operation thereof
    • B01D46/44Auxiliary equipment or operation thereof controlling filtration
    • B01D46/442Auxiliary equipment or operation thereof controlling filtration by measuring the concentration of particles

Definitions

  • This invention involves in internal cleaning system of centralized extraction and filtration units of industrial exhaust gases such as product dusts or process related emission gases that are generated during related process to be extracted from operational environment and to be discharged to atmosphere within the limits of environmental regulations.
  • industrial exhaust gases such as product dusts or process related emission gases that are generated during related process to be extracted from operational environment and to be discharged to atmosphere within the limits of environmental regulations.
  • Invention mainly covers a special telescopic cleaning system to be used at such extraction systems and filters, which is able to clean internal filtering materials by a cleaning head stands on a telescopic unit travelling all through the filter fabric surface.
  • This enables the opportunity to use low pressure exhaust air coming out of the main suction fan at the system and consequently avoids the usage of compressed air, which is the current industry solution/standard worldwide.
  • filters will be cleaned more effectively with almost no energy consumed.
  • Compressed Air as cleaning media in order to clean the filtering materials (usually synthetic fabrics) of the filtering systems located at the centralized extraction units.
  • Compressed Air generated at the centralized compressor units is applied to the filters with regular intervals towards opposite of regular air flow direction.
  • compressed air storage tank as well as pipe connection for compressed air supply line.
  • Existing design / system works relatively in good condition but with several weaknesses. One of the biggest weaknesses is to consume high energy for internal filter cleaning function. System uses high amount of compressed air for filter cleaning. This compressed air is to be generated at other sub- functional units.
  • Compressed air generation stations are normally one of the essentials of a manufacturing plant depending on process based capacity demands. However, such air filtering units increase demands and lead the operations to invest to higher capacity systems with higher initial investment (Capital Expenditure) needs.
  • Efficiency of the compressed air systems are relatively low due functional weaknesses of network elements with quite high pressure drops and frequently observed leakages.
  • the unit price of the compressed air generation is the highest among the other utility systems such as steam, hot-cold water, conditioned air etc.
  • the regular operational and maintenance cost of such compressors are quite expensive due to high end technology usage inside the units.
  • compressed air accumulation tank as well as control valves are generally located at the top of the filters (approx. 4-5 mt. in height). This location is both difficult to reach as well as not convenient in order to do proper maintenance from employee perspective. On the other side, this location also generates a risk of providing unsafe working condition from employer perspective. In result, existing risky working condition remains unavoidable from employee safety perspective with existing design.
  • existing system should be equipped with small compressed air storage tanks to be able to supply adequate amount of air to filters each time. These tanks have to be regularly checked by qualified inspectors once a year according to regulations. Due to difficult accessibility, proper physical & visual inspections may not be done securely; which is a kind of operational weakness of the design. On the other hand, this turns to an additional expense / cost to operations.
  • This invention is related with a new 3 ⁇ 4lescopic cleaning system ⁇ industrial air filter units covering all above mentioned needs by eliminating several disadvantages and improving the general performance of air cleaning systems.
  • One of the objectives of the invention is to reduce energy consumption of the system by eliminating compressed air usage necessity in filter's self-cleaning function through re utilizing the existing discharged / waste air of the system fan unit.
  • Another objective is to further reduce energy consumption of the system by reducing filter resistance (pressure drop) on filter units, which leads the suction fan to consume less energy to deliver required air amount for main system need.
  • This is newlyenabied by means of a special Telescopic Cleaning Head movement in the filter unit that is applying reverse cleaning air at adequate level with balanced & well distributed manner throughout each cassette filter& media. By this function, filter media will continuously remain well cleaned leading to generate lower air passing resistance (pressure drop) and consume less energyvs. existing applications.
  • Another objective of the invention is to reduce initial capital investment need by ensuring better efficiency & performance vs. lower size. By ensuring to keep filter media's continuously well cleaned, smaller size of new units will support operations to reduce annual operational expenses by less filter media replacement needs as well as lower cost in initial investment.
  • Another objective of the invention is to provide simple, accessible units enabling execution of maintenance activities during operation mode, which is encouraging to have reliable and continuous systems for downstream systems in factories.
  • Another objective of the invention is to provide flexibility for quality control check of each filter via installing a sensor/camera on telescopic head. This will enable to detect faulty filter (burst, torn out etc.) individually among 100's of other filters. This will further drive an automatic warning system to inform operators. By identifying the faulty filter, operator will be able to replace such faulty filter in a short while and will help to avoid exhausting of un-cleaned air to atmosphere.
  • This invention covers industrial air cleaning filters and newly developed telescopic cleaning system as the benefits are generally mentioned above with below detailed working principles including; • Minimum 1 telescopic head going in & out through each filter blowing reversely low pressure air to the both side of cassette type filters to be able to clean the filter media
  • FIG. 1 A perspective view of such filtering unit with the application of telescopic cleaning system referred in this invention with the preferred option of 4 level of filters
  • FIG. 2 A perspective view of filtering unit with the application of telescopic cleaning system showing air flow direction with arrows
  • FIG. 3 A sectional view 4 level up filtering unit with the application of telescopic cleaning system showing air flow direction with arrows
  • FIG. 1 A perspective view of telescopic cleaning system referred in this invention.
  • telescopic head is CLOSED and at the level of 1 st level of filter.
  • FIG. 1 A perspective view of telescopic cleaning system referred in this invention.
  • telescopic head is OPEN and at the level of 1 st level of filter.
  • FIG. 1 A perspective view of telescopic cleaning system referred in this invention.
  • telescopic head is OPEN and at the level of 1 st level of filter bottom part.
  • FIG. 1 A perspective view of telescopic cleaning system referred in this invention.
  • telescopic head is CLOSED and at the level of 1 st level of filter bottom part.
