{"id":14146,"date":"2026-07-28T00:13:12","date_gmt":"2026-07-27T16:13:12","guid":{"rendered":"https:\/\/sunhyings.com\/blog\/oxygen-sensor-poor-gas-mileage\/"},"modified":"2026-08-01T12:15:43","modified_gmt":"2026-08-01T04:15:43","slug":"oxygen-sensor-poor-gas-mileage","status":"publish","type":"post","link":"https:\/\/sunhyings.com\/fr\/blog\/oxygen-sensor-poor-gas-mileage\/","title":{"rendered":"Un mauvais capteur d'oxyg\u00e8ne peut-il causer une mauvaise consommation d'essence ?"},"content":{"rendered":"<style>.sunhy-o2{--ink:#17232d;--blue:#123b5d;--orange:#b45309;--line:#d9e1e7;--soft:#f4f7f9;max-width:1120px;margin:auto;color:var(--ink);font-size:17px;line-height:1.72}.sunhy-o2 *{box-sizing:border-box}.sunhy-o2 .sh-hero{padding:34px 0 20px;border-bottom:1px solid var(--line)}.sunhy-o2 .sh-kicker{font-weight:700;color:var(--orange)}.sunhy-o2 .sh-lead{font-size:20px;max-width:900px}.sunhy-o2 nav{padding:18px 0}.sunhy-o2 nav a{display:inline-block;margin:0 16px 8px 0}.sunhy-o2 .sh-toc{background:var(--soft);padding:18px}.sunhy-o2 .sh-toc strong{display:block;margin-bottom:8px}.sunhy-o2 a{color:var(--blue)}.sunhy-o2 h2{font-size:30px;line-height:1.25;margin:42px 0 14px}.sunhy-o2 h3{font-size:22px}.sunhy-o2 .sh-answer,.sunhy-o2 .sh-cta{background:var(--soft);border-left:4px solid var(--orange);padding:22px;margin:24px 0}.sunhy-o2 table{width:100%;border-collapse:collapse;margin:20px 0}.sunhy-o2 th,.sunhy-o2 td{border:1px solid var(--line);padding:12px;text-align:left;vertical-align:top}.sunhy-o2 th{background:var(--soft)}.sunhy-o2 figure{margin:28px 0}.sunhy-o2 img{display:block;width:100%;height:auto}.sunhy-o2 figcaption{font-size:14px;color:#56636d;margin-top:8px}.sunhy-o2 .sh-flow{display:flex;gap:10px;align-items:center;flex-wrap:wrap;background:var(--soft);padding:18px}.sunhy-o2 .sh-flow span{background:#fff;border:1px solid var(--line);padding:8px 12px}.sunhy-o2 details{border-top:1px solid var(--line);padding:14px 0}.sunhy-o2 summary{font-weight:700;cursor:pointer}.sunhy-o2 .sh-byline{font-size:14px;color:#56636d}@media(max-width:700px){.sunhy-o2{font-size:16px}.sunhy-o2 h2{font-size:25px}.sunhy-o2 table{display:block;overflow-x:auto}.sunhy-o2 .sh-lead{font-size:18px}}.sunhy-page.sunhy-o2{padding-left:20px;padding-right:20px}.sunhy-page.sunhy-o2 .sunhy-toc{display:flex;flex-wrap:wrap;gap:8px 16px;align-items:center}.sunhy-page.sunhy-o2 .sunhy-toc strong{flex-basis:100%}.sunhy-page.sunhy-o2 .sunhy-table-wrap{width:100%;overflow-x:auto;-webkit-overflow-scrolling:touch;margin:20px 0}.sunhy-page.sunhy-o2 .sunhy-table{min-width:680px;margin:0}.sunhy-page.sunhy-o2 .sunhy-table th{background:#123b5d!important;color:#fff!important}.sunhy-page.sunhy-o2 .sunhy-figure{margin:28px 0}.sunhy-page.sunhy-o2 .sunhy-hero-figure{margin-top:24px}.sunhy-page.sunhy-o2 .sunhy-cta a{display:inline-flex;min-height:44px;align-items:center;padding:10px 14px;background:#123b5d;color:#fff;text-decoration:none}.sunhy-page.sunhy-o2 .sunhy-cta a:focus-visible{outline:3px solid #b45309;outline-offset:3px}@media(max-width:700px){.sunhy-page.sunhy-o2{padding-left:16px;padding-right:16px}.sunhy-page.sunhy-o2 .sunhy-table{min-width:620px}}<\/style><article class=\"sunhy-page sunhy-o2\" data-content-stage=\"11-final\" data-completion-status=\"complete-from-11\" data-internal-link-status=\"complete\" data-last-updated=\"2026-08-01\" data-image-status=\"complete\" data-product-line=\"automotive-components\" data-page-type=\"supporting-blog\" data-primary-keyword=\"oxygen sensor bad gas mileage\" data-canonical=\"https:\/\/sunhyings.com\/blog\/oxygen-sensor-poor-gas-mileage\/\"><header class=\"sh-hero sunhy-hero\"><p class=\"sh-kicker\">Oxygen Sensor Technical Guide<\/p><p class=\"sh-lead\">A biased or slow oxygen sensor can contribute to poor fuel economy, but mileage changes require diagnosis of fuel trims, temperature, airflow, leaks and driving conditions.<\/p><p class=\"sh-byline\">Author: Sunhy \u00b7 Technical review: Sunhyings content team \u00b7 Last updated August 1, 2026<\/p><figure class=\"sunhy-figure sunhy-hero-figure\" data-image-slot=\"H01\" data-image-status=\"complete\"><img fetchpriority=\"high\" src=\"https:\/\/sunhyings.com\/wp-content\/uploads\/2026\/07\/oxygen-sensor-poor-gas-mileage-decision-checkpoints.webp\" width=\"1200\" height=\"900\" loading=\"eager\" fetchpriority=\"high\" decoding=\"async\" alt=\"Fuel economy diagnosis sequence using baseline fuel trims leaks and oxygen sensor response decision checkpoints\" title=\"Fuel economy diagnosis sequence using baseline fuel trims leaks and oxygen sensor response decision checkpoints\"><figcaption>Fuel economy is a system result; sensor replacement requires supporting diagnostic evidence. The checkpoints summarize the evidence to confirm before the next decision.<\/figcaption><\/figure><\/header><nav aria-label=\"Related oxygen sensor resources\"><a href=\"https:\/\/sunhyings.com\/blog\/oxygen-sensor-guide\/\">Complete oxygen sensor guide<\/a><a href=\"https:\/\/sunhyings.com\/blog\/bad-oxygen-sensor-symptoms\/\">Bad Oxygen Sensor Symptoms: 10 Signs and What to Test<\/a><a href=\"https:\/\/sunhyings.com\/blog\/oxygen-sensor-error-codes\/\">Oxygen Sensor Codes P0130-P0167: Diagnostic Guide<\/a><a href=\"https:\/\/sunhyings.com\/blog\/oxygen-sensor-emission-control\/\">How Oxygen Sensors Support Fuel Efficiency and Emission Control<\/a><a href=\"https:\/\/sunhyings.com\/technical-guides\/\">Browse technical guides<\/a><a href=\"https:\/\/sunhyings.com\/contact-us\/\">Submit fitment data<\/a><\/nav><nav class=\"sh-toc sunhy-toc\" aria-label=\"On this page\"><strong>On this page<\/strong><a href=\"#mechanism\">How an oxygen sensor can affect fuel use<\/a><a href=\"#not-proof\">Why a mileage drop is not proof<\/a><a href=\"#evidence\">Use measured evidence<\/a><a href=\"#front-rear\">Upstream and