AIR BAGS: AIR BAG/RESTRAINT CONTROL MODULE
2018 Toyota Corolla
Recalls, owner-reported complaints, investigations and safety data
Data refreshed
Overview
Our database contains 133 NHTSA owner-reported complaints for the 2018 Toyota Corolla, most frequently naming the fuel system, airbags and driver assistance categories. 3 safety recalls have been issued covering this model year; 2 NHTSA investigations name it; and 183 manufacturer communications are on file.
Complaints are reports submitted by owners and drivers to NHTSA. They are not verified and do not establish that a defect exists.
Complaint activity over time
When owners filed reports about this model year
View as table
| Month | Complaints filed | Cumulative |
|---|---|---|
| Oct 2018 | 3 | 12 |
| Nov 2018 | 2 | 14 |
| Dec 2018 | 3 | 17 |
| Jan 2019 | 2 | 19 |
| Feb 2019 | 2 | 21 |
| Mar 2019 | 3 | 24 |
| Apr 2019 | 2 | 26 |
| Jun 2019 | 1 | 27 |
| Jul 2019 | 2 | 29 |
| Aug 2019 | 1 | 30 |
| Sep 2019 | 3 | 33 |
| Oct 2019 | 2 | 35 |
| Nov 2019 | 1 | 36 |
| Dec 2019 | 3 | 39 |
| Jan 2020 | 4 | 43 |
| Feb 2020 | 2 | 45 |
| Mar 2020 | 6 | 51 |
| Apr 2020 | 7 | 58 |
| May 2020 | 4 | 62 |
| Jun 2020 | 6 | 68 |
| Jul 2020 | 2 | 70 |
| Aug 2020 | 6 | 76 |
| Sep 2020 | 1 | 77 |
| Oct 2020 | 4 | 81 |
| Nov 2020 | 3 | 84 |
| Feb 2021 | 1 | 85 |
| Mar 2021 | 1 | 86 |
| Jul 2021 | 1 | 87 |
| Aug 2021 | 1 | 88 |
| Sep 2021 | 1 | 89 |
| Dec 2021 | 2 | 91 |
| Jan 2022 | 1 | 92 |
| Feb 2022 | 1 | 93 |
| Mar 2022 | 1 | 94 |
| May 2022 | 2 | 96 |
| Jun 2022 | 3 | 99 |
| Oct 2022 | 2 | 101 |
| Nov 2022 | 1 | 102 |
| Dec 2022 | 1 | 103 |
| Feb 2023 | 1 | 104 |
| May 2023 | 5 | 109 |
| Jun 2023 | 1 | 110 |
| Sep 2023 | 2 | 112 |
| Nov 2023 | 3 | 115 |
| Mar 2024 | 2 | 117 |
| May 2024 | 1 | 118 |
| Aug 2024 | 1 | 119 |
| Sep 2024 | 1 | 120 |
| Oct 2024 | 1 | 121 |
| Nov 2024 | 1 | 122 |
| Apr 2025 | 1 | 123 |
| May 2025 | 1 | 124 |
| Jun 2025 | 1 | 125 |
| Aug 2025 | 1 | 126 |
| Oct 2025 | 2 | 128 |
| Jan 2026 | 1 | 129 |
| Feb 2026 | 1 | 130 |
| Mar 2026 | 1 | 131 |
| Apr 2026 | 1 | 132 |
| Jun 2026 | 1 | 133 |
What owners report
Complaints grouped by the component NHTSA recorded
- Fuel system3821.3%
- Airbags3519.7%
- Driver assistance2011.2%
- Engine158.4%
- Powertrain (other)126.7%
- Electrical126.7%
- Brakes116.2%
- Seat belts116.2%
Percentages are of component mentions. A single complaint can name more than one component, so these do not sum to the total complaint count.
Safety recalls
3 campaigns cover this model year
Recalls apply to specific vehicles, not to every vehicle of a model year. Check your VIN with NHTSA or your manufacturer's dealer to confirm whether a recall affects your vehicle.