  • a perspective view of telescopic cleaning system referred in this invention is CLOSED and at the level of 2nd level of filter top part.
  • FIG. 1 A perspective view of telescopic cleaning system referred in this invention.
  • telescopic head is OPEN and at the level of 2nd level of filter top part.
  • a dedicated cleaning system is structured with the help of telescopic unit working over 3 dimensional moving systems, which enables to effectively clean both side of filter surfaces.
  • system is enabled to use the discharge/exhaust air of the suction fan as cleaning media for filters with the help of conical mechanical structure that accelerates the air under Bernoulli principle generating air jet. Filter cleaning will be achieved through a reversed air application towards to the filter surfaces from a short distance application of air jet (low pressure / high speed)
  • This invention involves in internal cleaning system (so called Telescopic Cleaning System (10)) of centralized extraction and filtration unit (1) of industrial exhaust gases such as product dusts or process related emission gases that are generated during related process to be extracted from operational environment and to be discharged to atmosphere within the limits of environmental regulations.
  • Telescopic Cleaning System 10
  • industrial exhaust gases such as product dusts or process related emission gases that are generated during related process to be extracted from operational environment and to be discharged to atmosphere within the limits of environmental regulations.
  • FIG 1 shows the perspective view of a preferred application of telescopic cleaning system inside filtering system.
  • filtering unit (1) is in the form of rectangular prismatic body having dirty air section (3), cassette type of filters (2) inside dirty air section (3), cleaned air section (4) aside dirty air section (3), exhaust air fan (7) generating the necessary suction air at required volume and pressure, chimney (6) blowing exhaust air to atmosphere and conical body accelerator (17) generating air jet as the usage of cleaning air for filters.
  • Figure 2 is the perspective view of telescopic cleaning system (10) located inside filter body (1 ) at cleaned air section (4).
  • Figure 2 shows the direction of air flow with the help of arrows.
  • Dirty air enters to the dirty side of the filter unit from main inlet (A), cleaned through cassette type of filters (2), travels to cleaned air section (4) and discharged from outlet (5)
  • Figure 3 gives the side view of filter unit (1 ) showing the direction of air during cleaning process through cassette filters (2).
  • Cassette types of filters (2) are in horizontally and vertically distributed. Dirty air enters from the 1st level of filter (2.1 ) and travels to downwards to 2.2 while a portion of dirt air is cleaned by 2.1 cassette filter. This continues until the last cassette filter (2.4). As a result, the particles in dirty air remains on the surface of cassette type of filters (2) and cleaned air flows to cleaned air section (4) and outlet (B).
  • Figure 4 gives the perspective view of telescopic cleaning system (10). Accordingly, system comprises of 2 horizontal movement profiles (12 & 13), 1 vertical movement profile (14) and telescopic head (1 1 ).
  • Vertical profile is connected to horizontal profiles (12 (13) and is able move in the direction of X-axes.
  • Telescopic head (1 1 ) is located on vertical profile (14) and is able to up & down in the direction of Y-axes.
  • telescopic head (11) is in closed position.
  • Telescopic head (11) is comprised of rectangular profiles with the variety of dimensions allowing each to enter to following profile size. These profiles guide the cleaning air till the end of head. At closed position, all such profiles remains within each other and occupies the minimum dimension of the telescopic head (11)
  • Telescopic head (11) is moved forward & backward in the direction of Z axes with a driving motor (8). Accordingly, this telescopic head (11) is able to move in 3 direction as axes of x, y and z as;
  • Telescopic head (11) is in closed position located in the cleaned air section (4) of filtering unit (1). Air jet required for filter cleaning is received through conical accelerator (1) from the outlet of exhaust air fan. There is a proper piping (16) till air inlet (15) of telescopic head. There is also a conical accelerator (17) piece on this piping, which is speeding up the exhaust air (high volume & low pressure) until air jet generation. Moreover, there is a filter quality control sensor (19) at the front of telescopic head (10). This sensor (19) is able to monitor the dust ratio (dirtiness level of cleaned air) via an optical eye and is able to compare the quality of air with reference value.
  • Telescopic cleaning system (10) is as follows:
  • telescopic head (1 1 ) is in open position and at the bottom end of cassette filter (2.1 ). Afterwards, air jet application is turned off and telescopic head is closed as shown in figure 7.
  • telescopic head ( 1 ) is moved towards to following cassette filter (2.2) in the direction of Y axes. Consequently, above cycle is repeated as initiated in figure 9.
  • following cassette filters (2.3 & 2.4) are also cleaned with the same principle.
  • telescopic head (1 1 ) as well as vertical driving unit (14) is moved to adjacent filter raw by the help of horizontal driving units (12 & 13). By this movement, all other filter's cleaning is repeated.
  • filter quality control sensor (19) at the front of telescopic head (10) checks the air quality and compares with reference value. In case of exceeding value is recognized, sensor identifies the filter as faulty filter and triggers an alarm signal. Through a monitoring program with a PLC shows schematically the faulty filter to operators.
  • the most important benefit of invented telescopic filter cleaning system (1 ) is to save energy by eliminating the usage of compressed air for filter cleaning purpose. In new design, necessary cleaning air for filter's (2) cleaning is generated & received from the exhaust of suction fan on the way to discharge to atmosphere through a connection and accelerating unit (17).
  • Telescopic head (1 1 ) is able to move in 3 dimensionaldirections. With this functionality, telescopic head reaches to entire surface of each filter section effectively and clean the surfaces completely & properly.
  • each filter is able to be controlled individually and any unexpected faults can be detected immediately.
  • faulty filter (2) can be identified & replaced easily and in a short downtime of supporting factory operation and avoids discharging un-cleaned air to atmosphere.
  • Telescopic head (1 1 ) is able apply cleaning air to the full surface of cassette filters (2) at the required amount with balanced distribution.
  • cassette filters (2) remains clean during the entire life time and generates relatively less resistance (pressure drop) than existing filtering systems.
  • suction fan (6) runs at lower power consumption while providing required air volume to main systems being served. Less energy consumption turns to important criteria for new system benefit recognition.
  • this invention it has been provided a simplified system with easy accessibility and maintenance opportunity during normal operation. With this functionality, factory main operations are supported with downtime free sub systems. This invention can be applied to all such systems, which either require an on line air cleaning system for process feeding like energy plants engine & turbine inlet air or polluted air to be discharged from process to be cleaned prior to send atmosphere.