downstream effects are different<\/a><a href=\"#after\">What to verify after repair<\/a><a href=\"#economy-causal-path\">How a sensor fault can change fuel use<\/a><a href=\"#mileage-baseline\">Build a credible fuel-economy baseline<\/a><a href=\"#mileage-diagnostic-order\">Use a diagnostic order before replacing the sensor<\/a><a href=\"#temperature-airflow\">Inputs that commonly imitate an oxygen-sensor problem<\/a><a href=\"#wideband-mileage\">Interpret narrowband and wideband data correctly<\/a><a href=\"#mileage-scenario\">Composite scenario: cold operation drives the complaint<\/a><a href=\"#no-savings-promise\">Why no universal savings percentage is responsible<\/a><a href=\"#mileage-post-repair\">Verify both the repair and the economy trend<\/a><a href=\"#mileage-buying-boundary\">Do not convert a mileage complaint directly into an order<\/a><a href=\"#mileage-baseline-measurement\">Establish that fuel economy actually changed<\/a><a href=\"#mileage-mechanism\">How an upstream oxygen-sensor problem can affect fuel use<\/a><a href=\"#mileage-competing-causes\">Competing causes of poor gas mileage<\/a><a href=\"#mileage-trim-patterns\">Use fuel trims as context, not a replacement verdict<\/a><a href=\"#mileage-diagnostic-workflow\">Diagnostic workflow for mileage plus an oxygen-sensor concern<\/a><a href=\"#mileage-code-boundary\">Code families that can accompany the complaint<\/a><a href=\"#mileage-case-intake\">Composite case: fuel use rises because the sensor reports an intake leak<\/a><a href=\"#mileage-case-bias\">Composite case: a biased upstream signal is supported by independent evidence<\/a><a href=\"#mileage-after-repair\">Measure repair success at three levels<\/a><a href=\"#mileage-selection-record\">Selection and claim record if replacement is supported<\/a><a href=\"#mileage-repeatability\">Control normal variation when comparing before and after fuel use<\/a><a href=\"#mileage-contamination\">Contamination can connect fuel use, sensor response and catalyst risk<\/a><a href=\"#mileage-warranty-claim\">How to investigate &#8220;new sensor did not improve MPG&#8221;<\/a><a href=\"#mileage-emissions-boundary\">Do not trade legal emissions monitoring for apparent economy<\/a><\/nav><section class=\"sh-answer sunhy-quick-answer\"><h2 id=\"quick-answer\">Quick answer<\/h2><p>Yes. A slow or biased upstream oxygen sensor can cause the engine control module to apply incorrect fuel correction, which may reduce gas mileage. But poor fuel economy alone does not prove sensor failure. Driving pattern, tire pressure, thermostat operation, airflow measurement, fuel pressure, injectors, ignition, exhaust leaks and stored adaptations can produce the same complaint.<\/p><\/section>\n      <h2 id=\"mechanism\">How an oxygen sensor can affect fuel use<\/h2><p>When the engine is warm and operating in closed loop, upstream sensor feedback helps the control module evaluate mixture. If the signal is biased lean, the module may add fuel. If it is slow or biased rich, correction can also become inappropriate. Vehicle strategy may use fallback values when a circuit fault is detected, so the effect varies by application and operating condition.<\/p>\n      <h2 id=\"not-proof\">Why a mileage drop is not proof<\/h2><div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Check<\/th><th>How it can imitate an O2 sensor problem<\/th><\/tr><\/thead><tbody><tr><td>Trip pattern and weather<\/td><td>Short trips, idling, load and low temperature reduce measured economy.<\/td><\/tr><tr><td>Tires and alignment<\/td><td>Low pressure or rolling resistance raises fuel demand.<\/td><\/tr><tr><td>Thermostat \/ coolant data<\/td><td>An engine that stays cold may remain in enrichment longer.<\/td><\/tr><tr><td>MAF\/MAP and intake leaks<\/td><td>Incorrect air calculation changes fuel trim and sensor readings.<\/td><\/tr><tr><td>Fuel pressure or injectors<\/td><td>Delivery faults can create rich or lean operation.<\/td><\/tr><tr><td>Ignition or mechanical condition<\/td><td>Misfire and low efficiency waste fuel and affect exhaust oxygen.<\/td><\/tr><\/tbody><\/table><\/div>\n      <h2 id=\"evidence\">Use measured evidence<\/h2><p>Compare fuel economy over similar routes and fill methods, then record codes, freeze-frame data and fuel trims. Inspect the intake and exhaust for leaks. Check coolant temperature, airflow data and sensor response under the operating conditions specified by service information. A healthy sensor can correctly report a problem created elsewhere.<\/p>\n      <figure class=\"sunhy-figure\" data-image-slot=\"B01\" data-image-status=\"complete\"><img loading=\"lazy\" src=\"https:\/\/sunhyings.com\/wp-content\/uploads\/2026\/07\/oxygen-sensor-diagnosis-before-replacement-workflow-1.webp\" width=\"1200\" height=\"900\" loading=\"lazy\" decoding=\"async\" alt=\"Six-step oxygen sensor diagnostic workflow\" title=\"Six-step oxygen sensor diagnostic workflow\"><figcaption>Test the system around the sensor before using fuel economy as a replacement decision.<\/figcaption><\/figure>\n      <h2 id=\"front-rear\">Upstream and downstream effects are different<\/h2><p>The upstream sensor is normally more directly involved in fuel-control feedback. A downstream sensor commonly monitors catalyst performance, although strategies differ. Replacing a rear sensor solely because mileage declined is therefore especially weak reasoning unless circuit tests and service data support it.<\/p>\n      <h2 id=\"after\">What to verify after repair<\/h2><p>Correct the root cause, confirm that fuel trims and sensor data respond normally, and allow required monitors to run legally. Reset procedures differ by vehicle. Compare mileage only over enough similar driving to reduce normal variation; an immediate dashboard estimate is not reliable proof of savings.