Check a VIN on NHTSA.govFUEL SYSTEM, GASOLINE:DELIVERY:FUEL PUMP
EQUIPMENT:OTHER:LABELS
Safety investigations
NHTSA inquiries naming this vehicle. An investigation is not a finding of a defect.
Desiccated Air Bag Inflator Rupture
From 2000 through 2017, Takata produced millions of air bag inflators using two types of phase-stabilized ammonium nitrate ("PSAN") propellant -- propellant 2004 and propellant 2004L. After prolonged exposure to high temperature cycles and humidity, inflators using propellant 2004 can degrade, causing the propellant to burn too quickly when ignited. The rapid burning can cause the inflator to rupture during deployment, potentially causing serious or even fatal injury to vehicle occupants. See 2016 Blomquist Report at www.nhtsa.gov/sites/nhtsa.gov/files/documents/expert_report-hrblomquist.pdf.Consequently, all frontal inflators using propellant 2004 that do not contain a "desiccant" (a substance that traps and holds moisture) in US vehicles are under recall. These "non-desiccated" inflators either have been or are required to be replaced.In some cases, the remedy part for these recalled inflators was, or will be, an inflator using either propellant 2004 or 2004L that does contain a desiccant. None of these "desiccated" remedy parts (which were installed in older model year vehicles) are currently under recall for a degradation concern. Certain subsets of desiccated PSAN inflators using propellant 2004 for use as original equipment, however, have been recalled for a degradation concern. All Takata inflators produced with propellant 2004L contain desiccant, and none of these desiccated inflators using propellant 2004L are under recall for a degradation concern. There have been no reported field ruptures in any non-recalled desiccated PSAN inflators.It is understood that desiccants fully saturate at some threshold, at which point any additional moisture will not be captured. This means the degradation process observed in non-desiccated inflators using propellant 2004 may also occur in non-recalled desiccated inflators using propellant 2004, assuming additional moisture enters the inflator and high temperature cycling occurs. Based on available information, desiccant saturation can occur within the first five years in the worst environments, and the time required for full saturation is affected by multiple factors. While no present safety risk has been identified, further work is needed to evaluate the future risk of non-recalled desiccated inflators using propellant 2004.Three entities -- Takata (now known as TK Global), the Independent Testing Coalition, and Exponent -- have been studying the long-term behavior of Takata desiccated PSAN inflators using propellant 2004L (as well as 2004) in the presence of moisture and temperature cycling. The research efforts, which include development of predictive modeling techniques and field sample analysis, are ongoing. To date, none of the researchers have identified field evidence showing that propellant 2004L is undergoing a degradation process that leads to aggressive deployment and potential rupture. However, the time in service of such inflators remains short compared to that of the inflators using propellant 2004. Further study is needed to assess the long-term safety of desiccated inflators using propellant 2004L.The Office of Defects Investigation is opening this investigation to examine whether a safety defect related to propellant degradation exists in non-recalled desiccated PSAN frontal inflators manufactured by Takata. This investigation will require extensive information on Takata production processes and surveys of inflators in the field. Lists of recall actions that may have used desiccated PSAN inflators as remedy parts, as well as the makes and models originally manufactured with them, is available with the downloadable version of this document (see nhtsa.gov/recalls?nhtsaId=EA21002 -- note this information is subject to change/revision as the investigation proceeds). This investigation does not supersede EA15-001, which remains open.
