OEM NUMBER
SHORT CODE: B04/01 D5131
MARELLI: 230061079057
PEUGEOT: 1920N1
SIMENCE: A95269
APPLICATION
PEUGEOT 205 I Cabriolet(741B,20D)1.6CJ;
PEUGEOT 205 Ⅱ(20A/C)1.6 Aut;
PEUGEOT 306 (7B,N3,N5)1.8*2.0ST;
306 Break (7E,N3,N5)1.8;
PEUGEOT 306 Cabriolet (7B,N3,N5)1.8/2.0ST;
PEUGEOT 306 Schraqheck(7A,7C,N3,N5)1.8/2.0Xsi;
PEUGEOT 309 Ⅱ(3C,3A)1.6;
PEUGEOT 405/Break(15B)1.6;
PEUGEOT 405 Ⅱ(4B)1.6/1.8*2.0 X4;
PEUGEOT 406;
PEUGEOT 806;
PEUGEOT BOXET Bus
OEM NUMBER
SHORT CODE: B04/01 D5131
MARELLI: 230061079057
PEUGEOT: 1920N1
SIMENCE: A95269
APPLICATION
PEUGEOT 205 I Cabriolet(741B,20D)1.6CJ;
PEUGEOT 205 Ⅱ(20A/C)1.6 Aut;
PEUGEOT 306 (7B,N3,N5)1.8*2.0ST;
306 Break (7E,N3,N5)1.8;
PEUGEOT 306 Cabriolet (7B,N3,N5)1.8/2.0ST;
PEUGEOT 306 Schraqheck(7A,7C,N3,N5)1.8/2.0Xsi;
PEUGEOT 309 Ⅱ(3C,3A)1.6;
PEUGEOT 405/Break(15B)1.6;
PEUGEOT 405 Ⅱ(4B)1.6/1.8*2.0 X4;
PEUGEOT 406;
PEUGEOT 806;
PEUGEOT BOXET Bus
OEM NUMBER
2S6A9F715BB 2S6A9F715BA
WELLS: AC4449
APPLICAION
Ford
OEM NUMBER
2S6A9F715BB 2S6A9F715BA
WELLS: AC4449
APPLICAION
Ford
OEM NUMBER
SHORT CODE:b20/1
VDO"AT-02001R
MARELLI:40415202 219244820500
FIAT:46451794
APPLICAION
Punto 85 16V 1.2 97>MPIPALIO 98>1.3
MPI/SIENA 98>1.3; Palio 1.0,1.5,96 98 ,Siena 1.5 99, UNO 1.0 99;
Weekend 1.5 97;
Uno Furgoneta, Fiorino 1.5 97 98, Palio 1.0 1.5 96 98,Siena 1.0 ,Strada 1.5
OEM NUMBER
SHORT CODE:b20/1
VDO"AT-02001R
MARELLI:40415202 219244820500
FIAT:46451794
APPLICAION
Punto 85 16V 1.2 97>MPIPALIO 98>1.3
MPI/SIENA 98>1.3; Palio 1.0,1.5,96 98 ,Siena 1.5 99, UNO 1.0 99;
Weekend 1.5 97;
Uno Furgoneta, Fiorino 1.5 97 98, Palio 1.0 1.5 96 98,Siena 1.0 ,Strada 1.5
OEM NUMBER
SHORT CODE: 59603
DELPHI: ICD00125
GM: 817253 817255 17112031 17112023
SIMENCE: A95214
VDO: AT-59603R
APPLICAION
OPEL ASCONA C;
OPEL ASTRA F;
OPEL ASTRA F Cabrilet/Kombi/Schraqheck/Van;
OPEL KADETT E;
OPEL KADETTE Cabriolet/Kombi/Schraqheck
OEM NUMBER
SHORT CODE: 59603
DELPHI: ICD00125
GM: 817253 817255 17112031 17112023
SIMENCE: A95214
VDO: AT-59603R
APPLICAION
OPEL ASCONA C;
OPEL ASTRA F;
OPEL ASTRA F Cabrilet/Kombi/Schraqheck/Van;
OPEL KADETT E;
OPEL KADETTE Cabriolet/Kombi/Schraqheck
OEM NUMBER
MARELLI: 230016079047
SIMENCE: A95262 1920Q8
CITRO NO: 95644634
RENAULT: 7701204054
APPLICAION
CITROEN AX;
PEUGEOT 106 Ⅰ/Ⅱ;
PEUGEOT 205 Ⅰ/Ⅱ;
PEUGEOT 306/306 Schraqheck;
RENAULT TWINGO
OEM NUMBER
MARELLI: 230016079047
SIMENCE: A95262 1920Q8
CITRO NO: 95644634
RENAULT: 7701204054
APPLICAION
CITROEN AX;
PEUGEOT 106 Ⅰ/Ⅱ;
PEUGEOT 205 Ⅰ/Ⅱ;
PEUGEOT 306/306 Schraqheck;
RENAULT TWINGO
OEM NUMBER
SIMENCE: A96158 A97116
PEUGEOT:19208X
MARELLI:230016079217
APPLICAION
PEUGEOT 206 CC(2D)2.0 S16;
PEUGEOT 206 SW(2E/K)2.0 16V;
PEUGEOT 307;
PEUGEOT 406/Break/Coupe;
PEUGEOT 806/807;
PEUGEOT EXPERT(224)2.0
OEM NUMBER
SIMENCE: A96158 A97116
PEUGEOT:19208X
MARELLI:230016079217
APPLICAION
PEUGEOT 206 CC(2D)2.0 S16;
PEUGEOT 206 SW(2E/K)2.0 16V;
PEUGEOT 307;
PEUGEOT 406/Break/Coupe;
PEUGEOT 806/807;
PEUGEOT EXPERT(224)2.0
OEM NUMBER
SHORT CODE: B13/00
MARELLI:230016079087 230016079247
SIMENCE:1920V7 C95181
APPLICAION
PEUGEOT 106I(1A,1C)1.3;