<\/p>\n    <h2 id=\"economy-causal-path\">How a sensor fault can change fuel use<\/h2>\n    <p>When a warm engine meets closed-loop conditions, upstream oxygen-sensor feedback helps the control module evaluate mixture. A biased lean report can lead the module to add fuel; a slow or biased rich report can disrupt correction in another direction. The effect depends on the control strategy, operating time in closed loop and whether other inputs remain plausible. A downstream sensor commonly supports catalyst monitoring and should not automatically be blamed for a mileage complaint.<\/p>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Possible path<\/th><th>Supporting evidence<\/th><th>What can imitate it<\/th><\/tr><\/thead><tbody>\n    <tr><td>Biased lean feedback adds fuel<\/td><td>Positive correction with failed response test<\/td><td>Intake leak, low fuel delivery or exhaust leak<\/td><\/tr>\n    <tr><td>Slow response delays correction<\/td><td>Technology-specific response outside specification<\/td><td>Slow real mixture change or low scan rate<\/td><\/tr>\n    <tr><td>Heater fault delays feedback<\/td><td>Verified heater circuit failure and enable conditions<\/td><td>Fuse, wiring, ground or control fault<\/td><\/tr>\n    <tr><td>Fallback strategy after fault<\/td><td>Service information and stored diagnostic evidence<\/td><td>Other failed inputs or open-loop command<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n\n    <h2 id=\"mileage-baseline\">Build a credible fuel-economy baseline<\/h2>\n    <p>Dashboard estimates are useful for trends but can change with trip length and reset history. For a stronger baseline, record fuel added and distance over several comparable fill cycles, using consistent fill practice. Note ambient temperature, route, average speed, load, tire pressure, fuel blend and idling. Do not compare a winter short-trip period with a warm highway period and assign the difference to one sensor.<\/p>\n    <h3>Normalize the driving conditions<\/h3>\n    <p>Cold starts and short trips keep the engine and catalyst below stable operating conditions for a larger share of the journey. Towing, roof loads, traffic and high speed increase energy demand independently of mixture feedback. Record these factors before diagnosis.<\/p>\n    <h3>Check measurement and maintenance factors<\/h3>\n    <p>Verify tire size and pressure, dragging brakes, alignment symptoms, fuel leaks and maintenance condition. An odometer or tire-size change can distort calculated mileage. Strong raw-fuel odor or a visible leak is a safety issue, not a sensor experiment.<\/p>\n\n    <h2 id=\"mileage-diagnostic-order\">Use a diagnostic order before replacing the sensor<\/h2>\n    <ol><li>Record current, pending and permanent codes, freeze frame and readiness before clearing.<\/li><li>Confirm engine reaches the expected operating temperature and closed-loop state.<\/li><li>Review short- and long-term fuel trims by load and speed.<\/li><li>Inspect intake and exhaust leakage, airflow\/load data and fuel delivery.<\/li><li>Identify the exact upstream sensor technology and run the specified response\/circuit test.<\/li><li>Repair the supported root cause and repeat the baseline under comparable conditions.<\/li><\/ol>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Observation<\/th><th>Question it raises<\/th><th>Next evidence<\/th><\/tr><\/thead><tbody>\n    <tr><td>High positive trim mainly at idle<\/td><td>Unmetered air or low-flow exhaust leak?<\/td><td>Leak test and trim comparison at higher load<\/td><\/tr>\n    <tr><td>High positive trim across load<\/td><td>Fuel delivery, airflow or sensor bias?<\/td><td>Pressure\/volume, load data and response test<\/td><\/tr>\n    <tr><td>Negative trim<\/td><td>Excess fuel or biased input?<\/td><td>Injectors, purge, pressure, temperature and sensor data<\/td><\/tr>\n    <tr><td>Normal trims but mileage complaint<\/td><td>Non-mixture operating factor?<\/td><td>Baseline, tires, brakes, route, load and warm-up<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n\n    <h2 id=\"temperature-airflow\">Inputs that commonly imitate an oxygen-sensor problem<\/h2>\n    <h3>Coolant temperature and thermostat operation<\/h3>\n    <p>An engine that runs colder than intended may use a richer strategy and spend more time outside normal control conditions. Compare actual temperature data with the vehicle procedure; do not replace the oxygen sensor because the dashboard gauge appears normal.<\/p>\n    <h3>Airflow, load and intake leakage<\/h3>\n    <p>Incorrect MAF\/MAP data or unmetered air changes the control module&#8217;s fuel calculation. A healthy oxygen sensor may report the resulting lean exhaust accurately. Compare load data, fuel trims and leak evidence.<\/p>\n    <h3>Fuel delivery, injectors and purge<\/h3>\n    <p>Excessive pressure, injector leakage or uncontrolled purge flow can create rich operation. Low pressure or restricted delivery can create lean operation. These causes must be tested rather than inferred from the oxygen-sensor signal alone.<\/p>\n\n    <h2 id=\"wideband-mileage\">Interpret narrowband and wideband data correctly<\/h2>\n    <p>A narrowband upstream trace and a wideband\/A\/F current or lambda parameter require different expectations. Confirm units, supported PID, engine temperature and commanded state. A single screenshot cannot show response over time or establish whether the sensor caused the fuel correction.<\/p>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Data item<\/th><th>Useful question<\/th><th>Limitation<\/th><\/tr><\/thead><tbody>\n    <tr><td>Short-term fuel trim<\/td><td>What correction is occurring now?<\/td><td>Changes rapidly with state and load<\/td><\/tr>\n    <tr><td>Long-term fuel trim<\/td><td>What repeated trend was learned?