Electrical overstress
The Office of Defects Investigation (ODI) opened this investigation to determine if the failure of airbags to deploy during severe crashes, in certain vehicles, was the result of a safety related defect. During the investigation a complex failure was studied that can result in non-deployment of subject vehicle air bags and other restraint system devices in severe crash events. The subject vehicles may be equipped with an airbag control unit (ACU) for the supplemental restraint system (SRS) Electronic Control Unit (ECU) manufactured by ZF-TRW. The ECU receives signals from crash sensors mounted in the vehicle and deploys the vehicle air bags and seat belt pretensioners in accordance with manufacturer design specifications. The ECU in the subject vehicles contains a model DS84 application-specific integrated circuit (ASIC) which controls the communication of the crash sensor signal, firing commands (i.e., when to deploy the airbag(s) and/or pretensioners), and fault information (e.g., diagnostic trouble codes). In September 2016, FCA announced recall 16V-668 for certain model year (MY) 2010 to 2014 Chrysler, Dodge and Jeep products manufactured with the subject ZF-TRW ACU. In this recall, FCA discussed an EOS condition that resulted in a failure of the subject DS84 ASIC, which caused air bag non-deployment. FCA noted that the defect condition had only been observed in vehicles equipped with sensor harnessing routed across the front of the vehicle. Other FCA vehicles that also used the subject ACU, but were not equipped with cross-car harnessing, had not experienced EOS failures, despite similar time in service. During the course of this investigation, ODI sent two separate Information Request (IR) letters to six vehicle manufactures (including FCA, Hyundai, Honda, Kia, Mitsubishi, and Toyota) and one IR letter to ZF-TRW. These IR letters resulted in ODI receiving comprehensive data from these manufacturers and suppliers. Studies of this data found that the DS84 ASIC does not have sufficient protection against negative electrical transients or electrical overstress (“EOS”) that can be generated in certain severe crashes. An electrical transient occurs when the electrical power supplied to a circuit changes momentarily over a short duration of time. In these severe crash cases, the crash sensors and other powered wiring can be damaged and short circuited so as to create a negative electrical transient of sufficient intensity and duration (that are outside the vehicle manufacturer's specification) to damage the ASIC before the restraint device deployment signal is received by the SRS ECU. This damaged signal can lead to incomplete or nondeployment of the air bags and/or pretensioners. Airbag non-deployment and/or lack of pretensioner operation can increase the risk or severity of injury in a crash.A total of 8 fatalities and 14 injuries were associated with known EOS events. The common element in all investigated manufacturers vehicles is the SRS ECU containing a DS84 ASIC manufactured by ZF-TRW. The risk associated with the ASIC is equally shared among all OEMS involved in the investigation. The actual real-world risk can be mitigated by other factors which were assessed by ODI during this investigation. The first mitigating factor involves protections built into the ACU design which protect the DS84 ASIC from damage. There are multiple strategies and levels of protection employed by different OEMs that provide effective EOS mitigation. The two most common strategies at the ACU level are circuit protection diodes on the remote senor signal lines, and current limiting resistors that protect critical components. The second mitigating factor is found at the vehicle level and involves the location and routing of the wires leading from the crash sensors to the SRS ECU. If the wires are well protected in a crash and are not routed with other power wires carrying large currents, the risk for an EOS event is significantly reduced or eliminated. These design specific factors combine to produce a spectrum of risk for the vehicles equipped with ACUs using the DS84 ASIC. Given the many of years of field exposure, it is possible to divide the subject population into two groups; vehicles which have experienced EOS events, and vehicles which have not experienced EOS field events. Four of the six OEMs involved in this investigation have experienced EOS field events on at least one of their models equipped with a DS84 ASIC. All vehicle models (including the Toyota models identified in the Failure Report Summary of the opening resume for this investigation) with field events have been recalled. In an abundance of caution, ODI kept this investigation open five years to monitor field performance and did not identify any field events on vehicles not included in existing safety recalls. Given the spectrum of risk identified in this investigation and that all vehicles with a demonstrated unreasonable risk have been recalled, ODI is closing this investigation. ODI is closing this investigation with the following manufacturer safety recalls: 16V-668, 18E-043, 18V-137, 18V-363, and 20V-024. With the recall actions taken by the subject vehicle and equipment manufacturers, this investigation is closed. The closing of this investigation does not constitute a finding by NHTSA that a safety-related defect does not exists on other model or model year vehicles outside of the recall scopes. The agency reserves the right to take further action if warranted by the circumstances.
Recent owner complaints
Reports submitted to NHTSA, shown in the owner's own words
CV axle making clicking noise when turning with all CV axle boots in good condition.
- NHTSA ID
- 11741358
- Incident
- Jun 1, 2022
Each travel driver seat belt become tight I try pull down for loose and I have notice the driver seat become level low.
