A plasma arc torch having new electronic circuit concepts wherein main current regulated power means regulates the pilot current prior to main arc transfer. Further, the circuit may contain two inductors to which DC current initially flows but is interrupted upon main arc transfer such that one inductor maintains the pilot arc while the current in the second inductor forces the establishment of the transferred arc. Also, advantages are presented in pulsing the cutting arc as well as pulsing the pilot arc.

Patent
   RE37608
Priority
Apr 08 1991
Filed
Dec 08 1994
Issued
Mar 26 2002
Expiry
Mar 26 2019
Assg.orig
Entity
Large
7
7
all paid
1. A plasma torch unit of the type having a torch assembly adapted to operate on a work member and having a torch electrode, a pilot electrode, and means for providing an ionized gas therebetween, a current regulated power means electrically connected between said electrodes and work member to supply regulated charge current to the electrode electrodes and work member during torch usage, pilot arc control means for controlling an electric arc between said electrodes and pulsing the same during torch usage, said pilot arc control means electrically connected between said current regulated power means, the electrodes, and the work member, first circuitry of the electrical connection provided between the power means and the work member, second circuitry of the electrical connection provided between the power means and the torch electrode, and third circuitry provided between the power means, pilot arc control means, and the pilot electrode, disconnect means in said second third circuitry between the power means and said pilot electrode, current sensing means for sensing current in said first circuitry and generating a signal in response to torch usage, and an inductor means in series with said disconnect means and the said pilot electrode, said current sensing means operating said disconnect means with a feedback signal to pulse the generated electric arc between the electrodes, and diode means connecting between said second and third circuitry to regulate provide a path for the conduct of current to the pilot electrode.
0. 9. A plasma torch unit of the type having a torch assembly adapted to operate on a workpiece, and having a torch electrode, a pilot electrode, and means for providing an ionized gas therebetween, the torch unit characterized by:
a current regulated power supply electrically connected between the electrodes and the workpiece to supply regulated current to the torch electrode and the pilot electrode for the pilot arc, and to the torch electrode and the workpiece for the main arc;
a pilot arc control circuit connected between said power supply and the pilot electrode and including a first pilot inductor and a diode that temporarily maintains pilot current when said pilot arc control circuit is open circuited;
a second inductor connected between said power supply and said torch electrode; and
a disconnect circuit selectively connected between said power supply and said pilot inductor and said diode for pulsing the generated electric arc between the electrodes such that when said disconnect circuit is open circuited said pilot inductor and said diode remain connected between the torch electrode and the pilot electrode temporarily supplying pilot current, said disconnect circuit connected to said pilot arc control circuit and operable to open circuit said pilot arc control circuit to generate an induced voltage in the second inductor which is greater than the open circuit voltage thereby forcing current to flow between the workpiece and the torch electrode to help initiate the transfer of the pilot arc into the main arc;
wherein said regulated current for the pilot arc is pulsed.
0. 26. A plasma torch unit of the type having a torch assembly adapted to operate on a work member and having
a torch electrode a pilot electrode, and means for providing an ionized gas therebetween;
a current regulated power means for supplying regulated current to the work member and torch electrode during torch usage, said current regulated power means electrically connected to the work member by first circuitry provided between the power means and the work member and electrically connected to the torch electrode by second circuitry provided between the power means and the torch electrode;
pilot arc control means for controlling an electric arc between the torch electrode and the pilot electrode, said pilot arc control means electrically connected between the power means and the pilot electrode and electrically connected to the pilot electrode by third circuitry provided between the control means and the pilot electrode, said pilot arc control means including disconnect means between the power means and the pilot electrode;
current sensing means for sensing current in said first circuitry and generating a feedback signal in response to torch usage; and
diode means connecting between said second and third circuitry to provide a path for the conduct of current to the pilot electrode; the unit characterized by:
first inductor means coupled to said pilot arc control means for temporarily sustaining the pilot current when said disconnect means is open;
second inductor means provided within the power means for forcing the establishment of the transferred arc; and
an interconnect means between the current sensing means and the disconnect means so that said current sensing means operates said disconnect means with the feedback signal.
0. 10. A plasma torch unit of the type having a torch assembly adapted to operate on a work member and having
a torch electrode a pilot electrode, and means for providing an ionized gas therebetween;
a current regulated power means for supplying regulated current to the work member and torch electrode during torch usage, said current regulated power means electrically connected to the work member by first circuitry provided between the power means and the work member and electrically connected to the torch electrode by second circuitry provided between the power means and the torch electrode;
pilot arc control means for controlling an electric arc between the torch electrode and the pilot electrode, said pilot arc control means electrically connected between the power means and the pilot electrode and electrically connected to the pilot electrode by third circuitry provided between the control means and the pilot electrode, said pilot arc control means including disconnect means between the power means and the pilot electrode;