<\/td><td>Can retain history after a prior fault<\/td><\/tr>\n    <tr><td>Sensor voltage\/current\/lambda<\/td><td>Does response match technology?<\/td><td>Needs commanded state and test conditions<\/td><\/tr>\n    <tr><td>Closed-loop status<\/td><td>Is feedback currently enabled?<\/td><td>Does not prove every input is correct<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n\n    <h2 id=\"mileage-scenario\">Composite scenario: cold operation drives the complaint<\/h2>\n    <p><strong>Composite diagnostic scenario:<\/strong> fuel economy falls during short winter trips and an older oxygen-sensor code is stored in history. Current trims are plausible when warm, but coolant-temperature data shows the engine does not reach the expected operating range. Thermostat diagnosis changes the repair direction. This is a composite example, not a Sunhyings customer case or savings claim.<\/p>\n\n    <h2 id=\"no-savings-promise\">Why no universal savings percentage is responsible<\/h2>\n    <p>The benefit of replacement ranges from none, when the sensor was not faulty, to a meaningful correction when biased feedback affected fuel control. Vehicle, route, climate and other faults dominate the result. Do not promise a percentage improvement or calculate payback until diagnosis identifies the fault and a repeatable baseline exists.<\/p>\n\n    <h2 id=\"mileage-post-repair\">Verify both the repair and the economy trend<\/h2>\n    <p>After repair, confirm circuit and technology-specific sensor response, plausible fuel trims and completion of the relevant monitor. Then compare fuel use over similar routes and conditions. Learned adaptations may require the vehicle&#8217;s specified procedure and time to stabilize. Clearing memory repeatedly can erase diagnostic evidence without proving improvement.<\/p>\n    <h2 id=\"mileage-buying-boundary\">Do not convert a mileage complaint directly into an order<\/h2>\n    <p>A parts request should include the diagnostic basis as well as fitment identity. Record the tested sensor position, technology, OE reference, complete vehicle and engine, market\/emissions package, connector and cable details. \u201cUses too much fuel\u201d does not identify which sensor is involved or prove that any sensor failed.<\/p>\n    <p>For fleet or distributor analysis, separate catalog mismatch, no-fault-found returns and confirmed response failures. Do not advertise a guaranteed fuel-saving percentage. Product evidence can support fitment and specification; only controlled before\/after vehicle data under comparable conditions can support an economy result.<\/p>\n    <p>If diagnosis supports replacement, verify the OE number, exact Bank\/Sensor position, sensor technology, connector, lead and regional application before installation. A correctly diagnosed failure can still produce an unsuccessful repair when the replacement belongs to another position or calibration. Fitment approval and causal diagnosis remain separate gates.<\/p>\n  \n    <h2 id=\"mileage-baseline-measurement\">Establish that fuel economy actually changed<\/h2>\n    <p>A dashboard estimate over one short trip is not a reliable baseline. Fuel use changes with trip length, idle time, traffic, speed, ambient temperature, fuel blend, payload, tire pressure, roof loads, climate control and driver behavior. Before linking a complaint to an oxygen sensor, calculate fuel added over distance across comparable operation and record the conditions.<\/p>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Baseline input<\/th><th>How to record it<\/th><th>Why it matters<\/th><\/tr><\/thead><tbody>\n      <tr><td>Fuel quantity<\/td><td>Use consistent fill method and actual volume added<\/td><td>Gauge movement and estimated range are not precise consumption<\/td><\/tr>\n      <tr><td>Distance<\/td><td>Odometer or verified trip distance<\/td><td>Short samples amplify normal variation<\/td><\/tr>\n      <tr><td>Trip mix<\/td><td>City, highway, idle time and average trip length<\/td><td>Cold starts and congestion change consumption<\/td><\/tr>\n      <tr><td>Environment<\/td><td>Temperature, seasonal fuel and weather<\/td><td>Warm-up and rolling\/aero losses vary<\/td><\/tr>\n      <tr><td>Vehicle load<\/td><td>Passengers, cargo, trailer and accessories<\/td><td>Required engine work changes<\/td><\/tr>\n      <tr><td>Maintenance state<\/td><td>Tires, brakes, filters, fluids and recent repairs<\/td><td>Non-sensor changes can explain the trend<\/td><\/tr>\n      <tr><td>Fault context<\/td><td>Codes, warning lamps and drivability symptoms<\/td><td>Defines whether diagnosis is urgent<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n    <p>Use the baseline to describe the problem, not to promise a sensor will restore a fixed MPG. If the data is inconsistent or unavailable, mark the fuel-economy change <code>DATA NOT AVAILABLE<\/code> and diagnose the reported symptoms separately.<\/p>\n\n    <h2 id=\"mileage-mechanism\">How an upstream oxygen-sensor problem can affect fuel use<\/h2>\n    <p>After enable conditions are met, the control module can use upstream oxygen-sensor feedback with airflow, load, temperature and other inputs to correct injector command. A biased, slow or unavailable signal can contribute to incorrect correction or to a fallback strategy. The effect depends on sensor technology, failure mode, vehicle calibration and operating state.<\/p>\n    <p>The sensor does not meter fuel directly. If it reports a true lean condition caused by unmetered air, low fuel delivery or an exhaust leak, adding fuel may be the controller&#8217;s rational response. Replacing that correctly reporting sensor leaves the root cause active. Conversely, a biased signal may drive correction even though the engine condition is different. Diagnosis must separate these paths.