- NHTSA ID
- 11734961
- Incident
- Jan 1, 2026
The contact owns a 2018 Toyota Corolla. The contact stated that while driving 75 MPH, there was an abnormal whining sound coming from the vehicle, and the vehicle failed to accelerate while depressing the accelerator pedal. The contact stated that the tachometer was raised to high levels while exiting the highway. While at a stoplight, the vehicle hesitated while accelerating with the check engine warning light illuminated on the instrument panel. Due to the failure, the vehicle was towed to an independent mechanic. An OBD2 scanner was used to diagnose the vehicle, and DTC: P0741, P075B, P1604, P2757, P2820(X4) were retrieved, which were related to the torque converter. The contact was informed that the CVT transmission needed to be replaced, and the contact was provided with an estimate for the repair. The manufacturer was notified of the failure but denied any assistance. The vehicle was not repaired. The failure mileage was 76,099.
- NHTSA ID
- 11723306
- Incident
- Mar 7, 2026
- Mileage
- 76,099 mi
My 2018 Toyota Corolla has problems with acceleration and a very large noise in the front bar that guides the wheels. It also accelerates by itself, which is why I have had to change the brakes many times. It also shakes a lot at the bottom
- NHTSA ID
- 11717239
- Incident
- Jan 6, 2026
Due to recent reports of fuel pump recalls, my daughter bought a 2018 Toyota Corolla almost a year ago. Right now that is problem and her car will not start. I need a free replacement of her fuel pump. Thank you.
- NHTSA ID
- 11709551
- Incident
- Jan 7, 2026
On October 17, 2025, a 2018 Toyota Corolla LE was delivered to an authorized Toyota dealership for an airbag recall repair. The recall involved the airbag electronic control unit (ECU), which, according to Toyota and the National Highway Traffic Safety Administration (NHTSA), may fail to deploy the airbags and/or seatbelt pretensioners during certain types of crashes due to inadequate protection against electrical noise. The vehicle was picked up on October 18, 2025, after the dealer reported the recall repair as completed. Before the recall, the vehicle displayed a clear and consistent safety issue: the “Passenger Airbag OFF” indicator stayed illuminated even when a full-size adult occupant (approximately 208 lbs) was seated in the front passenger seat. After the recall repair, the exact same issue persisted with no improvement. The repair was ineffective, as the system still failed to recognize an occupied seat, and the passenger airbag continued to show “OFF.” When this was reported to the dealership immediately after pickup, staff incorrectly stated that the recall concerned metal fragments inside the airbags. This is inaccurate. The official recall documentation from Toyota and NHTSA clearly identifies the defect as non-deployment of airbags and seatbelt pretensioners, not metal fragments. The dealership then advised that a diagnostic inspection would be needed for a $175 fee. However, since this issue directly involves the same safety components addressed by the recall and remains unresolved after the recall repair, it should be re-inspected free of charge under recall coverage. Charging a diagnostic fee in this case is unreasonable, given that the recall repair did not correct the problem as intended. This ongoing malfunction presents a serious safety risk, as the airbag may fail to deploy in a crash. The problem likely involves a defective occupant detection sensor or an improperly functioning ECU/noise filter following the recall service.
- NHTSA ID
- 11694365
- Incident
- Oct 17, 2025
After having no indication of any issue, my 2018 Toyota Corolla has stopped re-starting after fueling. The only light that appeared was regarding my battery. My battery is brand new and tested.
- NHTSA ID
- 11694221
- Incident
- Oct 17, 2025
Odometer Fraud. The contact purchased a 2018 Toyota Corolla. The contact discovered a mileage discrepancy after the purchase. The vehicle was a private sale. At the time of purchase, the vehicle mileage was approximately 85,000. The contact later discovered that the mileage on the Title was 200,095.
- NHTSA ID
- 11682844
- Incident
- Aug 24, 2025
- Mileage
- 200,095 mi
Manufacturer communications
A bulletin sent by a manufacturer to its dealers. Not a recall, and repairs are not necessarily free.