current sensing means for sensing current in said first circuitry and generating a feedback signal in response to torch usage; and
diode means connecting between said second and third circuitry to provide a path for the conduct of current to the pilot electrode; the unit characterized by:
first inductor means coupled to said pilot arc control means for temporarily sustaining the pilot current when said disconnect means is open;
second inductor means provided within the power means for forcing the establishment of the transferred arc by way of an induced voltage greater than the open circuit voltage when the disconnect means is opened thereby forcing current to flow between the workpiece and the torch electrode; and
an interconnect means between the current sensing means and the disconnect means so that said current sensing means operates said disconnect means with the feedback signal.
2. The torch unit of claim 1 and wherein said diode means providing for conduct of current from the current regulated power means only towards the first inductor means to temporarily sustain the pilot current when said disconnect means is open.
3. The torch unit of claim 2 and further including resistor means connected between said first and second circuitry and generating a voltage drop related to the pilot demand and generated pulse duration then increasing the electrode to workpiece voltage to increase the transfer height.
4. The torch unit of claim 1 and wherein a second inductor means provided within the power means and responsive to the current detected by the current sensing means to provide a pulsing of the generated main arc between the torch electrode and the metal work during torch usage high frequency filtering of the power means.
5. The torch unit of claim 4 and wherein said current sensing means generating a signal to the second inductor comparator to regulate the current generated by said power means and sustaining of the pulsing of the arc between the torch electrode and the work member.
6. The torch unit of claim 5 and wherein the current generated of the current regulated power means also being pulsed by the second inductor .
7. The torch unit of claim 6 and wherein said current sensing means operating to provide a pulsed pilot arc.
8. The torch unit of claim 6 and wherein said current sensing means operating to provide a pulsed main arc.
0. 11. The torch unit of claim 10 wherein said diode means provides conduct of current from the current regulated power means only towards the inductor means to temporarily sustain the pilot current when said disconnect means is open.
0. 12. The torch unit of claim 11 further including resistor means electrically connected between said first circuitry and the disconnect means generating a voltage drop related to the pilot demand then increasing the electrode to work member voltage to increase the transfer height.
0. 13. The torch unit of claim 10 wherein the second inductor means provided within the power means is responsive to the current detected by the current sensing means to provide high frequency filtering of the power means.
0. 14. The torch unit of claim 10 wherein said current sensing means generates a signal to a comparator to regulate the current generated by said power means.
0. 15. The torch unit of claim 10 wherein the current generated by the current regulated power means is being pulsed.
0. 16. The torch unit of claim 10 wherein said current sensing means operates to provide a pulsed pilot arc.
0. 17. The torch unit of claim 10 wherein said current sensing means operates to provide a pulsed main arc.
0. 18. The torch unit of claim 10 wherein:
the current regulated power means is electrically coupled between the electrodes and the work member to supply regulated current to the torch electrode and the pilot electrode for the pilot arc, and to the torch electrode and the work member for the main arc; and
the disconnect means comprises a disconnect circuit coupled to said pilot arc control circuit and operable to open circuit said pilot arc control circuit to generate an induced voltage which is greater than the open circuit voltage in a second inductor means coupled between said power means and said torch electrode to help initiate the transfer of the pilot arc into the main arc.
0. 19. The plasma torch unit of claim 18, wherein said pilot arc control circuit includes the inductor means for temporarily maintaining pilot current when said disconnect circuit is open.
0. 20. The plasma torch unit of claim 18 wherein the current sensing means is characterized by a current sensor coupled to the work member and to said disconnect circuit, said current sensor generating a signal in response to current flowing in the work member to actuate said disconnect circuit.
0. 21. The plasma torch unit of claim 18 wherein said regulated current for the pilot arc is pulsed.
0. 22. The plasma torch unit of claim 18, further characterized by:
a pulsing circuit coupled to said power means for pulsing the pilot arc current.
0. 23. The plasma torch unit of claim 22 wherein said pulsing circuit pulses the main arc current.
0. 24. The plasma torch unit of claim 10 wherein:
the current regulated power means coupled between the electrodes and the work member supplies regulated current to the torch electrode and the pilot electrode for the pilot arc, and to the torch electrode and the work member for the main arc; and
further characterized by a pulsing circuit coupled to the power means and operable to pulse the current for the pilot arc.
0. 25. The plasma torch unit of claim 24 wherein said pulsing circuit is operable to pulse the current for the main arc.
0. 27. The plasma torch unit of claim 26 wherein the disconnect circuit is connected to said pilot arc control circuit and operable to open circuit said pilot arc control circuit to generate an induced voltage in the second inductor which is greater than the open circuit voltage thereby forcing current to flow between the workpiece and the torch electrode to help initiate the transfer of the pilot arc into the main arc.
0. 28. The plasma torch unit of claim 26, further characterized by:
a current sensor connected to the workpiece and to said disconnect circuit, said current sensor generating a signal in response to current flowing in the workpiece to actuate said disconnect circuit.
0. 29. The plasma torch unit of claim 27, further characterized by:
a pulsing circuit connected to said power supply for pulsing the pilot arc current.
0. 30. The plasma torch unit of claim 29, wherein said pulsing circuit pulses the main arc current.

