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JA4J24A51KZ054612-2019-mitsubishi-outlander-0
BADVIN vehicle history report for

2019 MITSUBISHI OUTLANDERVIN: JA4J24A51KZ054612

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Historical Records
events
Photos
12 images
Sales History
1 records
VIN Decoder
56 entries
Market report
Price analytics

Historical Records

Historical records may include service and maintenance records, title status (clean, junk, salvage), insurance records, number of owners, registration events and states, and other information.
You can find more information about historical records in BADVIN reports and see more examples here.
Available historical records for VIN JA4J24A51KZ054612
Latest reported mileage: 870 mi
Below you can see some examples of what these records could look like.
2023-01-07
a year ago
72,617 mi
Damage reported
Damage to front
2022-01-19
2 years ago
15,608 mi
Vehicle serviced
Tire repaired
2021-05-01
3 years ago
28,508 mi
TOTAL LOSS VEHICLE
Vehicle declared a total loss by an insurance company
Collision damage reported

Sale Record

Sale Date
3 months ago
Odometer
3808 mi
Location
Anaheim, CA, 92807
Year2019
ODO 4660 mi
SellerHidden text
LocationAnaheim, CA, 92807
Date
ended 3 months ago
Sale Website Typedealer auction
sale information provided by user #89387
All photos above are REAL and display ACTUAL car. After you get the report you will see full resolution photos.

Tech Specs
Body StyleSUV
ColorGray
Color (Interior)Gray
TransmissionAutomatic
Engine4 Cylinder
Drive4WD
Fuel TypeGasoline Plug-In Hybrid

Model Analytics & Market Report

We've analyzed more than 41,200 sales records of this model and here are some numbers.
The average price for new (MSRP) 2019 MITSUBISHI OUTLANDER in 2019 was $25,999.
The average price for used 2019 MITSUBISHI OUTLANDER nowadays in 2024 is $16,000 which is 62% from the original price.
Estimated mileage driven per year is 13,463 miles.
For this model we also have depreciation curve, photos, list of features and options, and other analytics.
Take a look at 2019 MITSUBISHI OUTLANDER model page in BADVIN vehicles catalog.

Depreciation

The graph below is a depreciation curve for 2019 MITSUBISHI OUTLANDER. It shows how much this model looses per year in price. This analytics is calculated using sales records from BADVIN database.
The table below shows average price for used 2019 MITSUBISHI OUTLANDER in each year since the year of manufacturing, current year price and projected price in the future years.
You can scroll the table horizontally to see all columns.
YearAverage MileageAverage Price% Left% Lost
2019 MSRP0 mi$25,999100%0%
201913,463 mi$30,474−$4,475−17.21%117.21%-17.21%
202026,926 mi$28,915+$1,559+5.12%111.22%-11.22%
202140,389 mi$26,000+$2,915+10.08%100%0%
202253,852 mi$24,768+$1,232+4.74%95.27%4.73%
202367,315 mi$18,785+$5,983+24.16%72.25%27.75%
→ Visit 2019 MITSUBISHI OUTLANDER depreciation page to see full data.

Price vs Mileage

The graph below shows how mileage affects the price for 2019 MITSUBISHI OUTLANDER. This data was calculated using sales records from BADVIN database.
The table below shows average price for used 2019 MITSUBISHI OUTLANDER by mileage and number of sales.
You can scroll the table horizontally to see all columns.
MileageAverage PriceSample Size
5,000 mi$26,99020 sales
10,000 mi$25,99028 sales
15,000 mi$23,45050 sales
20,000 mi$23,54894 sales
25,000 mi$22,983159 sales
30,000 mi$22,990215 sales
→ Visit 2019 MITSUBISHI OUTLANDER depreciation page to see full data.

VIN Decoder — 56 records

Active Safety System
Anti-lock Braking System (ABS)

Anti-lock Braking System (ABS) means a portion of a service brake system that automatically controls the degree of rotational wheel slip during braking by: (1) Sensing the rate of angular rotation of the wheels; (2) Transmitting signals regarding the rate of wheel angular rotation to one or more controlling devices that interpret those signals and generate responsive controlling output signals; and (3) Transmitting those controlling signals to one or more modulator devices that adjust brake actuating forces in response to those signals.

Standard
Auto-Reverse System for Windows and Sunroofs

An auto-reverse system enables power windows and sunroofs on motor vehicles to automatically reverse direction when such power windows and panels detect an obstruction. This feature can prevent children and others from being trapped, injured, or killed by the power windows and sunroofs.