Some 2005 – 2026 Toyota vehicles that have undergone water intrusion may exhibit a condition in which a musty odor is present. Follow the procedures in this bulletin to remediate the odor and address this condition. The purpose of this Service Bulletin is to provide general guidelines and procedures for odor remediation. This Service Bulletin provides a guide on how to prepare and treat the interior of the vehicle for odor remediation. Refer to the applicable model and model year Repair Manual and the EPA (Environmental Protection Agency) website for the most up-to-date safety and precautionary guidelines.
ELECTRICAL SYSTEM
The air conditioning dye injection tool kit has been developed to aid in identifying the location of air conditioning refrigerant leaks. The procedures outlined in this Service Bulletin aid in locating, inspecting, and repairing refrigerant leaks.
STRUCTURE:BODY
Acid rain results from rainwater or other airborne moisture that become acidic due to industrial chemical impurities in the atmosphere. If these acidic compounds settle on an exposed vehicle, especially the horizontal areas such as the hood, roof, and decklid, significant damage to the painted surfaces can occur. Acid rain damage can typically be identified on vehicles by the presence of stains on the paint surface that resemble hard water spots. Unlike water spots however, acid rain damage cannot be removed by regular washing procedures. Also, because acid rain can etch and soften the paint, normal buffing or polishing repair procedures should not be attempted. This can cause further damage and result in visible depressions in the paint surface. The following are the three major categories of acid rain damage: •Minor damage: requires only buffing to repair. •Moderate damage: usually requires neutralizing, color sanding, and buffing. •Severe damage: extending beyond 1/2 mil of clearcoat on a pearl, metallic, or solid color, requires neutralization, sanding, and repainting. In cases where acid rain damage is minor, neutralization and buffing with a liquid-type paint finessing product may provide an adequate repair. Only specially formulated products outlined in this bulletin should be used for that purpose. Unfortunately, other than minor damage, there is no simple method of determining the actual extent (depth) of acid penetration other than color sanding a representative affected area until there is no visible etching or depressions, followed by measuring the amount of paint removed with either a magnetic or digital-type film thickness gauge. The procedures in this bulletin are intended for use by qualified body/paint technicians and should not be attempted by inexperienced personnel. It is the dealer’s responsibility to protect and maintain the quality of the vehicle’s paint finish after receipt at the dealership prior to the first sale. Perform frequent vehicle washing, as often as daily, during high heat and humidity periods to minimize the potential for paint damage due to acid rain exposure. This is especially important in geographical areas known for high frequency and concentration of acid rain and industrial fallout.
STRUCTURE:BODY
To prevent brake rotor rust from forming during transportation and storage, wheel film will be used instead of a cardboard type of anti-rust cover. The purpose of the wheel film is to shield the disc brake rotor from weather elements and initial rust before the vehicle is delivered to the customer. Consequently, the film should remain on the wheel for as long as possible.
STRUCTURE:BODY
The condition known as acid rain is caused by airborne chemicals or particles in the atmosphere, which mix with rainwater, nighttime dew, or high humidity to form acidic compounds. If these contaminants settle and remain on a painted vehicle surface, especially the horizonal areas of the hood, roof, and decklid, significant damage can occur. This damage is the result of actual etching of the paint and appears as pitting or water spots. As acid rain droplets on the vehicle surface evaporate, the concentration strength of the acid increases, causing deeper and more rapid damage. This evaporation and corrosive action also occur more rapidly on dark colored cars as direct sun heat increases. It is the dealer’s responsibility to protect and maintain the quality of the vehicle’s paint finish after receipt at the dealership prior to the first sale. In areas known for high frequency and/or concentration of acid rain, frequent vehicle washing during high heat or humidity periods will minimize the potential for paint damage caused by acid rain. It is further recommended that either reverse osmosis or deionized water be used to prevent water spotting.
STRUCTURE:BODY
Toyota vehicles are currently protected with RapgardTM protective film designed to protect the horizontal painted surfaces. This material protects from acid rain, environmental fallout, and rail contamination. Follow the Removal Procedure in this bulletin to remove the RapgardTM protective film within 90 days from initial application.