The subject matter of this application is related to and comprises a continuation-in-part of the patent application having Ser. No. 07/682,727, filed on Apr. 8, 1991

With reference to the drawings, and FIG. 1 in particular, there is shown a schematic wiring diagram for one prior art plasma arc torch, generally referred to by the reference numeral 10. Torch 10 includes torch tip electrode 12 or torch electrode as is known in the art and annular torch pilot electrode 14 or tip as is known in the art spaced from tip torch electrode 12. An electronic pilot circuit P connected between tip torch electrode 12 and pilot electrode 14 provides an electric potential between electrodes 12 and 14 to create a pilot arc which heats a supplied gas such as nitrogen causing it to ionize as is well known in the art. FIG. 1 shows prior art circuit C which uses a resistively regulated pilot arc having a current regulated power means 16 and a pilot regulator means 18 including a disconnect means 20 in series with a resistor 22. A high frequenty pilot initiation means 24 is positioned in series with pilot regulator means 18 and may be inserted in the circuit adjacent either electrode 12 or electrode 14 as shown in FIG. 1 to initiate investigation ionization of plasma gas to commence pilot operations.

A current sensing means 26 is connected in parallel with pilot regulator means 18 and connects with the metal to be worked at series with work 28 in main circuit M. When tip torch electrode 12 is placed sufficiently close to the metal work 28 the arc will transfer to the work 28 causing current to flow through main circuit M and current sensing means 26 will sense the current differential and act to disconnect pilot regulator means 18 by opening pilot regulator means 18 by opening its disconnect means 20.

One problem associate with the prior art circuit 10 of FIG. 1 is that the circuit voltage of current regulated power means 16 must be large compared with the torch piloting voltage between tip torch electrode 12 and pilot electrode 14 to allow the pilot regulator means 18 to perform the function of a current source during pilot opration. This causes circuit 10 to be inefficient, power being dissipated as heat in pilot regulator means 18.