<\/p>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Signal situation<\/th><th>Possible controller response<\/th><th>Fuel-use implication<\/th><th>Evidence needed<\/th><\/tr><\/thead><tbody>\n      <tr><td>Accurate lean report<\/td><td>Add fuel within control authority<\/td><td>Consumption may increase because another fault exists<\/td><td>Leaks, fuel pressure, airflow and trim pattern<\/td><\/tr>\n      <tr><td>Sensor biased lean<\/td><td>Add fuel despite richer actual mixture<\/td><td>Can increase consumption and emissions<\/td><td>Independent mixture\/circuit\/response evidence<\/td><\/tr>\n      <tr><td>Accurate rich report<\/td><td>Reduce fuel within control authority<\/td><td>Sensor is reporting an engine\/fuel fault<\/td><td>Fuel pressure, injectors, purge, ignition and trims<\/td><\/tr>\n      <tr><td>Sensor biased rich<\/td><td>Remove fuel despite leaner actual mixture<\/td><td>Driveability and catalyst risk can result<\/td><td>Technology-correct plausibility and response test<\/td><\/tr>\n      <tr><td>No valid feedback<\/td><td>Use fallback\/open-loop strategy as calibrated<\/td><td>Effect varies; no universal MPG loss applies<\/td><td>Code\/status, operating state and service logic<\/td><\/tr>\n      <tr><td>Downstream concern<\/td><td>Primarily catalyst-monitor path in many systems<\/td><td>Not the first universal cause of poor mileage<\/td><td>Exact control strategy and related faults<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n\n    <h2 id=\"mileage-competing-causes\">Competing causes of poor gas mileage<\/h2>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>System<\/th><th>Possible cause<\/th><th>Evidence to compare<\/th><\/tr><\/thead><tbody>\n      <tr><td>Operating pattern<\/td><td>Short trips, long idle, traffic, high speed or heavy load<\/td><td>Trip history and comparable baseline<\/td><\/tr>\n      <tr><td>Tires\/chassis<\/td><td>Low pressure, alignment, bearing or brake drag<\/td><td>Pressure, temperature, coast\/inspection and service data<\/td><\/tr>\n      <tr><td>Temperature control<\/td><td>Engine does not reach expected operating temperature<\/td><td>Coolant data, warm-up time and thermostat procedure<\/td><\/tr>\n      <tr><td>Air measurement<\/td><td>Airflow or pressure input bias, intake restriction or leak<\/td><td>Load, airflow plausibility, trims and leak tests<\/td><\/tr>\n      <tr><td>Fuel system<\/td><td>Pressure, injector leakage, purge flow or fuel quality<\/td><td>Specified pressure\/decay, balance and command tests<\/td><\/tr>\n      <tr><td>Ignition\/mechanical<\/td><td>Misfire, compression or valve-control issue<\/td><td>Misfire counters, ignition tests and mechanical evidence<\/td><\/tr>\n      <tr><td>Exhaust<\/td><td>Leak before sensor or restriction<\/td><td>Cold\/hot leak inspection and backpressure\/service tests<\/td><\/tr>\n      <tr><td>Calibration\/data<\/td><td>Incorrect tire size, module update or unsupported parameter<\/td><td>Vehicle configuration and service information<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n\n    <h2 id=\"mileage-trim-patterns\">Use fuel trims as context, not a replacement verdict<\/h2>\n    <p>Short-term correction shows immediate control response; long-term correction reflects learned adjustment over operating regions. Names, signs, units and reset behavior can vary, so use service definitions. Compare banks and more than one airflow condition. A single idle value cannot separate every cause.<\/p>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>General pattern<\/th><th>Possible direction<\/th><th>Next check<\/th><th>Boundary<\/th><\/tr><\/thead><tbody>\n      <tr><td>Positive correction strongest at idle<\/td><td>Unmetered air or low-flow exhaust leak<\/td><td>Compare at elevated airflow and perform leak test<\/td><td>Not a universal threshold<\/td><\/tr>\n      <tr><td>Positive correction at idle and load<\/td><td>Fuel delivery, airflow measurement or broad lean condition<\/td><td>Fuel pressure, airflow plausibility and both banks<\/td><td>Sensor bias remains one possibility<\/td><\/tr>\n      <tr><td>Negative correction with rich symptoms<\/td><td>Excess fuel, purge, injector or measurement issue<\/td><td>Fuel pressure, injector and ignition evidence<\/td><td>Rich sensor report may be accurate<\/td><\/tr>\n      <tr><td>One bank differs<\/td><td>Localized leak, fuel, ignition, mechanical or circuit issue<\/td><td>Bank comparison and cylinder evidence<\/td><td>Bank identity must be correct<\/td><\/tr>\n      <tr><td>Correction normal but mileage low<\/td><td>Trip\/chassis\/load or non-feedback cause<\/td><td>Recheck consumption baseline and mechanical losses<\/td><td>Normal trim does not prove entire vehicle perfect<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n\n    <h2 id=\"mileage-diagnostic-workflow\">Diagnostic workflow for mileage plus an oxygen-sensor concern<\/h2>\n    <ol>\n      <li>Quantify fuel use over comparable conditions and document the change.<\/li>\n      <li>Scan all modules; preserve codes, status, freeze frame and readiness.<\/li>\n      <li>Confirm operating temperature, trip pattern, tire\/chassis and maintenance basics.<\/li>\n      <li>Identify exact sensor technology, bank and position before graphing data.<\/li>\n      <li>Inspect exhaust leaks, connector, harness and loaded heater circuit.<\/li>\n      <li>Compare trims by bank and airflow with airflow, load, fuel and misfire context.<\/li>\n      <li>Run the manufacturer-aligned response or plausibility test.<\/li>\n      <li>Repair the supported root cause; do not order from MPG or code alone.<\/li>\n      <li>Repeat the same diagnostic observations and monitor procedure after repair.<\/li>\n      <li>Compare fuel use only across a sufficiently similar later sample.