Q
car cc meaning
"Car cc" refers to "cubic centimeter," the unit used to measure a car engine's displacement. It represents the total volume of all the engine's cylinders and directly impacts a vehicle's power output and fuel efficiency. For example, the common 1.5L engines you see in Malaysia are typically labeled as 1500cc. Generally speaking, a larger displacement means more power under the hood, but it often comes with higher fuel consumption too. On the flip side, smaller displacement engines are perfect for city driving, striking a nice balance between fuel economy and being easier on the environment.
In Malaysia, when folks are shopping for a car, they really need to match the engine size to their needs. If you're doing a lot of highway driving or carrying heavy loads, a bigger displacement might be the way to go. But for daily commuting, the sweet spot is usually between 1.3L and 1.8L – those are the most popular choices.
Another thing to keep in mind is Malaysia's road tax system, which is tied to engine displacement. The bigger the engine, the pricier the road tax. So local buyers often find themselves balancing power needs with running costs.
It's worth mentioning that modern turbocharging technology has been a game-changer. It lets smaller engines deliver power close to that of larger naturally aspirated ones, while still being more fuel-efficient. That's a big reason why small-displacement turbo cars have grown so popular in the Malaysian market in recent years.
Special Disclaimer: This content is published by users and does not represent the views or position of PCauto.
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Q
How do driving wheels affect handling?
The layout of the drive wheels has a direct impact on vehicle handling. Front-wheel drive (FWD) and rear-wheel drive (RWD) differ significantly in power distribution, steering characteristics, and dynamic performance.
In FWD vehicles, the engine and transmission are concentrated on the front axle, resulting in a heavier front end. This makes them prone to understeer (plowing) when cornering at high speeds, but they are easier to handle in daily driving, more fuel-efficient, and suitable for family sedans. Their compact structure also improves the utilization of interior space.
RWD vehicles, on the other hand, transfer power to the rear wheels via a driveshaft, leading to a more balanced front-to-rear weight distribution. During acceleration, the weight shift to the rear enhances rear-wheel traction, making them better at climbing hills and maintaining straight-line stability. However, they are prone to oversteer (tail-sliding) on wet or slippery roads and require more advanced driving skills, which is why they are commonly found in performance cars or luxury models.
Additionally, FWD vehicles exhibit more pronounced "nose-diving" during braking due to the concentrated components at the front, while RWD vehicles offer more responsive handling during spirited driving but incur higher maintenance costs. When making a choice, one needs to balance handling requirements and usage scenarios—for example, FWD is preferred for urban commuting, while RWD can be considered for those seeking driving pleasure.
Q
Is there a 1 gear car?
Currently, there are indeed cars equipped with only a single-speed transmission on the market. This type of design is mainly applied to pure electric vehicles. Its core principle is to achieve direct transmission of motor power to the wheels through a fixed gear ratio, eliminating the need for multi-gear shifting as in traditional fuel vehicles.
The advantages of single-speed transmissions lie in their simple structure, low failure rate, and low maintenance costs. For example, models such as Tesla and BMW i3 adopt this design, which can provide a smooth acceleration experience and fast power response, making them particularly suitable for urban commuting.
However, due to the fixed gear ratio, vehicles may face limited top speed or slightly higher energy consumption when driving at high speeds. But the high-speed characteristics of electric vehicle motors (generally reaching more than 15,000 rpm) make up for the drawback of a single gear. For instance, the single-speed transmission of the Zeekr 001, combined with its four-motor architecture, can still achieve a 0-100 km/h acceleration time of 2.02 seconds.
In addition, this design also reduces manufacturing costs. For example, economical electric vehicles like the BYD e5 control their selling prices by simplifying the transmission system.
It should be noted that a single-speed transmission is not a technical flaw but an optimized solution tailored to the power characteristics of electric vehicles (wide speed range and instantaneous torque output). In the future, with the development of motor technology, its performance limitations may be further reduced.
Q
Is there an 8 speed manual transmission?
It is true that 8-speed automatic manual transmissions exist in the current market. This is an advanced transmission technology that combines manual and automatic shifting functions. Its core feature is providing 8 forward gears, which allows for precise shift control through manual mode, while intelligently selecting gears based on vehicle speed and engine speed in automatic mode. Such transmissions are mostly found in luxury models. For example, the Aisin 5-speed automatic manual transmission equipped in the Mazda 8 does not reach 8 speeds, but the technical principle is similar—both optimize driving experience and fuel economy by increasing the number of gears and adding manual intervention functions. It should be noted that 8-speed manual transmissions (not automatic manual) are extremely rare in the mass-produced passenger car field, and mainstream manual transmissions are mostly designed with 5 or 6 speeds. In daily use, regardless of the type of transmission, it is necessary to replace the fluid regularly and avoid improper operations such as coasting in neutral to prolong its service life. If users pursue a higher-gear manual control experience, they can pay attention to performance models equipped with 6-speed manual transmissions or modification market solutions.