FIG. 2 shows another prior art circuit 10' similar to that of FIG. 1 in that it also contains electronically controlled pilot regulator means 18' in pilot circuit P' and a parallel main circuit M'. The circuit 10' of FIG. 2 also includes similar current operated power means 16', tip torch electrode 12', pilot electrode 14', current sensing means 26', pilot initiation means 24' (alternatively positioned as shown) and work piece or member 28'. The difference between circuit 10' of FIG. 2 and circuit 10 of FIG. 1 is the provision of circuit connection on the opposite side of power means 16 from current means 26' connected to pilot regulator means 18' in order to provide a second current regulated control loop, one for pilot arc operation and one for transferred main arc cutting that FIG. 2 uses an active loop with feedback, either linear (FIG. 2a) or switching (FIG. 2b) regulator, while FIG. 1 uses a passive current limiting means (resistor).

FIG. 2A shows one prior art pilot regulating circuit 18'a wherein the pilot is linearly regulated; that is, the pilot current is regulated against a set demand means 3d by varying the conductance of a linear element 3a.

FIG. 2B shows another prior art pilot regulating 18'b wherein the pilot is switch regulated. That is, the pilot is regulated against a set demand 3d' to vary the duty cycle of a switching element 3g within a feedback loop. Either scheme can tightly regulate the pilot arc against AC line variations and against plasma gas in use, however, both add parts count and cost to the torch and are relatively inefficient.

FIG. 3 shows the preferred plasma torch circuit 100 in accordance with the principles of the present invention. Circuit 100 includes torch tip electrode 112, pilot electrode 114, current regulated power means 116, pilot regulator means 118, alternatively positionable pilot initiation means 124, current sensing means 126, and metal work 128. Pilot regulator means 118 comprises an electronic disconnect 120 in series with a current smoothing and energy storage inductor 130, and a free-wheeling diode 132 connected in parallel with disconnect 120 and in series with inductor 130.

According to the invention, current sensing means 126 not only controls disconnect 120 through line 134, but also sends a current signal to comparator 136 through line 138 which controls the output of power means 116.

During torch piloting, disconnect means 120 is "on" and is in its saturated state. The voltage seen between the metal work piece 128 and torch tip electrode 112 is essentially the voltage at which the torch maintains the pilot arc determined by torch geometry and the plasma gas used. This voltage is considerably lower than the open circuit voltage used in prior art torch circuits. When the torch is brought sufficiently close to metal work piece 128, ionization current is detected by current sensing means 126. In response to sensing the working current, sensing means 126 acts through line 134 to force disconnect means 120 to its "off" or high impedance state. At the moment of arc trnasfer to work piece 128, the pilot arc is maintained by current flowing through energy storage inductor means 130 and the free-wheeling diode means 132. At the same instant, the current flowing in through the smoothing inductor means 140 of power regulator 116 is forced to flow between the workpiece 128 and torch tip electrode 112, . At the moment of disconnect, disconnect 120 open circuits the inductor means 140 to generate a transient voltage between the torch electrode and the workpiece using the stored energy in the inductor means 140, greatly in excess of the pilot voltage, that initiates and initially supports the transfer to the main arc, thereby maintaining the transferred plasma arc. When the energy is dissipated in the storage inductor means 130, the pilot arc between torch tip electrode 112 and pilot electrode 114 self extinguishes. When transfer is detected in current sensing means 126 the pilot demand means 1e is changed and the power means 116 changes the power to that demanded for the torch operation on work piece 128.

A further embodiment of the present invention resides in additionally pulsing the pilot current.

Instead of maintaining a constant pilot demand means (1e), the demand may be pulsed between two (or more levels) at various frequencies and duty cycles. During this pulsing the pilot arc is maintained throughout and no high frequency arc initiation means 124 is required, as would be the case for a `blown-out` pilot.

This pulsing feature offers several advantages. First, higher standoff instances between the work metal 128 and torch tip electrode 112 at the moment of transfer. Second, a tip cleaning action is observed i.e. during plasma cutting molten metal is blown onto the tip face where it adheres in particulate form. At the same time, electrode material is removed from the torch electrode and adheres to the inside tip. Both forms of contamination can cause the tip orifice to become distorted. When the pilot arc is pulsed following each cut significantly more power is dissipated in the tip torch electrode 112 for the pulse duration. This thermal modulation is believed to be responsible for dislodging metal particles from the inner and outer tip surfaces.