Standard
Automatic Pedestrian Alerting Sound (for Hybrid and EV only)

Electric vehicle warning sounds are a series of sounds designed to alert pedestrians to the presence of electric drive vehicles such as hybrid electric vehicles (HEVs), plug-in hybrid electric vehicles (PHEVs), and all-electric vehicles (EVs) travelling at low speeds. Vehicles operating in all-electric mode produce less noise than traditional combustion engine vehicles and can make it more difficult for pedestrians, the blind, cyclists, and others to be aware of their presence.

Standard
Electronic Stability Control (ESC)

ESC is a computerized technology that improves a vehicle's stability by detecting and reducing loss of traction (skidding). When ESC detects loss of steering control, it automatically applies the brakes to help steer the vehicle in the driver's intended direction. Braking is automatically applied to wheels individually, such as the outer front wheel to counter oversteer, or the inner rear wheel to counter understeer. Some ESC systems also reduce engine power until control is regained.

Standard
Keyless Ignition

A keyless ignition system permits starting a car without a physical key being inserted into an ignition. Instead, a small device known as a "key fob" transmits a code to a computer in the vehicle when the fob is within a certain close range. When the coded signal matches the code embedded in the vehicle's computer, a number of systems within the car are activated, including the starter system. This allows the car to be started by simply pressing a button on the dashboard while the key fob is left in a pocket or a purse. The vehicle is usually shut down by pushing the same button.

Standard
Tire Pressure Monitoring System (TPMS) Type

A TPMS is an electronic system designed to monitor the air pressure inside the pneumatic tires on various types of vehicles. TPMS can be divided into two different types - direct and indirect. Direct TPMS employ pressure sensors on each wheel, either internal or external. The sensors physically measure the tire pressure in each tire and report it to the vehicle's instrument cluster or a corresponding monitor. Indirect TPMS does not use physical pressure sensors but measure air pressures by monitoring individual wheel rotational speeds and other signals available outside of the tire itself.

Direct
Traction Control

When the traction control computer detects a driven wheel or wheels spinning significantly faster than another, it invokes an electronic control unit to apply brake friction to wheels spinning due to loss of traction. This braking action on slipping wheels will cause power transfer to the wheels with traction due to the mechanical action within the differential.

Standard
Active Safety System / Backing Up and Parking
Backup Camera

A backup camera, also known as a rearview video system, helps prevent back-over crashes and protects our most vulnerable people - children and senior citizens - by providing an image of the area behind the vehicle. A backup camera helps the driver see behind the vehicle while in reverse.

Standard
Active Safety System / Forward Collision Prevention
Dynamic Brake Support (DBS)

A DBS system is an automatic emergency braking system designed to detect an impending forward crash with another vehicle. DBS systems automatically supplement the driver's braking in an effort to avoid a crash if the driver does not brake hard enough to avoid it.

Standard
Active Safety System / Lane and Side Assist
Blind Spot Warning (BSW)

BSW alerts drivers with an audio or visual warning if there are vehicles in adjacent lanes that the driver may not see when making a lane change.

Standard
Active Safety System / Lighting Technologies
Daytime Running Light (DRL)

DRL is an automotive lighting system on the front of a vehicle or bicycle, that automatically switches on when the vehicle is in drive, and emits white, yellow, or amber light to increase the conspicuity of the vehicle during daylight conditions.

Standard
Semiautomatic Headlamp Beam Switching

A semi-automatic headlamp beam switching device provides automatic or manual control of beam switching at the option of the driver. When the control is automatic, the headlamps switch from the upper beam to the lower beam when illuminated by the headlamps on an approaching car and switch back to the upper beam when the road ahead is dark. When the control is manual, the driver may obtain either beam manually regardless of the condition of lights ahead of the vehicle.

Standard
Engine
Displacement (CC)

Engine displacement (in cubic centimeters) is the volume swept by all the pistons inside the cylinders of a reciprocating engine in a single movement from top dead center to bottom dead center.

2000
Displacement (CI)

Engine displacement (in cubic inches) is the volume swept by all the pistons inside the cylinders of a reciprocating engine in a single movement from top dead center to bottom dead center.

122.0474881894
Displacement (L)

Engine displacement (in liters) is the volume swept by all the pistons inside the cylinders of a reciprocating engine in a single movement from top dead center to bottom dead center.

2
Electrification Level

Electrification level defines to what level the vehicle is powered by electric system. The common electric system configurations are mild hybrid, strong hybrid, plug-in hybrid, battery electric, and fuel cell vehicles.