Q
Is there a fifth gear?
The gear design of automatic transmission vehicles varies by vehicle model and transmission type. Common configurations usually include P (Park), R (Reverse), N (Neutral), D (Drive), as well as additional L (Low) or S (Sport). Some models may also be equipped with 2 (Second Gear, limited to low range) or OD (Overdrive). Taking D as an example, as the primary forward gear, it automatically shifts between 1st to 4th gear (or higher) based on vehicle speed and throttle input. The L or 2 position is used for hill climbing or descending to increase torque or engine braking by restricting the gear range. Note that the fifth physical gear (e.g., 5th gear) typically exists in manual transmissions, whereas "gear positions" in automatics refer more to functional modes than actual gear ratios. For example, the S mode in some sport transmissions enhances power response by delaying upshifts, though it fundamentally operates through the same gearset as D mode. Always strictly follow the vehicle manual's instructions to prevent mechanical damage from improper gear selection.
Q
Will there be a 6th gear?
Mazda's widely adopted 6-speed automatic transmission (such as Skyactiv-Drive) in the Malaysian market has demonstrated excellent performance, with technical features including a compact structure, rapid shift response, and a Lepelletier gear mechanism design, sharing similarities with the 8AT technologies from ZF and Aisin. The synergy between this transmission and the Skyactiv-G engine significantly enhances power output efficiency. For instance, the 1.5L variant generates 148Nm of torque at 4000 rpm while maintaining fuel efficiency, with clutch lock-up further reducing energy consumption during high-speed operation. Notably, the Mazda 6's 6AT transmission employs dual Simpson planetary gear sets coupled with multiple clutches for precise gear control. While earlier models (e.g., the 2004 version) utilized 4-speed or 5-speed transmissions, current iterations have been upgraded to 6-speed or higher configurations. As for future gear developments, prevailing technical assessments indicate that 6-speed designs already achieve an optimal balance between performance and cost. Although higher gear counts (e.g., 8-speed) could marginally improve efficiency, the trade-offs in structural complexity and maintenance costs suggest 6-speed transmissions will remain a predominant choice in the near term.
Q
How do you calculate gears?
There are three main methods for calculating the gear ratio. The first is based on the number of gear teeth, with the formula: gear ratio = number of teeth of the driven gear ÷ number of teeth of the driving gear. For example, if the driving gear has 20 teeth and the driven gear has 40 teeth, the gear ratio is 2:1, meaning that for every full rotation of the driving gear, the driven gear rotates half a turn. The second method uses the inverse relationship of rotational speeds, with the formula: i = rotational speed of the driving gear ÷ rotational speed of the driven gear = number of teeth of the driven gear ÷ number of teeth of the driving gear. If the driving gear rotates at 3000 rpm and the driven gear at 1500 rpm, the gear ratio is also 2:1. The third method combines torque and power parameters, with the formula: transmission ratio = operating torque ÷ (9550 ÷ motor power) × motor input speed ÷ service factor, which requires integrating motor performance and operating condition data.
Gear ratio design directly affects vehicle performance. A large gear ratio (e.g., 1st gear) is suitable for climbing or heavy loads, as it increases torque but sacrifices speed. A small gear ratio (e.g., 5th gear) is beneficial for high-speed cruising and reducing fuel consumption. Modern transmissions optimize shift smoothness and fuel efficiency through multi-speed dense gear ratios (e.g., 8-speed transmissions). Additionally, electronic gear ratio technology can improve control precision by adjusting the pulse equivalent—for instance, optimizing the pulse equivalent from 2.44 μm/pulse to 1 μm/pulse can significantly enhance machining accuracy. A reasonable gear ratio configuration needs to balance power output, fuel economy, and driving comfort.
Q
What car has 9 gears?
In the current Malaysian market, models equipped with a 9-speed transmission include the diesel version of the JAC T9 pickup truck. This model features a precisely calibrated 9-speed transmission system, delivering smoother gear shifts and optimized fuel efficiency. Priced at RM119,888, it comes with an 8-year unlimited-mileage engine warranty. The 9-speed transmission technology significantly improves power output linearity through its multi-gear design, making it particularly suitable for pickup trucks that need to balance payload capacity and long-distance driving demands. Additionally, high-strength alloy materials and intelligent structural design minimize mechanical wear. As for the Xpeng X9, though this pure electric MPV doesn't specify transmission gear counts, its single-motor front-drive system combined with dual-chamber air suspension similarly prioritizes ride smoothness - though electric vehicles typically employ single-speed transmissions. For users with explicit multi-gear transmission requirements, fuel-powered models are recommended, while also suggesting they monitor transmission technical specifications released through official brand channels.
