Thursday, May 17, 2012

Huf RDE004 TPMS Sensor



The OEM Huf RDE004 TPMS Sensor fits automobiles made by Audi, Ferrari, and Mercedes-Benz.

For more information about the RDE004, click this link!  HUF BERU RDE004

Below is a fitment guide for the RDE004 Sensor.


HUF BERU RDE004

Compatible with:
Make Year Model
Audi 2005 Allroad Quattro 2.7T

2005 Allroad Quattro 4.2L

2004 Allroad Quattro 2.7T

2004 Allroad Quattro 4.2L

2003 A8

2003 A8L

2003 Allroad

2003 RS6

2003 S8

2002 A8

2002 A8 L

2002 Allroad

2002 S8
Ferrari 2005 575M Maranello

2004 575M Maranello

2003 575M Maranello

2002 575M Maranello

2001 550 Maranello

2000 550 Barchetta

2000 550 Maranello

1999 550 Maranello

1998 550 Maranello

1997 550 Maranello
Mercedes-Benz 2007 E350 Sedan 4matic

2007 E350 Wagon 4matic

2006 CL500

2006 CL55

2006 CL600

2006 CL65

2006 E320 CDI Sedan

2006 E350 Sedan

2006 E350 Sedan 4Matic

2006 E350 Sedan 4Matic Appearance

2006 E350 Sedan 4Matic Sport Pkg

2006 E350 Sedan Appearance Package

2006 E350 Sedan Sport Package

2006 E350 Wagon

2006 E350 Wagon 4Matic

2006 E350 Wagon 4Matic Appearance

2006 E350 Wagon 4Matic Sport Pkg

2006 E350 Wagon Appearance Package

2006 E350 Wagon Sport Package

2006 E500 4matic Sedan

2006 E500 4matic Sedan Apperance PK

2006 E500 4matic Wagon

2006 E500 Sedan

2006 E500 Sedan Sport Package

2006 E55 Sedan

2006 E55 Wagon

2006 S350 Sedan

2006 S430 4Matic Sedan

2006 S430 Sedan

2006 S500 4Matic Sedan

2006 S500 Sedan

2006 S55 Sedan

2006 S600 Sedan

2006 S65 Sedan

2005 CL500

2005 CL500 Appearance Package

2005 CL500 Sport Package

2005 CL55

2005 CL600

2005 CL600 Sport Package

2005 CL65

2005 E320 4Matic Appearance Package

2005 E320 4Matic Sedan

2005 E320 CDI Sedan

2005 E320 Sedan

2005 E320 Sedan Appearance Package

2005 E320 Sedan Sport Package

2005 E320 Wagon

2005 E320 Wagon Appearance Package

2005 E320 Wagon Sport Package

2005 E500 4matic Sedan

2005 E500 4matic Sedan Appearance

2005 E500 4matic Wagon

2005 E500 Sedan

2005 E500 Sedan Sport Package

2005 E55

2005 S430 Sedan

2005 S500 4Matic Sedan

2005 S500 Sedan

2005 S55 Sedan

2005 S600 Sedan

2005 SL500

2005 SL55

2005 SL600

2005 SL65

2004 CL500

2004 CL500 Sport Package

2004 CL55

2004 CL600

2004 CL600 Sport Package

2004 E320 4matic Sedan

2004 E320 4matic Sedan Sport Pkg

2004 E320 4matic Wagon

2004 E320 4matic Wagon Sport Pkg

2004 E320 Sedan

2004 E320 Sedan Sport Package

2004 E320 Wagon

2004 E320 Wagon Sport Package

2004 E500 4matic Sedan

2004 E500 4matic Sedan Sport Pkg

2004 E500 4matic Wagon

2004 E500 Sedan

2004 E500 Sedan Sport Package

2004 E55

2004 S430 4Matic Sedan

2004 S430 Sedan

2004 S500 4Matic Sedan

2004 S500 4Matic Sedan Sport Pkg

2004 S500 Sedan

2004 S500 Sedan Sport Package

2004 S55 Sedan

2004 S600 Sedan

2004 SL500

2004 SL55

2004 SL600

2003 CL500

2003 CL500 Sport Package

2003 CL55

2003 CL600

2003 CL600 Sport Package

2003 CL600 Sport Pakage

2003 E320 Sedan

2003 E320 Sedan Sport Package

2003 E500 Sedan

2003 E500 Sedan Sport Package

2003 E55

2003 S430 4Matic Sedan

2003 S430 Sedan

2003 S430 Sedan Sport Package

2003 S500 4Matic Sedan

2003 S500 4Matic Sedan Sport Pkg

2003 S500 Sedan

2003 S500 Sedan Sport Package

2003 S55 Sedan

2003 S600 Sedan

2003 S600 Sedan Sport Package

2003 SL500 Base Model

2003 SL500 Sport Package

2003 SL55

2002 CL500

2002 CL500 Sport Package

2002 CL55

2002 CL600

2002 S430 Sedan

2002 S430 Sedan Sport Package

2002 S600 Sedan

2002 S600 Sedan Sport Package

2001 CL500

2001 CL500 Sport pkg

2001 CL55

2001 CL600

2001 S600

2001 S600 Sedan Sport Package


To purchase this sensor, Click here!