Landscapes

  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Filtering Of Dispersed Particles In Gases (AREA)
  • Cleaning In General (AREA)

Abstract

This invention is related with the internal cleaning system (Telescopic Cleaning System (10)) of centralized extraction and filtration units (1) of industrial exhaust gases aiming to reduce overall energy consumption of such system by; avoiding the usage of compressed air being replaced with available exhaust air of the system, accelerated and applied throughly all surfaces of the cassette filters (2) by the help of Telescopic Cleaning System (10) and delivering efficiently cleaned filters, generating less resistance over the filter unit (1) versus comparable existing designs by the help of such efficiently cleaned filters, leading to less energy consumption on exhaust air fan.

Description

DESCRIPTION
TELESCOPIC CLEANING SYSTEM FOR EXHAUST AIR FILTERS TECHNICAL FIELD
This invention; involves in internal cleaning system of centralized extraction and filtration units of industrial exhaust gases such as product dusts or process related emission gases that are generated during related process to be extracted from operational environment and to be discharged to atmosphere within the limits of environmental regulations.
Invention mainly covers a special telescopic cleaning system to be used at such extraction systems and filters, which is able to clean internal filtering materials by a cleaning head stands on a telescopic unit travelling all through the filter fabric surface. This enables the opportunity to use low pressure exhaust air coming out of the main suction fan at the system and consequently avoids the usage of compressed air, which is the current industry solution/standard worldwide. As a result, filters will be cleaned more effectively with almost no energy consumed.
PRIOR ART
Current technology uses Compressed Air as cleaning media in order to clean the filtering materials (usually synthetic fabrics) of the filtering systems located at the centralized extraction units. Compressed Air generated at the centralized compressor units is applied to the filters with regular intervals towards opposite of regular air flow direction. There exists also an additional blower pipe at the front of each filter line in order to apply such counter air flow to the filters. Besides, there exist compressed air storage tank as well as pipe connection for compressed air supply line. Existing design / system works relatively in good condition but with several weaknesses. One of the biggest weaknesses is to consume high energy for internal filter cleaning function. System uses high amount of compressed air for filter cleaning. This compressed air is to be generated at other sub- functional units. Compressed air generation stations are normally one of the essentials of a manufacturing plant depending on process based capacity demands. However, such air filtering units increase demands and lead the operations to invest to higher capacity systems with higher initial investment (Capital Expenditure) needs.
Efficiency of the compressed air systems (generation as well as distribution network) are relatively low due functional weaknesses of network elements with quite high pressure drops and frequently observed leakages. The unit price of the compressed air generation is the highest among the other utility systems such as steam, hot-cold water, conditioned air etc. Moreover, the regular operational and maintenance cost of such compressors are quite expensive due to high end technology usage inside the units.
Beside, frequent compressed air cleaning cycle of filters with low performance increases energy consumption. Each filtering segment has got wide surface of approx. 1 ,5 - 2,0 m2 per each. Due to constructional reasons, compressed air is applied from the head of the filter cassette. As the compressed air is applied from one source towards to the end of filter cassette, it is normally released through the filter media before reaching to the end of the filter cassette and only mechanical shake (gradually disappearing) remains on filter media to clean. Consequently, filter media may not be cleaned with full surface and leads to gradually higher resistance to the air passing through due to less available surface remains. In truth, filter media manufacturers recommends a piece of dust cake to be remained on filter media surface for better cleaning for existing technology usages. In other words, improperly cleaned filters generate high resistance (high pressure drop), which forces the suction fan to consume more energy to be able to generate required volume of the units serving to. The cost of avoidable energy consumption of such systems is calculated roughly less than 5 years of such a system initial capital investment. Beside, as the surface of the filters are not cleaned properly, the designers of such systems selects higher capacity / size filters than needed in order to avoid blocking of the filters and secure the functionality of systems. This leads companies to further increase their initial capital investments. From environmental perspective, existing filtering segments are subject to heavy mechanical force of compressed air. This leads to wears & tears as well as fatigue of the filter media. Several filter media's are torn out prior to periodical maintenance and replacement cycle with high probability. As a result, un-cleaned air is possibly released to atmosphere. On the other hand, as there are so many filter segments inside each filter unit, the identification of torn out (faulty) filter is almost impossible and leads the operations to replace all filter segments with quite long downtime needs of the system serving to. Immediate correction of such faulty filters turns to crucial & unexpected downtimes (min. 3 - 4 hours) to operations especially running in 7 days 24 hours. Adding on lots of regular operational reasons as well as a long time need to replace all filters, some factories may keep the filtering systems improper until soonest available maintenance time is arrived. This generates the risk and reveals the weakness of existing systems as the environmental pollutions in case of a single filter torn out condition. Moreover, the necessity of all filter segments replacement increases operational expenses vs. avoidable service and filter replacement costs.