PEUGEOT 306/306 Cabriolet/Schraqheck;
PGUGEOT 406/406 Break
OEM NUMBER
SHORT CODE: B13/00
MARELLI:230016079087 230016079247
SIMENCE:1920V7 C95181
APPLICAION
PEUGEOT 106I(1A,1C)1.3;
PEUGEOT 306/306 Cabriolet/Schraqheck;
PGUGEOT 406/406 Break
Wenzhou Guocheng Automobile Electrical Parts Co., Ltd. is located in Wenzhou, Zhejiang Province, known as China's capital of auto parts. Established in 1997, the company covers a land area of 3,000 square meters with a built-up area of 10,000 square meters. It is a high quality Crankshaft Position Sensor manufacturer integrating product development, production, and sales.
Our core products include idle speed motors, idle control valves, throttle position sensors, and other sensor series primarily used in automotive and construction machinery engines. To ensure superior quality, key components such as sensor brushes are imported from Japan and Germany, while films are custom-produced by top-tier domestic and international suppliers. Our products are already supplied to first-tier brands both in China and abroad, and our annual production and sales volume holds a significant position in the OEM market.
To meet production demands and customer requirements, we have continuously invested in advanced production, testing, and experimental equipment from both domestic and international sources. This has significantly enhanced our production inspection and testing capabilities, ensuring consistent and reliable product quality. Currently, we have over 80 employees, including 6 experienced technical engineers and 8 professional technical and inspection personnel, providing strong support for product development and quality control.
Since its inception, the company has adhered to the quality policy of "Continuous Learning, Technological Innovation, Pursuit of Excellence, and Customer Satisfaction." We uphold a "people-oriented" talent philosophy and emphasize a customer-centric approach in quality management, focusing on process control, prevention, continuous improvement, and customer satisfaction. Since 2007, the company has been certified with ISO 9001:2000 and ISO/TS 16949:2009 international quality management system standards. To become a trustworthy OEM/ODM Odometer Sensor factory.
Over the years, through relentless efforts, innovation, and improvement, Guosheng has earned consistent praise from both new and existing customers for its exceptional product quality, comprehensive service, and competitive pricing. To achieve greater development, our team remains committed to striving harder, learning humbly, and making continuous progress. We constantly summarize experiences and enhance product quality while working with passion and sincerity to collaborate with partners worldwide for mutual success. We sincerely welcome your valuable feedback and visits for guidance.
Certificate of Honor
As automotive technology evolves toward greater efficiency, safety, and user experience, engineers a...
READ MOREAs the global automotive industry accelerates toward electrification, intelligent control, and enhan...
