Introduction: Electric Bike (Ebike) Range Calculator
One of the most common questions we get is how to calculate the geographic range of an electric bike. Basically,
- How far will my ebike go before it runs out of battery power?
- What is the range of my ebike?
- How far can I go per charge?
There are many factors that affect an electric bike’s range, including the type of bike you’re riding, as well as the battery capacity, terrain, and the level of pedaling effort you as the rider put in.
If you have a Bosch motor system, then you should probably use the Bosch ebike distance calculator. But for all other ebikes, our Range Calculator is the most sophisticated online today.
The truth is that most ebikes come with a Bafang motor system or its equivalent, since they are the largest ebike motor manufacturer in the world, and have an exceptional reputation. Our ebike range calculator has been designed based on the performance of the Bafang electric bike system.
For a more precise estimate of electric bike range, we have developed a detailed ebike range calculator which has 16 Separate Inputs and Over 100 Variants. Try it now, and start keeping track of your actual range to help us refine the system. If you want to learn all the details about how far electric bikes can go, and how to get the most range from your ebike battery, skip the calculator and continue reading the rest of this article.
Average speed for the duration of your ride, including regular pedaling and use of pedal assist and throttle.
Amount of pedal power you supply to reach the average speed. 0 = Throttle Only, 9 = Eco Mode.
- 0 Throttle Only
- 2 Turbo Mode
- 4 Sport Mode
- 6 Tour Mode
- 9 Eco Mode
Total weigh including bike, battery, rider, and any cargo you are carrying on the bike or in a trailer.
- 100 lbs
- 125 lbs
- 150 lbs
- 175 lbs
- 200 lbs
- 225 lbs
- 250 lbs
- 300 lbs
- 325 lbs
On average, how many times do you make one full rotation per minute when pedaling?
- 10 rpm
- 20 rpm
- 30 rpm
- 40 rpm
- 50 rpm
- 60 rpm
- 70 rpm
- 80 rpm
- 90 rpm
- 100 rpm
- 110 rpm
- 120 rpm
Where is the motor located on your electric bike?
NOMINAL MOTOR OUTPUT (Watts)
What is the nominal motor output rating of your ebike? For dual drives, enter the combined total wattage.
What is the voltage of your electric bike system?
BATTERY CAPACITY (Amp-Hours)
What is the capacity of your ebike battery, as measured in Amp-Hours (Ah)?
- 8.0 Ah
- 10.4 Ah
- 11.6 Ah
- 14.0 Ah
- 16.0 Ah
- 20.0 Ah
- 25.0 Ah
What style of electric bike are you riding?
Select the tire tread that most closely resembles that of the tires on your electric bike.
NUMBER OF MECHANICAL GEARS
Select the mechanical gear system on your ebike.
- SINGLE SPEED
Select the mechanical gear system on your ebike.
Select the terrain that best describes the average terrain for your ride.
Select which best describes the suface conditions you will encounter most on your ride.
- SMOOTH ASPHALT
- UNIFORM GRAVEL
- ROUGH GRAVEL / ROCKY
- HEAVILY RUTTED
- SAND OR SNOW
Which best describes the weather conditions you will encounter during your ride?
How often stop completely, and start from a standing position? Level 1 = Rarely, Level 5 = Frequently
- NO STOPS
- A FEW STOPS
- SOME STOPS
- LOTS OF STOPS
- CITY TRAFFIC
Ebike Battery Myth Busting
First, a little electric bike battery myth busting is in order. Every ebike manufacturer should provide detailed specifications for the battery and every other component on the models they bring to market. Many will also provide estimated ranges, but rarely indicate how these range estimates were derived. That is why we built this calculator, so that you could get a fairly precise range based on your ebike specifications and riding conditions.
Estimated ranges provided by ebike brands aren’t based on rigorous testing
Next, let’s dismiss another obvious falsehood. All ebikes can be ridden like conventional bikes, simply by pedaling and using the standard gears. If the electric vehicle you’re looking at does not have operable pedals, it’s not an electric bike.
If you ride your ebike with the electronics turned off, there is no loss of battery charge. And if you ride your ebike without turning on electronics, there is no drag or resistance from the turned-off ebike motor.