Q
Which car has 7 gear?
In the Malaysian market, models equipped with a 7-speed transmission are relatively rare, but some high-end configurations of the Mazda 6 may feature a 7-speed dual-clutch transmission, which excels in acceleration response and fuel efficiency. The Mazda 6 primarily utilizes a SkyActiv technology-based 6-speed automatic transmission, with technical highlights including a flat torque converter and a lock-up range of up to 89%, significantly enhancing power delivery efficiency. For customers requiring a 7-speed transmission, they may consult local dealers to verify specific model configurations, while noting that transmission types vary by model year and trim level. Other domestic brands such as Proton and Perodua predominantly employ 5-speed or 6-speed transmissions, prioritizing practicality and cost-effectiveness.
Q
Is torque or bhp better?
Torque and horsepower are two key indicators for measuring engine performance, each with its own focus and complementing each other. Torque (unit: N·m) reflects the engine's instantaneous explosive power and directly affects the vehicle's acceleration capability during starting, climbing, or when carrying loads. For example, diesel engines with high torque at low speeds perform better in urban areas with frequent starts and stops or when towing heavy objects. Horsepower (unit: PS or kW), on the other hand, represents the ability of sustained power output and determines high-speed cruising or maximum speed. For instance, high-performance cars release large horsepower at high rotational speeds to achieve rapid overtaking. The relationship between the two can be understood through the formula "horsepower = torque × rotational speed / 9549": if a high-torque engine is limited in rotational speed (such as the tuning of an off-road vehicle), its horsepower may be lower than that of a high-rotational-speed, low-torque engine (such as a sports car). Practical selection needs to be based on usage: for urban commuting, priority should be given to the maximum torque data around 2000 rpm (for example, 1.5T turbocharged engines often reach more than 250 N·m), while for long-distance high-speed driving, high-rpm horsepower (such as more than 150 PS) should be considered. It is worth noting that some small-displacement turbocharged models, through technical optimization, can output torque comparable to that of large-displacement engines (such as 260 N·m) at low rpm while maintaining fuel economy (with a combined fuel consumption of about 6 L/100 km). This type of balanced tuning is more suitable for diverse daily scenarios.
Q
How much torque is required to produce 300 hp at 4600 RPM?
To calculate the torque required to produce 300 hp at 4600 RPM, the conversion formula between imperial horsepower (hp) and torque can be used: Torque (lb·ft) = (Horsepower × 5252) ÷ Rotational Speed (RPM). Substituting the values, Torque = (300 × 5252) ÷ 4600 ≈ 342.5 lb·ft, which converts to approximately 464.3 Newton-meters (N·m) (1 lb·ft ≈ 1.3558 N·m). This result indicates that the engine needs to output approximately 464 N·m of torque at 4600 RPM to achieve a power output of 300 hp. The product of torque and rotational speed directly determines horsepower; high torque enhances acceleration response in the low-speed range, while maintaining torque at high rotational speeds optimizes high-speed performance. For example, turbocharging technology can sustain high torque across a wide rpm range by increasing air intake, thereby addressing both low-speed acceleration and high-speed power requirements.
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Q
What's the difference between wheels and rims?
Rims and hubs are two key but functionally distinct components in the wheel system. As the core supporting structure of the wheel, the hub is located in the central area and connects the axle to the wheel through the central hole, bolt holes, and spokes. It mainly functions to transmit power, bear the weight of the vehicle body, and assist in brake heat dissipation. Its materials are mostly aluminum alloy or steel, with various shapes that directly affect the vehicle's exterior design. The rim is the annular metal ring on the periphery of the hub, which directly contacts the tire bead. It fixes the tire and maintains tire pressure sealing performance through a 46-degree inclined flange design. Its width parameter (J value) must be strictly matched with the tire specification to ensure safety. In terms of damage characteristics, common problems with hubs are impact deformation or cracking, while rims are more prone to edge dents or slow air leakage due to rust caused by high-speed pothole impacts. During maintenance, slight deformation of the hub can be corrected, but cracking requires replacement. If the sealing surface of the rim is damaged, it is recommended to replace it directly. When modifying, attention should be paid to the consistency of the hub's PCD value and central hole diameter with the original vehicle, and the rim width should be adapted to the tire specification. Blind widening may pose a risk of tire blowout. Although the two are often confused, structurally the hub is the "skeleton" and the rim is the "outer ring", which together form a complete wheel unit. Correctly distinguishing between them is crucial for vehicle maintenance and modification.