Wednesday, May 16, 2012

Huf RDE003 TPMS Sensor


The OEM Huf RDE003 TPMS Sensor fits automobiles made by Land Rover.

For more information about the RDE003, click this link!  HUF BERU RDE003

Below is a fitment guide for the RDE002 Sensor.


HUF BERU RDE003

Compatible with:
Make Year Model
Land Rover 2005 Range Rover HSE

2004 Range Rover HSE

2003 Range Rover HSE





To purchase this sensor, Click here!

Tuesday, May 15, 2012

OEM Huf TPMS RDE002

The OEM Huf RDE002 TPMS Sensor fits automobiles made by BMW.

For more information about the RDE002, click this link!  HUF BERU RDE002

Below is a fitment guide for the RDE002 Sensor.

Compatible with:
Make Year Model
BMW 2006 330Ci Cabriolet

2006 330Ci Coupe

2005 330CI Coupe TPMS

2005 330Ci Convert TPMS

2005 330I Sedan TPMS

2005 330xi Sedan TPMS

2005 745Li

2005 745i

2005 760Li

2005 760i

2004 330CI Coupe TPMS

2004 330Ci Convert TPMS

2004 330I Sedan TPMS

2004 330xi Sedan Sport Package

2004 330xi Sedan TPMS

2004 745Li

2004 745i

2004 760Li

2004 760i

2003 330CI Coupe TPMS

2003 330Ci Convert TPMS

2003 330I Sedan TPMS

2003 330xi Sedan

2003 330xi Sedan Sport Package

2003 745Li

2003 745i

2003 760Li

2002 330CI Coupe TPMS

2002 330Ci Convert TPMS

2002 330i Sedan TPMS

2002 330xi Sedan

2002 745Li

2002 745i


To purchase this sensor, Click here!


Monday, May 14, 2012

Huf RDE001 TPMS Sensor

The OEM Huf RDE001 TPMS Sensor fits automobiles made by Audi, Bentley, Ferrari, Maserati, Porsche, and Volkswagen.

For more information about the RDE001, click this link!  HUF BERU RDE001

Below is a fitment guide for the RDE001 Sensor.