From employee health and safety perspective, due to the physical restrictions of existing design, compressed air accumulation tank as well as control valves are generally located at the top of the filters (approx. 4-5 mt. in height). This location is both difficult to reach as well as not convenient in order to do proper maintenance from employee perspective. On the other side, this location also generates a risk of providing unsafe working condition from employer perspective. In result, existing risky working condition remains unavoidable from employee safety perspective with existing design. Moreover, existing system should be equipped with small compressed air storage tanks to be able to supply adequate amount of air to filters each time. These tanks have to be regularly checked by qualified inspectors once a year according to regulations. Due to difficult accessibility, proper physical & visual inspections may not be done securely; which is a kind of operational weakness of the design. On the other hand, this turns to an additional expense / cost to operations.
As a result, with below invention, there will be a wide range of improvement on existing design of air filtering units, which enables to eliminate above mentioned disadvantages as well as giving further functionalities to improve air cleaning & filtering systems.
OBJECT OF THE INVENTION
This invention is related with a new ¾lescopic cleaning system οη industrial air filter units covering all above mentioned needs by eliminating several disadvantages and improving the general performance of air cleaning systems.
One of the objectives of the invention is to reduce energy consumption of the system by eliminating compressed air usage necessity in filter's self-cleaning function through re utilizing the existing discharged / waste air of the system fan unit.
Another objective is to further reduce energy consumption of the system by reducing filter resistance (pressure drop) on filter units, which leads the suction fan to consume less energy to deliver required air amount for main system need. This is newlyenabied by means of a special Telescopic Cleaning Head movement in the filter unit that is applying reverse cleaning air at adequate level with balanced & well distributed manner throughout each cassette filter& media. By this function, filter media will continuously remain well cleaned leading to generate lower air passing resistance (pressure drop) and consume less energyvs. existing applications.
Another objective of the invention is to reduce initial capital investment need by ensuring better efficiency & performance vs. lower size. By ensuring to keep filter media's continuously well cleaned, smaller size of new units will support operations to reduce annual operational expenses by less filter media replacement needs as well as lower cost in initial investment. Another objective of the invention is to provide simple, accessible units enabling execution of maintenance activities during operation mode, which is encouraging to have reliable and continuous systems for downstream systems in factories. Another objective of the invention is to provide flexibility for quality control check of each filter via installing a sensor/camera on telescopic head. This will enable to detect faulty filter (burst, torn out etc.) individually among 100's of other filters. This will further drive an automatic warning system to inform operators. By identifying the faulty filter, operator will be able to replace such faulty filter in a short while and will help to avoid exhausting of un-cleaned air to atmosphere.
This invention covers industrial air cleaning filters and newly developed telescopic cleaning system as the benefits are generally mentioned above with below detailed working principles including; • Minimum 1 telescopic head going in & out through each filter blowing reversely low pressure air to the both side of cassette type filters to be able to clean the filter media
• An vertical linear shaft holding mentioned telescopic head and driving the unit up & down
• 2 horizontal linear shafts holding telescopic head as well as horizontal linear shaft driving parts forward & backward
• Air inlet to connect accelerated air (Air Jet) to Telescopic Cleaning Head
· Piping to bring low pressure air from the discharge end of the exhaust air fan to telescopic head
• A special conically narrowing unit on the piping generating necessary cleaning air for the system working as an accelerator with Bernoulli principle to speed up the air
Below is the detailed explanation of the invention with referring figurees for easier and clear understanding of all infrastructural and characteristic details with all mentioned advantages. Hence, it is requested to evaluate the invention through following expressions and figurees.
BRIEF EXPLANATION OF FIGURES
Figure 1 ; A perspective view of such filtering unit with the application of telescopic cleaning system referred in this invention with the preferred option of 4 level of filters
Figure 2 ; A perspective view of filtering unit with the application of telescopic cleaning system showing air flow direction with arrows
Figure 3 ; A sectional view 4 level up filtering unit with the application of telescopic cleaning system showing air flow direction with arrows
A perspective view of telescopic cleaning system referred in this invention. At this stage, telescopic head is CLOSED and at the level of 1st level of filter.