Q
What is the difference between belt driven and direct drive wheels?
The main differences between belt-driven and direct-driven wheels lie in their power transmission methods and mechanical structures. The belt-driven system connects the motor and wheels via an elastic belt, which incurs transmission losses and requires regular maintenance (such as belt replacement), but it has lower cost and mature technology, making it suitable for consumers with limited budgets. The direct-drive system, on the other hand, adopts a design where the motor is directly coupled with the wheel axle, eliminating intermediate transmission links. It boasts higher energy efficiency (with a transmission efficiency of over 98%) and quieter operation, while also reducing mechanical wear. Over long-term use, it can save approximately 15%-20% of electricity, but its initial purchase cost is 30%-40% higher than that of the belt-driven system. In terms of durability, the bearings of the direct-drive system have to bear greater loads, whereas the belt-driven system extends the motor's lifespan through physical buffering but requires belt replacement every 3 years. If quietness and energy efficiency are prioritized, the direct-drive system is recommended; if economy and ease of maintenance are given top priority, the belt-driven system is more suitable.
Q
What are the 4 types of axles?
The axle is a core component of a vehicle's transmission and load-bearing system, whose main functions are to connect the wheels, transmit driving force and braking force, and support the weight of the entire vehicle. It can be divided into four types according to the driving mode: steering axle, drive axle, steering drive axle, and support axle. The steering axle enables wheel deflection through the swing of the steering knuckle, performs the steering function and bears vertical loads, and is commonly found in the front axle of front-wheel-drive vehicles. The drive axle is responsible for transmitting engine power to the driving wheels, including components such as the main reducer and differential, and is mostly used in the rear axle of rear-wheel-drive vehicles. The steering drive axle has both steering and driving functions, with a complex structure, and is mainly applied in all-wheel-drive off-road vehicles. The support axle is a driven axle that only bears the load, such as the rear axle of front-engine front-wheel-drive sedans or the non-driving rear axle of three-axle vehicles. In terms of suspension structure, axles can also be divided into integral axles (matched with non-independent suspension) and disconnected axles (matched with independent suspension); the former is rigidly connected, while the latter improves driving stability through movable joints. Daily maintenance requires regular inspection of bolt tightness, lubrication conditions, and the braking system. It is recommended to replace the gear oil and adjust the toe-in every 3,000 to 5,000 kilometers to ensure driving safety and component lifespan.
Q
What does +35 on wheels mean?
The "+35" marked on the wheel hub indicates that the ET value of the hub is +35 millimeters, meaning the offset between the hub's mounting surface and the rim's centerline is 35 millimeters inward. The ET value (Offset) is a key parameter for determining the hub's mounting position: a positive value indicates the mounting surface is oriented toward the vehicle's inner side, while a negative value indicates an outward orientation. The ET value of original equipment (OE) passenger car hubs typically ranges between 35 and 50 millimeters; +35 represents a moderately small positive value. This design causes the hub to protrude slightly outward, improving visual impact and cornering stability. However, modifications must account for the J value (hub width), tire dimensions, and suspension geometry. An excessively small ET value (e.g., +10) may achieve fender-flush alignment but could increase steering effort and reduce bearing service life. For modifications, select hubs with ET values approximating OEM specifications or perform professional calculations to ensure compatibility among tires, suspension components, and braking systems, thereby preventing abnormal wear or clearance issues.
Q
How do driving wheels affect handling?
The layout of the drive wheels has a direct impact on vehicle handling. Front-wheel drive (FWD) and rear-wheel drive (RWD) differ significantly in power distribution, steering characteristics, and dynamic performance.
In FWD vehicles, the engine and transmission are concentrated on the front axle, resulting in a heavier front end. This makes them prone to understeer (plowing) when cornering at high speeds, but they are easier to handle in daily driving, more fuel-efficient, and suitable for family sedans. Their compact structure also improves the utilization of interior space.
RWD vehicles, on the other hand, transfer power to the rear wheels via a driveshaft, leading to a more balanced front-to-rear weight distribution. During acceleration, the weight shift to the rear enhances rear-wheel traction, making them better at climbing hills and maintaining straight-line stability. However, they are prone to oversteer (tail-sliding) on wet or slippery roads and require more advanced driving skills, which is why they are commonly found in performance cars or luxury models.
Additionally, FWD vehicles exhibit more pronounced "nose-diving" during braking due to the concentrated components at the front, while RWD vehicles offer more responsive handling during spirited driving but incur higher maintenance costs. When making a choice, one needs to balance handling requirements and usage scenarios—for example, FWD is preferred for urban commuting, while RWD can be considered for those seeking driving pleasure.
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