With reference to FIG. 4, there is shown an alternative circuit wherein a small resistor 142 is added in series with the pilot means 118. This modification can further improve the obtainable standoff on some plasma torch designs. The pilot current (Ip) flows through resistor 142 to generate a voltage drop (Ip×R) which is in series with the pilot voltage measured between torch tip electrode 112 and pilot electrode 114. Thus the open circuit voltage between the metal work piece means 128 and the pilot electrode means 114 is increased, assisting the standoff at transfer. The power dissipated in this resistor is then a function of the pilot demand and pulse duration.

A further alternative circuit provides a pulsing cutting or main arc. From the invention pulsing the pilot arc before transfer it is clear that it is possible to pulse the means 1e, after the arc has transferred and while the transferred plasma arc is cutting the work metal means 128. This provision of pulsing the main arc offers several potential advantages. First, by selecting the appropriate pulse rate and duty cycle in relation to the cutting variables, it will offer a proportionally greater arc cutting capacity/penetration for a small increase in power consumption. Second, it allows the tip orifice size to be reduced in comparison to a conventional plasma cutting system operating in response to a DC demand level. This will, allow, a smaller focussed plasma column and result in smaller kerf widths. Plasma arc stability may also improve as a result of pulsing.

FIGS. 5A and B are a more specific electronic circuit schematic diagram embodying some of the concepts of the invention as enumerated above. Like reference numerals appearing in FIG. 5 refer to like circuit components or group of components as appear in FIGS. 3 and 4. Reference numberal 120c depicts the control circuity for disconnecting means 120. The power supply means is not shown in FIG. 5.

It can therefore be seen that the novel circuity shown in FIGS. 3 through 5 fulfills the objects and provides the advantages set forth above. Inasmuch as numerous changes could be made to the circitry without departying from the spirit and scope of this invention, the scope of the invention is to be determined solely by the language of the following claims as interpreted by the patent laws and in particular the doctrine of equivalents.

Tatham, David A., Solley, Dennis J.