A perspective view of telescopic cleaning system referred in this invention. At this stage, telescopic head is OPEN and at the level of 1 st level of filter.
A perspective view of telescopic cleaning system referred in this invention. At this stage, telescopic head is OPEN and at the level of 1st level of filter bottom part.
A perspective view of telescopic cleaning system referred in this invention. At this stage, telescopic head is CLOSED and at the level of 1st level of filter bottom part.
A perspective view of telescopic cleaning system referred in this invention. At this stage, telescopic head is CLOSED and at the level of 2nd level of filter top part.
A perspective view of telescopic cleaning system referred in this invention. At this stage, telescopic head is OPEN and at the level of 2nd level of filter top part. REFERENCE NUMBERS
1. Filter Unit
2. Filter cassettes
2.1. 1st cassette filter
2.2. 2nd cassette filter
2.3. 3rd cassette filter
2.4. 4th cassette filter
3. Dirty Air chamber
4. Clean Air chamber
5. Clean Air exit channel
6. Chimney
7. Suction / exhaust fan
8. Telescopic head driving motor 10. Filter cleaning System
11. Telescopic Head
12. Horizontal linear shaft
13. Horizontal linear shaft
14. Vertical linear shaft
15. Air Jet supply line entrance
16. Piping
17. Air Accelerating Unit
18. Chimney connection
19. Filter Quality control sensor
A: Dirty Air inlet
B: Clean Air outlet DETAILED EXPLANATION OF INVENTION
Below explanation gives further details of mentioned telescopic cleaning system preferred structure with the objective of clear understanding of working principle with no limitation to claims.
With this invention, through developed mechanical structure; a dedicated cleaning system is structured with the help of telescopic unit working over 3 dimensional moving systems, which enables to effectively clean both side of filter surfaces. In parallel, system is enabled to use the discharge/exhaust air of the suction fan as cleaning media for filters with the help of conical mechanical structure that accelerates the air under Bernoulli principle generating air jet. Filter cleaning will be achieved through a reversed air application towards to the filter surfaces from a short distance application of air jet (low pressure / high speed)
This invention involves in internal cleaning system (so called Telescopic Cleaning System (10)) of centralized extraction and filtration unit (1) of industrial exhaust gases such as product dusts or process related emission gases that are generated during related process to be extracted from operational environment and to be discharged to atmosphere within the limits of environmental regulations.
Figure 1 shows the perspective view of a preferred application of telescopic cleaning system inside filtering system. Accordingly, filtering unit (1) is in the form of rectangular prismatic body having dirty air section (3), cassette type of filters (2) inside dirty air section (3), cleaned air section (4) aside dirty air section (3), exhaust air fan (7) generating the necessary suction air at required volume and pressure, chimney (6) blowing exhaust air to atmosphere and conical body accelerator (17) generating air jet as the usage of cleaning air for filters. Figure 2 is the perspective view of telescopic cleaning system (10) located inside filter body (1 ) at cleaned air section (4). There are cassette type of filters (2) distributed horizontally and vertically inside the dirty air section (3). According to the required capacity, the sizes of the dirty air section as well as the number of cassette filters (2) are defined. Figure 2 shows the direction of air flow with the help of arrows. Dirty air enters to the dirty side of the filter unit from main inlet (A), cleaned through cassette type of filters (2), travels to cleaned air section (4) and discharged from outlet (5) Figure 3 gives the side view of filter unit (1 ) showing the direction of air during cleaning process through cassette filters (2). Cassette types of filters (2) are in horizontally and vertically distributed. Dirty air enters from the 1st level of filter (2.1 ) and travels to downwards to 2.2 while a portion of dirt air is cleaned by 2.1 cassette filter. This continues until the last cassette filter (2.4). As a result, the particles in dirty air remains on the surface of cassette type of filters (2) and cleaned air flows to cleaned air section (4) and outlet (B). The necessary air suction power is generated with a fan located in between filter unit (1 ) and chimney (6). As explained above, through the cleaning process, dirty particles are accumulated on the surface of cassette type of filters (2). This condition necessitates the periodical cleaning of filters (2). Mentioned telescopic cleaning system (10) is developed for the cleaning of these filters with an mechanical movement & Air application inside cassette type of filters (2).
Figure 4 gives the perspective view of telescopic cleaning system (10). Accordingly, system comprises of 2 horizontal movement profiles (12 & 13), 1 vertical movement profile (14) and telescopic head (1 1 ). Vertical profile is connected to horizontal profiles (12 (13) and is able move in the direction of X-axes. Telescopic head (1 1 ) is located on vertical profile (14) and is able to up & down in the direction of Y-axes. At figure 4, telescopic head (11) is in closed position. Telescopic head (11) is comprised of rectangular profiles with the variety of dimensions allowing each to enter to following profile size. These profiles guide the cleaning air till the end of head. At closed position, all such profiles remains within each other and occupies the minimum dimension of the telescopic head (11)
Telescopic head (11) is moved forward & backward in the direction of Z axes with a driving motor (8). Accordingly, this telescopic head (11) is able to move in 3 direction as axes of x, y and z as;
• Movement in axes Y is generated with the movement of vertical profile (14)