READ MOREModern vehicles increasingly rely on advanced electronic systems to improve safety, performance, and...
READ MOREIn modern motorcycles, electronic control has replaced many traditional mechanical responses, and the Motorcycle Sensor group plays a central role in this transition. A motorcycle relies on multiple sensors such as throttle position sensing, intake pressure sensing, oxygen sensing, and temperature monitoring to support stable combustion, smooth acceleration, safety assistance, and fuel efficiency management. The industry discussion today is mainly about durability in harsh outdoor conditions, accuracy at different speeds, and stability in long-term vibration environments. Google search trends show riders and technicians pay attention to how Motorcycle Sensor systems affect fuel consumption, throttle response, and fault diagnosis.
From a technical perspective, these sensors continuously provide data to the ECU to adjust ignition timing, mixture formation, and emissions. In commuter motorcycles and performance motorcycles, stable signal output is important to avoid irregular idling, hesitation during acceleration, and increased fuel burn. Another industry topic relates to environmental standards. As emission standards tighten in different markets, Motorcycle Sensor technology needs to ensure consistent measurement accuracy to support cleaner operation. At the service and maintenance level, riders are interested in how to judge a failing sensor, common fault symptoms, and whether replacement or recalibration is required. This makes sensor quality, sealing design, and vibration resistance frequently discussed topics in the motorcycle industry.
The Odometer Sensor is directly related to mileage recording, which influences maintenance cycles, fuel statistics, insurance assessment, and even resale value. Users often search for how odometer systems work, why mileage errors occur, and how digital odometers compare with earlier mechanical systems. Today, odometer measurement is not only about showing distance; it is part of the broader vehicle data ecosystem used for trip management, navigation assistance, and predictive maintenance.
The Odometer Sensor typically works through magnetic pulse or Hall detection principles, sending rotational data to a control unit which converts it to distance information. Accuracy depends on wheel size calibration, signal stability, and processing consistency. As motorcycles and vehicles move toward smarter dashboards, integration with GPS-based mileage verification is another trend widely discussed. Market expectations focus on stable performance, anti-interference capability, long-term durability, and consistent reading under different road conditions.
Failures in odometer sensing may cause unstable mileage display, inaccurate readings, or total mileage freeze. Users care about how to detect faults early, whether recalibration is possible, and how replacement affects stored mileage records. In engineering and manufacturing, companies pay attention to sealing structures, anti-dust design, waterproof stability, and the stability of signal transmission, because these directly influence reliability in diverse riding or working environments.
Among automotive and engineering machinery sensors, the Crankshaft Position Sensor is one of the most discussed devices because it directly relates to ignition timing and engine start reliability. Users often search to understand its working principle, failure symptoms, and its relationship to misfires, stalling, and starting difficulty. This sensor monitors the rotational speed and specific position of the crankshaft, and its signal guides the ECU to control ignition and fuel injection timing.
From an engineering perspective, the Crankshaft Position Sensor works under high-temperature, vibration-intense, and oil-environment conditions. Therefore, heat resistance, magnetic stability, and long service life under continuous stress are technical priorities discussed in the industry. Any delay or instability in signal output can affect combustion accuracy, leading to power loss, rough idling, increased fuel use, and in some cases, engine shutdown. For engineering machinery engines, reliability requirements are even higher because equipment often runs under heavy load for long durations.
Common market concerns include how to diagnose failure, whether symptoms such as engine shaking, long starting time, and sudden shutdown relate to crankshaft sensing, and whether high-quality sensors reduce maintenance costs. Installation positioning precision, connector reliability, and internal coil stability are key manufacturing considerations that users and technicians increasingly care about.
Across Motorcycle Sensor, Odometer Sensor, and Crankshaft Position Sensor categories, the overall industry trend points toward smarter control, digital integration, and higher environmental adaptability. In automotive and engineering machinery applications, users care about whether sensors can provide consistent signals under vibrations, heat, and complex working conditions. At the same time, integration with ECU strategies, compatibility with modern engine platforms, and alignment with emission and efficiency requirements remain long-term topics.
As vehicles evolve toward smarter operation and more precise electronic control, the industry continues focusing on accuracy, durability, traceability, and stable performance. Well-designed sensors support smoother engines, reliable mileage recording, and dependable operation across motorcycles, automobiles, and engineering machinery equipment, forming an essential foundation for modern power systems.