<\/li>\n    <\/ol>\n    \n  <figure class=\"sunhy-figure\" data-image-slot=\"P09\" data-image-status=\"complete\">\n    <img loading=\"lazy\" src=\"https:\/\/sunhyings.com\/wp-content\/uploads\/2026\/07\/wideband-air-fuel-ratio-sensor-multipin-connector.jpg\" width=\"1206\" height=\"905\" loading=\"lazy\" decoding=\"async\" alt=\"Wideband air-fuel ratio sensor with a multi-pin keyed connector and protected cable\" title=\"Wideband air-fuel ratio sensor with a multi-pin keyed connector and protected cable\">\n    <figcaption>A multi-pin connector can indicate a more complex circuit; it does not by itself prove technology, calibration or fitment.<\/figcaption>\n  <\/figure>\n\n    <h2 id=\"mileage-code-boundary\">Code families that can accompany the complaint<\/h2>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Code\/condition<\/th><th>What it contributes<\/th><th>What it does not prove<\/th><\/tr><\/thead><tbody>\n      <tr><td>Lean\/rich system code<\/td><td>Fuel-control correction exceeded monitor logic<\/td><td>Which air, fuel, exhaust, circuit or sensor cause exists<\/td><\/tr>\n      <tr><td>Oxygen-sensor low\/high code<\/td><td>Named signal condition for bank\/position<\/td><td>Whether signal reflects real mixture<\/td><\/tr>\n      <tr><td>Slow\/no-activity code<\/td><td>Response or activity concern<\/td><td>Correct temperature, circuit or root cause without testing<\/td><\/tr>\n      <tr><td>Heater code<\/td><td>Heater circuit monitor concern<\/td><td>That the sensor element is the failed circuit component<\/td><\/tr>\n      <tr><td>Misfire code<\/td><td>Combustion fault can distort oxygen and fuel use<\/td><td>Ignition-only cause<\/td><\/tr>\n      <tr><td>P0420\/P0430<\/td><td>Catalyst efficiency monitor concern<\/td><td>Automatic upstream\/downstream sensor order<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n\n    <h2 id=\"mileage-case-intake\">Composite case: fuel use rises because the sensor reports an intake leak<\/h2>\n    <p><strong>Composite workshop scenario:<\/strong> a vehicle shows positive correction on both banks, especially at idle, with an oxygen-sensor lean indication. The sensors respond to an approved mixture change. A controlled intake test finds unmetered air. After repair, trims normalize under comparable conditions and the sensors remain in service.<\/p>\n    <p>The scenario does not say every idle-positive trim pattern proves a leak. It shows that a responsive sensor can be evidence of another fault. It is composite, not a Sunhyings customer case and contains no claimed fuel-saving percentage.<\/p>\n\n    <h2 id=\"mileage-case-bias\">Composite case: a biased upstream signal is supported by independent evidence<\/h2>\n    <p><strong>Composite diagnostic scenario:<\/strong> one bank commands sustained fuel addition even though leak, fuel-delivery and ignition checks are satisfactory. Circuit integrity passes, and a manufacturer-aligned response comparison shows the named upstream sensor remains biased relative to the known stimulus and opposite bank. Exact fitment is confirmed and the sensor is replaced.<\/p>\n    <p>After repair, response and trims are verified and the relevant monitor completes. Fuel economy is evaluated later over comparable trips rather than promised at installation. This is a composite reasoning example, not a test result for a Sunhyings part.<\/p>\n\n    <h2 id=\"mileage-after-repair\">Measure repair success at three levels<\/h2>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Level<\/th><th>Success evidence<\/th><th>Timing<\/th><\/tr><\/thead><tbody>\n      <tr><td>Physical\/circuit<\/td><td>Correct part\/position, secure routing, sealed exhaust and valid heater circuit<\/td><td>Immediately after installation<\/td><\/tr>\n      <tr><td>Control\/monitor<\/td><td>Technology-correct response, plausible trims and monitor completion<\/td><td>Under specified operating conditions<\/td><\/tr>\n      <tr><td>Fuel-use outcome<\/td><td>Calculated consumption over comparable distance\/trip\/environment<\/td><td>After enough representative driving<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n    <p>A warning lamp that stays off for one short trip is not the same as monitor completion. A better dashboard estimate is not the same as measured fuel use. Preserve before\/after data and investigate any remaining condition rather than assigning all change to the replacement sensor.<\/p>\n\n    <h2 id=\"mileage-selection-record\">Selection and claim record if replacement is supported<\/h2>\n    <ul><li>Vehicle, engine, market\/emissions configuration and exact Bank\/Sensor position<\/li><li>OE\/cross-reference source and revision<\/li><li>Narrowband, titania or wideband\/A\/F technology<\/li><li>Connector, pins, lead, clips, thread and shield confirmation<\/li><li>Baseline fuel-use method and conditions<\/li><li>Codes, circuit, leak, trim and response evidence<\/li><li>Package, part and lot\/date plus installed-route photos<\/li><li>Post-repair response, readiness and later comparable consumption data<\/li><\/ul>\n    <p>Sunhyings can review exact fitment and sourcing data submitted for a project. This page does not promise a fuel-economy gain, stock, fitment, price, MOQ or lead time for an unverified part number.<\/p>\n    <h2 id=\"mileage-repeatability\">Control normal variation when comparing before and after fuel use<\/h2>\n    <p>A valid comparison does not require laboratory precision, but it does require consistent definitions. Use the same fuel-economy calculation, comparable route mix, similar seasonal conditions and enough distance that one cold start or long idle period does not dominate the result. Note tire pressure, load and maintenance changes. Do not discard unfavorable trips merely to make the repair appear successful.