• Movement in axes X is generated with the movement of horizontal profiles (12 & 13)
· Movement in axes Z is generated with the movement of driving motor (8).
Telescopic head (11) is in closed position located in the cleaned air section (4) of filtering unit (1). Air jet required for filter cleaning is received through conical accelerator (1) from the outlet of exhaust air fan. There is a proper piping (16) till air inlet (15) of telescopic head. There is also a conical accelerator (17) piece on this piping, which is speeding up the exhaust air (high volume & low pressure) until air jet generation. Moreover, there is a filter quality control sensor (19) at the front of telescopic head (10). This sensor (19) is able to monitor the dust ratio (dirtiness level of cleaned air) via an optical eye and is able to compare the quality of air with reference value. In case of exceeding value is recognized, it triggers an alarm signal for operators as there is a leak at that filter. As the telescopic head (11) moves in/out for each filter, this sensor (19) controls each cassette filter (2) quality and reports the results as report or alarm purpose. Working principle of Telescopic cleaning system (10) is as follows:
Particles carried with dirty air entering from inlet (A) is accumulated on the surface of cassette filters (2) located in dirty air section (3) of filter unit and leads to fill up cells of filter media's on cassette filters(2). At this situation, Differential pressure sensor located in between dirty & clean air section of filter unit (1 ) generates the trigger signal to start the operation of telescopic head (10). In figure 4, telescopic head is in closed position and there is no air supplied to unit means air jet entrance is closed (15). Once the signal for filter dirtiness is generated, telescopic head (1 1 ) moves ahead in the axis of Z with the help of driving motor (8). In figure 5, telescopic head ( 1 ) is in open position and extended until the top end position of cassette no 2.1. Once the position is arrived, air entry (15) is opened in telescopic head (1 1 ). Afterwards, telescopic heads starts to move downwards (in the direction of Y axes) inside cassette filter (2) and cleans the whole surface of the filter (2) with reversely applied accelerated air.
In figure 6, telescopic head (1 1 ) is in open position and at the bottom end of cassette filter (2.1 ). Afterwards, air jet application is turned off and telescopic head is closed as shown in figure 7.
In figure 8, telescopic head ( 1 ) is moved towards to following cassette filter (2.2) in the direction of Y axes. Consequently, above cycle is repeated as initiated in figure 9. As explained above, following cassette filters (2.3 & 2.4) are also cleaned with the same principle. Afterwards, telescopic head (1 1 ) as well as vertical driving unit (14) is moved to adjacent filter raw by the help of horizontal driving units (12 & 13). By this movement, all other filter's cleaning is repeated.
During each cleaning cycle, filter quality control sensor (19) at the front of telescopic head (10) checks the air quality and compares with reference value. In case of exceeding value is recognized, sensor identifies the filter as faulty filter and triggers an alarm signal. Through a monitoring program with a PLC shows schematically the faulty filter to operators. The most important benefit of invented telescopic filter cleaning system (1 ) is to save energy by eliminating the usage of compressed air for filter cleaning purpose. In new design, necessary cleaning air for filter's (2) cleaning is generated & received from the exhaust of suction fan on the way to discharge to atmosphere through a connection and accelerating unit (17).
With this solution, regular units of existing design as compressed air tanks, control valves, automatic controllers and lots of cabling are avoided and system becomes more simplified and reliable. This helps reducing the risk of sub functions faults from factories main operational systems. Simplified structure brings also benefit as to reduce operational expenses as well as initial investment sizes of a factory. It's been avoided the necessity of compressed air generation plants in order to run such filtering systems and also avoids further investment needs. Telescopic head (1 1 ) is able to move in 3 dimensionaldirections. With this functionality, telescopic head reaches to entire surface of each filter section effectively and clean the surfaces completely & properly. On the other side, with the help of locating a controlling / monitoring sensor on telescopic head, each filter is able to be controlled individually and any unexpected faults can be detected immediately. By this option, faulty filter (2) can be identified & replaced easily and in a short downtime of supporting factory operation and avoids discharging un-cleaned air to atmosphere.
Telescopic head (1 1 ) is able apply cleaning air to the full surface of cassette filters (2) at the required amount with balanced distribution. By this solution, cassette filters (2) remains clean during the entire life time and generates relatively less resistance (pressure drop) than existing filtering systems. This means suction fan (6) runs at lower power consumption while providing required air volume to main systems being served. Less energy consumption turns to important criteria for new system benefit recognition. With this invention, it has been provided a simplified system with easy accessibility and maintenance opportunity during normal operation. With this functionality, factory main operations are supported with downtime free sub systems. This invention can be applied to all such systems, which either require an on line air cleaning system for process feeding like energy plants engine & turbine inlet air or polluted air to be discharged from process to be cleaned prior to send atmosphere.