Make Year Model
Audi 2009 A8

2009 A8L

2009 A8L W12

2009 S8 Sedan

2008 A8

2008 A8L

2008 A8L W12

2008 S8 Sedan

2007 A8

2007 A8L

2007 A8L W12

2007 S8 Sedan

2006 A8

2006 A8L

2006 A8L W12

2005 A8

2005 A8L

2005 A8L W12

2004 A8L
Bentley 2005 Continental GT

2004 Continental GT
Ferrari 2011 599 GTB Fiorano

2011 599 SA Aperta

2010 599 GTB Fiorano

2010 599 HGTE

2010 612 Scaglietti

2009 599 HGTE

2009 599GTB Fiorano

2009 612 Scaglietti

2009 F430 Coupe

2009 F430 Spider

2008 599 HGTE

2008 599GTB Fiorano

2008 612 Scaglietti

2008 F430 Coupe

2008 F430 Spider

2007 599 HGTE

2007 599GTB Fiorano

2007 612 Scaglietti

2006 612 Scaglietti

2005 612 Scaglietti

2004 612 Scaglietti

2001 550 Maranello

2000 550 Barchetta

2000 550 Maranello

1999 550 Maranello

1998 550 Maranello

1997 550 Maranello
Maserati 2010 GranTurismo

2010 GranTurismo S Automatic

2010 Quattroporte

2010 Quattroporte Executive GT

2010 Quattroporte S

2010 Quattroporte Sport GT S

2009 GranTurismo

2009 GranTurismo S

2009 Quattroporte

2009 Quattroporte Executive GT

2009 Quattroporte S

2009 Quattroporte Sport GT S

2008 GranTurismo

2008 GranTurismo S

2008 Quattroporte

2008 Quattroporte Executive GT

2008 Quattroporte Sport GT

2008 Quattroporte Sport GT S

2007 Quattroporte

2007 Quattroporte Executive GT

2007 Quattroporte Sport GT

2006 Coupe

2006 Quattroporte

2005 Coupe

2005 GranSport

2005 GranSport Spyder

2005 Quattroporte

2005 Spyder

2004 Coupe

2004 Spyder

2003 Coupe

2003 Spyder

2002 Coupe

2002 Spyder
Porsche 2009 911 Turbo

2008 911 Carrera

2008 911 Carrera 4

2008 911 Carrera 4S

2008 911 Carrera S

2008 911 GT2

2008 911 GT3

2008 911 GT3 RS

2008 911 Targa 4

2008 911 Targa 4S

2008 911 Turbo

2008 Boxster

2008 Boxster RS 60 Spyder

2008 Boxster S

2008 Boxster S Limited Edition

2008 Boxster limited Edition

2008 Cayman

2008 Cayman S

2008 Cayman S Design Edition 1

2007 911 Carrera

2007 911 Carrera 4

2007 911 Carrera 4S

2007 911 Carrera S

2007 911 GT3

2007 911 GT3 RS

2007 911 Targa 4

2007 911 Targa 4S

2007 911 Turbo

2007 Boxster

2007 Boxster S

2007 Cayman

2007 Cayman S

2006 911 Carrera 4 Cabriolet

2006 911 Carrera 4 Coupe

2006 911 Carrera 4S Cabriolet

2006 911 Carrera 4S Coupe

2006 911 Carrera Cabriolet

2006 911 Carrera Coupe

2006 911 Carrera S Cabriolet

2006 911 Carrera S Coupe

2006 Boxster

2006 Boxster S

2006 Cayman S With Ceramic Brakes

2006 Cayman S With Standard Brakes
Volkswagen 2006 Phaeton V8

2006 Phaeton W12

2005 Phaeton V8

2005 Phaeton W12

2004 Phaeton V8

2004 Phaeton W12

To Purchase the RDE001 Sensor, click here!


Thursday, May 10, 2012

TPMS DIY and Installation

Hi everyone, We've gotten a few questions about how to install a TPMS sensor correctly. We have created a few DIY pages in order to help with installation. We hope these help! TPMS Sensor Installation