There is no drag or resistance from the turned-off motor
That being said, ebikes do tend to be heavier than standard bikes, due to the added weight of the motor, battery and controller. But there are also lightweight ebikes that fold up and are highly portable.
The lithium-ion battery is the fuel tank for your ebike, not unlike the batteries that power your cell phone and laptop computer. In the olden days a few years ago, some legacy ebike brands would use sealed lead acid (SLA) batteries on their ebikes.
You can still find these types of batteries in cars and on mobility scooters. But with improvements in battery technology, the denser and more energy efficient lithium-ion battery has been adopted as the standard for all ebikes. These batteries will vary in their chemistry, as well as their operating voltage and capacity. Do not get a bike that does not have a lithium battery pack. Find out more about electric bike batteries at our Ebike Battery FAQ.
Like the lithium batteries powering your personal electronic devices, ebike batteries will not last forever. After about 1,000 charge cycles, you will notice that the battery is not holding a full charge. For the average rider, it takes about 2-4 years to charge and discharge an ebike battery 1,000 times. These timeframes could be greatly reduced if you expose your electric bike battery to extremes in heat or cold. So it’s best not to leave your battery in the trunk of a hot car, or in a garage that might reach freezing temperatures overnight.
When you finally need to get a new battery for your ebike, have no fear. Usually replacement or spare batteries are available from the original manufacturer, but even if they are not, there are reputable 3rd party battery companies that can provide a high-quality replacement. Our go-to favorite company for this is the Ebike Marketplace in Las Vegas.
Non-Electrical Factors that Affect Electric Bike Range
There are many variables that affect ebike range, including the bike design of bike, rider weight and riding style, terrain, weather, surface moisture, tire inflation.
Bike Design Maintenance. Electric bikes, like conventional bikes, come in many flavors. You have fat tire mountain ebikes, small folding ebikes, and laid back cruiser style ebikes. There are several key factors in bike design that affect range.
First, the weight of the bike is a major factor, but also the width of the tires. Fat tires, for example, have more surface area in contact with the ground, and more traction (friction) compared to a road bike with narrower tires. This adds resistance which can deplete energy reserves more quickly.
Second, it’s important to note that a poorly tuned or maintained ebike will have a shorter range than a properly maintained vehicle. Low tire inflation, poorly aligned gears and brakes, and high wind resistance due to a lack of aerodynamic design will all contribute to reducing the range of an ebike.
Payload. The weight of the passenger and any cargo will also have a dramatic effect on ebike range. All things being equal, a 225-pound rider with a fully-loaded trailer will place a much higher demand on the battery than a 125-pound teenager with a fanny pack. The distribution of the payload on the bike will also affect range, especially if a bike is unbalanced due to heavy loads placed on the rear rack.
Weather Terrain. Headwinds and wet roads each will reduce the potential range of an ebike. Likewise, how hilly your ride is, and if you go off-road on gravelly trails will impact how far you can travel on a single charge.
Electrical Factors that Affect Ebike Range
All electric bikes have 3 essential components that set them apart from conventional bikes. These are the motor, the controller and the battery. Each of these electrical components plays a critical role in the performance of an electrical bike, and if any of them are not working properly, it can adversely affect your ebike performance range.
If you struggle with the concept of electrons running through wires to power a motor, you’re not alone. Check out the Water Pipe Analogy graphic below.
We use watt-hours to measure the energy capacity of a battery pack, and this will help you figure out how long you can ride your ebike before fully discharging the battery. But before we get into watt-hours (symbolized Wh), let’s first review what a watt itself is.
A watt (W) is a unit of power, and power is the rate at which energy is produced or consumed. Think of watts as a measure of electrical flow. Does an electrical device need a big flow or a small flow to work? For example, a 100W light bulb uses energy at a higher rate than a 60W bulb; this means that the 100W light bulb needs a bigger “flow” to work. Likewise, the rate at which your solar energy system “flows” power into your home is measured in watts.