Claims

1. The invention is related with the internal cleaning system of centralized extraction and filtration units (1) of industrial exhaust gases such as product dusts or process related emission gases that are generated during related processes to be extracted from operational environment and to be discharged to atmosphere within the limits of environmental regulations characterized in that; it comprises;
• a telescopic cleaning System (10), which avoids the usage of additional Compressed Air supply by reutilizing the available exhausted air in the system through an air accelerating unit and applying through the entire surface of filter cassettes (2) mechanically with more efficiently & with less energy consumption,
• a telescopic Cleaning Head (11) that is extendible as the length of cassette filters (2) by the help of mechanical driving motor (8) travels mechanically at the inside of cassette filters (2) located at the dirty side of filter unit (3) and applies accelerated air (Air Jet) reversely to the both side of cassette filters (2)
• a vertical linear shaft (14) holding mentioned telescopic head (11) driving the unit up & down in the axis of Y
• 2 horizontal linear shafts (12 & 13) holding telescopic head as well as vertical linear shaft (14) driving these parts forward & backward in the axis of X
• an air inlet (15) to connect accelerated air (Air Jet) to Telescopic Cleaning Head (1 )
• a piping (16) to transfer low pressure air from the discharge end (18) of the exhaust air fan (7) until the air inlet (15) of Telescopic Cleaning Head (11)
• a special conically narrowing unit (17) on the said piping (16) generating required cleaning air receiving from the connection of exhaust fan discharge (18) working as an accelerator with Bernoulli principle to speed up the air to be supplied to Telescopic Cleaning Head (11)
2.A telescopic Cleaning System (10) according to claimi , characterized in that, it comprises at least one filter quality control sensor (19) with the capability of measuring air quality in terms of dust content & dirtiness level, comparing with the reference values and able to generate signal in order to only identify potential faulty cassette filter (2) in filter unit (1).
PCT/TR2014/000032 2013-02-26 2014-02-03 Telescopic cleaning system for exhaust air filters WO2014133474A2 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
EP14722396.0A EP2961511A2 (en) 2013-02-26 2014-02-03 Telescopic cleaning system for exhaust air filters
US14/770,257 US9662604B2 (en) 2013-02-26 2014-02-03 Telescopic cleaning system for exhaust air filters

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
TR2013/02290 2013-02-26
TR201302290 2013-02-26

Publications (2)

Publication Number Publication Date
WO2014133474A2 true WO2014133474A2 (en) 2014-09-04
WO2014133474A3 WO2014133474A3 (en) 2014-11-13

Family

ID=50680102

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/TR2014/000032 WO2014133474A2 (en) 2013-02-26 2014-02-03 Telescopic cleaning system for exhaust air filters

Country Status (3)

Country Link
US (1) US9662604B2 (en)
EP (1) EP2961511A2 (en)
WO (1) WO2014133474A2 (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2017010957A1 (en) 2015-07-14 2017-01-19 Adeba Muhendislik Danismanlik Halkla Iliskiler Insaat Sanayi Ve Ticaret Anonim Sirketi Exhaust air dust filters with telescopic cleaning system applying internal bi-directional air flow principle
US20180304185A1 (en) * 2015-10-20 2018-10-25 Danieli Corus B.V. Process and filter device for cleaning furnace gas
EP3838377A1 (en) * 2019-12-19 2021-06-23 Nederman Holding AB A filter system and a sensor arrangement configured to monitor performance of filter elements