Friday, April 27, 2012

Other Energy Options Sought as the End of TPMS Battery Life Nears

ShopTPMS.com Direct TPMS is currently the most accurate method of obtaining tire pressures during vehicle operation. Compared to indirect systems, the in-wheel tire pressure sensor has a higher degree of sensitivity to pressure changes, allowing accurate feedback to the driver. Still in its infancy, TPMS technology continually evolves as a variety of manufacturers vie for part of a global market projected to reach $3 billion by 2017. Part of this will be driven by Europe, as mandatory TPMS comes on-stream there in the not too distant future. And wait until China, with its massive car parc, goes to mandatory TPMS. As we have previously discussed, first generation TPMS sensors are nearing the end of their battery life, so it’s a perfect time to take a look at the new technologies being developed to increase TPMS sensor service life without compromising performance. Some of these might even serve to improve performance. Current TPMS technology utilizes either 3-volt lithium ion or 1.25-volt nickel metal-hydride batteries to energize the sensors. Sensors generally transmit pressure data to the on-board computer every few minutes so as to maximize battery life, but this low sampling rate could be detrimental in a rapid air-loss situation. Sensors also go into “sleep mode” when the vehicle is parked to minimize energy loss, and re-awaken after the vehicle has been driven for a few miles. It is possible after vehicle startup that a low-pressure situation will not be apparent until several miles down the road. It seems the ideal direct TPMS sensor would have a lifetime energy supply and provide a higher frequen­­cy sampling rate. Having to never worry about battery failure certainly would be an acceptable feature from the consumer’s point of view. And high frequency sampling rates currently exist in the racing world. For racing applications, Beru manufactures TPMS sensors that also measure internal tire temperatures using infra-red technology at a sampling rate of 1 cycle per second, but that is one end of the extreme spectrum where cost and battery life are of no real concern. To have a continuous supply of electrical power, the TPMS industry is turning to energy harvesters for a practical solution. Energy Options Piezoelectricity looks to be the leading technology of energy harvesting for TPMS applications, as it relies on mechanical stress or vibration to produce electrical energy. A piezoelectric material creates an electrical charge when deformed. The simple rotation and inherent vibration of a rolling tire serves as a practical method of converting mechanical energy into electrical energy, which can then be stored in a capacitor to power a TPMS sensor. PZT (lead zirconium titanate), a man-made ceramic compound, ap­pears to be the most popular choice as an energy harvesting material. When subjected to vibration or deformation, PZT creates a relatively high-energy output. But wait – there’s that toxic word, lead, trying to find its way back into the tire/wheel assembly. Fortunately, there has been a resur­gence to develop lead-free piezoelectric materials because of the toxicity concerns of lead-containing devices. Having a constant energy supply would allow for higher sampling rates, and rather than waiting five minutes between pressure data readings, there would be enough power to transmit pressure readings every minute or so. Used in conjunction with a capacitor to store electrical energy, instantaneous pressure data transmission upon vehicle startup could be realized, eliminating the built-in inoperative feature currently in use. The success of piezoelectric materials will depend on finding a low-cost method of mass production to make them attractive as a replacement for traditional batteries. Most vehicle manufacturers are cost sensitive, and I believe they will determine when the industry will change over to piezo­electric power. WWW.ShopTPMS.com Practical Concerns But even at this writing, technology continues to march on. One major disadvantage of the current direct TPMS sensor mounted at the valve hole is its location. An improperly trained technician can easily destroy a sensor during a basic tire dismounting or mounting. Introduce conventional-looking snap-in valves to the TPMS sensor and the margin for error increases even more. It would be more advantageous to have the pressure sensor attached to the tire profile, preferably during the manufacturing process, so as to make it an integral part of the tire. Unfortunately, the inherent brittleness of ceramic in PZT does not lend itself to this application. Ad­vanced Cer­am­etrics in Lam­bertville, N.J., has created a patented viscous suspension spinning process (VSSP) that transforms any ceramic material into a fiber form, giving it a degree of flexibility. This technology would give materials like PZT the robustness necessary for application to the tire’s inside surface. Along a similar design application, U.K.-based Piezotag Ltd. has successfully de­veloped a piezoelectric-powered TPMS sensor that mounts on the inside of the tire. The disc-like device is bonded to the tire innerliner and requires no battery for power or initiators in the wheel well for tire position identification. The housing of the sensor was designed to protect the delicate nature of the piezo ceramic, and product testing has shown positive results for durability throughout the life of the tire. The current drawback is the labor involved in mounting the sensor as compared to the current method of snap-in or clamp-in sensors at the valve hole. Again, the OEMs will shape the future of this TPMS sensor option. TPMS has quickly become a four-letter word – I mean “acronym” – thrust upon the automotive world to help improve vehicle safety. The system is necessary to aid drivers with tire air pressure maintenance. Automotive sensors have been around for decades to monitor a variety of vehicle systems such as engine oil pressure, cooling system temperature and fuel level. It is ironic that the most critical component of a vehicle that has greatest impact on vehicle safety – its tires – has become one of the last to incorporate sensors and the one with the greatest push-back by so many in the industry. To complicate matters, such a safety-critical system was designed to rely on batteries, and everyone involved knew the day would come when the batteries would run dry, creating inoperative system and flummoxed drivers. A true “safety system” needs to have maximum reliability throughout the vehicle’s service life. The current battery technology defeats the purpose of this safety system, but new technology is around the corner to make TPMS the safety system its creators envisioned. If only we could get automaker buy-in. by Rudy Consolacion at Tirereview.com WWW.ShopTPMS.com

Wednesday, April 11, 2012

Study Confirms ROI of Truck Inflation, TPMS

by Tirereview.com http://www.tirereview.com/Article/97587/study_confirms_roi_of_truck_inflation_tpms.aspx Shop TPMS A new study by the U.S. Department of Transportation confirms that truck fleets certainly benefit by using on-board tire inflation systems and truck-level TPMS. Through the test period, the two fleets showed a reduction in fuel consumption of 1.4%. The DOT study showed that fleets will save on fuel consumption and costs, improve tire life and reduce tire maintenance costs. The study conclusions were revealed at the recent Technology and Maintenance Council annual meeting in Tampa, Fla. During that meeting, the S.2 – Tire & Wheel Study Group Session featured a presentation on the DOT study by Chris Flanigan of the Federal Motor Carrier Safety Administration. According to Flanigan, the study was undertaken to “assess the cost/benefit” and “determine if the systems could influence maintenance intervals in a positive way,” as well as consider their impact on “performance and safety.” "We saw an increase in fuel economy in both fleets of 1.4%, which is a big deal," Flanigan reported. "And based on current fuel costs (estimated by Flanigan at $4 per gallon for example purposes) and equipment costs of about $1,500 per tractor-trailer unit, the ROI comes in under one year." The DOT conducted the tests between April 2008 and December 2010 using two fleets regional fleets. Through the test period, the two fleets accumulated more than 7 million road miles, used 1.15 million gallons of diesel, and replaced 440 tires due to wear. Another 115 tires were replaced due to damage. Despite the different service conditions, Flanigan noted, both fleets showed an equal reduction in fuel consumption at 1.4%. Steer tire treadwear for the fuel hauling/delivery fleet improved by 5/32nds of an inch per million miles, while trailer axle treadwear improved 2/32nds. Treadwear on the drive tires for that fleet, however, soared almost 30/32nds of an inch, Flanigan reported. Shop TPMS