(1) Mild hybrid is the system such as 12-volt start-stop or 48-volt belt integrator starter generator (BISG) system that uses an electric motor to add assisting power to the internal combustion engine. The system has features such as stop-start, power assist, and mild level of generative braking features.

(2) Strong hybrid systems, in vehicles such as the Toyota Prius, mainly consist of motors, conventional gasoline engine, and battery, but the source of electrical charge for the battery power is provided by the conventional engine and/or regenerative braking.

(3) Plug-in hybrid systems, in vehicles such as the Toyota Rav4 Prime, mainly consist of motors, conventional gasoline engine and battery. Plug-in hybrid vehicles are like strong hybrids, but they have a larger battery pack and can be charged with an external source of electricity by electric vehicle supply equipment (EVSE).

(4) Battery electric vehicles (BEV), such as the Tesla Model S or Nissan Leaf, have only a battery and electrical motor components and use electricity as the only power source.

(5) Fuel cell electric vehicles (FCEV) use full electric drive platforms but consume electricity generated by onboard fuel cells and hydrogen fuel.

PHEV (Plug-in Hybrid Electric Vehicle)
Engine Brake (hp) From

Engine brake is the horsepower (hp) at the engine output shaft. Engine Brake (hp) From is the lower value of the range.

117
Engine Configuration

Engine configuration defines how engine cylinders are arranged. Common values are V6 for V-shaped arrangement, I4 or L4 for in-line arrangement.

In-Line
Engine Model

Engine model is a name that a manufacturer applies to a family of engine.

S61 - Y61
Engine Number of Cylinders

This is a numerical field to store the number of cylinders in an engine. Common values for passenger cars are 4 or 6.

4
Fuel Type - Primary

Fuel type defines the fuel used to power the vehicle. For vehicles that have two power sources, such as plug-in hybrid vehicle, both primary fuel type and secondary fuel type will be provided.

Electric
Fuel Type - Secondary
Fuel type defines the fuel used to power the vehicle. For vehicles that have two power sources, such as plug-in hybrid vehicle, both primary fuel type and secondary fuel type will be provided.
Gasoline
Other Engine Info

This is a catch-all field for storing additional engine information that does not fit in any of the other engine fields.

4500rpm / S61 (60kW), Y61 (60kW)
Valve Train Design

Valve train design defines engine camshaft design and control. Common values are single overhead cam (SOHC), dual overhead cam (DOHC), overhead valve (OHV), etc.

Dual Overhead Cam (DOHC)
Exterior / Body
Body Class

Body Class presents the body type based on 49 CFR 565.12(b): "Body type means the general configuration or shape of a vehicle distinguished by such characteristics as the number of doors or windows, cargo-carrying features and the roofline (e.g., sedan, fastback, hatchback)." Definitions are not provided for individual body types in the regulation.

Sport Utility Vehicle (SUV)/Multi-Purpose Vehicle (MPV)
Doors

This is a numerical field to store the number of doors on a vehicle.

5
Exterior / Dimension
Gross Vehicle Weight Rating From

Gross vehicle weight rating (GVWR) is the maximum operating weight of a vehicle including the vehicle's chassis, body, engine, engine fluids, fuel, accessories, driver, passengers and cargo, but excluding that of the trailers. Per 49 CFR 565.15, Class 1 is further broken down to Class A-D; Class 2 is further broken down to Class E-H. This field captures the lower bound of GVWR range for the vehicle.

Class 1D: 5,001 - 6,000 lb (2,268 - 2,722 kg)
Wheel Base (inches) From

Wheel base is the distance between the centers of the front and rear wheels measured in inches. This field captures the lower bound of the wheel base range.

105.10
Exterior / Wheel tire
Number of Wheels

This field captures the number of wheels on a vehicle.

4
Wheel Size Front (inches)

This field captures the diameter of the front wheel in inches.

18
Wheel Size Rear (inches)

This field captures the diameter of the rear wheel in inches.

18
General
Make

Per 49 CFR 565, Make is a name that a manufacturer applies to a group of vehicles or engines.

MITSUBISHI
Manufacturer Name
Name of the vehicle manufacturer.
MITSUBISHI MOTORS CORPORATION (MMC)
Model

Per 49 CFR 565, Model means a name that a manufacturer applies to a family of vehicles of the same type, make, line, series and body type.

Outlander
Model Year

If the model year (MY) is supplied when the VIN is decoded, such as from a crash report or a vehicle registration record, the MY value will be the supplied MY, even if the MY decoded from the VIN differs from the supplied MY. If the MY is not supplied when the VIN is decoded, the MY value will be decoded from the 10th character in the VIN.