A watt-hour (Wh) is a unit of energy equivalent to one watt (1W) of power expended for one hour (1h) of time. A watt-hour is a way to measure the amount of work performed or generated. Household appliances and other electrical devices perform “work” and that requires energy in the form of electricity. Utilities typically charge you for electrical energy by the kilowatt-hour (kWh), which is equal to 1,000 watt-hours.
An ebike battery is measured by its voltage (V) and amp-hour (Ah) rating. To calculate the Wh of an ebike battery pack, we simply multiply its V and Ah to get the Wh.
- A battery rated at 36 V and 10.4 Ah will have a 417.6 Wh capacity (36 x 10.4 = 374.4), like on the Eunorau UHVO All-Terrain Ebike
- A battery rated at 48 V and 21 Ah will have a 1,008 Wh capacity (48 x 21 = 1,008), like on the Bakcou Mule.
To learn more about ebike batteries beyond simply their range potential, check out our Ebike Battery FAQ. And if you want another expert’s opinion about ebike range, check out Micah Toll at Electrek.
Can I Use 48v Battery With 36V E-Bike Motor?
In the ebike industry, unlike more mature industries, there’s a distinct lack of standardization. This means that components from one e-bike might use different technology, voltages, and connectors than similar parts from another e-bike. Replacing, upgrading, or adding electronic parts to e-bikes can get complicated, and fast.
If you’re building your own bike, you want to replace a battery, or you just have a spare lithium battery you’re thinking about using on your e-bike, you might be wondering how compatible these different parts are with each other. So can you use a 48v battery with your 36v motor?
You can use a 48-volt battery with a 36-volt e-bike motor as long as the controller is compatible with 48-volt (or higher) setups, and the electric motor is compatible with and does not overheat by the increased Wattage (volt x amps) output generated by the 48-volt battery.
Let’s go over all of the reasons why this might not work from an electronics perspective and talk about what you should look for before plugging in a battery that’s not designed for your bike.
Can I Use 48v Battery With 36v Motor?
Yes, you can use a 48-volt battery with your 36-volt e-bike motor, but it might not be a good idea. Your motor probably will work with a wide range of voltages and is unlikely to be the source of any problems you run into.
Increasing the voltage to the motor will increase the rate at which it spins, which can have interesting mechanical implications and will cause the motor to generate more heat, but it won’t break anything short-term. In fact, some people deliberately over-volt their motors in order to get their bikes to go faster.
Before throwing a high voltage battery on your e-bike, you’ll want to do a bit of research. First, if you can, try to figure out the exact specifications of your motor and see what voltage ranges it was designed for.
If you’ve got a motor that’s designed to be used at 36 volts, the 33% increase in voltage to 48 volts is probably fine. If you’ve got a motor that’s designed to be used at a lower voltage, however, it’s probably being stretched already when it’s pushed to 36 volts. In this case, going to 48 volts is much more likely to cause issues.
Alternately, if you’ve got a motor that’s being used under its rated voltage, going to 48 volts will be totally fine.
Second, and more importantly, you’ll want to examine the other components of your bike and make sure that they’re compatible with your 48v battery.
Your motor will generate more heat and spin faster when it’s exposed to more voltage, but your controller is much more sensitive to changes in how electricity flows through your bike. This means that the controller is the component you’ll want to examine first if you’re trying to put a 48v battery on your bike.
Can I Use A 48v Battery With a 36v Controller?
You might be able to use a 48v battery with your 36v e-bike controller, but you’ll need to do some research first. Most modern e-bike controllers are designed for a very big range of voltages, so a 36v controller is a bit of an oddity.
Look for the model number of your controller (often found on a sticker on the unit) and try to find out the full range of voltages it’s compatible with. If the range ends in 36v (24-36v, for example), you’ll definitely want to avoid using a 48v battery. If it’s 36-48v or higher, however, you should be fine to plug in your big battery.
If your controller isn’t listed as being compatible with 48v or higher setups, do NOT plug the battery in. Controllers tend to have sensitive components like capacitors that will break very quickly when exposed to a higher voltage than they’re designed for.
Plugging a 48v battery into your 36v controller and turning on your bike has a very high chance of blowing your capacitors and breaking your controller.
What Happens When I Use A 48v Battery With A 36v Motor?