Manufacturers file copies of the bulletins they send to dealers with NHTSA. These often describe diagnostic or repair procedures for a known condition. They are not recalls: repairs described in a bulletin are usually only free if the vehicle is still under warranty or the manufacturer has extended coverage.
Compare model years
Complaint and recall counts across every year of this model
| Year | Complaints | Recalls | Investigations | Issue Index |
|---|---|---|---|---|
| 2027 | 0 | 0 | 0 | — |
| 2026 | 15 | 1 | 0 | 63.7 |
| 2025 | 27 | 0 | 0 | 58.1 |
| 2024 | 61 | 2 | 0 | 60.5 |
| 2023 | 72 | 3 | 0 | 57.9 |
| 2022 | 95 | 0 | 0 | 49.1 |
| 2021 | 184 | 1 | 0 | 52.4 |
| 2020 | 304 | 3 | 0 | 55.6 |
| 2019 | 200 | 5 | 1 | 65.8 |
| 2018Viewing | 133 | 3 | 2 | 66.1 |
| 2017 | 177 | 3 | 2 | 67.9 |
| 2016 | 212 | 1 | 2 | 60.9 |
| 2015 | 219 | 1 | 2 | 61.0 |
| 2014 | 267 | 2 | 2 | 63.8 |
| 2013 | 201 | 5 | 2 | 66.5 |
| 2012 | 445 | 5 | 2 | 64.2 |
| 2011 | 584 | 9 | 2 | 62.2 |
| 2010 | 1,242 | 17 | 3 | 65.7 |
| 2009 | 1,459 | 13 | 3 | 64.8 |
| 2008 | 313 | 6 | 4 | 67.4 |
| 2007 | 836 | 6 | 3 | 66.0 |
| 2006 | 839 | 10 | 4 | 66.8 |
| 2005 | 853 | 10 | 4 | 67.3 |
| 2004 | 477 | 13 | 4 | 66.9 |
| 2003 | 720 | 13 | 4 | 67.0 |
| 2002 | 117 | 5 | 1 | 62.0 |
| 2001 | 133 | 4 | 0 | 58.0 |
| 2000 | 145 | 5 | 0 | 56.7 |
| 1999 | 155 | 4 | 0 | 55.4 |
| 1998 | 225 | 4 | 0 | 56.3 |
| 1997 | 135 | 6 | 0 | 59.0 |
| 1996 | 129 | 6 | 1 | 67.4 |
| 1995 | 176 | 7 | 2 | 69.8 |
| 1994 | 172 | 8 | 1 | 69.7 |
| 1993 | 130 | 6 | 1 | 67.7 |
| 1992 | 63 | 2 | 0 | 53.5 |
| 1991 | 71 | 1 | 0 | 47.2 |
| 1990 | 27 | 1 | 0 | 43.3 |
| 1989 | 23 | 2 | 0 | 56.7 |
| 1988 | 26 | 1 | 0 | 54.8 |
| 1987 | 14 | 0 | 1 | 33.0 |
| 1986 | 3 | 0 | 1 | — |
| 1985 | 3 | 0 | 1 | — |
| 1984 | 6 | 2 | 1 | — |
| 1983 | 1 | 0 | 2 | — |
| 1982 | 5 | 0 | 0 | — |
| 1981 | 3 | 0 | 0 | — |
| 1980 | 2 | 1 | 0 | — |
| 1979 | 2 | 1 | 0 | — |
| 1978 | 0 | 1 | 0 | — |
| 1977 | 1 | 1 | 0 | — |
| 1976 | 1 | 0 | 1 | — |
| 1975 | 0 | 0 | 0 | — |
| 1974 | 0 | 0 | 0 | — |
| 1973 | 1 | 0 | 0 | — |
| 1972 | 0 | 0 | 0 | — |
| 1971 | 0 | 2 | 1 | — |
| 1970 | 0 | 1 | 0 | — |
| 1969 | 0 | 2 | 0 | — |
Higher-selling and older vehicles accumulate more reports. Counts are not failure rates and are not directly comparable between vehicles that sold in very different numbers. Older model years have had longer for reports to accumulate.