2019
Plant City

This data element captures the city of the manufacturing plant where the manufacturer affixes the VIN.

OKAZAKI
Plant Country

This data element captures the country of the manufacturing plant where the manufacturer affixes the VIN.

JAPAN
Plant State

This data element captures the State or Province name within the Plant Country of the manufacturing plant where the manufacturer affixes the VIN.

AICHI
Series

Per 49 CFR 565, Series means a name that a manufacturer applies to a subdivision of a "line" denoting price, size or weight identification and that is used by the manufacturer for marketing purposes.

High
Series2

This data element captures additional information about series of the vehicle.

Wagon body style
Vehicle Type

This field defines the type of the vehicle based on the World Manufacturer Identifier (WMI).

MULTIPURPOSE PASSENGER VEHICLE (MPV)
Interior
Entertainment System

This field defines the type of different entertainment systems in vehicles.

CD + Stereo
Steering Location

This data element captures the location of steering column, either on left- (LHD) or right-hand side (RHD).

Left-Hand Drive (LHD)
Interior / Seat
Number of Seat Rows

This data element is a numeric field to capture the number of rows of seats in a vehicle.

3
Number of Seats

This data element is a numeric field to store the number of seats in a vehicle.

7
Internal
NCSA Body Type

An internal NHTSA field to capture the body type of the vehicle.

Compact Utility (Utility Vehicle Categories "Small" and "Midsize")
NCSA Make

An internal NHTSA field to capture the Make of the vehicle.

Mitsubishi
NCSA Model

An internal NHTSA field to capture the Model of the vehicle.

Outlander (For 2019 on. For model years 2003-2018, see 52-047.)
Mechanical / Battery
Battery Energy (kWh) From

Battery Energy (kWh) From field stores the lower bound of battery energy range in the unit of kilowatt-hour (kWh).

12
Battery Type

Battery type field stores the battery chemistry type for anode, cathode.

Lithium-Ion/Li-Ion
Mechanical / Drivetrain
Axles

This numerical field defines the number of axles on a vehicle.

2
Mechanical / Transmission
Transmission Style

Transmission style provides information about the type of transmissions. The major types of transmissions are manual transmission, automatic transmission, continuously variable transmission (CVT), and dual-clutch transmission (DCT).

Automatic
Passive Safety System
Seat Belt Type

This field describes the type of seat belt, such as manual or automatic. Automatic seat belts automatically close over riders in a vehicle. Automatic seat belts were mainly used in some older model GM, Nissan, and Honda vehicles and are rarely seen now.

Manual
Passive Safety System / Air Bag Location
Curtain Air Bag Locations

This field captures the location of curtain air bags. Curtain air bags are side air bags that protect the head.

1st and 2nd Rows
Front Air Bag Locations

This field captures the location of frontal air bags. Frontal air bags are generally designed to deploy in "moderate to severe" frontal or near-frontal crashes.

1st Row (Driver and Passenger)
Seat Cushion Air Bag Locations

This field captures the location of seat cushion air bags, used as a supplement to the seat belts to help prevent the front passenger from sliding forward in the event of a front impact collision.

1st and 2nd Rows
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Frequently asked questions
The exterior and interior condition of vehicles significantly affects their depreciation, as well-maintained vehicles generally retain more value.
Car depreciation is the decrease in value of a vehicle over time. It's a crucial factor to consider when calculating the total cost of vehicle ownership.
Documentation, if available, includes details of theft and vandalism incidents, showing the extent of damage and any recovery actions taken for the 2019 MITSUBISHI vehicle.
If available, auction photos may be included in our reports, providing a glimpse into the 2019 MITSUBISHI vehicle’s condition and appearance at the time of sale.
Saltwater damage, if documented, is specifically noted due to its corrosive impact on the 2019 MITSUBISHI vehicle's mechanical and electrical systems.
The Monroney label of a 2019 MITSUBISHI OUTLANDER lists advanced technology features, such as navigation systems, driver assistance technologies, and connectivity features, along with their descriptions.
New vehicles often depreciate quickly due to rapid advancements in technology and consumer preference for the latest features, which make older models less desirable.
The information on vehicles provided here is supplied by third parties; BADVIN.ORG is not responsible for the accuracy of any information. BADVIN.ORG provides all service and materials without representations or warranties of any kind, either expressed or implied. Use BADVIN search and reports along with certified vehicle inspection and test drive. See Terms of Use for more details. All other logos, brands and designated trademarks are the property of their respective holders.