Patent Priority Assignee Title
6794601, Sep 05 2002 Victor Equipment Company Plasma arc torch system with pilot re-attach circuit and method
7022935, Dec 08 2003 Illinois Tool Works Inc.; Illinois Tool Works Inc Plasma-cutting torch with integrated high frequency starter
7034245, Jun 29 2004 THE ESAB GROUP, INC.; ESAB GROUP, INC , THE Systems and methods for controlling pilot arc current in an arc cutting or welding machine
8946583, May 26 2011 Retro Systems, LLC Angled cut height control system for a plasma arch torch
8946584, May 26 2011 Retro Systems, LLC Angled cut height control system for a plasma arch torch
9833860, Jul 22 2016 Lincoln Global, Inc. System and method for plasma arc transfer for plasma cutting
9878395, Mar 14 2008 Illinois Tool Works Inc.; Illinois Tool Works Inc Method for detecting current transfer in a plasma arc
Patent Priority Assignee Title
4280042, Feb 01 1979 L'Air Liquide, Societe Anonyme pour l'Etude et l'Exploitation des; La Soudure Autogene Francaise Process and installation for automatic ignition of a plasma cutting torch
4324971, Jul 09 1980 Thermal Dynamics Corporation Torch height acquisition using arc transfer
4598191, Apr 04 1984 L'Air Liquide, Societe Anonyme pour l'Etude et l'Exploitation Procedes Very low power plasma arc cutting equipment
4839499, Jun 13 1988 POWCON INCORPORATED, A CORP OF DE System for supplying power to different cutting torches
4943699, Jun 09 1988 PowCon Inc. System for supplying power
5036176, Mar 24 1988 Kabushiki Kaisha Komatsu Seisakusho Plasma arc cutter and method of controlling the same
JP675791,
///////////////////////////////////
Executed onAssignorAssigneeConveyanceFrameReelDoc
Dec 08 1994Thermal Dynamics Corporation(assignment on the face of the patent)
Jun 25 1996Thermal Dynamics CorporationBankers Trust CompanyAMENDMENT TO MEMORANDUM OF SECURITY AGREEMENT PAT0083280558 pdf
May 22 1998Thermal Dynamics CorporationABN AMRO BANK N V SECURITY AGREEMENT0093960582 pdf
May 23 2003Thermal Dynamics CorporationGENERAL ELECTRIC CAPITAL CORPORATION, AS AGENTSECURITY INTEREST SEE DOCUMENT FOR DETAILS 0141020405 pdf
May 23 2003Thermal Dynamics CorporationDEUTSCHE BANK TRUST COMPANY AMERICAS CORPORATE TRUST & AGENCY SERVICESASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS 0136990038 pdf
Feb 05 2004DEUTSCHE BANK TRUST COMPANY AMERICASThermal Dynamics CorporationRELEASE OF SECURITY AGREEMENT0151050936 pdf
Aug 14 2009Thermal Dynamics CorporationRegions BankPATENT SECURITY AGREEMENT0231630056 pdf
Jun 30 2010Regions BankThermal Dynamics CorporationRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0250390367 pdf
Dec 03 2010Thermal Dynamics CorporationU S BANK NATIONAL ASSOCIATION, AS COLLATERAL TRUSTEESECURITY AGREEMENT0254410313 pdf
Dec 03 2010Thermal Dynamics CorporationGENERAL ELECTRIC CAPITAL CORPORATION, AS AGENTSECURITY AGREEMENT0254510613 pdf
Apr 14 2014U S BANK, NATIONAL ASSOCIATIONVICTOR TECHNOLOGIES GROUP, INC RELEASE OF SECURITY INTEREST0333700775 pdf
Apr 14 2014General Electric Capital CorporationStoody CompanyRELEASE OF SECURITY INTEREST0334210785 pdf
Apr 14 2014General Electric Capital CorporationVictor Equipment CompanyRELEASE OF SECURITY INTEREST0334210785 pdf
Apr 14 2014General Electric Capital CorporationThermal Dynamics CorporationRELEASE OF SECURITY INTEREST0334210785 pdf
Dec 19 2014Thermal Dynamics CorporationVictor Equipment CompanyMERGER SEE DOCUMENT FOR DETAILS 0377110952 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHCOLFAX CORPORATIONRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHHOWDEN AMERICAN FAN COMPANYRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHSHAWEBONE HOLDINGS INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHStoody CompanyRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHTotal Lubrication Management CompanyRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHVictor Equipment CompanyRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHVICTOR TECHNOLOGIES INTERNATIONAL, INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHIMO INDUSTRIES INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHHOWDEN NORTH AMERICA INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHCONSTELLATION PUMPS CORPORATIONRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHClarus Fluid Intelligence, LLCRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHALCOTEC WIRE CORPORATIONRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHALLOY RODS GLOBAL INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHANDERSON GROUP INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHEsab ABRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHTHE ESAB GROUP INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHDISTRIBUTION MINING & EQUIPMENT COMPANY, LLCRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHHOWDEN GROUP LIMITEDRELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHHOWDEN COMPRESSORS, INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Jun 05 2015DEUTSCHE BANK AG NEW YORK BRANCHEMSA HOLDINGS INC RELEASE BY SECURED PARTY SEE DOCUMENT FOR DETAILS 0359030051 pdf
Date Maintenance Fee Events
Jun 08 2004M1553: Payment of Maintenance Fee, 12th Year, Large Entity.


Date Maintenance Schedule
Mar 26 20054 years fee payment window open
Sep 26 20056 months grace period start (w surcharge)
Mar 26 2006patent expiry (for year 4)
Mar 26 20082 years to revive unintentionally abandoned end. (for year 4)
Mar 26 20098 years fee payment window open
Sep 26 20096 months grace period start (w surcharge)
Mar 26 2010patent expiry (for year 8)
Mar 26 20122 years to revive unintentionally abandoned end. (for year 8)
Mar 26 201312 years fee payment window open
Sep 26 20136 months grace period start (w surcharge)
Mar 26 2014patent expiry (for year 12)
Mar 26 20162 years to revive unintentionally abandoned end. (for year 12)