The terms “volts” and “amps” describe the flow of electricity through a system. If we think of electricity as water running through pipes, voltage describes the pressure of the water in the pipe, while amperage describes the volume of water flowing through the pipe.
A big, wide pipe with slow flow would have high amps and low voltage, while a thin pipe with high pressure would have high voltage and lower amps.
Your motor needs both pressure and volume in order to function. The more electricity it gets, the more torque it can generate. This means that in order to get up hills or start from a stop you’ll want to increase the amps that your motor has access to, but not necessarily the voltage.
If you want it to spin fast, however, it needs a supply of high-pressure, fast-moving electricity in order to quickly power and de-power the magnets that make your motor work. This requires a lot of voltage.
Motors are sensitive to changes in both amps and volts, but they’re generally totally safe to operate as long as the two don’t combine dangerously.
To continue with the water analogy, this means that your motor doesn’t care if you’ve got a thin pipe with high pressure or a thick pipe with low pressure. Your motor will simply produce lots of torque at low speeds with one setup and high speeds with less torque with the other setup.
If you give it a thick pipe with high pressure, however, you risk exposing your motor to more total electricity than it can safely handle, which could cause problems. In other words, you’re mostly worried about watts, or voltage times amps, not the distribution between the two. This is why many people who overvolt their motors will modify their setup to reduce amperage, keeping their motors safe.
As mentioned above, supplying your motor with more volts than it is designed for will cause it to generate more heat. This often means that you’ll reduce the lifespan of your motor, although not necessarily by a huge amount.
Motors are designed to handle some amount of heat generation and are usually over-engineered, meaning that they’ll have generous tolerances in terms of their ability to handle the voltage, dissipate heat, and deal with wear and tear.
In practice, you’ll probably be fine with a modest increase in volts of 25-35%, especially if you don’t run your motors at peak output all the time. Again, though, be mindful of your total watt output and make sure that you’re not pushing an unsafe amount of energy into your motors.
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volt electric bicycle
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- Battery: 48v, 11.6AH Lithium-Ion battery with Panasonic cells
- Features: LED Lit On/Off Button and Locking Key
- Weight: Around 6.5 lbs.
- Capacities: 48V/11.6AH
- Charging Cycles: Over 800 times
- Charge Time: 5 Hours
- Ride Time: Around 14 Miles (depending on the size wattage of your e-bike)
- Compatibility: Can be used with 48v 750w and 48v 1000w electric bike wheels
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Lightweight and strong shock absorber with rebound and lock function. Suitable for all kinds of terrain.
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Ride more comfortably on bumpy road surfaces.
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20 x 4.0 Inch Off-Road CST Fat Tires
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- The competitor must be an online store, they may not have a retail location.
- The website can not be a discounter or auction website (i.e. eBay, Overstock, etc.).
- The competitor must be an Authorized Retailer of the product in question.
- The Price Match Policy includes the item price and the shipping charges, it excludes sales tax.
If you want to check if we can price match a product before you place your order, please Contact Us.
The following brands are excluded from the Price Match Policy:
Electric Ride Co. is an authorized dealer and distributor for all the brands and products sold on this website. All of our products are covered by their manufacturer warranty policies.
If you have any issues with your product, please call us at 1 (888) 897 0774 or e-mail email@example.com and we will assist you with filing a warranty claim with the manufacturer.
Idpoo Warranty Policy
Note: Idpoo products are covered by the iEZway Warranty Policy.
iEZway 12 Month Warranty
All iEZway products are covered under our manufacturer’s 1 year warranty for the original owner against all manufacturing defects (The warranty period of accessories is separately stipulated).
iEZway provides a 6 month warranty for batteries.
A defective battery will be repaired or replaced at no cost to the customer. The warranty period for a repaired or replaced battery remains unchanged based on the original purchase date.
Warranty service will not be honored if the damage is man-made.
Shipping Damage Claims
In rare instances, the item received may be damaged during transportation. If shipping damage occurs, please contact firstname.lastname@example.org and provide us with photo or video proof.
NOTE: We will not accept Shipping Damage Claims later than 7 days from receipt of products.
For repair services, iEZway will only provide free replacement parts.