<\/p>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Variation source<\/th><th>Control or record<\/th><th>Misleading conclusion to avoid<\/th><\/tr><\/thead><tbody>\n      <tr><td>Fill variation<\/td><td>Use repeatable pump\/fill method and multiple fills where practical<\/td><td>One fill proves exact improvement<\/td><\/tr>\n      <tr><td>Trip mix<\/td><td>Compare similar city\/highway\/idle proportions<\/td><td>Highway after repair versus city before repair<\/td><\/tr>\n      <tr><td>Temperature\/season<\/td><td>Record ambient range and seasonal fuel context<\/td><td>All change came from the sensor<\/td><\/tr>\n      <tr><td>Driver\/load<\/td><td>Record major changes in speed, payload or towing<\/td><td>Vehicle condition alone determines fuel use<\/td><\/tr>\n      <tr><td>Adaptation\/monitor<\/td><td>Allow required control and monitor operation<\/td><td>Immediate display reset is a validated trend<\/td><\/tr>\n      <tr><td>Other maintenance<\/td><td>List tires, brakes, thermostat, filters and simultaneous repairs<\/td><td>Attribute combined repair outcome to one part<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n    <p>If the sensor circuit and monitor now pass but measured fuel use remains poor, do not repeatedly replace the sensor. Revisit the baseline, operating conditions and competing mechanical or control causes. The repair can be technically correct without explaining every component of the original fuel-cost complaint.<\/p>\n\n    <h2 id=\"mileage-contamination\">Contamination can connect fuel use, sensor response and catalyst risk<\/h2>\n    <p>Rich operation, oil consumption, coolant entry and unsuitable silicone products can affect the sensing element and catalyst. Deposits on a removed sensor are useful evidence but not a complete chemical diagnosis. Photograph them, review oil\/coolant history and test the related engine system. Replacing a contaminated sensor without correcting exposure can create a repeat repair.<\/p>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Observation<\/th><th>Investigation direction<\/th><th>Boundary<\/th><\/tr><\/thead><tbody>\n      <tr><td>Dry dark soot<\/td><td>Rich operation, misfire, trip pattern and temperature<\/td><td>Appearance alone cannot name the cause<\/td><\/tr>\n      <tr><td>Oil-related deposits<\/td><td>Consumption, seals\/rings\/ventilation and misfire<\/td><td>Do not promise a sensor fixes oil use<\/td><\/tr>\n      <tr><td>Coolant-related evidence<\/td><td>Cooling-system loss and internal leak diagnosis<\/td><td>Color is not a laboratory identification<\/td><\/tr>\n      <tr><td>Possible silicone poisoning<\/td><td>Review sealants and service history<\/td><td>Do not clean with unapproved chemicals<\/td><\/tr>\n      <tr><td>Heat-damaged harness<\/td><td>Routing, shields and exhaust temperature\/root cause<\/td><td>Replacing element alone leaves physical cause<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n\n    <h2 id=\"mileage-warranty-claim\">How to investigate &#8220;new sensor did not improve MPG&#8221;<\/h2>\n    <p>A fuel-economy outcome alone is not a product-conformity test. Start by confirming the delivered part, exact application\/position and installation. Review the original diagnostic basis, circuit and response results, baseline method and all simultaneous repairs. Then test the product and vehicle against defined specifications.<\/p>\n    <div class=\"sunhy-table-wrap\"><table class=\"sunhy-table\" aria-label=\"Technical comparison and decision table\"><thead><tr><th>Claim evidence<\/th><th>Question answered<\/th><\/tr><\/thead><tbody>\n      <tr><td>Invoice, package, part and lot\/date<\/td><td>What product was supplied?<\/td><\/tr>\n      <tr><td>Vehicle\/engine\/emissions\/position<\/td><td>Was the fitment claim correct?<\/td><\/tr>\n      <tr><td>Before\/after code and response record<\/td><td>Was the original circuit concern corrected?<\/td><\/tr>\n      <tr><td>Installed route and connector photos<\/td><td>Was physical installation appropriate?<\/td><\/tr>\n      <tr><td>Fuel-use baseline and comparison conditions<\/td><td>Is the claimed economy change measurable?<\/td><\/tr>\n      <tr><td>Other diagnostic\/maintenance changes<\/td><td>What competing causes or confounders remain?<\/td><\/tr>\n    <\/tbody><\/table><\/div>\n    <p>A supplier should not dismiss the claim solely because a bench test passes, and a buyer should not declare the sensor defective solely because MPG did not change. Classify evidence, identify missing data and close the actual nonconformance or vehicle cause.<\/p>\n\n    <h2 id=\"mileage-emissions-boundary\">Do not trade legal emissions monitoring for apparent economy<\/h2>\n    <p>Spacers, simulators, sensor deletes, software code suppression and catalyst-monitor defeat do not diagnose or repair poor fuel economy. They can conceal evidence and violate emissions law. Restore the designed system, correct engine and exhaust faults and verify readiness through the applicable legal monitor process.<\/p>\n    <p>A catalyst or sensor monitor that remains incomplete after codes are cleared is not evidence of improved emissions or fuel control. Meet the manufacturer&#8217;s enable conditions safely, retain permanent-code history as required and investigate any returning fault. For U.S. applications, EPA\/CARB rules take priority; other markets require their own regulatory check. &#8220;Off-road use&#8221; is not a general permission to defeat the system.<\/p>\n    <p>The useful customer promise is diagnostic discipline, not a percentage: confirm the complaint, test the system, install the verified part only when supported and measure the outcome under comparable conditions.<\/p>\n    <h3>Technical pass before economy attribution<\/h3>\n    <p>First require correct part identity, secure installation, valid heater and signal operation, plausible fuel control and completed monitor evidence. Only then compare longer-term consumption. If technical checks pass but economy does not improve, the result directs diagnosis toward other vehicle or operating causes rather than another unsupported sensor replacement.