Families Citing this family (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11446196B2 (en) 2018-03-26 2022-09-20 Augustine Biomedical + Design, LLC Relocation module and methods for surgical equipment
US11291602B2 (en) 2018-03-26 2022-04-05 Augustine Biomedical + Design, LLC Relocation module and methods for surgical equipment
US11160710B1 (en) 2020-05-20 2021-11-02 Augustine Biomedical + Design, LLC Relocation module and methods for surgical equipment
US10507153B2 (en) 2018-03-26 2019-12-17 Augustine Biomedical + Design, LLC Relocation modules and methods for surgical field
US11432982B2 (en) 2018-03-26 2022-09-06 Augustine Biomedical + Design, LLC Relocation module and methods for surgical equipment
US11219570B2 (en) * 2018-03-26 2022-01-11 Augustine Biomedical + Design, LLC Relocation module and methods for surgical equipment
US11426318B2 (en) 2020-05-20 2022-08-30 Augustine Biomedical + Design, LLC Medical module including automated dose-response record system
CN111412572A (en) * 2020-04-07 2020-07-14 珠海格力电器股份有限公司 Air conditioning unit, control method thereof and air conditioning equipment
CN116480501B (en) * 2023-03-07 2023-10-27 华能南京燃机发电有限公司 Air filter for diesel engine

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4220459A (en) * 1978-10-16 1980-09-02 Wheelabrator-Frye Inc. Filter device with top access to filter bag
DE3336918A1 (en) 1983-10-11 1985-04-25 Jürgen 2361 Tensfeld Willert Device for the cleaning of air filters
IT1249087B (en) * 1991-03-29 1995-02-11 Josef Prenn AIR FILTER CLEANING DEVICE
US20090107337A1 (en) * 2007-10-31 2009-04-30 Huong Van Vu Automatic pulse cartridge cleaning system and method
DE102010010838A1 (en) 2010-03-10 2011-09-15 Dantherm Filtration Gmbh Filtering apparatus i.e. pocket filter, for separating dust from e.g. smoke in wood or oil-fired power plant, has line comprising pipe section with variable length, where section is swingably fixed at gas inlet and gas inlet port

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
None

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2017010957A1 (en) 2015-07-14 2017-01-19 Adeba Muhendislik Danismanlik Halkla Iliskiler Insaat Sanayi Ve Ticaret Anonim Sirketi Exhaust air dust filters with telescopic cleaning system applying internal bi-directional air flow principle
US10384157B2 (en) 2015-07-14 2019-08-20 Adeba Muhendislik Danismanlik Halkla Iliskiler Insaat Sanayi Ve Ticaret Anonim Sirketi Exhaust air dust filters with telescopic cleaning system applying internal bi-directional air flow principle
US20180304185A1 (en) * 2015-10-20 2018-10-25 Danieli Corus B.V. Process and filter device for cleaning furnace gas
TWI727978B (en) * 2015-10-20 2021-05-21 荷蘭商達涅利康力斯公司 Process and filter device for cleaning furnace gas
EP3838377A1 (en) * 2019-12-19 2021-06-23 Nederman Holding AB A filter system and a sensor arrangement configured to monitor performance of filter elements

Also Published As

Publication number Publication date
EP2961511A2 (en) 2016-01-06
US9662604B2 (en) 2017-05-30
US20160001213A1 (en) 2016-01-07
WO2014133474A3 (en) 2014-11-13

Similar Documents

Publication Publication Date Title
US9662604B2 (en) Telescopic cleaning system for exhaust air filters
KR100861778B1 (en) An air conditioner with auto cleansing system to air-filter and controlling method
CN102283612B (en) Central dust collection system with constantly-adjustable negative pressure
CN110116711B (en) Vehicle cleaning system
CN108979863B (en) Air intake system
CN202768493U (en) Mechanical seal cooling system
KR20080086633A (en) Dust collector
US20150114229A1 (en) Method and system for online replacement of gas turbine inlet air filter elements
CN210332030U (en) Filter screen cleaning and replacing equipment for flue gas pipeline
JP2007130566A (en) Breakage sensing method of filter cloth of dust collector
US20090038640A1 (en) Multi-stage metal cleaner
US20210245191A1 (en) Work Facility
CN115009885B (en) Fault monitoring method and device for ore tank discharging and dust removing system
CN114534383B (en) Pulse blowing control method
CN104785054A (en) Dust particle dust collector
CN102755790B (en) A kind of ammonium polyorthovanadate powder collector
CN104208955A (en) Deduster provided with underlying blowing system and capable of clearing away ashes offline without offline valve
CN105727641A (en) Self-cleaning air filter
KR101223900B1 (en) Continuous Galvanizing Line srtip for cooling water of zn powder filtration
CN217963187U (en) Artificial visual recognition device for coating of electrostatic high-resistivity coating
CN217662151U (en) Filtering component and air purification processing apparatus
CN205627363U (en) Automatically cleaning air cleaner
EP3031507A1 (en) Stationary filter bags regeneration unit with individual under-pressure turn-off
CN215748297U (en) A wiper mechanism and edging machine for edging machine
KR101623335B1 (en) Impinger control system

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 14722396

Country of ref document: EP

Kind code of ref document: A2

WWE Wipo information: entry into national phase

Ref document number: 2014722396

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 14770257

Country of ref document: US