<\/p>\n  <section class=\"sh-cta sunhy-cta\"><h2 id=\"request\">Prepare a fitment or sourcing request<\/h2><p>Send the OE number, year\/make\/model, engine or VIN details, market and emissions package, exact bank\/sensor position, connector and old-part photos, quantity and any packaging or approval requirements. Sunhyings will review the supplied data for capability and sourcing feasibility; fitment is not confirmed until application evidence is matched.<\/p><p><a href=\"https:\/\/sunhyings.com\/contact-us\/\">Contact Sunhyings with your fitment data<\/a><\/p><\/section><section><h2 id=\"faq\">Frequently asked questions<\/h2><details><summary>How much mileage can a bad oxygen sensor reduce?<\/summary><p>There is no dependable universal percentage. The effect depends on sensor bias, control strategy, driving conditions and other faults.<\/p><\/details><details><summary>Will replacing an O2 sensor improve gas mileage?<\/summary><p>Only when the sensor is actually faulty and affecting control. Replacement will not correct tire, thermostat, airflow, injector or driving-pattern causes.<\/p><\/details><details><summary>Can a downstream sensor cause poor mileage?<\/summary><p>Its primary role is commonly catalyst monitoring, so diagnose the vehicle strategy and circuit rather than assuming the rear sensor controls fuel.<\/p><\/details><details><summary>Can poor mileage occur without a check-engine light?<\/summary><p>Yes. Operating conditions, maintenance issues and some biased inputs may affect economy before a monitor sets a code.<\/p><\/details><details><summary>What data should I check first?<\/summary><p>Record consistent fuel use, codes and freeze frame, then inspect fuel trims, coolant temperature, airflow data, intake\/exhaust leaks and sensor response.<\/p><\/details><\/section><section><h2 id=\"references\">Technical references<\/h2><ul><li><a href=\"https:\/\/www.denso-am.eu\/products\/engine-management-systems\/lambda-sensors\" target=\"_blank\" rel=\"nofollow noopener noreferrer\">DENSO lambda sensor operation, installation and fault finding<\/a><\/li><li><a href=\"https:\/\/www.ngkntk.com\/products\/oxygen-lambda-sensors\/\" target=\"_blank\" rel=\"nofollow noopener noreferrer\">NTK \/ Niterra oxygen and lambda sensors<\/a><\/li><li><a href=\"https:\/\/www.boschaftermarket.com\/xrm\/media\/images\/country_specific\/sg\/services_and_support_6\/downloads_18\/lambda_sensors.pdf\" target=\"_blank\" rel=\"nofollow noopener noreferrer\">Bosch lambda sensor technology, diagnosis and replacement<\/a><\/li><li><a href=\"https:\/\/www.epa.gov\/sites\/default\/files\/2020-12\/documents\/tamperinganddefeatdevices-enfalert.pdf\" target=\"_blank\" rel=\"nofollow noopener noreferrer\">U.S. EPA enforcement alert on tampering and defeat devices<\/a><\/li><\/ul><p class=\"sh-byline\">References accessed July 28, 2026. Vehicle service information takes priority for application-specific diagnosis and installation.<\/p><\/section><\/article><script type=\"application\/ld+json\">{\"@context\":\"https:\/\/schema.org\",\"@type\":\"FAQPage\",\"mainEntity\":[{\"@type\":\"Question\",\"name\":\"How much mileage can a bad oxygen sensor reduce?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"There is no dependable universal percentage. The effect depends on sensor bias, control strategy, driving conditions and other faults.\"}},{\"@type\":\"Question\",\"name\":\"Will replacing an O2 sensor improve gas mileage?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Only when the sensor is actually faulty and affecting control. Replacement will not correct tire, thermostat, airflow, injector or driving-pattern causes.\"}},{\"@type\":\"Question\",\"name\":\"Can a downstream sensor cause poor mileage?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Its primary role is commonly catalyst monitoring, so diagnose the vehicle strategy and circuit rather than assuming the rear sensor controls fuel.\"}},{\"@type\":\"Question\",\"name\":\"Can poor mileage occur without a check-engine light?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Yes. Operating conditions, maintenance issues and some biased inputs may affect economy before a monitor sets a code.\"}},{\"@type\":\"Question\",\"name\":\"What data should I check first?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Record consistent fuel use, codes and freeze frame, then inspect fuel trims, coolant temperature, airflow data, intake\/exhaust leaks and sensor response.\"}}]}<\/script>","protected":false},"excerpt":{"rendered":"<p>Un capteur d'oxyg\u00e8ne biais\u00e9 ou lent peut contribuer \u00e0 une mauvaise \u00e9conomie de carburant, mais les changements de kilom\u00e9trage n\u00e9cessitent un diagnostic des correctifs de carburant, de la temp\u00e9rature, du d\u00e9bit d'air, des fuites et des conditions de conduite.<\/p>","protected":false},"author":1,"featured_media":14183,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[37],"tags":[],"class_list":["post-14146","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-troubleshooting-safety"],"_links":{"self":[{"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/posts\/14146","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/comments?post=14146"}],"version-history":[{"count":0,"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/posts\/14146\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/media\/14183"}],"wp:attachment":[{"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/media?parent=14146"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/categories?post=14146"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/sunhyings.com\/fr\/wp-json\/wp\/v2\/tags?post=14146"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}